Document 1Qp4MyL8YoZz86QnVzg4g7kzZ
I
AAIH SEMINAR No. 8
ODORS: HELPFUL WARNINGS AND HARMFUL EFFECTS
Tuesday* October 22, 1985
Seminar Director: John E. Amoore, Ph D.
Olfacto-Labs 1414 - 4th. Street Berkeley, CA 94710 (415) 255-0205
1 130 p.JT.
FUNDAMENTALS OF ODOR SCIENCE
2:15 p.m, Demonstration of olfactory threshold testing
2:30 p.m. ODOR AS AN AID TO CHHKICAL SAFETY
3*15 p.m, Intermission to visit the exhibits
3*45 p.m. EFFECTS OF CHEMICAL EXPOSURE ON THE SENSE OF SMELL
4*30 p.m. Questions, comments, and review of test results
Page 6
12
17
31
00 A 039745 CONFIDENTIAL
Objectives: There is a large and scattered literature on the chemistry of odorous substances and the physiology of the sense of smell. This review is designed for maximum relevance to industrial hygiene. The presentation will be in three sections:
1. Fundamentals of Odor Science: Discusses the physical chemistry of odorant*/neasurement of odor detection threshold, odor intensity and odor quality. Describes the phenomenon of specific smell-blindness, and its value in suggesting a fun damental classification of primary odors.
2. Odor as an Aid to Chemical Safety : Develops a quantitative evaluation of the warning thresholds for 214 industrial odors, in relation to their TLVs. Analyzes the potential for worker education on hazard recognition by odor, and for odorization of hazardous products that lack adequate warning properties.
3. Effects of Chemical Exposure on the Sense of Smell: Con siders the normal, and abnormal, ranges of human olfactory sensitivity. Surveys the literature on temporary and permanent loss of the sense of smell caused by chemical exposure, usually chronic, but sometimes acute Over 100 chemicals can have these effects, belonging to six major divisions of the chemical industry.
Illustrative materials will be provided, and a hands-on demonstra tion of olfactory threshold testing will be available.
American Academy of Occupational Medicine American Academy of Industrial Hygiene Joint Conference on Occupational Health Orlando, Florida, October 21-25, 19B5
2
DO A 039746 OONFTDFNT TAl
Key References (review articles)i
Fundamentals of Odor Science: Odor theory and odor classification. J. E* Amoore. In "Fragrance Chemistry." 1982, 27-76. E. T. Theimer, Editor. Academic Press, New York.
Olfactory Threshold Testing: The pyridine scale for clinical measurement of olfactory threshold: a quantitative reevaluation. A. H. Sherman, J. E. Amoore and V. Weigel. Otolaryngology and Head and Neck Surgery, `1979, 82* 717-733*
Odor as an Aid to Chemical Safety: Odor as an aid to chemical safety: odor thresholds compared with threshold limit values and volatilities for 214 industrial chemicals in air and water dilution. J. E. Amoore and E. Hautala. Journal of Applied Toxicology, 1983* 1* 272-290.
Effects of Chemical Exposure on the Sense of Smell: Effects of chemical exposure on olfaction in humans. J. E. Amoore. In "Toxicology of the NaBal Passages," 1985* 155-190*- C. S. Barrow, Editor. Hemisphere Publishing Corp., New York. ((.n* TV-tJsJ
O0O7A7
3
00 0 OFNTT^
C.ONF I
Useful Formulae!
At 25 C*
ppm x mol. vt. - mg/ra^ (European practice).
24.4
Air/water partition coefficient at 25 (v/v)
vapor press, (mm Hg) eoly. (g/l)
x mol. vt. x 538 x: 10r5
To prepare water or air dilutions from the pure odorant (solid or liquid)*
1 ppm (v/v) - 1 mg (or l/D jil) per liter of water
M.V,
M.V.
1 ppm (v/v) ---------- mg. (or ------------- pi) per cubic meter of air
24.4
24.4 x D
Avogadro's Number* Mol. wt. in gm of a pure compound contains*
OX
6,02 1 10 ; molecules
Effect of pH on ionization of weak acids and bases:
acid:
concn. of acid ----------------------- - antilogy (pK& - pH)
concn. of anion
base:
concn. of base ------------------- ------ -
concn. of cation
- antilogy (pH - pl^)
where Kfi and are the acid and basic dissociation constants, respectively.
Quantity of odorant adsorbed mass of adsorbant x k x concn, of odorant'*
where k is a constant, and exponent b is less than unity.
0
4 cv
Formulae (continued)!
Stevens' (i960) Power Law for odor intensity! intensity - k x concn. of odorant
where k is a constant, and exponent n is in the vicinity of 0.6 on log intensity n x log concn. 4 log k
Hence, perceived intensity of odor increases about 1.5 times for each doubling of the odorant concentration. Conversions in the binary step (log2) concentration scale for odorants:
concentration ratio antilogy (binary steps x O.JOl) log^Q concn. ratio
binary steps ----- ^----------------------0.301
actual concn. of odorant Odor Units (U) - ------------------------ ------------ TM""
threshold concn, of odorant Cuadagni'B (1966) Rule of Additivity;
Odor Units of a mixture is the sum of the odor units of all its components;
U U 4 U_ 4 U. 4 . m12 3
_ ^^7 AQ
5
Odorant
TnmethyUmine Pyridine Isobutyl isobutyrate /Cars one Phenyl ether i-Chloroacetophenone i^Pentadecalactone Musk ketone
Volatilities of Odorous Compounds ai 23 C
Vapor pressure (mmHg)
Molecular weight
Concentration in atr
(g Inert
(mg m'l
(ppm. v \ )
1700 20 42 0 i: 0 022 0.0075 . 0 00045 0 0000021
59
54 * I0r
5 4 a 10*
2,200.000
79 8 5 a 10 * 8 5 a 10*
26.000
144 33 * 10'* 3.3 a 10*
5500
150 97 * 10 * 9.7 a 10*
160
170 20 * io-4 20 a 10*
29
155 0.3 * 10'f 63 a I01
99
240 5.8 a 10'* 5.8 a J0
0 59
294 3 3 a 10 * 3.3 a 10- *
0 0028
Calculated air/water partition coefficients of normal 5<arboo compounds at 25*.
Compound
Vapor pressure (mm H|)
Solubility m water t*/l)
Molecular weight (|)
Partition cocfridcnt (calculated)
Pentane Propyl ethylene Propyl acetylene Pawyl chloride Pentyl mercaptan Methyl butyl ether Methyl butyrate Nitto pentane Pcnryl aldehyde Bury) cyanide Methyl propyl ketone Pentyl amine Pentyl alcohol Peatanoic add
520 640 440
33 15 170* 32
1.7 16* 7.6
2186
2.5 0.29
0.038 0.11 1.0 0.20 0.16 1.9 15 1.3 12 13fc 34
9 23 30
72.1 70.1 68 I 106.6 104.2 18.1 102.1 117.1
6.1 3.1 6.1
r.2
8.1 102 1
52
22
1.6 0.93 0.55 0.091 0.011 0.0085 0.0063 0.0026 0.0013 0:0013' 0.00052 0.000031
A 03^7^0
6 00 fOF^Tl
OONF
Odor Deterrtoo Thrr-sholdi of Selected Compound!
Odor threshold eoncn in air
Compound
(mg m*)
(ppm. v v)
Ethane
Methanol
y
Chloroform Benzene
Camphor
t
Furfural lsoamyl acetate
r Jj-Androst-l6-en-3-one 2-Meihox>-3-isobut>lp> razine
IS X 10' 6.6 X 10* 3.2 X I03 1.7 X 10' l.l X I06 2 3 X 10'' 3 8 X I0'3 2.1 X 10'* 36 X I0-*
r" rtr ^rz
120.000 500 65 5.2 0.17 0 059 0 0071 000019 0.00000054
ju*^~
Bulonol ppm, by volume
The butanol reference scale for odor intensity. plotted in log log coordinates (Re printed from Moskowiu rt ai. 1974.
o397BA
00 A
Number of thresholds
Concentration in air (ppm)
Serial dilutions in water (binary steps)
Normal distribution of olfactory threshold sensitivities in the human population.
Bimodal distribution of olfactory thresholds to isobutyraldehyde.
Car'**-.
e A 03975?
oonftdfnttai
NUMBER OF SUBJECTS
Thresholds of a panel of epecific anosmics (stippled) compared with a panel of normal observers (outlined).
hQu.
U
o
u
ton
z <
NUMBER OF CARBON ATOMS
Mapping the range of the specific anosmia to aliphatic aldehydes.
/
DO A 039753 C.ONFTDFNTTAL
>
CM,
s
\
OH
c
ACID
CM,--------CM,
||
CM, .CM
1-PYRROLINE
r
.H
/\
CM, CM,
TRIMETHYL AMINE
^CH-CM CM,
ISOBUTYRALDEHYDE
-CH
Iv
t I CH
^CHV|'i jtN
/
., VCH ^CHi
I|I
K S**
CM]i CM]
H
5a*ANDR0ST -16-EN-3-ONE
CH, CM, .CM,--CH, Vs`CHj '"CM,-CM, Wi C-0 'cm,--CM, ^CM, ^CH,--O
'CM, 'CM,
f-PENTADECALACTONE
^CM--
CM,-- C
/ CM,
/CARVONE
1,8-CINEOLE
Structural formulas of eight of the primary odorants.
Olfaetometric properties of eight of the primary odorants.
Primary odorant
Primary Odor
Norma] threshold
In air
In water
(ppm, v/v) <ppm.w/v)
Anosmics* occurrence
(*/.)
lsov,ter>c Kid
Sweaty
l-Pyrrolme
Spermous
Tnmethylamtne
Fiahy
Isobutyraldehyde
Malty
3a*Androst-16-en-3-one Urinous
w-Pentadecalactone
Musky
ACarvone
Minty
] ,8-Cineole
Camphor
0.0010 0.0018 0.0010 0.0050 0.00019 0.018 0.0056 0.011
012 ' 0.020 000047 0.0018 0.00018 0.0018 0.041 0.020
3 16 6 36 47 12 t 33
Anosmics' defect (factor)
42 39 130 340 770 13 13 56
J*
&to jj
DO 0
,07 6A 03' df^
er*
SEREIAl IDOI CLASSIFICATIONS
SttCtriC ANOSMIA ANALYSES
UK
M
1
t minimi lamit
MM mi
Mttni tutut
ttutut
mm
> on
i (TOl
4 * M
i
Ml
4IBVATK
A vmm
7
n
* mi
to Bn
11 BIND
13 tmm
13 IUMI
14
mu limn
fiitmr
13 UT
1* TNLU
ir imu
ii
\9 *
lull MUT
eiihiul
30 31 *
im FIUT
ftUlittllt
33 Hiihii 33 (Mir
34 WIIUC
33 * CIMIIC
Utttit
34 cm mat
37 MlCITlt uriitnE 31 Hint
3t * UBIttB MtSftll
30 FU1L
31
33
33
34
33
34
mum
Mil i timu
nci raaitt fllfCIf
him
miiMt
fiil
CtKItl 4 MMntM
M1
MUM MU
Miim t tutut
ttvtiut CIlFHI
IMF
iiiiim
ruin
iisir
HIM timm
mm Hi
turn
N44 1 tuuts
(Tlltfli
Mil 4 mm
Mill
nu
M44 M4I
1 CUUtl 44 (UlUl
MCb> UMMt
MM1WII
MMTIt IMIITK 4IIIRI4
lllllllll* nidii mint
Bin ititin
rntn
7 unco own
lltllll
Kiun
Mom
KTILIISI _tniaT_
UKFMI TlliUi
MMiTIC
VKI
Mill rvumi
Suet Bin
Ultitll Tticnaii Katiini
mini
t.fcwim
iirttitiiii
I
IlCILIII Minn
ncuiL
mm iiciiit
cum
tiiitu
umui iimtn
prim
IPMI ____!*!____
IHiABUH
1ICMBU
MUMIt
(Tin
u aim Ulnaii
(41IIII
LUM1X
1MMI
uum
wan ITlIflll
tlBil
CttIMI
IliiniL
immi MMM
CMPM
r*
Hitt riinm
4U1III mtu rutmi
ftit ntiiMi
mu
IfltT
VlllLLA If111
Wtl Ulttc iislvii HIM
Nil
Fiiscin
taunt T*U 111
Kl m unman
t1CL|T(l[
min 4UUTI
MUMI
AttlCttUC T|| ISIS HI mi in
IIIULIIE
w-aaTMici UMBt
AUH (II man iti Titictmn TnicuaiTf
lUtCJ*
J
MIMIU iFcaic ice*
IlfLMdl
IBM Tin a(
Ftflu ntBauMC
TIlPITlU MlB(
Mtirin
w tm*
mu
inicnvi
mu CilHLIt tWCiTT
raw
Mfn
tCMtl
BMt
UK
iLTBlTK FKITUCITtCi
1C9S 11}
(
tnm
U1MIS 111
iHttmm
tMiriK ITIBS 111
MtMl
tltCllMt
ItltiLtllC Mil
4MI0ST
11 tl I4M
tauti PNHl
Kill
IILFNHI
itinilS annual
FIUL, illfll
Kiimi Fiiai
Mill ttlFMHI
Kit
Mt BUT
mm
men
Hum
nuuc
rumcui i-PTWim
ituiu
Mill
i-pTtanvt mmi
hbml
ItlCilUlt liunu 111 tttVlFlII
milt 4C icitk icn
TMiraiat
mm SMI ML
auam
acini
1 HU!
thu
IBM
37 Mill
J
MUT
! itMtain
141 BUfU
ii mum
3* 4HIT
40
emu VlllTillE
M timbal
41 mi irfiltti
iumii
43
Mil
Bimit 41MITM
CtBBTTl at acam
ULT
43
mim
aniKu S*U
44
45
46
47 ' oo *
4| 11 CONP t 4V
SO mi iincim * -- i ft j
IHICEIT
,
T|l((PilAl | | J ylilti
fBMiLltatlt
PYRIDINE DILUTION SERIES
DILUENT
Binary step
.fewt-0
1 2 3 4 5 6 7 B 9
10 11 12 13
14 15 16 17 18 19 20 21
22 23 24 25 26 27 26 29
WATER
MINERAL OIL
AIR
CLINICAL SIGNIFICANCE
Concentration Concentration Concentration
(percent)
(percent)
(ppm, v/v)
OF THRESHOLD
100
50 25 12
6 3
1.5 0.8 0.4 0.2
100 27,000
Henry s Law not obeyed in this concentration range
3 1.5 0.8 0.4
2,700
1,400 700 340
Complete anosmia. (no I, V, IX or X nerve function)
Hvposmia type I. (no 1st nerv function but Vth nerve is functional)
0.1
0.05 0.025 0.012
0.2 0.1 0.05 0.025
170 80 40 20
Hvposmia type II. (abnormally weak let nerve function)
0.006
0.003 0.0015 0.0008 0.0004 0.0002 0.0001
0.00005
0.012 0.006
0.003 0.0015 0.0008
0.0004 0,0002 0.0001
10
5 2.6
1.3 0.66
0.33 0.16 0.08
Normal ranee. (Average = 16.0 st p
S.D. 2.0)
0.000025 0.000012 0.000006
0.000003 0.0000015 0.0000008 0.0000004 0.0000002
0.00005 0.000025 0.000012 0.000006
0.000003 0.0000015 0.0000008
0.0000004
0.04 0.02 0.01
0.005 0.0025
0.0012 0.0006
0.0003
Hvoerosmla. (abnormally sensitive 1st nerve function)
12 00 A 039756
CONFIDENTIAL
TEST PROCEDURE
Select the pair of bottles for step #14. Flip open the spouts, and Bwlrl the contents to hasten equilibration. Instruct the patient to direct the spout closely towards the nostril, then to aqueez the bottle while inhaling through the nose. Ash the patient to pick out the odorous, or most odorous, bottle. Extra sniffs are permitted, before making the choice. Detection only is required, not recognition of the odor. Raise bottle above eye level to see the label on bottom of bottle. If the patient's choice Is correct (PIR-14) enter "C" in 1st. test column for step #14. Swirl the bottles again, and randomize their positions until neither the tester nor the patient remeab rs which is the odorous bottle. Ask the patient to repeat the test a 2nd. and a 3rd. time at step #14. A wrong selection (BIA-14) is indicated
by "x" in the appropriate column. In order for the patient to pass a
given sensitivity step, the correct selection must be made all three times. Flip the air-spouts closed, and replace the bottles in the carton. Proceed to the next higher, or lower, sensitivity step, as requir d to establish the patient's threshold olfactory sensitivity to pyridine on this occasion. At least two consecutive concentration steps should be passed, in order to establish a valid threshold, which is defined as the highest sensitivity step yielding all-correct responses.
DO A 039757 CONFTDFNTTAl
15
SCORE-SHEET
OLFACTORY SENSITIVITY TEST (PYRIDINE SCALE)
Questionnaire
Patient's name:_________________________________________
Referring M.D.: Date:
m order to avoid permanently contaminating the bottles with foreign odorB, and to obtain a reliable test result, It Is essential that:-
Patlent has not emoted In last 15 min.? No food, beverage or candy In last 15 min.?_____ No perfume or hand lotion used today? Not Buffering from a cold or influenza?_______ Not experiencing a nasal allergy (hay fever)? At least one nostril 1b clear right now?
Precautions
Th* bottles are on*-quarter filled vlth ninsral oil, and aunt not be knocked over, ehaken or inverted, because oil nay enter the air epout. Zf this accidentally occur*, the dlapenser cap ehould be uncraved, any oil lnalde the cap and air delivery tub* reaoved vlth tvlete of clean tissue, and the cap tightly replaoed. Xach test odor bottle should always be ooapared vlth Its ovn aatehed blank bottle. PyTldlne In th* strongest concentrations (step 06 contains 3% In th* oil) nay be oaustlo or Irritating. Xach successive higher sensitivity step contains pyridine at one-half the concentration of the preceding step. This ollnleal olfactory test kit aust be used only by trained personnel, and kept out of the reach of children.
Clinical background
Olfactory evaluation
Pyridln threshold Is Step #_ T st d by:
oo A 039?5ft
rONFlDF/VT TA(
14
SENSIf1T TIAVP 1Yf1ll V1 STEP
29 28 27 26
25 24 23 22 21 20 19 18 17 16 15 14 13 12 11 10
9 6 7 6
TESTS i 1st 2nd 3rd
t _____!____ .
i
NUMBERS OF PATIEN TS
CLINICAL OLFACTORY THRESHOLDS
Hyposmla 20
Normal 15 subjects
10
Normal
Hyperosmla
-------------- T" Pltuitary
tumor
----------------r Rhinltls
n
in m.
rB
r.n-fl
Post head
trauma
CLrr r~i.. n T
Salim ami's
H.
syndrome
__cBn l 10
I IS
_r-
20
T 25
PYRIDINE SENSITIVITY STEP
30
15 DO A 039759
OONFTDFNTIAl
CLINICAL INDICATIONS
Hvposmla type I (pyridine sensitivity step #9 or lower)
Mechanlcel blockage of airway by intranasal polyps, ethmoid Blnusitls, allergic rhinitis, or carcinoma of paranasal sinuses or nasopharynx.
Damage to olfactory epithelium by acute or chronic Infection, atrophic rhinitis, or certain Industrial fumes and vapors.
Damage to olfactory nerves or bulbs by head trauma causing fracture, shearing, hemorrhage or concussion.
Abnormalities In the region of the floor of the anterior f ssa, Including meningioma, frontal lobe tumor, meningitis at base of frontal lobe, abscess of frontal or ethmoid bone, vascular tumor, or arteriosclerosis of the anterior cerebral artery.
Congenital defects such as deviated Beptum, absence of olfactory bulbs, familial dysautonomia, or hypogonadotrophic hypogonadism.
Miscellaneous problems, Including nasal medication, surgical Interference, radiation therapy to the head, Idiopathic hypoguesia with hyposmla; also hysteria and malingering.
H.vposmla type II (pyridine threshold steps #10 through #13)
Milder Incidence of the above conditions. Upper turbinate congestion due to allergy or head cold. Acute viral hepatitis, poliomyelitis, advanced syphilis,
diphtheria, leprosy. Heavy smoking, chronic alcoholism, sniffing cocaine. Diabetes mellitus, hypothyroidism, some forms of hypopituitarism,
hyperactive adrenal cortex. Some systemic medications and antibiotics. Miscellaneous conditions, including vitamin A deficiency,
pernicious anemia, uremia, tine deficiency.
Hvoerosmla (pyridine sensitivity step #22 or higher)
Glucocortlcosterold insufficiency (Addison's disease). Some drugs, such as caffeine and strychnine. Some cases of pituitary tumor. Epilepsy, schizophrenia, specific allergy.
DO a 03^760
CONFTnFNTTAl
16
Literature odor threaholds for n-butyl alcohol*
Water-dilution threshold
Air-dilution threshold
Original data
SI"
0.005% (v/v)
1 mg!1 1.00 ppm (w/vl 2.5 ppm (v/v)
0.50 ppm (v/v)
4.03X10"
1.00X10" 1,00X10" 2.01 X10"
4.02 X10"
2.0 mg/kg 3.6X10" M/i 2.77 ppm (vv/v)
2.00X10" 2.67 X10" 2.77X10"
6,6 X 10'1 9/1
6.50X10"
Original data
1 mb/i 0.565 X10" mol 1" 0.000223 mg/I Act,, * 6X10" Act,,-: 7.0X10"
15 ppm (v/v)
Act,, = 6X10" 33 mg/m1
1.10 X10'* mol/ce 1.2 mg/m' 0.013 mg/I -)og,t M/I = 7.81 0 JO ppm IvM 3.16 ppm (v/v) 62 ppm (v/v)
0.0231 mmHg 0.390 ppm (v/v) 2.8 X10'' ppm (v/v)
3.5 ppm (v/v) tog, ppb = 10 42
Bl"
1.00X10" 4.18X10" 2.23X10" 1.61 X10" 4.09X10" 1.45X10" 4.66X10" 3.60X10" 3.60X10" 7.24X10" 1.40X10" 3.30X10" 1.45X10" 04X10" 1.20X10" 1.30X10" 9.12X10" 9.11 X10" 9.60X10" 1.88x10" 7.20X10" 9.61 X10" 9.97X10" 9.23X10" 1.18X10" 8.50X10" 2.34X10" 1.06x10" 4.15X10"
First reference
Patsy, 1892 Beckman. 1917 Jung, 1936 Gevauden, 1948 Mullins. 1955 Moncrieff, 1957 ScherPerger, 1958 Nazarenko, 1962 Rosen, 1962 Baker. 1963 Gevauden, 1966 May, 1966 Flath. 1967 Dravnieks, 1968 Khachaturyan, 1969 Corbitt. 1971 Leffort, 1973 Heilman, 1974 Motkowitz, 1974 Moikowitz, 1974 de Grunt, 1975 Hertz, 1975 Lilterd, 1975 Pipgott, 1975 Dravnieks, 1976 Williams. 1977 Amoore, 1978 Leing. 1978 Punter, 1980
Geometric mean, air-dilution threshold = 2.54 X10" 9 1" <N = 29I * 2.54 mg m" -- * 0.B35 ppm tv/vj
Stenderd devietion = Mh 7.14, Standard error = */- 1.44
* MW -- 74.1 B; D,, 0.806 9 ml"; VP,, = 6 99 mmHj, S,, = 73.0 9 1"; ti'-vvater partition coefficient et 26eC = 3.6 x 10'* leapt.). 3.61 X10" (eelc.l.
K5 'jab*- ^v*^*
/ t44)44^ft*v*. IiAJL,
/&*K&&**~* >7lt4Wi-A4i.
1^0 A 039761 0ONFTDFNTIAI
17
Explanation of column headings in Tables 2(a) and 2(b)
Column 1. TLV's listed by ACGIH, 1982. 2. Volatility * vapor presB. (mm Hg at 25c) x 1,316 3. Air odor thresholdis geometric mean of all literature data (including converted water threshold data). 4. Standard error of mean odor threshold value. 5. Safe dilution factor (for saturated vapor) - volatility divided by TLV, 6. Odor safety factor TLV divided by odor threshold, 7. Odor safety class: see Table on page 28 for interpretation. 8. Water TLV equivalent: the aqueous odorant concn. that is in equilibrium with air TLV concn. 9. Solubility - literature soly. (g/l) x 1,000
10, Water odor threshold: the aqueous odorant concn. that is in equilibrium with the air threshold concn.
11 & 12. Molecular weight and density are needed when measuring out odorants to prepare water or air dilutions (see Useful Formulae).
13. Water-air distribution ratio reciprocal of the air-water partition coefficient (both concentrations in g/l).
14* The number(s) of literature reference values that were averaged to obtain the mean odor threshold in column 3.
18 DO A 039767
CONFTDFNTTAl
WORK PAGE
DO A 030783 CONFTDFNTTAl
19
J.l. AMyUKL ANlJL HAL 1 ALA
Tbl* 2(a) Air-dilution odor threshold data on 214 industrlil chemicals. The numerics! dita are mostly rounded off to two significant figures. Note that ppm on this half f Table 2 are in */v units (jd l'1) for the gaseous chemical to air dilution. See Methods for further explanation of each column. TLVs are reproduced from Ref. 1 (1982) with permission from ACGIH
Substance
Acetaldehyde Acetic acid Acetic anhydride Acetone Acetonitrile
Acetylene Acrolein Acrylic acid Acrylonitrile Ally! alcohol
Ally! chloride Ammonia /Amyl acetate aec-Amyl acetate Aniline
Artine Benzene Benzyl chloride Biphenyl Bromine
Bromcrform 1,3-Butadiene Butane 2'Butoxyethanol /-Butyl acetate
/Butyl acrylate /-Butyl alcohol arc-Butyl alcohol Mrr-Butyi alcohol /-Butylamme
z-Butyl lactate /butyl mercaptan p-rerr-Butyltoiuane Camphor Carbon dioxide
Carbon diaultide Carbon monoxide Carbon tetrachloride Chlorine Chlorine dioxide
a-Chloroaceiophenone Chlorobenzene Chlorobromomethane Chloroform Chloropicrin
8-ChtorOprene o-Ch lorotoluene m-Cresol t/anr-Crotonaldehyde Cumene
1 Threshold limit value (ppm; v/v)
100 10 B
760 40
140 0001 0.1
10 2 2
1 25 100 125
2
0.05 10
1 0.2 0.1
0.5 1000
BOO 25
150
10 50 100 100
5
5 0.5 10 2 5000
10 50
5 1 0.1
0.05 75 200 . 10
0.1
10 50
5 2 SO
2 Volatility at 25'C (ppm; v/v)
S 20 000 6700
290 000 120 000
0 360 000
5800 140 000
33 000
480 000 s
5200 9200
630
s 120 000
1600 11
270 000
8000 S B
1300 16 000
7100 9200 23 000 55 000 93 000
690 -49 000
850 450 B
470 000 B 140 000 B B
8.9 15000 190 000 250 000 34 000
290 000 4700 180
-41 000 6900
3 Air odor threshold (ppm; v/v)
4 Standard error U/->
0.050 0.48 0.13 13 170
1.7 1.5 1.1 1.6 2.8
620 0.16 0.094 17
1.1
2.8 1.5
--
2.4 1.3
1.2 5.2 0.054 0.0020 1.1
2.5 2.0 2.1
-
1.6
0.50 12
0.044 0.00083 0.051
_
1.6 1.1
--
2.2
1.3 1j6 2700 0.10 0.39
2.3 2.5 1.4
--
2.5
0.035 0 83 2.6 47 1.B
5:3 14 2.0 2.6 2.5
7.0 0.00097
5.0 0.27 74 000
__
1.4
--
1.B 1.5
0.11 100 000 R
96 0.31 9.4
1.9 10
1.8 1.8 1.6
0.035 0.6B 400 85 0.78
1.1 1.6 -. 1.7 1.4
15 0.32 0.00028 0.12 0.0B8
7.9 1.6 2.4 1.1 2.9
5 Safe dilution factor
10 000 2000 1300 390 3000
7 3600 000
580 72 000 16 000
480000 40 000 52 74 310
20 000 000 12000 1600 56
2 700 000
16 000 1000 1300 52 110
720 180 230 650 19 000
120 97 000
85 230 200
47 000 20 000 29 000 1 000 000 10000 000
200 200 940 26 000 340 000
29 000 94 36
' 20 000 120
274 JOURNAL OF APPLIED TOXICOLOGY. VOL. 3. NO. 6,1983 2Q
#.
y~< /#/< ,
1% we
= /e> X nJ- ***
6 Odor safety factor
7 Odor safety dess
2000 21 39 57
0.23
A C 8 6 D
230 0.61
110 0.12 1.8
8 0 6 E C
0.84 4.8 1800 61 000 1.9
0 c A A C
0.10 0.85 23 240 2.0
E D C B C
0.39 640
0.29 250 390
D A 0 8 B
290 60 38 2.1 27
B B B C c
0.71 510
2.0 7.3 0.067
D 6 C c E
92 0.00050 0.052 3.2 0.011
B 1 E C E
1.4 110
0.50 0.12 0.13
C B 0 E e
0.68 150 17000
17 570
D 8 A C A
ff--
f.ONFTOFNT
ODOR AS AN AID TO CHEMICAL SAFETY
Table 2(b) Water-dilution odor threshold data n the amt 214 chemicals. Note that ppm on this half of Table 2 are In wft units (mg l*1);f r the chemical in aqueous solution. The numerical values in Table 2 are almost invariably compiled, averaged , re-caJculaied or extrapolated from the literature, and are nor new experimental determinations
Substance
e
Water TLV equivalent (ppm. w/v)
B 10
Solubility at 25 *C (ppm; w/v)
Water odor threshold (ppm. w/v)
11
Molecular fveiQht 8>
12
Density at 20-25* C (g ml*')
13
Water-air distribution ratio (w/v)
14 Number pi thresholds performed
ir wittr
Acetaldehyde Acetic acid (A/4 7) Acetic anhydride Acetone Acetonitrile
Acetylene Acrolein Acrylic acid (A/4.3) Acrylonitrile Ally! alcohol
Ally I chloride Ammonia (B'9.2) n-Amyl acetate rec-Amyl acetate Aniline (B/4.6)
Art me Benzene Benzyl chloride Biphenyl Bromine
67 2000 d 1100
70
-
d **
(150) 0.066
1.1 26
1000 200 00C -
73 000
-
(0 0075) 71 68 110 120
T600,,> 280 000
1800,o 1700 37 000
10.000035) (0 15) 0.28 0.12 0.012
670 1800
460,o 6.7
33 000
0 034 97 d 20 300
44
60 102
68 41
(0.67) 0.11
9.1 14
26 66 72 53 68
(0.00B9) 1.5 0.037 00017 65
(000035) (0.171 0.012 0.00050 0 0063
76 17 130 130
93
78 78 127 164 160
0 79,. 1.05 1.08 0.79 0.78
B 0.84 1.05 0 80 0.85
-0.94 B 0.88 0.B7 1.02
S 0 88 1.10
1
3 12
370 82 000 d
620 1000
1.0 2B0
240 6600
24 400 130 160 16 000
0.22 4.6 65 95 19
63 14 4
2-
20 8
3--
2-- 71 122 4
2-- 11 2
54 -i
9i
1 m19 4
2-1
4--
Bromotorm 1,3-Butadiene Butane 2-Buioxyethenoi n-Butyl acetate
020 <0.881 <0.051)
65
3100 850 61
6800
0.51 (0 0014) (0.171
0.17
253 64 58
118 116
2.89
B B 0.90 0 88
38 0 40 0.027
91
41 641-
93
n-Butyi acrylate n-Butyl alcohol aec-Butyi alcohol rerr-Butyi alcohol n-Butylemme (B/1061
n-Butyl lactate n-Butyl mercaptan (A/10 8) p-rerr-Butyitoluene Camphor Carbon dioxide (A/6.4)
Carbon disulfide Carbon monoxide Carbon tetrachloride Chlorine Chlorine dioxide (A)
o-Chloroacetophe none Chlorobenzene Chlorobromomethane Chlorolorm ChlorppiCrin
22 420 730 620
17
1600,o 73 000 200 000 -
-
370 10 00611 (0.064) 7.5 (7.5)
42 000 600,o - 5.5
1700,, 1400
(0 0361 (0.0013) <0 0271 (0.0065) 0 0071
1700 26
770 6300 87 000,,
dd
5 5 1100
17 -16 000
(0.28)
7100
(0.0048)
1600
0 0078 7.1 19 290 6.2
128 74 74 74
73
520 (0 000012) (0 032) 1.0
(110)
146 90
148 152
44
(0.00039) (2.7)
(0.52) 10.0020) 0.67
76 28 164 71 67
d 0.050
34 (2.4) 10.037)
155 113 129 119 164
0.90
o.ei 08 k
0 78 0.73
0.98 0.84 086
1
8
1.26
9
1.59 B
9
1.10 193 148 1.65
43 2800 2400 2000 1100
21 20 9
51 41 32
12000 3.3 1.1
600 0.83
1_ 6193 2-
1.2 6 _
0.023
2-
0.85
10 1
2.2 7 -
26 1 1
d 16 16 6.7 7.1
2
62
114 1
11
P-Chloroprene o-Chiorotoluene m-Cretoi I A/10.1) rranr-Crotonaidehyde Cumene
(0.016) (11) 640 7.2 (0 451
480,o
100W 23 000 150 000,o
63
(0.024) (0.0069) 0.037 0 42 10.00080)
88
127 108
70 120
0.96 1.08
1.03 0 85
0.86
0.45 41 29 000 1200 1.8
21 11
33 11 61
21 DO A 039765 CONFIDENT! Al
Table
-Continued
Subelance
Cycldhexene Cydohtxenol Cydohe xenone Cydohexene Cydbhexylamine
Cydbpentediene Detaborene Diacetone alcohol Diborane o*Dichlorobenzene
p-Diehlorobenzene tram 1,2-Dich loroeth y It ne ,S'-Dichioroethyl ether Dicyclopentediene Diethanolamine
Difthylamine Oiethylaminoethanol Diethyl ketone Dntobotyl ketone Dnaopropylemme
/V-Dimethyiaeet amide Dimethylamine /V-Dimethylanihne A/-Dimethylformamide 1,1 -Dimethy Ihydtazine
1,4-DiOxane Epichlorhydnn Ethane Ethanoiamine 2-Ethoxyethanoi
2-Ethoxyethyl acetate Ethyl acetate Ethyl ac'ylate Ethyl alcohol Ethylamine
Ethyl n-amyl ketone Ethyl benzene Ethyl bromide Ethyl chloride Ethylene
Ethylenediemine Ethylene bichloride Ethylene oxide Ethylenimine Ethyl ether
Ethyl formate Ethylidene norbornene Ethyl mercaptan flf-Ethylmorphoiine Ethyl ulicate
Fluorine Formaldehyde Fornuc acid Furfural Furfuryl alcohol
1 Threeho Id
limit value (ppm; v/v)
2 Volatility ei25*C (ppm; v/v)
300 130 000 GO 2000 2G eooo
300 99 000 10 15 000
75 0.05
50 0.1
50
-560 000 -110 1600
e 1800
75 1200 200 420 000
5 1500 5 3600 3 78
10 10 200 25
5
310 000 2900
22 000 3300
110000
10 10
5 10
0.5
2600
9 1000 3100
210 000
25 2
140 000' 3 5"
52 000 21 000
9 780
7100
5" 400
5 1000
10
25 100 200 1000 140 000
10 10
r 0.5 400
100 5 0.5 5
10
1 r 5 2 10
2700 120 000
50 000 75 000 9
3600 13 000 610 000 9 9
16 000 110 000 9 260 000 700 000
320 000
710 000 11 000 3000
9 9
57 000 2100 810
3 Air odor thrtthold (ppm; v/v)
4 Standard error U/+I
25 0.15 0.88 0.1B 2.6
ia
0.060 0.28 2.5 0.30
2.8 2.1 2.2 --
4.2
0.18 17
0.049 0.0057 0.27
4.1 16
1.9 --
0.13 0.011 2.0 0.11 1.B
2.9 -
2.1 ' T 39
47 0.34 0.013 2.2 1.7
-
3.1 3.8 46 5.5
24
0.93 120 000
2.6 2.7
2.4 12
5.9 -
9.0
0.056 3.9 0.0012 84 0.95
--
1.8 4.1 1.8 2.6
6.0 2.3 3.1 4.2 290
_
2.7 2.6
1.0 88 430
1.5 8.9
--
2.1 1.6 1.3 3.3
31 0,014
1.6 1.4
0.00076 2.0
1.4 18
17 4.9
0,14 0.83 49 0.078 8.0
23 1.9 1.7 -
6 Safe dilution feclbr
430 39
240 330 1500
7500 2300
33 10 000 000
37
17 2100
290 720
26
31 000 290 110 130
21 000
260 100 000
200 310 410 000
1000 11 000
7 260 1400
530 300 10 000
75 too 000
140 130 3100 1000
7
1600 11 000 1 000 000 520 000
1800
3200
1 400 000 2100 300
1000 000 1 000 000
11 000 1000 81
6 Odor eefety (actor
7 Odor efety date
12 340
28 1600
3.8
40 0.83
180 0.040
160
420 12
100 870
11
C 8 B A C
8 D 8 E B
8 C 6 A C
77 910
97 230
2.7
8 A
8 B C
0.21 29 400
4.6 0.30
D B 8 C D
1.1 C
2.1 C
1,2 C
1.2 c 1.8 c
89 100 4000
12 11
4,2 44 64 240 490
B
e
A
c c
c
B 8 B B
10 0.11 0.0023 0.32
45
C E E D B
3.3 350 650
3.5 0.57
C B A C D
7.3 1.2 0.10 25 1.2
C
c
E
C
c
22 DO A 03976ft CONFTDFNTTAL
Tab)* 2(b)--Contmutd
9
Subttance
Warn TIV aquivaient
(ppm;w/v)
Solubility at 25 *C (ppm; wM
Cyclohexane Cyeiohexanol Cyclohexanone Cve'ohextne Cyeiohexylamme (B/10.61
(013) 940 240
(0.65) 04
65 36 000 -54 000
210 t
Cyeiopentadiene Deceborane Diacetone aicoboi Diborane dDiChlorObenzene
(0.24)
d 3.9
- 1800
m d
140
p*DiehtOrpbem*n* rra/M-1,2-Diehtoroethylene JJ'-Diehtoronhyl ether ^pieyctopentadiene " Diethanolamine (8/8.9)
4.7 13.0) 36
240 000
Diethytamine (8 T 1.0) Dtethylaminoethanol (B/8.BI Diethyl keiooe DusObutyl ketone Dusopropylamme (8/11.0)
36
450 3.3 3.5
79 6300 11 000
-
* *
48 000 430
A'-Dimethylacetam ide Dimethylamme (8/10.7) /V-Dimethytamlm* (B'5 2l N-DimethyMormamKje 1,1-Dimethylhydrazine (B7.2)
8.6 9.9
1,4-Dioiene Epiehlorhydrin
Ethane Ethanolamme (B/9,5) 2*Ethoxyeth*rvol
240 64 (B8i
23 000
*550 000
2000 -
m
~ 65 000 60
-
m
2'Ethonyethyi acetate Ethyl acetate Ethyl acrylate Ethyl alcohol Ethylamme (B '10 7)
450 270
1.5 8000
45
200 000,,, 73 000 15000
* It
Ethyl n-amyl ketone Ethyl benzene Ethyl bromide Ethyl chloride Ethylene
10
(1.3) 12 9) (4.71 (19)
-1500 160
9000 4700
130
Ethylenadiamine (B'10.01 Ethylene dichloride Ethylene oxide Ethylemmine IB/B 0) Ethyl ethe'
080 0.33
d 34
8600
270 000 d
56 000
Ethyl formate Ethylidene norbornene Ethyl mercaptan (A/10 51 M-Ethylmorphpline (B/ ) Ethyl silicate
35 100 000
(0.0049)
7000 m
dd
Fluorine Formaldehyde Formic acid (A/3 71 Furfural Furfuryl alcohol
d 0.73
170 89
d
d 650 000 -
86 000 --d
10 11
Mater odor threshold (ppm. *v/v)
Molecular weight
(9)
(0011) 28 8.3 (0 00039) 25
84 100
98 82 99
10.0060)
64 d
0.024
66 122 116
28 147
0.011 10.26) 0.36
22 000
147 97
143 132 105
0.47
4.7 0.014 13
0.29 0.025 50
73 117
86 142 101
87 45 121 73 60
230 30 (7.5)
20 000 190
88 92 30 61 90
5.0 2.6 000038 760 4.3
132 88
100 46 45
2.5 (0.029) (0.046) (0.019) (0.039)
128 106 109
64 28
16 000 7.0
140 170d
0 75
60 99 44 43 74
11 74 120
10.0000075) 62 115
d 208
d 0.60
1700 3.5
d
38 30 46 96 98
12
Daniity at 2025*C (a mf'l
13
Wat*rair distribution ratio (w/v)
14 Number of thrtthohfc performed -----------------air water
0.78 095 095 0 81 0.87
0 12 4600 2400
0.64 2300
632 82 1 -1
080
. 0.94 g 1.30
1-2
d 13
1-
112 1 32
t 1.26 1,21 1.10
10 3.8 1200
19 000000
23
2 -1
2-
1
0.71 0.88 0.81 081 0.72
1200
640 23
-170
61 1 31 21
0 94
0 0.96 0.94 0.79
1 460 6 2 400 3
21 2
1.03 1.18 0 1.02 0.93
0.97 0.90 0.92 0.79 0.69,,
0.83 0.87 1.43 0 0
0.90 1.26 0 0.83 0.71
2700 840 0.051
3 100 000
16 000 180 74
4800 2400
80 2.9 3.3 1.8 0.12
20 180 d
28
71 2
2-
1 21
1 84 21 13 5 33
1 23 1 1 41
11 82 2 21 7
0.92
0.83 0.90 0.93
9 0 1.22 1 16 1.13
120
3.9
d
d 590
18 00C 11 000 d
1 2 12 2 2
1 94 45 23 1
23
DO A 039767 OONFTOFNT JA!
Table 2(a) --Continued
Substance
Haiothane Heptane Hexaehloroeyclopentadiene Hexaehioroethane Hexane
Hexylene 9'yeol Hydrazine Hydrogen bromide Hydrogen chloride Hydrogen cyanide
Hydrogen fluoride Hydrogen telenide Hydrogen sulfide Indene Iodoform
Itoemyi acetate lioamyl alcohol Isobutyl acetate Isobutyl alcohol leophorone
leopropyl acetate Isopropyl alcohol lOpropy famine Isopropyl ether Maloc anhydride
Mesityl Oxide 2-Methoxyeihanol Methyl acetate Methyl acrylate Methyl acrylonitrile
Methyl alcohol Methyiamine Methyl n-amyl ketone W-Methylaniline Methyl n-butyl ketone
Methyl chloroform Methyl 2-cyanoacrylate Methylcyclohexane p/s-3-Methylcyclohexanol Methylene chloride
Methyl ethyl ketone Methyl formate Methyl hydrazine Methyl rsoamyl ketone Methyl iiobutyl eartsino!
Methyl mbutyl ketone Methyl isocyanate Methyl isopropyl ketone Methyl mercaptan Methyl methacrylate
Methyl n-propyl ketone o-Methyl styrene Morpholine Naphthalene Nickel carbonyl
1 Threshold limit value (ppm; y/v)
2 Volatility
at 25 *C (ppm; v/vl
so" 400
0.01 10 so
390 000 60 000 78 770
200 000
25 0.1 3 5 10
100 18000
9 9 970 000
3 0.05 10 10 0.6
9 9 9
2200
'49
100 7100 too 4300 150 26 000
SO 16 000 s 450
250 400
s 250
0.25
79 000 67 000 740 000 210000
'170
15 5"
200 10 1
13000 16000 270 000 110000 88 000
200 10 so 0.5 5
160 000
9 2000 640 5000
350 160 000 2 -530
400 61 000 SO 710
100 SSOOOO
200 100
0.2 SO 25
130 000 760 000
65 000 4800 7800
so 0.02
200 0.5
100
6500 630 000
39 000
9 62 000
200 SO 20 10 0.05
21 000 3800
13000 120
620 000
3 Air Pdor threshold (ppm. v/v)
33 ISO
0.030 0.15 130
SO 3.7 2.0 0.77 0.58
4 Standard trrpr lx/')
-- 1.7 6.1 2.0
1.1 2.2 1.9
0.042 0.30 0.0081 0.015 0.0050
1.2 1.5 3.9 1.8
0.025 0.042 0.64 1.6 0.20
1JB 1.3 1.8 2.0
--
2.7 22
1,2 0.017 0.32
2.9 1.8 2.8 -
--
0.45 2.3 4.6 0.004$ 7.0
26 26
3.5 ' --
100 3.2 0.35 1.7 0.076
2.0 4.6 2.1 -
--
120 2.2
630 500 250
6.4 600
1.7 0.012 0.070
2.8 1.2
ia
2.9 --
0.68 21 IS 0.0016 0.083
2.3 23 2.0 1.9
11 0.29 0.01 0.084 0.30
2.2 4.0 -
1.9 3.3
24
6 Safa dikit ion
factor
6 Odor aafaty factor
7 Odor tafety class
7900 150
7800 77
4000
1.5 2.7 0.34 64 0.37
C
c
D
B
D
4.0 180 000 330 000 200 000
97 000
0.50 0.027
1.5 6.5 17
D
E
C
c c
330 000 20 000 000
100 000 220 81
71 0.17
1200 690 120
6 E A A 6
71
3900
A
43
2300
A
170 230 8
330 30 B
89 25 C
320 140 150 000 850 670
93 18
4.1 15000
0.77
8
C
c
A
D
850 3200 1400 11 000 88 000
33 2.1
44 2100
0.14
6 C 8 A E
800 100 000
40 1300 1000
2.0 3.1 140 0.29 66
C
c
8
0
8
470 260 150
14
5500
2.8 0.91 0.63 0.10 0.40
C 0 D E D
660 7600 330 000
96 310
37 0.17 0.12
4200 360
8 E E A 8
190 32 000 000
200 2000 000
620
73 0.0094
IOC 300 1200
6 E 6 8 A
110 76
670 12
10 000 000
18 170 2000
120 0.17
C 8 A 8 E
DO A 039768 CONFTDFNTTAl
T*>le 2(bl-Contmu*0
8
Subttance
Water TLV equivalent (ppm, m/v)
Solubility t 25`C Ippm. yy/v)
Haiothene
Heptane Hexachioroeyeiopentadiene
Hexaehloroeihane Hemint
(0.441 10.020) 0.0026 (0.661 (0.0024)
3400 2.9
20 50
9.5
Hexylene glycol Hydrazine IB/8.5) Hydrogen bromide (A) Hydrogen chloride (A) Hydrogen cytmde (A/9.2)
d d
3.0
1 200 000 00 000 m
Hydrogen fluoride (A/3.21 Hydrogen eelenide (A/3.9) 'Hydrogen tuftide (A/7.01 Indent
Iodoform
d m 19
(000036)
6800
(0.036)
3500
(0.18)
'40
1.3 110
Itoemyl acetate Itoamyl alcohol Itobutyl acetate Itobutyi alcohol <topt>orone
66 630
34 310 140
1400 26 000
5900 89 000 12 000
Itopropyl acetate Itopropyl alcohol Uopropyl*rrune (B/10,5) laopropylether Maleic anhydride
97 3000
20 12 d
30 000 *
10 000 d
Metityl oxide 2-Methoxyethano! Methyl acetate Methyl acrylate Methyl aerylonittile
Methyl flcohol Methylemihe (B/106) Methyl n-amyl ketone A/-Methylenilme IB < 8) Methyl n-butyl ketone
36
130 45 0.29
1500 7.4
40 53
17
29 000 220 000
49 000 25 000
550 000
4300 6700 16 000
Methyl eftfotaform Methyl 2<yanoecrylaie Methylcyclohexane Ci*-3-Methylcyctohexanol Methylene chtoride
(2.BI
<0.0921 660
3.6
1300
14 9300 19 000
Methyl ethyl ketone Methyl formate Methyl hydrazine (B/7.9) Methyl iioamyl ketone Methyl itobutyl carteinol
310 210000 25 170 000
66 400 3 15000
Methyl itobutyl ketone Methyl itocyanate Methyl itopropyl ketone Methyl mercaptan (A/10.7) Methyl methacrylate
94 18000 dd
320 60 000 (0.0075) '14000 30 15000
Methyl n-propyl ketone a-Methyl ttyrene Morpholine IB/8.7) Naphthalene Nickel carbonyl
270 7.4
4 000 60
25 (0000012)
30 130
10 11
Water odor threthoid (ppm, w/v)
(0.79) (0.0073) O.OC77 (0.010) (0.0064)
Molecular yveight <9'
197 100 273 237
86
'
160 d d
0.17
118 32 81 36 27
d 20
(0.0021)
81
(0.000029) 34
10.00026) 116
0.011
394
0.017 0.27 0.16 10 5,4
130 88 116 74 138
io 160
4.9 0.00080
d
102 60 9 102 98
1.0
3.0 0.0021 2.1
98 76 74 86 7
740 2.4 0.28
18 0.25
32 31 114 107
100
(0.97)
10.15) 6600
9.1
133 111
98 114
86
84 ISO
0.013 0.V6
72 60 46 114 102
1.3 100
d 67
3.1 96 -
(0.000024) 48
0.025
100
15 0.043
0.021 (0.000072)
86 118
87 128 171
25
12
Dantity at 20-25*0 (g ml"1)
13
Watfr-air dittributiOn ratio (w/y)
14 Number of thrathoidt performed
T
1.87 0.68 1.70 % 066
0.97 1.01 B 9 0.70
1.1 0.012 23 6,7 0.014
d d
270
1-
4--
11
2
121 1 6 23
0.96
9
9 1.01
ft
d 21 2.6 3.7
130
21" 26 1 11
3
0.87 0.80 0.87 0.80 0.92
0.87 0.78 0.69 0.73
120 1700
48 2100 4800
92 3000 '1700
11 d
83 $3 31 7 1
412 4
21 1" 1
085 0.97 0.93 0.95 0 80
079 t 0.81 0.99 0.81
570
210 130 110
600 80 170
2400 BOO
22 & 1" 1
13 4 23 22 1 1
1.34 1.11 077
0.91 1.34
1.4
0.057 2800
10
31
1 1 41
0 80 0.97 087 0.81 091
0.80 096 0.80 0 0.94
0.B1 0.91 1.00 I 192
530 100
240 10
460 d
460 7.6
73
380 31
47 0.035
81 3"
1" 1
51 11 62 41
2i 31 1 64 3--
D0 A 03^76^
CONFTDFNTIAl
Table 11)-Ct>niinud
`
Subttance
1 ThreahoW limit value (ppm; v/v)
2 Volatility t 25 *C (ppm, vM
Nitrobeniene Nitroethane Nitrogen dioxide Nitromethane 1-Nitropropane
1 360 100 27 000
3B 100 47 000
25 13000
2-Nitropropane m-Nitrotoluene Nonane Octane Oirmum tetroxide
10"
2 200 300
0.0002
22 000 " 280 6000
18000 12000
Oxygen difludride Ozone Penteborene w- Pentane Perchioroethylene
0.05 0.1 0.005 600 50
g
B 270 000 670000
25 000
Phenol Phenyl ether Phenyl mercaptan Photgene Photphine
5 460 1 29 0.5 2000 0.1 B 0.3 B
Phthahe anhydride Propane Propionic acid />-Propyl acetate n-Propyl alcohol
1 140 000'
10 200 200
0.67
B 5400
43 000 26 000
Propylene Propylene dichloride Propylene glycol 1-methyl ether Propylene Oxide n-Propyi nitrate
140 000'
75 100
20 25
S 69 000 16 000
700 000 30 000
Pyridine Quinone Styrene Sollur dioxide 1.1,2,2 Teuechloroethene
5 01 50 2 5
27 000 130
9600
B 8400
Trtrahydrofuran Toluene Toluene-2,4-dinocyanate o-Toluidme 1,2,4-Triehiorobeniene
200 100
0.005" 2 5
230 000 37 000 *21 330 570
Trichloroethylene Triehtorotiuoromeihane 1.1,2Trichlorol,2,2-
triliuoroethane Tnethylanmne Ttimethyiamine
50 1000 1000
to" 10"
99 000 B 430 000
93 000 B
1,3,5-T rimethylbeneene Trimethyl phoiphite n-Valeraldehyde Vinyl acetate Vinyl chloride
25 3600 2 34 000
50 21 000 10 140 000
5B
Vihylidene chloride Vinyl toluene m-Xylene 2,4-Xylidi ne
5" 50 100
2
790 000 2400
11 000 190
3 Air odor
threthold (ppm, vM
4 Standard error U/+)
0.01 B 2.1 0.39 3.5 11
1.7
-
2.6
-
4.2
70 0.045
47 48
0.0019
2.2 4.1 3.2 -
0.10 0.045 0.96 400 27
_
1.9
-
1.9 1.8
0.040 0.0012 0.00094 0.90 0.51
1.5 3.7 4.4 1.7 2.5
0.053 16 000
0,16 0.67 2.6
_
1.3 1.8 4.1 1.7
76 0.25
10 44
50
3.0
-
-
4.5 -
0.17 0.084 032 1.1 1.5
1.4 3.0 2.0 1.3 21
2.0 2.9 0.17 0.25 14
5.4 1.6 2.9 4.1 2.1
28 5.0
45
1.7
~
0.48
2.1
0.00044 1.4
0.65 0.00010 0.028 0,50 3000
1J9
2.5 16 3.7
190 10 1.1 0.056
3.7
-
2.1
-
5 Sale dilution factor
360 270 330 000 470 620
2200 140 30 61
61 000 000
20 000 000 10000 000 64 000 000
1100 490
92 29 4100 10 000 000 3 300 000
0,7 7 540 220 130
7 920 160 35 000 1200
5300 1300
190 500 000
1700
1100 370
4200 170 110
2000 1000
430
9300 100 000
ISO 17000
420 14000 200 000
160 000 48
110 97
6 Odor aalety factor
7
Odor
efeiy Clan
56 46
7.8 29
2.3
B B C 8 C
0 14 45
4.3 6.3 0.10
E 6 C C E
0.50 2.2 0.0052 1.5 1.8
O
c
E
C
c
130 <00 530
on 0.58
B A B E D
19 8.8
61 300
78
C C 6 8 8
1800 300 10 0 45 0.50
A 6 C D D
30 1.2
160 1.7 34
B
C
B
C C
99 34
0.030 8.0 3.6
1.8 200
22
21 23 000
B
B
E C
c
c
B
c
c
A
45 20 000
1800 20 0.0017
B A
A
C E
0.027 50 82 36
E C
6
B
26 DO A 039770
C0NFTDFNTTA1
, Table 1\b)-Continued Subttanee
Water TLV equivalent (ppm. v*/vl
9 10
Solubility t 25*C
(ppm; im/v)
Water odor threshold (ppm, Wi/v)
11
Molecular yveight <g>
12
Dantity *t 20-25 *C (g ml"')
13
Watar-eir distribution ret io (w/vl
14 Number el thretho'di parlor med
ir wre
Nitrobenzene N'troethane (A/8 4) Nitrogen dioxide (A) Nitromethane (A/10.2) 1-Nitropropane (A/' 8)
2-Nitropropene (A/7.7) m*Niirotoluene Nonane Octane Otmum tetroxide (A/12.0)
60 100 d 260
29
2100 27 000 d 110 000 15 000
0.11 2.2 d 9.1 12
7.6 3.6 (0.00561 (0.011) 0.0012
16000
500.. -0.17
0.66 69 000
53 O.OBO (0.00131 (0.0017) 0.012
123 75 46 61 89
89 137 128 114 254
1.20 1.05 g ,1.13 1.00
0.98 1.16 0.72 0.70 ft
1200 330
d 1000 310
13
6 --
2
210 320
0.0054 0.0077 680
1 1 2 2 1
2 1
1 1
1 --
Oxygen dilluoride Oione Pentaborane -^Pentane Parchloroethylene
Phenol (A/10.0) Phenyl ether Phenyl mertftptin (A/6.51 Phoigene Photphine
Phthelic anhydride Propane Propionic acid (A/4.9) n-Propyi acetate n-Propyl alcohol
(0.0000054id 100.,,d
(0.00001 lid 54
(0.00064)
6100
(0.00028)
48
d dd
63
(0.033)
38
(0.022)
72
(0.311
150
(0.17)
166
1000 160 0.15
d (0.000111
85 000 4300 610
d 370,,
7,9 94
0.18
170
0.00028 110
d 9
(0.00020)
34
d (9 01
1700 92
1800
d 62
*
19 000 m
d (1.01 28 0.31 23
148 44 74
102 60
g g 0.63 0.62 1.61
ft
107 1.08 g e
ft
9 1.00 0.89 0.80
0.049d 1 -
3.2 6 --
d 1
0.019 3 -
0.90
31
62 000 21 000
66 d
0.27
16 6 23 22 6 6
d 1-
0.036
2-
56 000
11 2
110 4 -
3600
12 5
Propylene Propylene dichloride Propylene glycol 1-methyl iether Propylene oxide n-Propyl nitrate
(50) 13.01
14 7.4
350 2800
370 000 8800.,,
(0.028) (0.010)
31 15
42 113
90 58 105
9 1.16 0.92 0.83 1.05
0.21 8.8
300 69
31 11--
2-- 1
Pyridine (B/5.21 Qu inone
Styrene SuHur dtOxtdt (A'V9> 1,1,2,2-Tetrachtoroethane
28 11 (1.7)
0 19 1.7
m 14 000 320 8 000 2900
0.95 93 10.011) 0.11 0.50
79 108 104
64 168
0.98 ft 0.90
9^ 1.60
1700 25 000
7.8 37 50
15 10 21
10 3 13
3
Tetrahydro/uran
Toluene Toioene-24-di itocyanate o-Toluidine (B/4.4) 1,2,4 Triehlorobenzene
(1.4) d
91 10.23)
540 d
15 000 -26
10.042) d
11 (0.064)
72 92 174 107 1B1
0.89 0.86 1.22 1.00 1.45
3.8 d 10000
6.1
318 2
431 11
Trichloroethylene Trichlorolluoro methane l,1.2-Triehloro-1,2,2-
tnlluoroethane Triethylamme (B/10 9) Trimathylamme (B/9.7)
(055)
1100
88 71 000 4.5 410 000,.
(0.31)
0.42 0.00020
131 137 187
101 59
1.46 1.49 1 56
0.73 9
2.1
210 190
71 1-- 1-
41 31
1,3.5-Trimethy Ibenzene Trimethyl phoephite n-Valeraldehyde Vinyl acetate Vinyl chloride
(0.67)
97
dd
29 12 000
1.8 25 000,,,
(0.0057)
1100
(0.015) d
0.017 0.088 (3 4)
120 124
86 86 62
0.86 1.05 0.81 0.93 9
6.4 d
170 60 0.44
63 1-- 13 41
3
Vinylidenc chloride Vinyl toluene rrt-Xylene 2,4 Xylidme IB/4.9)
(0.041)
(2 1) (1.6) 66
6400 -100
170 6400
(1.5) (0.421 (0.017)
1.8
97 118 106 121
1.22 0.90 0.86 0.97
2.0 8.7 3.7 6600
21" 82 1--
27
DO CONF
Binary step* (iog2)
-4-3
0
3
4
6
6 10 13
Odor sofety factor (multiple of threshold)
A practical guide to the quantitative interpretation of odor safety factors. The coordinates are log/probit, so care is required in interpolating between marked intervals. The sloping lines indicate the percentages of the population expected to respond to various fractions or multiples of the mean detection threshold concentration (1.0 on the x axis). The detection line represents the performance of fully attentive persons under good laboratory con ditions. The warning line shows what may be expected for distracted persons under factory or field conditions. The warning line is based on the results of Whisman er at.19 for the gas odorants ethyl mercaptan and thiophane.
* ft
/Sp>n.t tr* m
****** J fc
Odor mfety cludficatioa
Odor tafrty Ciwt factor
Interpretation
A >550 B 26-580C 1-26 D 0 16-1 E <0.16
More than 90V of directed parioni perceive warning of TLV eonoantration in tha air
80-40% of dittractad paraom parcaiva warning Of TLV
Lett than 50V of detracted ptrtont perceive warning of TLV
10-50% of attentive pereoni can detect TLV concentration in the air
Lett than 10% of attentive pereont can detect tha TLV
DO A 03977? rONFTDFNTTAl
I ~f" \
lrritsnt threshold concentrations of ten industrial chemicals.
1
Substance
Acetaldehyde Acetic acid Acrolein Allyl alcohol Benzyl chloride o-Chloroacetophenone rranj-Crotonaldehyde Formic acid Propionic acid Pyridine
Odor threshold (ppm; v/v)
0 066 0 16 18 1.4 0.040 0.040 0.11 130 0 24 0.71
* Detection threshold lot a ueneral anotmic
23 Irritation thresholds
Nose (ppm; v/v)
Eye (ppm, v/v)
2200 160* 11 30 35 0.034 14
1100* 370* 700*
11000
12 89
8.0 0.022 19
4 Ratio ol irritation and odor thresholds
33000 1000 61 21 200 0.55 130 8.5 1500 990
5
Irritation hazard (actor
22 16 110 15
8.0 0.44 7.0 220 37 140
DO A 397?3
29 CON/F r^DNrrAi
Odorlzatlon of Industrial Cases
Gas
Natural (methane) Bottled (propane) Inert (argon) Oxidant (oxygen)
Danger level in air
*
Typical odorization practice
Odorant
Threshold Concentration ppn ppm
Safety factor
5 t-Butyl mercaptan 0.00025
2
Ethyl mercaptan
0.00076
7 Ethyl mercaptan* 0.00076
2* Dimethyl sulfide 0.0067
3 15 6*
6
600 400 550*
18
* Proposed b In addition to the normal 21< oxygen in airt i. e. a total level of
~~
Properties of Fuel'-Gas Odorants
Odorant
Threshold* ppm
Hydrogen sulfide Methyl mercaptan Ethyl mercaptan n-Propyl mercaptan iv-Butyl mercaptan t-Butyl mercaptan Dimethyl sulfide Thiophene Dimethyl disulfide
0.0081 (26)
0.0016 (10)
0.00076 (1J)
0.0017 (5)
0.00097 (6)
0.00025 (3) 0.0067 (10)
0.00076 (9)
0.041
(7)
^ Pregzesc Molecular* Relative
TLV f
weight reactivity* ppm
-62 -85 6 -121 36 -148
68 -115 97 -116 64 1 38 -98 121 -97 110 -85
34
5,000*
10
48 1,800
0.5
62 250 0.5
76 98 -
90 91 0.5
90 1 -
62 20s
ee -
94 -
* In parentheses is the number of literature references that were averaged. b Helps to predict volatility and co-distillation. c To be considered for liquid or regenerated cryogenic gases. * Ftr comparing vapor concentrations * Relative to tert-butyl mercaptan, arbitrarily aet at 1.
Threshold Limit Value, to avoid adverse health effects (U.S. standards) * USSR standard) none quoted in U.S.
30
oo
Co/s/F
J
397?4
rDfrNTTAl
Proposed rating and assessment of individual olfactory threshold sensitivities, using the pyridine scale for illustrative purposes*
Pyridine scale step
Sensitivity rating
23 A above 22 21 20 19 18 17 16 15 14 15 12 11 10 9 A below ;o
^5 4 *5 +2 41 A -1 -2 -3 -4 -5 -6 -7 -6
< -9 4 -16
Sensitivity assessment Hyperosmia High normal Above average Average Belov average Low normal
Hyposmia
Anosmia Complete anosmia
Approximate frequency )a
2
14
66
14
2 0.2 0.02
* Calculated for a normal distribution, assuming SB - 2 binary steps.
51
DO A 039775 OONFTDENTTAt
Factors affecting the normal smell sensitivities of healthy people. Thresholds are for pyridine in water
Class of persons*
Average 40 yr. man Average woman 18 yr. person 62 yr. person Moderate smoker Smoking during test Chewing during test Head cold Nasal allergy Un-trained Un-directed test Mis-directed test Odor recognition threshold
Factor
1 1 0.5 2 1 4 4 4 4 1.4 4 26 3
Threshold (ppm)
4.0 4.0 2.0 8.0 4.0 16 16 16 16 5.6 16 100 12
* Understood to be average 40 yr. persons, unless indicated.
A O3977.
cn^rnFNTT^
52
A classification of chemically induced hyposmias, according to the extent of the exposure and the duration of the resulting hypoamia.
Exposure
Hyposmia
Duration
Examples
ACUTE (sec/min/hr)
A Temporary J Reeuperable
1 Permanent
CHRONIC (mo/yr)
C Recuperable 1 Permanent
minutes weeks years
weeks years
HgS HCN H2Se ZnS04 POClj so2
Acetone 2nCrO4 Cl2-
-J
039777 00 A
0pMTT Al
conf t
33
Subatencet Reported to Cauti Acuta Olfactory Injury in Man, Ratulting in Temporary, Racuparable, or Permanent Hypowniat.
The table conclude* with one cate of chronic, but recuperable, hypotmia.
Substance
Expotun
Cone.
Time
tetidwm of hypotmia
Olfatfometric Frequency
method
(percant)
Aatwtmerit
A. Acuta axpoaura. tamporary hypotmia Formaldahyda Hydrogen cyanide Hydrogen aelenide Hydrogen tulfida
OJJ ppm 100 ppm
mm
ut min
IK
B. Acuta axpoaura, racuparabla hypotmia Hydrogen aelenide /V-Methylformimino-methylettar Sulfuric acid Zinc tutfate
get
t*t. Vp.
6%toln.* 1% toin.t
2tee 2 tec 2 tec tec
C. Acute exposure, permanent hypcnmva Cesspool Decomp. cadavar
Pepper 1 Cratol j Phg^phorui oxychloride Sulfur dioxide
h h
powder 270 ppmt
2 tec
tec 2 tec
0. Chronic expoture, racuparabla hypotmia Acetone Tatrahydrofuran l Cyclohexanone -)
3 mo
symptom symptom symptom symptom
symptom symptom symptom symptom
symptom symptom
symptom symptom symptom
recognition
1 eeae 1 uu 1 cate 25
1 cote 1 cate
1 cate 1 case t cate
1 ewe
hypotmia ftoimif hypotmia onosmi*
onosmi* anosmia* onotmi* notmii
notmie onotmis
oootmis anosmis
( hypotmia r phantoamia
I!
Patient fall into t ditinfectent bath, the anosmia mav have been an indirKt consequence of tha reaultent chronic rhinitil. t Natal tpray intended at a prophylactic egaintt poliomyelitis. ^Concentration taamt underestimated. Thit toot the head apace of a 6 percent aolution of Mrljyroui acid, which it nearly latur* atad with ojlfur dioxide. 11 Two-mc exposure" indicates a tingle miff or inhalation. ^Confirmed in teru with mica 15). After OJSaoc axpoaura to tha aaturatad vapor, en anotmia of --30 binary ttapt aevarity raaulted, which paaiatad for 3 week*.
*Tarma for olfactory perceptual abnormality OOI. cacoamia, obnoxious tmall tanaation cauatd by normally plaatant or nautral odoranu; phantoamia, partiitant odor aantation, even whan no odorant it inhaled.
00
oosip rn?397^
Tofnt JAI
34
Metallurgical Processes Considered Responsible, on Chronic Exposure, for Permanent Hyposmia In Man
Incidence of hyposmie
Substance
Exposure
Offectometric
time (years) method
Frequency (per cant)
Rating (steps)
Aasmsment
Chromium Chromium plating Lead Lead (severe into*.) Lead (severe into*,) Magnet production* Mercury (chronic into*.) Nickel plating Nickel refining (electrolytic) Silver plating Steel production Zinc production
18 4 8
10 99
4 >6 6 4 >5
Elsberg recognition Elsberg Elsberg Elsberg recognition Elsberg recognition recognition recognition Elsberg Elsberg
17 cohort 33 cohort Cohort 10 cases 85 cohort 33 cohort 6 3
*lron, Aluminum, nickel, cobelt, end chromium powderi. tjust one worker wet effected, end he had e unilateral hyposmia.
(-0.7)
(-08)1 -1.2 -13
-38
-
<-33 <-27
below average low normal below average below smrege below average hyposmie low normal low normal anosmia below average low normal low normal
'
Metallic Compounds Considered Responsible, on Chronic Exposure, for Permanent Hyposmia in Man
Eapoura
Incidence of Hyposmu
Subttanc*
Cone
Tune Olfectometric Frequency
(mg/rn1) (years)
method
(per cant)
Rating (steps)
cf
i
Cedmiti'f compounds Cadmium compounds* Cadmium oxide Cadmium oxide 7 Nickel hydroxide 5
Cadmium oxide 1 Nickel hydroxide j Chromate setts Zinc chromate
13
9t 80
0.5t 031
10
7 3 20
15 18 10
Elsberg Elsberg recognition
symptom
Proett
TliT Rosvburg
13 66 1 case
44
27
27 30
<-7
<-18 * -7
anosmia hypesmis 5 anosmia
anosmia
hyposmi
anosmia hyposmie*
*Oxide, sulfate, carbonate, nitrate, sulfide, aetemde, stearate, tBefore dust control. tAfter installation of industrial hygiene equipment. (The hyposmie was ameliorated by giving caffeine. Ia follow-up study on 11 of the seme workers 4 years later (after reducing the chrome-dust expoeure in the factory) showed no recovery of olfactory performance (99).
35 00 A 039779 OONFTDFNTTAI
Duiti Considered Responsible, on Chronic Exposure, (or Permanent Hypotmia in Man
Incidence of Hypoemie
Substance
Expoeure Olfactomatric
time (yean)
mat hod
Frequency (par com)
Rating (state)
AaiWSHwnt
Cement Chemicals Hardwoods Hardwoods
Lime Printing Silicosis (first stage)*
Pioett
2
hypotmia
6 Proett
8 <-M hypotmia
symptom
6
ioosmi*
symptom
nosmi*
Proeu
6
hyposmiat
Naut
24 -2.0 low normal
Eltberg
cohort
-1.2 below average
First*, second*, end thirdetage silicosis cohorts ell showed about the same olfactory deficit. tDemegs to the olfectory epithelium, sensory ceils, end bulber fibers wet Observed in rets exposed 2 months in the dustiest locations in the fectory 164).
Nonmetallic Inorganic Compounds Considered Responsible, on Chronic Exposure, for Permanent Hypotmia in Man
Exposure
Incidence of Hypoemia
Substance
Cone.
Time Oifsctometric Frequency
(mgteM (yean)
method
(percant)
Rating letspi)
Aaassment
Carbon disulfide
Carbon disulfide (average intox.l
Carbon dituifida (intox.)
Carbon monoxide
Carbon monoxide (intox.)*
Chlorine
Hydrazine
Nitrogen dioxide (NOx) "l
Ammonia
}
Nitrogen dioxide (NOx) X
Sulfur dioxide (SOa)
,
Sulfur dioxide
Sulfur dioxide
Sulfur dioxide
7
Ammomat
j
Sulfur dioxide (SO,,l ")
Nitrogen dioxide (NOx) |
Fluorides (HF7)
62t
> 100
3 30
90 155
SO
15 Eltberg Eltberg
20 Eltberg! 13 recognition
Eltberg 3 Proett
Eltberg
5 Eltberg
8 Proeu 4 symptom 20 Eltberg
>32 TST
>5 Eltberg
22 cohort 14 1 case 8 70 cohort
cohort
60
14 cohort
cohort
cohort
-3.4
<-66 -08.
tow normal low normal hypotmia aftotmi* nosmi*
hypoemie below aversge
-0.7 <-66
-3.4
' below average
hyposmie
hypoemie low normal
-4.4
hyposmie
-12
below average
`Includes both acute and chronie intoxications. tworkers exposed to ammonia alone showed no significant ollectory deficit, t Information given by 2enk (11). I The hyposmie could be partially or completely reversed, for 1 or 2 h, by injections of caffeine or tterine.
n0
c^ro^r
56
Organic Compounds Considered Responsible, on Chronic Exposurefor Permanent Hyposmia in Man
Capo*ura
Incident* af hypotmit
Subetance
Actions
Acetophenone
Beniene
Bensme
Bennne
*7
Ethyl acetaie >
Butyl acetate
Chloromethanes *
Menthol
Menthol
PtnUchlorophenol
Trichloroethylene
Trichloroethylene (intermittent abuse)
Cone. (ppm)
Time (yaers)
Otfectometric Frequency JMating
method
(percent) [Utepei
Assessment
8
rtcogniuon
1 ease
hyposmia
6 Elsberg
12 K-28) low normal
10 Elsberg
Cohort
--0.8 below average
400 8 Pioeti
37
-6 hyposmia
60 8 Elsberg
30
<-3.1
low normal
380 Ut. MP.
45
10 B
Elsberg recognition tymptom symptom Neus symptom
44 cohort 1 cate 1 cate . cohort 1 case
-2.7 low normal O hyposmia hyposmia ahosmiat
-3.lt low normal complete anosmia
ch, a. cH,ct,. chci, . ca4.
tTested at beginning of ihift. ij., a permanent hyposmia. Whan tested at the end of the ihilt. an additional --2.1 steps o< temporary
hyposmia wet demonstrated. (May have been due to upper respiratory tract infection, not occupational exposure.
Manufacturing Processes Considered Responsible, on Chronic Exposure, for Permanent Hyposmia in Man
Incidence of Hypotmia
Subetance
Exposure Otfectometric
time lyaars)
method
Frequency (percent)
Rating ' fstaga)
Aesaasirwnt
Acids (organic and inorganic) Asphalt (oxidised) Cutting oils (machining) Fragrances Faint (lead) Papnkf 'Tawnol" (sewing)* Spices Tobacco Varnishes Varnishes Waste-water (refineryl
7 Proets
5 <-58 hyposmia
6 Elsberg
IB <-28 low normal
Elsberg
cohort
-08 below average
4
recognition
50
below average
Neus
56 -28 low normal
14 Elsberg
4
hypotmia
Elsberg-
55 < --28 low normal
11 Nous
Cohort
-1J>t below average
12 Elsberg
1
hyposmia
10 recognition 7B
low normal
5 Elsberg
1
hyposmia
7 Elsberg
18 <-28 low normal
*A synthetic leather. The material contains a slightly volatile plasticiser, dibutyl phthalate, which may be rsaponsitee for the hyposmic effect.
tTested et the beginning of the shift. ia..a permanent hyposmia. When tested at thaand of thathift.an additional -- 18 steps of temporery hyposmia was demonstrated.
37 00 ^ 39781
r.ONr TDFNTTAt
' Incidental Report* of Induttrial Subftancei Suipeeied of an Aiiociation with Hypoamia in Man, but with Inwfficiant Detail*
Subtleno*
Typa of hypoamia
Metallurgical proeeitet Aluminum fumvt Artenic Chromium fumet
Copper fume* Menpneie fumet Tin fumet Vanadium fumet Zinc fumet Metallic compoundt Alum Artenic compound! Bit-(diethyldithiocarbamato)admium Chlorovmylariine chloride* Chromic acid Copper artenite D>chromatet Ive Otmium tetroxide Potaitium tuifide Silver nitrate Strontium tuifide Duttt Cotton Cyanidet Flax flour Potath Nonmetatlie inorganic compound! Ammonia Bromine Flue pi ICO/SO, 7) Hydrazine Hydrogen chloride Hydrogen fluoride Nitric acid Nitrogen dioxide (N0,,! Photgene Selenium dioxide Sewer get <Ht5?) Sulfuric acid
Chronic Chronic Chronic Chronic Chronic Chronic Chronic Chronic
Acuta, recuperabia Chronic
Acute, permanent Chronic, permanent Chronic, permanent Chronic Chronic Chronic, permanent
Acute, recupereble
Chronic Chronic, permanent Chronic Chronic Chronic
Chronic, permanent Acuta, temporary Chronic, permanent Chronic, permanent Chronic, permanent Chronic, permanent Chronic, permanent Chronic, permanent Acute, temporary Chronic Chronic, permanent Chronic, permanent
Organic compoondi Acetaldehyde Acetic acid Acetonitrile Acid Chloridet
__BennJdehyde Butylene glycol Carbon tetrachloride Chloroform Dimethyl tulfate Ethyl ether Fluorine compoundi Formaldehyde Furfural Halogen compound! Iodoform Itocyanetet (TDI.etc.) Nitro compound! Phenylene diamine Selenium compound! tolatile) Sulfur compound! Tetrechloroethane Trichloroethane War getei (WW 1) m-Xylene
Menufacturing proeeuei Bleating powder Coal ter fumea Perfume! Iconcantratad) Rubber wrlcaniiation Tanning
Chronic, permanent Chronic, permanent
Acute, temporary Chronic, permanent Acute, permanent*1 Chronic, permanent
Acuta, permanent Acute, temporary Chronic, permanent Chronic, permanent Chronic Chronic Chronic Chronic Chrome Acute, temporary Chronic Chronic Chronic Acuta, permanent
Chronic, permanent Chronic, permanent Chronic, permanent Chronic, permanent Chronic, permanent
Dn A 039783 OONFIOFNITAI
3B
Industrial chemicals reported to reduce the sensitivity of the trigeminal nerve to irritants.
Substance
Exposure
Neuropathy
Reference
Carbon monoxide Chioromethanes*
Dichloroethylene Smoke and soot*1
Trichloroethylene Trichloroethylene
g Trichloroethylene Trichioroethylened
15 hr 6 wk 9 yx
2 mo > 1 yr > 1 yr
Herberhold (1975) Fokina (1967) Koelseh (1959) Schwab (1965) Feldman (1970) Mitchell (1969) James (1963} Barret (1962)*
a CHjCl, CH2C12, CHCIj, CC14 ^ Locomotive drivers. c Intermittent abuse. Also caused anosmia. d Of 168 chronically exposed degreasers, 17^ suffered neuropathy. * Includes literature review.
+~jp
r>o A
COt\lfr
59 0FNTT^i
Average chronic exposure coneentrailone associated with hyposmia, compared with threshold limit values (TLV, 8 hr 1VA) recommended by ACGIH (1984).
Substance
Table no*
Units
Concentration
Exposure
TLV
Ratio Exposur /TLV
ft Ammonia
7
Benzine
6
Cadmium compounds 5
Cadmium oxide Cadmium oxide
5
Carbon disulfide
7
Carbon monoxide
7
Nitrogen dioxide
7
(NO,)
Sulfur dioxide
7
Sulfur dioxide
7
Sulfur dioxide
7
Trichloroethylene 8
Zinc chromate
5
ppm ppm mg/m^ mg/m^ mg/m ^
ppm ppm ppm
30 400
1.3 9 0.5 62 > 100 3
ppm
ppm
ppm
ppm
X
mg/mr
90 155
80 580
10
25 300b
0.05 0.05 0.05 10 50 3
2 22 50 0.05
1.2 1.3 26 180 10 6 >2 1
45 77 40
7 200
& Not proven to cause hyposmia at this concentration.
See footnote^ of Tabl
TLV for gasoline.
c Suspected carcinogenic potential for man.
DO A 397ft
CONF
4 rDr^TTO(
40
Odor pollution and odor aimoyanoe noar industrial plants in tha Ruhr* Estimated data^intsrpolatsd fros figures 5, 1 and 2 of Vinneke and Kastka (1977)*
Source
Dietanoe fros plant
(netere)
Pollution Odor units*
50?6 99*
Odor-JLnduoed disturbances
Headache (*)
Nausea (*)
Insulati <m plant
(phenolice)
100 400 1600
13 110 5 16 --
92 5 26
70 45
4
Tar-oil
plant (hydrocarbons &
sulfur opde.)
10 400 1400
15 110 40 450 20 100
65 74 70
44 64 56
Degrees of annoyance by odors
Sensory
Social
Sosatic
5.2 4.0 3.5 3.4 2.0 1.1 0.0 0.8 0.0
4.2 2.8 1.8 4.5 2.6 2.4 3.9 2.8 1.9
a Odor concentrations that were not exceeded 50^ or 99* of the time, respectively
- *7 /--2^4* j
f^
^
c~~c.
[JO A 0 3 9 7 8 5
conftofntjal
Predicted effects of ambient h)drogen sulfide level on frequency of odor detection, intensity of odor sensation, and incidence of annoyance by odor.
Hydrogen sulfide (ppb)
Persons able to detect odor4
<*)
Perceived odor intensity*1
(ratio)
Odor unitsc 5096
Persons annoyed by odor4
<*)
200 100 SO 40 35 30 25 20 15 10
e 6 4 2 1 05
99e 96* 91 86 87 83 80 74 69 56 50 42 30
14 6 2
2.31 25 1.93 12 1.61 6.2 1 52 5.0 1.47 4.4 1.41 3.7 1.34 3.1 1.27 2.5 1.18 1.9 1.06 1.2 1.00 1.00 0.93 0.75 0.83 0.50 0.70 0.25 058 0.12 049 0.06
88 75 56 50 47 40 37 31 22 17 11
6 5 2 1
a Based on adopted mean detection threshold of 8.0 ppb and S.D. * 2.0 binary steps. b For those vho can detect die odor. Based on LindvaJTs (1974) value for the intensity
exponent, p0.26. c Hydrogen sulfide level divided by mean detection threshold (8.0 ppb). 4 Based on assumption that mean annoyance threshold is 5 x mean detection threshold, and
S.D. *2.0 binary steps. e Theoretical for a normal distribution. These percentages may be reduced by the
occurrence of selective smell-blindness.
43
^ A/! T.C-,
DOW CHEMICAL U.S.A.
/=/
S/B LATEX TECHNOLOGY CENTER August 21, 1984
-MICHIGAN DIVISION MIDLAND.' MICHIGAN *8610
H. Ahlich .. H. Barenburg L. Battisti J. Bornenann R. Brown ... J. Cortinas. M. Dahley .. C. Davis ...
.... Freeport Rh e irsme ns ter ........... Livorno San Lorenzo ...... Sarnia
........... Bilbao Midland (743) ............. Altona
cc: C. Royalty . Midland (2040) C. Baldwin Midland (1803)
C. Fioranti .....................Guaru j a
J. Geaaan................................... Dalton
J. Martin.............
Pittsburg
T. Mathewson .... Allyn's Point
M. Piche
Varennes
C. Salway ..................... King's Lynn
G. Tegg.....................
Norrkoping
N. Tilwans ...............
Terneuzen
Reference:
ODOR AS AN AID TO CHEMICAL SAFETY
I recently came across an article in the Journal of Applied Toxicology which I have attached in full. Additionally I have extracted the major raw materials that we handle in our S/B Latex Plants; note the impact of the probable change in the butadiene TLV.
?he concept of an Odor Safety Class is, 1 felt, an excellent one as it highlights those chemicals which -
"YOU CANNOT SMELL BEFORE YOU ARE IN TROUBLE".
These chemicals are the ones which we need to put at the top of our industrial hygiene monitoring program. We need to pay special atten tion to abnormal jobs (i.e., line breaking) and put extra effort into plant design to minimize all exposures.
I intend to incorporate this idea into an update of our Industrial Hygiene Manual and future Plant Audit Books. If you have any data on raw materials that are not covered, please send it to me and we will distribute.
Dave Waite, Technical Manager S/B Latex Technology Center 433 Building - Midland, Michigan
Enc. (20 pages)
039786 DO 8 gonft PjFNTI A'
dgr
cUtlVED *
AN OFERATINO UNIT Of THE DOW CHEMICAL COMPANY
S/B LATEX RAW MATERIALS ODOR SAFETY CLASSIFICATIONS,
RAW MATERIAL
Threshold Limit Value (ppm; v/v)
Air Odor Threshold (ppm; v/v)
Odor Safety Classification
Acrylic Acid---------------- -------- 10.0 ------------------- -- 0.094 ---------------------- B Acrylonitrile ------------- ----- 2.0 --- ----------- 17.000 -------------------------E Ammonia --- ------------------------------ 25.0 -------------------- 5.200 -------------------------C
Bromoform ----------------------------- 0.5 ~-- -----------------Butadiene (Current) ----------- 50.0 Butadiene (Proposed) ---------- 10.0 n-Butyl Acrylate------------------- 10.0
1.300 --- ---------------- D
1.600
B
1.600
C
0.035
B
Carbon Tetrachloride ----------- 5.0 -------------------- 96.000 --------------- -------- E
Formaldehyde------------------------------ 1.0
0.830
C
Styrene------------------------------------- 50.0------------ ;------------ 0.320 -------------------------B
Vinylidene Chloride ---------------- 5.0
190.000
E
ODOR SAFETY CLASSIFICATIONS
Class
Odor Safety Factor
_________________Interpretation
A More than 550 ---------- More than 90% of distracted persons perceive warning of TLV concentration in air.
g --------- 26 to 550
--------------- 50 to 90% of distracted persons perceive warning of TLV.
C----------- 1 to 26 --------------------- Less than 50% of distracted persons perceive warning of TLV.
D----------- 0.18 to 1.00-----------10 to 50% of attentive persons can detect TLV concentration in the air.
E Lass than 0.18------Less than 10% of attentive persons can detect the TLV.
D. Waite 08-2 1-84 dgr
on ? 039787 C-Onf TDF/mA(
Odor as an Aid to Chemical Safety: Odor Thresholds Compared with Threshold Limit Values and Volatilities for 214 Industrial Chemicals in Air and Water Dilution *
John E. Amooret
OlTsclo-Labi, fO Box 7J7, El Cerrito, California 94JJ0, USA
Earl Ibulala
Weitttn Rteionsl Research Center, US Department oT Apiculture, Agricultural Research Servlet, Berkeley, California 9*110, USA
Key words: odor threshold; threshold limit value; volatility, solubility; distribution ratio; chemical safety.
The body of infoimnlort in this paper b directed to specialist) in industrial health and safely, and air and wsrer pollution, who need quantitative data on the odor thresholds of potentially hazardous chemical eipors and jues. The literature, largely unorganized, has been reviewed for 2J4 compounds and condensed Into tables based on consistent unit). Data on the volatility, solubility, ionization and wator-air distribution
ratio at *5*C are included. From the currently recommended threshold limit value (TLV), a safe dilution
factor and an odor safety factor are calculated for tarh compound. The equivalent diti are presented for both air and water dilutions of the chemicals. Available data are summarized on the variability of odor sensitivities in the population, and the increased odor concentrations that ire required to elicit responses from persons whose attention is distracted, or who are sleeping. This Information is reduced to calibration charts that may be used to estimate the relative detectability, warning potential and rousing capacity of the odorous vapors. Each compound has been issigned a letter classification, (tom A to E, to indicate the mtigin of safety, if any, that may be aflotded by the odor of the compound as warning (hit Its threshold limit value is being exceeded.
INTRODUCTION
The human sense of smell, although not as acute as that of some other mammals and certain insects, can be a valuable source of information about chemicals in (he environment. The nose is exceedingly sensitive to certain repulsive smelling compounds, produced In trace amounts by patho genic or putrifying bacteria and molds, such as methyl metcaptan, Itimethylamine, l-pytroline and isovaletic acid. Although these chemicals themselves ate generally harmless to man in the concentrations occurring naturally in air, waiti or food, heightened odor sensitivities to them may have developed from the protection offered against dangerous or fatal infection ot food poisoning.
With the ad'ent of the industrial revolution, persons have been exposed to diverse chemicals, many of which are commonly found in workplace settings at concentrations much higher than occur naturally. Some of these pose an inherent risk to health at certain concentrations. In tecognition of this potential haiatd, the Amctican Con ference of Governmental Industrial Hygienists (ACCIII) publishes an annual listing of Threshold Limit Values {TLV).1 {TLNf i$ a registered ttadcmaik of ACCIH, whom we thank fot permission to use the TLV designation in this paper.) The TLV used in this papet is the time-weighted average value. Based on the best available inJusttial health data, it is defined as the lime-weighted average concentra tion for a normal S-h work-day and a 40-h work-week, to
t Ault.or to *bem correspondence should be addressed.
which neatly all workets may be repeatedly exposed, day after day, without adverse effect.
The actual concentrations of specific chemicals in the working environment can^ be sampled and analyzed by various chemical and instrumental means, to determine whether the TLV is being exceeded. The necessary equip ment, however, is often expensive, cumbersome and slow, and tequires professional skills to operate and interpret. Nevertheless, there is a littleconsideted alternative, the human nose, that could serve as a first-line warning system fot hazatdous concentrations of many chemical vapors The nose Is peiftctly placed to sample iht inspired ait, monitors rapidly and continuously, and may tvtn exceed the sensi tivity of the best instruments. It is, however, at best only seml-quantitative, and it tequires calibration to detetmr.e its sensitivity to those chemicals that ate of Importance in industrial practice. In this trgard, it is necessary to evaluate the Increased concentration of a compound that may be required to alert the acetate person to the presence or an odor, while engaged in another activity which tequites
attention. The typical variability of the population for odrr sensitivity and responsiveness should also be taken into consideration.
METHODS
Literature search for basic data
A starch was conducted lor the olfactory and physiocherucal characteristics of all volatile Compounds and gases listed
ccc-o:6o-4j7\/sj'Oooj-o:7;scs.so
272 JOURNAL OF APPLIED TOXICOLOGY, VOL. 3.NO. S. 1983
...................... ..
JM) A 0397R8 9 0 N F TDFNTTAL
ODOR AS \M AID TOCHt.'IICAL SAI CTY
in the JlircihoU Limit IViirj' Tot 1982. The fiul objective wit to find lileraluie yglues for the odni-dctecliun thresholds, measured by dilution In either air or water. Dilulion of odotanit in air can be achieved either dynami cally. by adding a calibrated flow of odorant vapor to an ai(itieani, or statically. by dispersing a known amount of odorant In a vessel or chamber. In the water-dilution procedure, the odorant is prepared as a series of aqueous dilutions in dosed, partially filled vessels from which the head space vapors can be sniffed. Previous reviews Include those of LalTor!,1 Patte tt at.,1 van Geinert and Nettenbteijer.4 van Center!,1 Fanalarl* and the ACGIH Documen tation of ThrtihoU Limit I'ahtcs.1
In practically every case, we consulted the original articles, so as to minimize errors of transcription, calcula tion or duplication. Nearly all of the odor thresholds and references are available in the recent comprehensive com pilations by van Centert.4'1 If an author gave only a recognition threshold, this was accepted, because recognition oF an odor requires on average only about three times the detection thteshold concentration.*
If, for any compound, an odor threshold could be located, then a further scatch was conduct'ed for relevant physical data. The molecular weights, liquid densities and Ionization constants (of acids and bates) for theie common compounds can be found In laboratory handbooks. The vapor pressures at 25 *C were usually interpolated by linear regression computations from the tables of Stull.* Solu bilities In water at 25 *C wet* often Interpolated graphically
front data collected by Seidell and co-wotkers.*1 n More current Information Is given in Verschueten's handbook.11 Certain missing data on vapor pressures, solubilities, ioniza tion constants, and also occasionally data on the air-water partition coefficient, were found In Bcilatein's Handbuch'1 and Us four supplements. A few solubilities were estimated by extrapolation of homologous series or by comparison with isomers.
The air-water partition coefficient describes the relative distribution of a chemical In this two-phase system. Quanti tatively, it Is the ratio oT the concentrations of the chemical in air and water (both expressed as g I*1) at equilibrium. For compounds of finite water solubility, the coefficient
Table l. Literature odor thresholds for n-butyl alcohol*
Wntr^ilutlon thruhold
Alr-dUvtlon threshold
Origin*! data
gi"
Original data
1*'
First nlsrieet
O.OOS\ N/v) 1 mjr! 1,00 pom lr/v) 2,5 pom lv/v)
0 50 pom (v/v)
4.03 X 10"
1.00X10" 1.00X10" 3.01 XI0"
4.03 X 10"
2,0 mg/Vg
3.6 x 10" M/I 2.7 7 ppm (vy/vI
2.00X10" 2.67X10" 2.77X10"
6.S x 1Q'1 g/l
6.50X 10"
1 vg/i 0.565X 10" mol 1" 0.000323 mg/1 Act,, >9Z 10" Aei,, - 7.0 X 10"
1 5 ppm (v/v)
Act,, * 5X 10" 33 mg/m*
1.10X10" mol/ee 1.2 mq/m1 0.013 mg/1 -tog,, m/I = 7.91 0 JO ppm (v/v) 3.16 POm (v/v) 62 ppm (v/v)
0.0231 mmHg 0.390 ppm |v/v) 2.8 X 10" ppm (v/vl
3.S ppm (v/v) log, ppb - 10.42
1.00X10" 4.18X10" 2.23X10" 1.61 X10" 4.09X10" 1.45X10" 4.56 X 10" 3.60X10" 360X10" 7.34x10" 1.40X10" 3JO x10" 1.45X10" 1.34X10" 1.30X10" 1JOX10" 9.12X10" 9.11 X10" 9.60X10"
1.88X10" 7.20X10" 9.61 X 10" 9.97X10" 9.33 x 10" 1.18X10" 6.50X10" 2.34X10" 1.06x10" 4.15X10"
Fairy, 1892 Baekman, 1917 Jung. 1936 Gavaudan, 1948 MuHint, 1955 Moneriefl, 1957 Schrprg*r. 1958 Nttinnks, 1962 Roicn, 1962 laker, 1963 G***udan( 1966 May. 1966 Flaih, 1967 O'avnieks, 1968 Khaehatury an. 1969 Corbitt. 1971 Laltort, 1973 Hallman, 1974 Moikowitz, 1974 Motkowiii. 1974 da Grunt. 1975
Hani, 1975 l/Hard. 1975 Piggoit. 1975 DtavnliVj, 1976 Williams, 1977 Amoo't, 1978 Lain*. 1978 Punt*r# i960
Gtomttric mun( tir-dilutlon threshold * 2.54 X 10" g 1" (A/ - 291 w 2.54 mg m" * 0.835 opm (v/v)
Standard deviation - a/* 7,14; Standard trrof ** j/+ 1.44
* MW a 74, t g; 0 ,,0 606 g ml"; VP , * 6,99 mmHg; S-i^TOOgr*; sr-vitr pa^itton cotlliciant at
25 `C - 3.6 X 10' * (evpt.l. 3.61 X 10' lea'e.l.
JOURNAL OF APPLIED TOXICOLOGY, VQL. 3.N0, 6. 15*3 27
I. E. AMOOHC AND L. HAUTALA
Table 2(a) Air-dilution odor threshold dal* on 214 Industrial chemicals. The numerical data tre mostly rounded off to to significant figures. Not* that ppm on this half of Table 2 art In / units (*rl I"1) for the gaseous chemical in air
dilution. Sec Methods for further explanation of each column. TLVt are reproduced from Ref. I (1982) with permission from ACGIH
Substance
Acmidfhyd* Acme atiO ActtC inhydrid* Acetone -t... Aettpnitril*
Acetylene Actolcin Acrylic tcid Acrylonitrjlt Ally( tlcsSol
AHyl cMoride Ammonti n-A^yi ftcttji* Jec-Amyl ecetsit Antlin*
Af lint Benrtne Cmiyl cMoridi Biphenyl 6f"imtn
B'Onto^crm 1f3-Buldient Buttnt
7 Eutc*y*thnc! n-Bgtyl Ktittt
/i-6uryi acylitr
/`Butyl |CDhl jT'8u(yi titohoi rtrf-Butyl ilcohol n-Butylirnm*
n-Suiyf t*ette
p-ttrT-Butyltoibtnc Camphor Carbon dec*id*
Cartoon diiulftdc Carbon monov*dC Carbon tttracMorJd* Chlonnt Ch<orm dioxide
2o
7
i^
1O CO sO \/
o
0'loroceioD*s*nont Chlorobenitnt Chip' obfotnp^-te^htri* Chlorofofrm 0> lo f 00 krm
d.D'torcprtna O-OiiOfCtoluf"* fn-Onoi v/ni'Ooioni~t iyd Cdmffle
1 Thrffhotd limit vlut (ppm; y/v)
2 Volatility at 35 *C (ppm; y/v)
100 ID s
750 40
140 ooo1
0.1 10
2 2
20 OOO 6700
290 000 130 000
9 360 000
5800 140 000
33 000
1 35 TOO 135
3
480 000
8 5200 9200 630
0.05 10
1 0.3 0.1
8 130 000
1600 11
270 000
0.5 1000 Ijo)
800 25
150
8000
8 8
1300 16 000
10 50 100 100
5
7100 9200 23 000 55 000 93 000
5 0.5 10 3 5000
90 -*9 000
850 450
8
10
so
5 1
0.1
470 000
8 140 000 8
0.05 75 200 10
0.1
96 15 000 190 000 250 000 34 000
10 290 000
so 4700
5 180
3 -41 000
SO 5900
3 Air odor threshold (ppm: vM
4
Standard rror la/e)
0.050 0.48 0.13 13 170
1.7 1.5 1.1 1.6 3.8
620 0.16 0.094
17 1.1
2.8 1.5 2.4 lj
1.2 5.2 0.054 0.0020 1.1
3.5 2.0
2.1
16
0.50
_
12 1.6
0.044
1.1
0.00083 -
0.051
2.2
IJ 1.6 2700 0.10 0.39
2.3 2,5 1.4 -
2.5
0.035 0.83 2.6 47 1.8
5.3 1.4 2.0 3.6 2.5
7.0 0.00097 5.0 027 74 000
_
1.4 -
1.9 1.5
0.11 100 000
96 0.31 9.4
16 10
1.8 IB 1.6
0 035 0.68 400 85 0 78
1.1 16 1.7 1.4
15 023 0 00028 0.13
0 088
76 1.5 2.4 1.1 26
27 journal of appi tFn Tnxi'.nt nr.Y vm i tin i i9Bi
S Sat* dilution factor
10 000 2000 1300 390 3000
7 3 600 000
580 72 000 16 000
480 000 40 OOO 52 74 310
20 000 000 12 000 1600 56
2 700 000
16 000 1000 1300 2
no
720 180 230 550 19 000
120 97 000
85 230 200
47 000 20 000 29 000 1 OOOOOO 10 000 000
200 200 940 25 000 3*0 000
29 000 94 36
20 000 120
6 Odor
saterv factor
7 Odo' utery elan
2000 21 39 87 0.23
A
c
8
8
0
230 0.61
110 0.12 1.8
8
0
8
E
C
0.B4 4.8 1800 61 000 .; 16
0.10 0.8$ 23 240 2.0
0.39 640
0.29 250 390
0
c
A A C
E
0
c
8 C
D
A (O
D
B 8
290 60 38 2.1 Z7
8 8
B C
c
0.71 510
2.0 76 0.067
D
B
C
c
E
92 0.00050 0.057 3.2 0.011
B
E
f 4"
c^
E
1.4 110
0.50 0.12 0.13
C
8
0
E
C
0 68 150 17 000
17 570
0
8
A
c
A
OUOH AS \N AIU tnriir.'JItALSAI I.IY
Table 2(b) Water-dilution odor tlirethold dill on ihe him 214 chemical*. Nnlt llul ppm on Ihiihilf of Table J ate in w/v unid (rn| I*1) (or the chemical In tqucoui lotulion, The numerical value* In Table 2 are almoit invariably com piled, averaged, re calculated or extrapolated from the literature, and arc nor new experimental dercrminaiion*
Sutit *nc#
>
Weter TLV equivalent (ppm; w/-v|
9 10
Solubility (ppm; wM
Water odor thretnoid (ppm; yv/vl
11
Molecule' (fl>
12
Denuty ar 20-25 'C <9 ml'M
13
ftittr-iir d UtibutiOn ratio lM
14 Nymbif of
thretfcold! performed
4ctlAldhyd Acetic *c>d IA/4.7) Aeenc anhydride Action* Acetonitrile
67 2000 d 1100
70
-
d * M
0 034 97 d 20 300
44 80 102 58 41
0.79.. 1.05 1.08 0.79 0.78
370 83 000 d
820 1000
3 14 4
330
3--
Acetylene Acrclem Acrylic Kid (A/4 3) Afy tomtrile Ally 1 alcohol
1150) 0.068
1.1 26
1000 200 00C
73 000 *
(0.671 0.11
9.1 14
26 56 72 53 58
9 0 84
1.05 0 30
0.85
1.0 290
240 5600
371 1-- 22 4--
Allyl c^lOrtde Ammenn (B/9,2) n-Amyl acetate jrc-Amyl acetate Amlin# (B/4 5)
I0 007S) 7.1 68 110 120
3600 ,, 280 000
18001, 1700 37 000
10.0083) 1.5 0.037 0.0017
65
76 17 130 130 93
0 94
0 88 0.87 1.02
2.4 400 130 160 16 000
311 2
54 -i
9i
.Arym# Bfn*en Benryl chloride 8p h t n y l Bromin#
(0.0000351 10,15) 0.28 0.12 0.012
670 1800
460,. 6.7
33 000
10.00035) 10.17) 0.012 0.00050 0.0063
78 78 127 154 160
9 0.83 1.10 s 3.12
0.22 46 55 95 19
1-- 19 4
2-i
4--
8romofOrm 1,3BuTadre Butane 2'8utyeth"ol o-Eutyl acetate
0.20 10.88) (0.051)
65
3100 850 61
6800
0.51 (0 0014) (0.171
0.17
253 54 58
118 116
2.89
9 9 0.90 0.88
38 0 40 0027
91
4i 64i-
93
n-Bwtyl acrylate ff-Buryl afcorol ttc Butyl alcohol ferr Butyl aicohol /'Buryiamtne (B/10.6)
2.2 *20 730 620
17
1600,, 73 0C0 200 000 *
0.0073 7.1 19 290 8.2
128 74 74 74 73
0 90 0 81 0.81 0.78 0.73
43 2800 2400 2000 1100
21 20 9
51 41
32
"Butyl lactate n-Sutyl mercaptan (A/10,S 1 p-'frf-Butyltolucne Camphor Girbon diot*de (A/6.4)
Carton dtrjlfidt C#fbon moroi'd# Carbon tetrachloride Chlorine Chlorme dioindt (A)
o-'CHloroftcetophenpnc Chlorcoen/ene Chlorobromome thane Chloroform Chloroptcrm
370 I0OC6D (0 06a) 7.S (7.5)
42 000 600., -5 5
1700,. 1400
(0.036) 10.0013) (0.027) (0.0C65) 0.0071
1700 26
770 6300 87 000,,
dd
5.5 1100
17 -16 000
10.281
7100
(0.00481
1600
520 (0 00C012) (0.032) 1.0
(110)
146 90
148 152
44
10,00039) 12.7) 10.52) (0 0020) 0.67
76 28 154 71 67
d 0.050
34 (2.4) 10.037)
155 113 129 119 164
0 98 0.84 0.86 1
9
. 7 -26 9 1.59
1 9
1.10 1.93 1.43 1.65
12 000 3.3 1.1
600 0.83
1-2 0 023 0.85 2.2 26
d 16 16 5.7 7.1
1_ 6 193 2
8_
2 w10 1
711
3_ 62 1 14 1 t1
0*Chloroprne 0-ChiQfoto`uc ne m-Creiol (A/10 1)
fr*nj-Crotonaid*nyde Cwmen#
10.016) 11.11 640 7.2 10 45)
00 A 039?9i cnatd fnttai
480., 100,, 23 OCO 150 000 ,,
53
10 024) 10 0069) 0.037 0.42 I0 0008CI
88 127 ioa
70 130
0.96 1.08 1.03 0 85 0 86
0.45 4.1
29 000 1200 1.8
21 11
33 V1
61
JOURNAL of applie 0 TOXICOLOGY VOL. 1. NO. 6.1583
Taba rial -- fonrmvftf
Subtiti-iet
CrCloM*at Cye)ohanot CydOMOnont Cycloht p# Cyc!h4*Yl*rnif\*
Cydo&f ntic3i*n# Dtcaborani OUctiOA* alcohol O'bor#nt e*OicMof bbtrwant
pDicMorobtntf nf f/#Ai-l,2'D`Chlroethyl*nt fi.f -Okhlofcxthyl *\h*r 3icydco*ntidirvt Oijih>Aolfrr>in*
D! f t * v 19 m i n ^lHhyiamihcathanol Diaihyl VttOn* Ciilbbulyl kttona D>'cfCpy limin#
N D1 m et h y Uc t *m *d D'mrthyUrTMAf A/-D^fthyltm|inl //Oirntthy l*ormvr%tdi l.l'D^flhylhydrUiA*
1,4-Die * Eo-chlorhydrin Ethtnt
E th* ncl* th At
2-ElhOytth*nol
J Eihoiyeihy) vcttait ihyl acttait Iihyl aerylait Ethyl alcohol Elhylmtra
Ethyl A myJ fcatonv E thyl ba A2t a* Ethyl bromtda Ethyl ch>ordf Elhyltn*
Ethyltnvdiamint Ethylena d<Chlcrd Ethyttnf oiidt Fthylenimin* Ethyl\h*f
Ethyl lotmait lhyfdtn* nort>orn*nc Ethyl mtfcaotan ^/EthylmOrpholiA* Ethyl tipcat*
FK>oma
F u-.'nf'df hyd* Fo*me c*d Fyi-funl FwHury 1 alcohol
1 Thff fhold limit vttwt Ippm; v/v)
300 SO 35 300 10
75 0.05 SO 0.1 50
75 300
S 5
3
10 10 300 35 5
10 10
s
10 0.5
35 3
140 COO1 3 5"
5" 400
5 1000
10
35 100 300 1000 140 ooo1
10 10
r o.s
400
100
5
0.5 5 10
1
r
5 3 10
3 Volatility 1 35 *C (ppm; vM
130 OOO 3000 6000
99 000 15 000
560 000
- no
1600 i
1800
1300 430 OOO
1500 3600
78
310 000 3900
33 000 3300
110 000
3600
1000 3100 210 000
53 000 31 000
g
780 7100
2700 120 000 60 000 75 000
1
3600 13 OOO 610 000
9
16 000 110 OOO
*
260 000 700 000
330 OOO
310 000 11 000 3000
9
S3 000 3100 10
:76 JOURNAL OF APPLIED TOXICOLOGY
o
n
-J O
>
i Air odor
thitihold Ippm; v/vl
4
Standard rror
UA)
35 0 15 0.88 0.18
3.6
38 21 3.3 -
"
13
o.oso
0.38 3.5 `0.30
_
* -
4.2
0.18 4.1
17 18 0,049 --
0.0057 13 0.37 - -
0.13 0.011
2.0 0.11 1.8
2.9 3,1 33
47 0.34
o.ota
32
1.7
3.1 3.8 46 5.5
34
033 120 000
26 2.7
3.4
13 5.9
--
9.0
0.056 3.9 0.0012 84 0.95
6.0 2.3 3.1 4.2 390
1.8 4.1 1.8 3.6
--. 3.7
_
3.6
1.0 88
430 1.5 8.9
_,
7.1 13 13 3.3
31 13 0 014 1:4
0.00076 2 0 1.4 18 17 43
0.14
0.83 *9 0 078
80
2.3 1.9 1.7
-
6. 1953
5 Sa'a
dilution (actor
,
Odor llUty *
(actor
7 Odor ta'aty data
430 13 C 39 30 a 340 38 9 330 1600 A
1500 3J c
7500
2300
33 10 ooo ooo
37
*0 0.83 180
0.0*0 160
8
0
*
1 8
17 3100
390 730
36
31 000 390 110 130
21 000
260 100 000
200 310 *10 000
430 13 100
70 11
77 910 97 330
a.r
o.:i
39 *00
4.6 0J0
8 C 8 A c
8 A 8
C
o 8 8 C 0
1000 11 000
7 760 1*00
1.1 c 3.1 c
1.2 c 1.3 c 1.8 c
530
- 300 10 000
75 100 000
89 5 100 8 4000 A
13 c 11 c
140 130 3100 1000
7
4.2 44 64
3*0 490
c
8
B
8 8
1600 11 OOO
1 000 000 530 000 1800
10 0 11
0.0023 0.33 45
C
E
t
0
3300
1 *00 000 2100 300
3J 350
650 3.5 0.57
c
A c 0
1 OOO ooo
1 OOO ooo 11 ooo 1000 1
7.3 1.3 0.10 75
12
DO A 03979? CONFTDFNTT At,
c c
t
c c
SutMUnc*
Cyc'oH^i^n* CfdoKe*oi Cyc'o^fno* Cve'ohfit n* CvdoMiy tamm* (BH0 6)
W(*f TLV fqgivelcM (ppm; I
10 01
940 J40
10 SSI 94
CyclO0ntdi*n* Otciboran*
D>actont alcohol Oibonne 0'0ichtorOb*oj|n
(0.241
d 3.9
P'OicMorobtnirn* ,2.0'ehloroethyltn*
0JT-Oichlorothyl ether ClcyclOpent*dito Olfthanolamm* 18/8.91
4.7 (3.01 36
240 000
Oltlhylamlnt IB/1 1.01 Oiethylamlnoelhinol (0/0.8) 0>ethyl ketone DHiObutyl ketone O'itoprppy famine (8/11.0)
36
4SO 3.3 3.5
A/.Dimethy lac* timid# 0*rn*thyl*min# (0/10,7) W-OimtthyWniUni (8/5 2) N-0)m f l hy 1 f 0 rm a m Id * l.l-Oimnhylhydralln# (0/7.2)
86 9.9
9
Sohjfttivy 25*C (ppm: wM
ss 36 000 -54 000
310
- leoo
4d
140
79
6300 11 000
-
48 000 430
to
550 coo 2000
*
10 11
Water odor ihrcihold (ppm: vt/vl
Molaculac Vdpf^ht
If)
1001 11 28 3 (0.000391
35
64
100
98 82 99
10.00601
64 d
0.034
66 137 lie
38 147
0.011 (0.26) 0.36
32 000
147 97 143 133 105
0.47
4.7 0.014 1.3
0.29 0.025 SO
73 117
86 142 101
87 45 121 73 60
12
Otoi'iy M 20 2S*C If ml"')
(1
Watif.air dtiribwtio* , rafip f**M
14
Numb" ol ttmiKgift
performed
)e wwt tt
0 78 0 95 0.95 081 0 87
0.13 4600 3400
0 64
3300
633 2 1_1
0.80 0.94 1J0
t 136 131 1 1.10
1.3
d 13
10 38
1200
19 000 000
1 1 13 t32
13 3 *1 2 1
071 0 88 081 081 0.73
0.94 0.96 0.94
0.79
1300
640 23
-170
1 1 3 1 31
.1
460 400
1 83 3 31 2-
1,4-Oioxmc EpiChlorhydrin Ethane Elhanoiimint 10/3,5) 2EIhOiythnol
340 8.4 (6 8)
23 000
to
65 000 60
4
330 3.0 17.5)
20 000 190
88 1.03
3700
71
92 1.18
840
2
30 f
0.051
3-
61
1.02
3 100 000
1
90 0.92
31
2'Ethoiytihy! acetate Ethyl acetate Ethyl acrylate Ethyl alcohol Ethylamn# (0/)O.7)
Cthyf mamyl keton# Ethylbenztnc Ethyl bromide Ethyl chloride Ethylene
Ethylenediemin# (B/10.0) Ethylene dichlor;d* Ethylene Olid* Ethy'tmmin* 18/9 0) Ethylether
450 270
l.S
9000
45
10 (1.3) (2 9) (4.7) 119)
0.80 0.33
d 34
200 0C0., 73 000 15 000
-
-1.
-- 1500 160
9000 4700
130
to
8600 270 000,, -d
56 OOO
50 3.6 0.00038 760 4.3
3.5 (00291 10 0461 (0.019) 10.039)
16 000 7.0
140 170d
0.75
132 88
100 46 45
128 106 109
64 38
60 99 44 43
74
0.97 090 0 92 0.79 0.69.,
0.83 087 1.43 f
0.90 136 < 0 83 0.71
16 OOO 180 74
4800 3*00
SO 2.9 3.3 1.8 0.13
30 180 d
38
1 84 31 13 5 33
1 23 11 41
11
83
2 31 7
Ethyl format* Ethylidfne norbornen# Ethyl mrreiot** (A/1Q 5) /V-EthylmorDholm* (0/ ) Ethyl illicit*
35 100 000
10,00491
7000
dd
11 74 120
(0.0000075) 62 115
d 208
0.92
0 33 0 90 0.93
120 3.9
d
11 2 13 1 3 2
Fluorine Formaldehyde Formic led (A/3.7) Furfu r! Fgrfuryl icohol
d
0.73
170 89
d
d 550 000
to
86 000 -d
DO A 039793 OONFTDFNTTAl
d 38 f
0 60 30 f
1700
46 133
3.5 96 1.16
d 98 1.13
d 590
18000 11 COO d
1 a4 4s 23 1
JOURNAL OF APPLIED TOXtCOLOGf. VOL. 3. NO. 5,1983 277
7ll--Conyad
Sublltnci
1
ThrtlKold limit vp!u lppm; Wvl
3 Volatility *< 25*C (ocfn;Nl
3 Air odor thrfthold tppm; M
4 Sltndl'd rrof UA>
9 ( dilution Ucier
OOor
fKlor
7 Odor
M>*tV clou
Hfptan* H*#chkKOCyCle>p*ntdif n* Wf i chlorot7hjr>f
so"
*00
0 01 10
so
390 000 60 000 78 770 200 000
33 ISO
0.030 0 IS 130
1.7 8.1
_
2.0
7900 ISO
7800 77
4000
1.8 C
2.7 c-
0.34
D
64 8 /
0.37
0
Htiytfnt flycol Hyd'llln* Hydte^cn bromld#
Mvd'o?*" eM>id Hyd'o^tn cyantd*
3S 0.1 3 S 10
100 18 000
970 000
SO 3.7 2.0 0.77 0.58
1.1
7.2 1.9
4.0 180 000 330 000 200 000
97 000
O.SO 0.017
1.9 6.5 17
0 C c
c/
c
HydtPQt* lluor<d HytfTOgtn feint'd* Hydrogen fulftda Ind* n* Iodoform
3 O.OS 10 10 0,6
9
1 2200
-*9
0.0*2 0.30 0.0081 0.015 0.0050
17 -
1.S 3.9 1.8
330 000 30 000 000
100 000 220 81
71 0.17
1200 690 120
a E A A
B
lica^yl acttlti Uoimyl ilcohp! hebUTyl aetiatt liothityl ilcohol hophoron*
100 7100 100 *300
ISO 26 OOO
so 16 000
5 *50
0.025 0.0*2 0.6* 1.6 0.20
1.6 IJ 1.8 3.0 -
71
3900
A
*3
2300
A
170 230 8
330 30 8
89 2S C
tlQOrppyt Kftatt IlCpropyt !cohl IlCP'OPYlaTiint Isopropyl ther
tnbydiidt
250 *00
s
250
0.25
79 000 57 000 7*0 000 210 000
-170
2.7 22
1.2 0.017 0J2
3.9 1.8 2.8
--
--
320 1*0 ISO 000 BSO 670
93 18
4.1 1S 000
0.77
a c c A 0
Mityl Paid* J.Mt fhpty* thirtol Mtthyl actuate Mfthyl tcrylan Mfthyl aery lonitrilf
15 5"
200 10 1
13 000 16 000 270 000 110 000 88 000
0.*5 2.3 4.6 0.0048 7.0
26 26
3.5
--
-
8SO 3200 1*00 11 000 88 000
33 2.1
44
2100 0.1*
a c a A
E
Mfthyl alcohol M*ihyl*mint Mfthyl /i^myt kftona A/-Mf thy lnltn* * Mfthyl ft-butyl kftom
TOO 10 SO 0.5 5
160 000 9
2000 6*0
5000
100 3.2 0.35 1.7 0.076
2.0 4.6 2.1
--
-
800 100 000
*0 1300 1000
2.0 3.1 1*0
0.29 86
c c a
D a
Mfthyl chlorplprm Methyl 2<y-'cacryln* Mtthylt yCloht i)nf cji-3-Mt thylcyeioheianol Mfthylfn# chlorld*
Mfthyl ftlhyt kfion* Mfthyl fprmttf Mtthyl hydrailn* Mfthyl feoamyl krtpna Mfthyl itebutyl Catbinol
Mfthyl iiobviyl kiton* Mfthyl rsocvnatf Mfthyl iteotcpyl kttonf Mfihyl mtrcipian Mfthyl mtthacryltf
Mfthyl A<CfCvt Vtio'n* Mfihyl it y ft MO'phol'ftf N*phf* Af N<W*t carbonyl
350 2
*00 50 100
200 100
OJ 50 25
50 0.02
200 0.5
100
200 50 20 10 0.05
160 000 -530
61 000 710
550 000
130 000 760 000
65 000 *800 7800
9500 630 000
39 OOO 9
52 000
21 000 3800
13 OOO 170
520 000
120 2J
630 600 250
2.B
-- -- _
!J
5.4 13 30 2S
1.7 -
0 .012 ' 0.070 --
0.68 2.1 1.9 0 0016 0.0B3
2 J3
-
3J 3.0 1J9
11
0 29 0 Ot 0 OB* 0.30
2.2 4.0 -- 1.9 3.3
278 JOURNAL OF APPLIED 7OXICOLOCY, VOL. 3. NO. 6. 1987
470 260 150
14 5500
660 7600 330 000
96 310
190 32 000 000
200 2 000 000
520
110 76
6>0 12
10 000 000
3.8 ' 0.91
063 0.10 0.*0
c o
0 E
0
37 0.17 0.13
4200 360
73 0.0094
100 300 1200
is 170 7000 170
0.17
C a A
a a
*
i
00 A 039794
CONFIDENTIAL
.U l*
*'* .*
i **
'
1 \ i -U '9 6 -4 3 1 *1 ij iis * C.4
., r'. 'f`
\
. >; .V -``Jr .
g
-. 1; 7<> " ,a .-.
:
i
1
Tab'* 2lbl-Cenhnt/*d Subtlmct
1
W.I.r TUV Ouivateni (pom; *M
9 10
Solubility tt 25`C (pom; y*Av|
W*lr sdO' threshold (ppm; w/v)
11
Moltoi'ir vghi i*i
12 *.
0*"(ty t 20-2S*C
13 14
Wliu-lir distribution nil* (wM
three*** Hr hw
Helothana
Henaehioroeyetapent adienf Mtiachloroe thane Hcian
Htiylln# glycol Hydratme (S/3 31 Hydrogen bromide (A) Hydrogen chloride (A) Hydrogen cyanide (A/9.2)
Hydrogen fluoride IA/3.2) Hydrogen itlenidi IA/3.9) Hydrogen Jyllid* tA/7.0) Indtne lodO^Orm
1044) 10 020) 0 002S I0 6SI 10.0024)
3400 2.9
20 50
9.3
--
d d
3.0
1 200 000 500 000 "
d (0,00035) (0036) (0.1 B) 1J
6800
3500
-40
no
10 29) (0 0073) 0 OC77 10 0101 <0.00641
197 100 273 237
16
160 d d
0.17
118 32 1 36 27
d 20
(0.0021)
81
(0 000029) 34
(0.0007$) 116
0.011
394
1.87 0 68 1.70 1 0.66
097 1.01 f 0.70
0.96 t * 1.01 1
1.1 1
0.013
4-
33 i *
8.7
-
0.014
2-
d
d 270
1 2I 1 821
d 2.1 28 3.7
130
2125 1 11 3-
lioamyl acetate IfOamyt alcohol liobutyi acetate Itobuiyl alcohol Uophoronf
laopropyl acetate llOprOpyl alcohol liopropyiamne (6/10.5) liopropyl ather Maleic anhydride
66 630
34 310 140
97 3000
20 12 d
1400 26 000
5900 89 000 12 000
30 000 -
10 000 d
0.017 0.27 0.15 10 5.4
130 88
116 74
138
1 JO 160
4.9 0.00080 d
102 60 59 102 93
0.87 0 80 0 87 0.80 0.92
0.87 0.73 0 69 0.73
130 1700
48 2100 4800
92 3000 -1700
11 d
8S S3 31 75 1
412 4
31 1 1
Mesityl o>ide J.Metho ay ethanol Methyl acetate Methyl aery late Methyl acrylonitrile
35
130 45 0.29
29 000 -
220 000 49 000 25 000
1.0
30 0,0021 2.1
98 76 74 86 67
0.85 0.97 0 93 0 9$ 0.80
570
210 130 110
2351 1
Methyl a'cohol Methylamlna (9/10 5) Vethyln-amyl Itetcne N.Mtthytin.llnt (S/4 81 Methyl n buryt Vttcne
1500 74
40 5.3
17
*
550 000 4300 6700,,
16 000
740 2.4
0.23 18
0.25
32 31 114 107 100
0.79
9 0.81 0.99 0.81
5600 580 170
2400 800
13 4 33 33 11-
Methyl ch'hmjforiri Methyl 2<yjnoacrylate Methylcy cfohf a *n Cr#*3*Methy!cy clohea ar.ol MaihyJent cMoridt
12.8)
(0.0921 660
3.6
1300
14 9300 19 000
(0.97)
(0.151 6600
9.1
133 111
98 114
85
1.34 1.11 0.77 091 1.34
1.4
0.057 2800
10
311141
Methyl ethyl ketona Methyl formate Wnflyl hydruin. (8/7.91 Methyl ifoamyl ketone Methyl iioburyl carbinol
Methyl ifobuty! ketona Methyl isocyanate Methyl isopropyl keton* Methyl mercaptan (A/10,7) Mth/| mathacrylata
310 25
56 53
210 000 170 000 -
5400 16 000
94 18 000
dd
320
60 000
(0 00751 -14 000
30 15 000
8.4 ISO
0.013 0.15
72 60 46 114 102
1J d
100 57
3.1 10.0000241
86 48
0.025
100
0.80 097 0.87 081 0.81
0.80 0.96 0.60 0.94
530 10O
240 510
460 d
460 76
73
81 j111-
5-
111
83
41
Methyl n "propyl ketona 'M^hy! styrene Mof^hoiln. IB/8.7) Naohthaiene Hicktl carbonyl
270 7.4
54 000
560 -
2.5 (0.000012)
30 130
15 0.043
0 021 10.0000 721
86 118
7 128 171
081 091 1.00
% 1.32
380 31
47 0.035
31 31 t84 J-
C,0^1D
*, JOURNAL Of APPLIED TOXICOLOGY. VOL. 3.N0. 8.H13 279
Tfbi ?ll-Ce*/nv*d
5ubtt*nc
Thttthold limit valuv (ppm; v/y|
2 Volatility t 25*C Ipp'n; *M
3 Air odor Ihrtjhold (ppm; vM
4
Standard rror U/t|
Niuobf r>;en# Nlwotthtnt
NHtoyin d<o*id* Ninomt thin# 1NitrODrct>an
t 100
3 100
25
350 27 000 *7 000 13 000
o.on 2.1 0.39 3.5 11
1.7
-
2.6
-
4.2
2-M;tfop'opii># /n-NifrotOluvni Non*nt Odin* Oimiwm tctrex'fdt
10"
2 200 300
0.0003
22 000 -280 6000
18 000 12000
70 0.0*5
47 *8
0.0019
2.2
--
4.1
3.2 -
Oftyfftn diMuorldt Oien* Ftm*borna Ftnt*** Fifcbloronhyl^n#
0.05 0.1 0.005 too 50
270 000 670 000
25 000
0.10 0.0*5 0.96 400 27
15
-
IJ
1.8
Fhnol Fhtnylt^her Fh*nyf mercaptan Fborgan* Phoipt'-m
5 *50 1 29
0.5 3000 0.1 t OJ
0.0*0 0.0012 0 00094 0.90 0.51
1.5 3.7 4.4 1.7 2.5
Fhthjlic anhydrid* Fropant
Fropionic atid n-Propyl Kttlt* ft-F rOpy 1 aicohoi
1 1*0 ooo1
10 200 200
Fropyl*nt
FtopvItnf dic^'oftd* rFropykne glycol 1 ^methyl th*r
Frppylfnt Oxidf
ft-Fropyl nitrile
1*0 ooo'
75 100
20 25
0.67
9
5400 *3 000 26 000
8
69 000 16 000 700 000 30 000
0.053 16 000
0.16 0.67 2.6
_
lj 1.8 4.1 1.7
76 0 25
10 14 50
3.0
_
--
4.5
-
Fy rrdiot Quiftona
Slyrtn*
Sulfur ti.oxide
1.1.?.2'T>traehloro thane
5 0.1 50
2
6
27 000
130 9600
8
B*00
0.17 0.084
0.32 1.1
________ 1-5
1.4 3.0 2.0 1.3 2.1
Teirahydrofuran Tduf n# Totuin*-7,4^i ii&cy*nata o-Toluidina 1^.4.T rich loro btnitna
200 100
0.005"
2 5
230 000 37 000 -21 330 570
2.0 2.9 0.17 0.25 1.4
5.4
1.6
IS
4.1
2.1
Trichloroethylene T rlchioofluoromth*r>f 1,1.7-Tilchlorot,2.2.
trlfhioroathent Tricthylamlnf Trlmtthy Itmint
50 1000 1000
10" 10"
99 000
9
430 000
93 000
9
28 5.0
4`5
1.7
-- _
0*8
2.1
0.000** 1.4
1.0.S^T rimtthyfbt ftitna Trimethyl pnotphiie ft?V*lera1dehyda Vinyl acttiti Vinyl chloride
Vifiyltdfnf chlpiide Vinyl toki*n4 m-XyWn# 2,4-Xyl<d*n*
25 2
50 10
5
5" 50 100
2
3600 3* OOO 21 000 140 000 9
790 000 2*00
11 000 190
0.55
0.00010 -
0 028 2.5
0.50
1
3000
3.7
190 10 1.1 0.056
3.7
-
2.1 "
9 UU dilution lacior
360 270 330 000 470 520
2200 140 30 61
61 000 000
20 000 000 10 000 000 54 000 000
1100 490
92 29 4100 10 000 000 3 300 000
0.7 7 540 220 130
7 920 160 35 000 1200
5300 1300
190 500 000
1700
1100 370
4200 170 no
2000 1000
430
9300 100 000
ISO 17 000
420 14 000 200 000
160 OOO 48
110 97
6 Odor ,
t*litv (actor
7 Odo* (1*11* elm
56 46
7.8 29
2.3
0.14 45
4.1 63 0.10
B
C
>
c
E
C c
c
0.50 2.2 0.0052 1.5 1.8
D
c E C
c
130 BOO 530
0.11 0.58
19 8.1
61 300
78
A 8
f/
0
c c
8 8
1800 300 10 0.45 0.50
A
8/
C
0
D
30 1.2
160 1.7 34
8
C
B
c c/
99 34
0.030 8.0 3-6
8
8 E C C
1.8 200
22
c
8
c
21
23 000
c
A
45 20 000
1800 20 0.0017
A
A C E
0 077
5.0 2 36
E
C
280 JOURNAL OF APPLIED TOXICOLOGY.VOL. l.NO. 6. 1383
* Table 2lbUC0n(f^v*(/
.i
4 $ubiian(f
, NitfObtO/*n# M.trofth^ff (A/8.4*
i Nitroijyn diand* (Al # 4 Nilromtihtnt (A/10 31 'i "" 4 l-NilrOpropan IA/-8)
Wlttr TLV Owivalrnl Ippm; *>/vl
0 100
d 360 39
10
Solubility 1 35*C Ippfn: #/vl
3100 37 000
d
110 000
1SOOO
Water odor thr tfhokJ (ppm; n/v|
0.11
3.3 d
9.1 13
II
MaUcul*' ll
13
'* 0*niny tt 30-25'C If ml-'l
13 14
NyrtitFf of
Wat'*it dltU'buIppn * ftliO tn/vl
thrtiholdt pftfoimad
ilr watar
133 75 46 1 *9
1 30 1.06 1.13
1.00
1300 330
d
1000
310
13 3 -1
-
1
31
\i 2Nitroproein IA/7.71 m-Nit/ptoluf r
7.6 16 000
53
19 0.98
3.6
500 ,,
0.080
137
1.16
FiOnant
10 0056)
-0.17
(0.00131
138
0.72
Octmt
10.011)
0.66
(0.0017)
114
0.70
i
Oirr>kjm ttro*ida (A/12.0)
0.0013
69 OOO
0.013
354
210
t1
330
1
0.0054 2
0.0077 3 -
>80
1
* -
Sc
>*
* *
Ovygtn diMuorida Otonc Fimebor*n* Ptmana Farchloroethylena
Phtnol (A/10.0)
PTltnyl f thi'r
Fhnyl marcjDlm (A/6 5) Phoigtn* .hpiphine
(0.0000054)d 100,,d
(0.000011 Id 54
(0.00064)
6100
10.000381
48
d dd
63
(0 0331
38
10 0331
73
(0.31)
150
10.17)
166
1000
150 0.15
d (0.00011)
85 000 4300 610
d 370,,
7.9 94
0.18 0.00028
170
110
d (0.00020)
99 34
1
063 0 62 1.61
1.07 1.08
1
0.049d 1
3.2 6
d1
0.019
3
0.90
31
53 000 31 000
66
d 0.37
16 33 33
6
6
Fhthflie anhydridt
d
d d_
146
I
d
1
tr FfOpant
19 0)
63
11.01
44 8
0.036
3
Fropionie acid (A/4 9)
1700
38
74 1.00
6 000
11 3
A-Propyl acatiia
93
19 000,.
0.31
102
0 89
110
4*
/i*Ffopy| alcohol
1800
-
33
60 0.80
3600
13 8
** Fropyla ^a
(501
350
(0 0281
42
* ` Ffopylana dichlo/ld*
(3.01
3800
(0.010)
113
1.16
`> Frppylene glycol 1-maihyl tther
90 092
i Ffopylan* oxida
-4*\ n-Fropyl nitrate
14 7.4
370 000 8800..
31 15
58 105
0 83 1.05
0.21 8.8
300 69
31
1 1
3
1
" ^yridlot (8/5 11
38 -
0 95
79 098
1700
15 10
Oulnon#
1 1 14 000
9J
10B
f
25 OOO
31
Styrtra
(1.7)
320
(0.0111
104
0.90
7.8 10 3
SuHur d.o.de (A/1.91
0.19
88 000
0.11
64 9
*?
141,2,2-TttracHlorcfthjna
1.7 3900
0.50
168
1.60
37 13 50 3 1
Tvwahydrofuran
*
72 0.89
3-
Tofuena
(1.4)
540
(0.043)
92
0.66
3.8 18 3
Tolu* ne*2.4-^ii toe y *nite
d
dd
174
1.22
d
4
0*Toluidin# (8/4.4)
91
15 000
11
107
1.00
10 000
31
- 1,2.4-T ricMorebeni tn
10.331
-36
10.064)
181
1.45
6.1
11
Trichloroethylene -t T/khloroHuOrOrrethinf ; l,1.2.Tnchloro-1,2.3-
trifluorocthi"* -
Tfifthytamin* (8/10 91
Trimethyfaminf (8/9.7)
(0 55)
1100
>8
4.5
71 000 410 000,,
(0.31)
0.43 - 0.00020
131 137 187
101
59
1.46 1.49. 1.56
0.73 f
3.1
310 190
71 1-
1
41 31
t,3,5*Trimethyltf hren*
(0.67)
97
(0.0151
130
086
5.4 6 3
Tfimtthyl phptphit*
d
dd
134
1 05
d
1
r aldehyde
39 13 000
0017
86
031
170 1 3
Vinyl icrilt*
1 B 35 000.,
0.088
86
0.93
50 4 1
Vinyl chloride
V
(0.0057)
1100
(3.4)
63 9
0.44
3
Vinylid'na c^OMd* Vinyl toluenf m. Xy lent
3,4.Xylidin# IB/4 91 4
10 041)
(3 1) 11 6)
66
6400 ~ 100
170 6400
(1.51 10.42) 10.017)
1.8
97 118 106 131
1.22
0.90 0.36 0 97
7.0 87 3.7
6600
3 1 3 1
< i
DO A 039797 OONFTDFNTT Al
JOURNAL OF APPLIED TOXICOLOGY, VOL. 3.N0. 6, 1981 281
at 25 *C can be calculated'* (turn the vapor pressure attJ the solubility at 25 *C. The coefficients for some of the com pounds that ate Infinitely soluble In water at 25 *C were calculated ftom tabulated activity data" or measured experimentally,'*
The results for n-butyl alcohol, width has provided the most plentiful odor-thiesliold data, are |iven In Tabic I as a demonstration of data reduction. The original threshold data. In a variety of concentration units, were converted5 Into common units of f l"'. Any water dilution thresholds were further converted to the equivalent air dilution threshold, ihroufh multiplication by the air'water partition coefficient.1* The relationship between odor-intensity sensation and odorant concentration is exponential.** Therefore, in order to preserve the normal distributions of olfactory-threshold measurements, aU chemical concen trations of odorants were calculated on a logarithmic scale. Hence the geometric mean of all 29 odor thresholds, expressed in air dilution, was computed (by converting to the logarithms, finding their arithmetic mean, and talcing its antilogaritlim).1 The mean air dilution threshold, In g l*1, was finally converted to mg m'1, and to ppm by volume.
Explanation of Table 2 (odor thresholds)
Column l. Threshold limit values (TLV) adopted by ACCIH. 1982.1 The superscript n indicates that the TLV used ii the value proposed in the 1982 Notice of Intended Changes. The superscript l indicates an Inert gas (simple asphyxiant) for which no TLV Is assigned by ACCIH, merely a requirement that the oxygen content of the air not be reduced below 18ft. This would be expected to occur If the asphyxiant reaches 14%, or 140000 ppm, which is in effect the TLV Tot inert gases.
Column 2. The volatility in ppm (v/v) is given by the literature vapor pressure (in rnmHg at 25 *C) multiplied by 1316 (1 000 000 ppm per 760 rnmHg), -- indicates approxi mate value obtained by extrapolating the lineat regression ftom vapor pressures recorded at substantially higher temperatures, g, gaseous at 25*C.
Column 3. Air-dilution odor thresholds are geometric averages of all available literature data, omitting extreme points and duplicate quotations. Odor thresholds originally measured in water dilution were converted to the equivalent aJr dilution, as Illustrated in Table 1 for n-butyl alcohol.
Column 4. .When two or mote acceptable literature thresholds were located, the standard error of their mean was calculated. The standard error Is the standard deviation divided by the square tool of the number of literature thresholds. This factor is applicable to the data in columns 3,6 and 10. The imaller the standard error, the greater the confidence that may be placed in the accuracy of the mean threshold value. (It should be borne in mind, however, that a small standard error, based on only two thresholds, could itself be the result of a fairly probable coincidence.)
Column 5. Safe dilution Taclor. for the saturated vapor at 25 *C. Is the volatility divided by the threshold limit value (column 2 divided by column t). For substances thar are less than infinitely soluble In water. the same safe dilution factor applies to the saturated solution at 25 *C (column 9).
Column 4. Odor safety factot Is the threshold limit value divided by the odor threshold (column I divided by column 3). This factor may be Interpreted quantitatively by reference to Fig. 2, In terms of what percentage of attentive persons can detect the TLV concentration, and what percentage of distracted persons will perceive a warning of the TLV concentration.
Column 7. The scale of odor safety classes is explained in Table 3. Gass A substances provide the strongest odorous warning of their presence at threshold limit value concen trations, whereas class E substances are practically odorless at the TLV concentration.
Table 3. Odor safety classification
Odor safety Dm factor
Interpretation
A >550 1 26-550 C 1-2S D 0.18-1 E <0.18
' More than 90% ot distracted persons parcel** warning of TLV concentration In the air
50-90% of distracted persona pttcaiva warning of TLV
Lets than 50% Of diftraciad panont parettw warning of TLV
10-50% of ausntiv* parsons can datact TLV concentration in tha air
Lais than 10% ot ttuMrn parsons can datact tha TLV
Column 8. Water TLV equivalent is the concentration of the substance in water, which will generate the air TLV concentration in the headspace of a stoppered flask or other closed system. It is calculated from column I by multiplying by the distribution ratio in column 13, then dividing by 24 400 (volume in ml of one gram molecule of vapor at 25 *C) and multiplying by the molecular weight. Solutions with values in parentheses lack enough per sistence for reference purposes, due to an unfavorably low water-air distribution ratio (<10) in column 13; d, decom poses In water.
Column 9. Solubility in ppm (w/v) h the literature solubility (expressed as gl'1 of saturated solution it 25*C) multiplied by 1000. ~ indicates uncertain or extrapolated values. Temperatures other than 25 *C ate indicated by subscripts.
Columns 10. Water-dilution odor threshold js the concen tration of the substance in water which will generate the ait odor threshold concentration in the headspace of a stoppered flask. It is calculated from column 3 by multi plying by the distribution ratio in column 13, then dividing by 24 400 and multiplying by the molecular weight. VaUrts In parentheses have tire same meaning as in column 8.
Column II. The molecular weight (MW, sounded off to the nearest whole number expressed in grams) can be used to convert the air concentrations in ppm (v/v) (columns t, 2 and 3) Into mg m*\ Multiply by MW and divide by 24.4 (volume In liteis of one gram molecule f vapor at 25 *C).
282 JOURNAL OF APPLIED TOXICOLOGY, VOL. 3, NO. 6, 1983
WWw*s mj n .itw iw w
r
-
i/
Column II. Tito density ID. at 20-25 "C) i* needed when measuring out liquid odorants by volume to prepare water or ait dilutions:
1 ppm (w/v) I mg [or (IID) pi) per liter of water
MW / MW \ I ppm (v/v) -2--4--.4- ni*t \[or-2--4-.-4---*---0--ul Irpoerfcliufbic meter
plottlng the data on probability graph paper. The result In probit approximates a Straight line if the distribution c sensitivities In the population Is in fact normal. Llteratur data on the percentages of persons responding to odotatu when they wete attentive, distracted,1* oi asleep1* wet teplotted as probits In Figs 1,2 and 3.
-a p. jaseous at 20 *C; i, solid at 20*C.
;-
Column 13. The water-air distribution ratio Is the reciprocal of the air-water partition coelTiclent. Where experimental values are unavailable in the literature, which Is usually the case, the ratio has been calculated from data in columns 9, 2 and II, or from other approaches mentioned earlier. An estimate of the water-air distribution ratio is given by dividing the solubility (column 9) by the volatility (column 2), then multiplying by 24 400 and dividing by the v* molecular weight (column 11). M
Column 14. The numbers indicate how many original literature odor thresholds were included in calculating the average threshold in column 3 and the standard error in column 4. On the left is the number of air-dilution thresholds, and on the tight the number measured in water dilution.
lonizable odorants (weak acids and bases) are indicated
in Table 2(b) by appending to the compound name the
symbol A for acid and B for base, followed by the acid
dissociation constant p/T,. Data given for such compounds in columns 8. 9. 10 and 13 are accurate only for solutions In which the odorant Is practically un-ionized and hence
CM* O.*?.
23 0 40 l0 $40 2*tO QdO'QM Conc<Atf4>i* (pftfcl
potentially volatile. That is, the pH of the solution should
FifU't 1, Tilts of rtloOAiivtncit Ot perio*! to fual 9*1 OdOrar
*<
be less than two pH units lower than the pAT, for an acid,
Tht data were taken from tha report by Whitman #r
Fiji
and 13. >nd Tabfa 23. then repotted on log/probit coordinates,
or should be more than two pH units higher than the pJCj
the misdirected tests, the mention of th subjects was dvfibe'tr
for a base. The odorant volatilities at pH values outside of
Channeled to other matters. Note that tha concentration unity
these limits can be estimated by calculating the concen ,, this Ftfure are peb t*M.
tration of the un ionized species using the Henderson-
Hasselbalch equation.11 For demonstration purposes, it will suffice to make solutions of the acids in 0.01 H HjSO* and the bases In 0.01 N NaOH.
The data in Table 2 are incomplete for some physical properties of 25 compounds, because no literature values could be located, and no justifiable estimates could be made. The missing data ate mostly water solubilities or water-air distribution ratios, which In turn preclude estimates of TLV equivalents In water and water-dilution odor thresholds. If the leader is aware of valuei for the missing data, or knows of more accurate measurements or estimates of the recorded data, the authors would be grate
Some chemicals, but not all, besides having a true od` also cause immediate irritation in the nose, eyes tx thio The sensation of stinging, prickling or burning, conveyed the trigeminal or 5th cranial nerve, is quite distinct frt the smell sensation carried by the olfactory or 1st eran nerve.'1 Irritation usually tequires a higher them! concentration than odor, and trained normal subjects c readily report the distinct Irritation threshold." Anotf approach is to use subjects who have suffered a chro> loss of their olfactory nerve function, but still set: an active trigeminal nerve sensitivity.13
ful for the information. Odor threshold data on TLV-liited
compounds not included in Table 2 would also be welcome.
Explanation of Table 4 (irritant thresholds)
Variance of human responsiveness to odors
When the individual olfactory detection thresholds for a given compound are determined on a sample of the human population, the data typically generate a (log)normal or Caussian distribution.1' For this result, it is necessary to use a logarithmic scale for the odorant concentration, such is a binary or decadic dilution series. The quantitative interpretation of a Caussian curve is facilitated by te-
Column 1. In this Table, each odor threshold was deri> from the same source which reported the Ittitat threshold; hence the odor threshold In Table 4 may dil from that given for the same compound in Table 2t column 3, which may be an average of several literal values.
Columns 2 and 3. Irritation thresholds ate the lowest c centrations that cause immediate stinging oi burn sensations In the nose, or stinging oi Uctimation of the e
A 039799
conftofnttai
JOURNAL OF APPLIED TOXICOLOGY, VOL. 3, NO. 6.1183 :
** . < .1 e
l*Mf
facts'
Figura 2. A practical guld* to \ht pun(it*Uva Imtrpfttatlpn of odor uft faetDfl, Th# coordinates r log/prObit. to car* l| repaired in inierpoutlnQ between marked tntervati. The sloping lines Indicate the percentage! of the population impacted to respond to vtnoui fraction! or multiples of the mean detection threshold concentration n.O on the x axis). Tha detection fine represents the performance of fully attentive persons under good laboratory con* ditionv Tha warning line ibowi what may be expected for distracted persons under factory or field conditions. Tha warning tine is based on th* result! f Whisman *r #/.M for the gai odorants ethyl mercaptan and thiophana.
In Tour compounds, designated by superscript *, they arc the lowest concentrations that could bt distinguished from pure ait by a general anosmie, i.e. by a person w|io has no olfactory nerve sensation, bur whose trigeminal nerve sensitivity is intact.
Column 4, The lowet of the nose and eye thresholds (if both are available) was used for calculating this ratio of Irritation and odor thresholds.
Column J. The Irritation hazard factor is obtained by dividing the nose or eye irritation threshold (wluchever is lower, columns 2 or 3) by the threshold limit value Horn
Ode' Ie!!j leeio' (nwlilpta at irvis*e>4l Figure 3. An Illustration of the tlficacy of terrain vtpon in wakenlng.tlteolng pi'tont. The Cm were teVen from the neri at Fiildner ft f/.,n Tahiti 8. S3 end Id, than plotted on k>g/probit eoordinttti. The trmanti were allyl alcohol on the Ith. end crenoneldehvdt on the right. The odorants were ethyl mutimm (!. phenyl ether (*1 end lioamyl acetate 1*1. The concentrations in this Figure ere iteted et mulilplei o> the odor thrtiholdi reported by
Fteidner et *t. **
Table 2(a), column 1. This datum Indicates by what multiple the TLV is exceeded, if eye or nose irritation can be detected.
Column 6. References In italics indicate that thresholds were obtained using water dilutions.
RESULTS AND DISCUSSION
Literature search for odor jhrcsholds
The ACGIH compilation includes approximately 350 appreciably volatile compounds for which time-weighted average threshold limit values have been adopted or pro-
TabU4. Irritant threshold concentrations of len Industrial chemicals. See Methods for funher explanation of each column
Subttanct
t
Odor IhrtiKold Ippm; v/v)
23 Irritation ihrtiholdi
Non tppm;v/w|
Cya -ppm;vM
4 Ratio ef Irritation and odor thrtiholdi
8
(filiation hail'd laetor
ActixkJthyda Aciiie ckf Acfoltrn Ally! >>co^ol Caniyl chlordt
O-ChlC<0*C* iDphf nQftv
(r*l'C/otonldehydt Formic eeid FrOpionie acid Pft kfina
0 066 0.16 1.8 1.4
0.040 0 040 0.11 130 0 34 0.71
3300 160*
11 30 35
0.034 14 1100* 370* 700*
11000
13 59
SO 0.033 19
33 000 1000 6.1 21 3D0 0.55 130 8.5 1500 990
22 16 110 IS
80 0.44 7,0 230 37 140
DelfCIton thteihotd tor a flenttel anoirn.c
------------------------------------------------________ _________________________ 00 A 039800
. CONFTDFNTTAt
264 JOURNAL OF AFPltEQ TOXICOLOGY, VOL. 3, NO. 6, 1983
8
Rtliranct
22 33 22 23 33 23 33 33 33 37
4
t/1/WH
,\iu IU
'tf 11
posed.' Among these, there are 2N compound} Tui illicit
Safe dilution factors for saturated vapors
wt were able to locate at least one literature value far the olfactory detection or recognition llircsliold, inejtntcd In
The procedure of expressing threshold limit vjfccs.
air or water dilution. The data are widely scattered In (lie
volatilities and odor thresholds all in the tame units (ppm;
literatute, and there It tittle conformity in the choice of
v/v) brings to light certain relationships that ate not
units for expressing the result). For example, the 29
apparent when miscellaneous units are used. Nearly aR of
reported thresholds for rt-hutyl alcohol (Table I) were
the compounds in Table 2(a) have volatilities it 25*C
gathered from the works of 26 principal authors, who
which exceed, sometimes by an enormous factor, their
used IS different systems of concentration units In publish
threshold limit values. Accordingly, a sniff, from the head
ing their data. In 24 journals. Furthermore, no two of these
space of a bottle or drum, or from a confined space con
29 thresholds were measured by precisely the tame experi
taining a spill, of almost any of these substances, inevitably
mental method.
exceeds the TLV. The safe dilution factor in column 5
4
The lack of standardization, taken In conjunction with
Indicates the minimum number of volumes of uncon-
the inconsistent potity of the chemical samples and the
tamlnated air that would be required to dilute, to the nfe
variability of human sensitivity, Is responsible for the rather
level, one volume of air that has been saturated by exposure
wide range of threshold concentrations usually found in the
to the named compound (assuming perfect mixing). Vbnt
literature for a given compound. As indicated it the foot of Table I, the mean threshold for n-butyl alcohol Is
location, layout, ventilation, chjmneys and emergency procedures should be designed with the realization of the
4
0.835 ppm. (In this compilation, the data were collected and calculated to three significant figures, then rounded off
safe dilution factor in mind, at least for compounds for which dilution ventilation is an allowable method of
*3
to two significant figures for the Tables.) The threshold
control. Any Increase in temperature of the chemical above
'(
concentrations having been calculated as logarithms,
25*C increases the required safe dilution factor, in pro
statistical deviations and errors from the geometric mean
portion to the vapor pressure.
should be stated In the form of factors (rather than the
A majority of these compounds are not completely
differences used with ordinary arithmetic means). The
miscible with water. Nevertheless, a saturated solution of
standard deviation of the logarithms of the observed
any volatile compound is theoretically capable of saturating
thresholds was 10.854 logunits, for which the antilog
the headspace to the same concentration as the pure com
yields a factor of x/f7.14. Taking into account all 29
pound could achieve. Whether or not it will do so In a finite
'1
literature values (l.e. dividing by v29), this reduces to a
time depends upon the water-air distribution ratio, the
standard error of 0.159 logt0 units, corresponding to a
relative volumes of air and water, and the decree of
factor of
This Indicates that there is approxi
agitation. To err on the safe side. It would be prudent to
mately a 68% probability ( lo or SD) that the true
Use the same safe dilution factor in calculating the number
threshold for n-butyl alcohol lies between (0.835/1.44) =
of volumes oT clean water which would be needed to dilute
0.58 ppm and (0.835 x 1.44) = 1.20 ppm. There is a 96%
one volume oT a saturated aqueous solution of the
probability (t lo) that It lies between (0.58/1.44) = 0.40
compound before discharge to a sewer, lagoon or river,
ppm and (1.30 x 1.44) = 1.73 ppm. Olfactory thresholds
where (his Is permitted.
could, if necessary, be obtained with greater consistency
and smaller standard errors, by determining conversion
factors between different experimental methods.13,M or
Odor safety factors as chemical safeguards
by redetermining the thresholds by using a standardized
4
procedure with careful minimization of known sources of erjor.
When the threshold limit value is substantially higher than the odor threshold, the Intrinsic odor of the compound
In the literature, we found for these 214 compounds a
usually, but not Invariably, provides an indication of its
total of 1054 acceptable thresholds. Some thresholds had
presence, at a concentration level low enough that no harm
to be rejected on the grounds that they had been measured
is likely to the human observer. Conversely. If the odor
without consideration of substantial ionization, unfavorable
threshold is much higher than the TLV, then anybody
partition coefficients, likely impurities or the inapplic
detecting the odor of the compound lias a warning that a
ability of Raoult's law. A few remaining extreme points
safe vapor concentration has already been exceeded. The
were discarded because they diverged more than 100-fold
exposed worker would be well advised to request a pro
from the nearest of two or more other thresholds for the
fessional evaluation and perhaps instrumental assessment
same compound.1* For 152 of the compounds, we found
of the situation. It should be determined whether the
two or more acceptable thresholds. We calculated the
applicable TLV criterion (time-weighted average, short
mean threshold and Its standard deviation for each com
term exposure limit or ceiling value)' Is likely lo be
pound. The average of the individual standard deviations
exceeded in the particular working regime, and if so. what
for all these 152 multiple threshold compounds was a
the health significance may be.
factor of'x/-^ 7,0. The remaining 62 compounds each
The potential warning power of a given chemical Is
yielded only one usable threshold, so no standard error
conveniently expressed by the odor safety factor (column
could be calculated, which accounts for the dashes In
6 of Table 2(al), which is simply the TLV divided by the
column 4 of Table 2(a). The uncertainty in a given
odor threshold. Any chemical with an odor safety factor
olfactory threshold measurement should be independent
less than 1.0 carries the risk that hazardous conceMtations
of wheiher the compound has been reported several limes
will not be detected by odor. Conversely, an odm safety
in the literature, or only once. As a tough guide, we may
factor greater than 1.0 bears the promise that a hazardous
assume the same average standard error factor of x/* 7,0
concentration could be perceived by smell. Nevertheless,
for these single threshold compounds.
the question of whether or not a hazardous concentra-
DO A 039801
orJOURNAL
APPLIED TOXICOLOGY. VQL. 3. NO. S. 13 28S
OONFTDFNTTAl s
i.t *v tnk<t
lion will actually bf imclt. ii quite complex, and depend! upon a variety or dn.uimtani.ci. (A very few people, roughly I In JDO. have no true sente ol *mell at all;1* the existence of anosmie persons. while of some practical Importance, is omitted ftorn our discussion.)
The average odor threshold has not been sufficiently rigorously evaluated for all these compounds, many of which possets measured or Implied standard errors as large as seven fold. This Is not. In prlnciple.au insurmountable problem, because 63 compounds In Tabic '(a), column 4, already have thresholds evaluated with standard etrots less than two-fold. Equal, or belter, accuracy could readily be attained by new experimental measurements on the deficient compounds.
The ability of members of the population to detect a given odot is strongly Influenced by the innate variability if different persons' olfactory powers, their prior experience with that odor, and by the degjee of attention they accord to the matter. The thresholds listed In column 3 of Table 2fa) .represent the most favorable conditions for testing. The subjects were well aware that these were tests of their sense of smell, they were attentive and they were trying their best to detect the presence of the odor. Even so, the odor-detecting ability of different people varies over quite a wide range. The compilation of individual sensitivities to a given compound typically yields a Gaussian or bell-shaped curve,1' ptovlded that a logarith mic concentration scale is employed. For this normal distribution, the standard deviation Is a measute of the spread of odor sensitivity In the population. We have evaluated this standard deviation with seven odorants:
bobutyl Isobutyrate, isovaleric acid, 1-pyrroline, trimethylamine, Isobutyraldehyde, androst-l6-en-3-one and pemadecalactone, each tested with 18-443 normal observers. The avetage standard deviation was 11,97 binary steps, which may be rounded off at two binary steps.'* The standard deviation indicates that 68% of people tested, on the average, will have a personal threshold that lies within the ranee from one-fourth of the mean, to four times the mtan, threshold of the population.
The effect oT distracted attention
In connection with testing the efficacy of certain odorants is warning agents for Tuel gas, Whisman et el.1* conducted a thorough study of the Influence of various degrees of distraction on the responsiveness of people to these wellknown warning odors. Their 'directed' lest corresponds with usual laboratory conditions. In which the mention of the subject is purposely focused on the sole objective of detecting an odor. In the `semi-directed' test, the subjects were asked to report Qn visual, tactile, aural and nasal stimuli in tire test room. In the 'undirected' test, the subjects were given no indication of the object of the exercise. In the 'misdirected' test, the attention of the participants was deliberately distracted by asking each to try to read some prim in a dim light and to judge the temperature of the loom. All except the directed tests were performed with Inexperienced subjects recruited by a mobile laboratory arriving unannounced at shopping centers, and each volunteer was used for one test only at one odorant concentration.
Whitman tt el. found that the responsiveness of the subjects to a given concentration of odorant w-it tub-
stantially decreased In the semldirected. undirected and misdirected tests, compared with their performance In the directed test mode. The misdirected test was probably the most difficult set of conditions Imposed upon the subjects. In our opinion, the misdirected test Is the most appropriate of the, available models for evaluating the effects of con ditions encountered In Industrial practice. A factory worker would not be familiar with odor-threshold testing tech niques. but would hopefully be aware that chemical vapors may b< hazardous, and might know that a distinct smell indicates the presence of appreciable vapor In the air. On the other hand, the worker is likely lobe concentrating on following Instructions, reading charts, controlling equip ment and generally trying to get the work done. Such a degree of mental distraction, as Whitman et eL showed. Is ample to divert attention away from any but the most obvious of odors.
In Fig. 1. the results of Whisman et el'* for their directed and misdirected test modes are presented in log*/ probit coordinates, which have the advantage of exhibiting an approximately linear relationship between olfactory stimulus and response. Each data point in the directed tests was obtained from 22 subjects, and in the misdirected tests from over 100 subjects. The data points were fitted by a logarithmic transformation linear regression, from which the slope and 50% response intercept were obtained. The directed test threshold for ethyl mercaptan, at which 50`S of the subjects would respond, was found by extrapolation to be 0.17 ppb- In the misdirected test situation, however, the 50% response threshold was tt 4.8 ppb, or 28 times higher. Furthermore, the slope of the regtession line is shallower, so that disproportionately higher concentrations are required to elicit a response from 90% of the partici pants. The results for thiophane ftetrahydrothiophen) are virtually super Impotable upon those fot ethyl mercaptan, except that about double the concentration of odorant is needed to achieve a given level of tesponse. That
is. 035 ppb for detection tlueshold and 8.7 ppb fot mis directed threshold, or 24 times higher.
The good agreement between the results for ethyl mercaptan and for thiophane encourages us to generalize the data, so as to provide a practical guide Tor interpreting threshold ratios and odot safety factors (Fig. 2). This graph Is set In log/probit coordinates. Since neither the logarith mic nor the probit scales go to zero, the origin of the graph Is considered to be the Intersection of threshold multiple 1.0 on the x axis, with 50% persons lesponding on the y axis. This, by definition. Is the average detection threshold, measured under laboratory conditions, l.e. a directed test. The logarithmic binary step concentration scale and the standard deviation intervals are also entered In Fig. 2. It was previously demonstrated11 that the sensitivities of people to various odorants exhibit standard deviations close to 2.0 binary steps. Hence, the detection line in Fig. 2 b based on tltis generalization, and constructed by drawing a line with a slope of 2.0 binary steps per standard
deviation unit, through the origin of the graph. The detec tion line is shown as a broken line above 95% response, because there are some indications that a small percentage of the population has specific anosmias to one or more of the sulfurous odorants.*' Such persons, while they may perceive most other odors normally, are found to have an innate lowet sensitivity or 'odor blindness' to the typical gat odorants.
IBG JOURNAL OF AFPLIEO TOXICOLOGY,VOL. 3.N0.S. 1983
CONFJOFNTTai
UIXJK A* A.V AIM lUS.III.*". .a *' I <
1
The warning line In Fig. 2 Is bawd on (lie average of the misdirected data for botli ethyl mercaptan and thinphane. It wai committed as follows. The reiulti for ethyl mer captan and for thlophane (Fig. I) showed that the ratios
litre si sold. Al the other extreme, class C compounds at their TLV concentration can be detected by less than 10% of attentive persons. In this category, the odor safety factor Is below 0.13. The quantitative ranges for tl.e intermediate
of lire 50%~deiectiun thresholds In the misdirected and directed test protocols were 23..' and 24.5, respectively.
0. C and D classifications are as Indicated in Table 3. The zones of odor safely factor fur the five classes are also
Ar,
Their geometric mean Is 26.3, which was rounded off to 26 for the threshold multiple. In Fig. 2, the warning line is
labeled on Fig. 2. The odor safety class of each of the 214 compounds, for wlucli adequate data are available, are
drawn to intersect the 50% response level at the threshold
entered In column 7 of Table 2(a). Gass A compounds
multiple value of 26-fold. The slope of the warning tine was
provide the strongest odorous warning of their presence
likewise determined by averaging tlte slopes of the
at the TLV level, whereas class E compounds are practically
*
regression lines for tlte misdirected tests In Fig. I. The
undetectable by odor at their TLV concentration.
averaged warning tine has a slope of 3.5 binjry steps per standard deviation unit.
Therefore, in order to be perceived by 50% or distracted
The effect of sleeping
4 subjects, the concentration of gas odorant had to be raised
to 26 times the concentration that could be detected by
Although It Is not considered relevant to most workplace
50% of attentive subjects in laboratory test conditions. This
situations, the power of an odorant to waken a sleeping
illustration lends emphasis to the compelling conclusion of
person Is significant where industrial products can escape
..
Whisman tt al. '* that there is a substantial difference
Into a residential area. This is an obvious risk with house
*>
between the level of odorant that can be detected, and the
hold gas, and Ihe question was Included In a study by
level that will be detected, In a given jet of circumstances.
Fleldner er al.v Their data for several odorants are
The available data do not permit extrapolation of the
displayed In log10/probit coordinates In Fig. 3. They tested
warning line In Fig. 2 below die 50% response level.
three compounds (ethyl mercaptan, phenyl ether and
Odor safety classification of chemicals
boamyl acetate) which can be regarded as more or less
purely olfactory stimulants, l.e. they have little or no irritating power for the trigeminal nerve. Each data point
Figure 2 represents a provisional synthesis of the best available data. The slope of the detection line appears quite soundly established, and to be applicable to many chemicals. For those uncommon chemicals that exhibit a pronounced and frequently occurring specific anosmia among members of the population/* the curve is expected to flatten at higher response percentages. The slope and intercept of the warning line, however, are based on only two. quite closely related, fuel gas odorants. Intuitively, we feel that the results for ethyl metcaptan and thiophane represent a relatively favorable case, because, thanks to the public awareness developed by the suppliers of household anj bottled gas, it Is a widely known fact that the 'smell of gas' is an indication of danger. In other words, gas odotanls may have a belter chance of penetrating the consciousness of a distracted person than many other odors that ate not mentally associated with harmful consequences.
Until more data become available, we propose that the relationships In Fig, 2 can be used to set up a provisional classification of the 214 chemicals, according to the level of fifety indicated by their odors. For tliis purpose, we are adopting the 10%, 50%> and 90% response levels as practical guides. According to Fig. 2, the obvious benchmarks are the detection threshold at which 50% of people can perceive
in Fig. 3 was calculated from the ttsults of tests with three to eight sleepers. The points were then fitted by linear regression. The performances of these three odorants seem fairly concordant, and Imply that an odorant concentration about 20000 times the normal detection threshold Is required to awaken 50% of soundly sleeping persons. That Is more than 700 times stronger a stimulus than suffices to serve as a warning for wakeful, but misdirected, observers (Fig. 2). If this result were applicable to ail odorants, It would mean that virtually none of the 214 compounds examined in Table 2(a) would awaken the average person, without exceeding the TLV.
Thete is. however, a complicating factor. Some odorants, besides stimulating the olfactory nerve, also irritate the trigeminal nerve. Two examples ate Included on the left side of Fig. 3. These substances were far more effective In waking the sleepers. A 50% response was obtained al 27 times the odor threshold of ctotonaldehyde, and at only three times the odor threshold of allyl alcohol. From the comments of those that woke up, it is obvious that the irritation was the determining factor, it la an interesting observation that the ttigeminai nerve has some sort of a 'hot line' directly into the subconscious, that Is denied to the olfactory nerve.
the odor, and the higher warning threshold at which 50% of people will notice the odor even when they are dis tracted. Secondary criteria are provided by the concentta-
Some data on irritant thresholds
tions at which 10% of attentive people can detect the odor, and the other extreme where 90% of distracted people get a warning of the odor. These four borderlines are indicated by vertical lines in Fig. 2.
Our tentative odor safety classification Is presented in Table 3. At their threshold limit value concentration, class A compounds will be perceived by 90% of distracted persons. To achieve this rating, the odor safety factor must be at least 550; l.e. the threshold limit value for the compound is more than 550 times higher than its odor
Trained normal observers can report distinct concentration levels at which a vapor produces nasal or eye Irritation, quite apart from its odor. Katz and Talbert" tabulated considerable data, front which we have selected those compounds that are on the ACCIIi list (Table 4). We have also added a few compounds from our own work. In which nasal irritation thtesholds were obtainrd from an anosmic person lacking the ability to perceive true odors as opposed to irritants. The ratio of the Irritation and odor
00 A 039803 , OONFTDfFNTTAl
JOURNAL OF APPLIED TOXICOLOGY, VOL. 3.NO/S. 1333 287
1
J. L. AMOURI AND t',, II.VUTALA
I
* thresholds for these compound! tanges from 33 000 fot
those solutions lack enough pttsistenet to serve as ttliablt
acetaldehyde, to loss than unity for o-cliioroacetophenone.
standards In setting up ivatei dilution snlff-tcsrs for tiaining
Where this ratio It relatively tmall. It seems very likely tliat Irritation would become an important factor In determining
or testing petsonncl.
the intercept and tiope of the warning lint In Fig. 2.
If irritation of tire trigeminal nerve can wake a sleeping
person so effectively. It teems very likely also to be able to preempt the attention of a distracted person. No quanti
CONCLUSION
tative t'catment of this factor Is possible at piesent, because Irritant thresholds are available for so few of the compounds on the TLV list, and no tests have been reported on perception of Irritants by distracted persons. It may. however, be worth noting the Irritation hazard factor In column 5 or Table 4. These figures Indicate the degree to which the TLV Is bting exceeded, If there is appreciable eye or nose Irritation for an attentive subject.
The Interpretation of these data In any particular safety or pollution problem wjU depend markedly on the Individual circumstances. Tire threshold data In the Tables and Figures are based on averages for samples of the population, pre sumably In good health. Individuals can differ quite markedly from the population iveragt In their smell sensi tivity. due to any of a variety or innate, chronic or acute physiological conditions."-Likewise, the time-
weighted average threshold limit values are for workers,
Threshold In water dilution
who by the mete fact or being able to work evidently
represent a generally healthy segment of the population.
Many of the odor thresholds found In out literature survey had been measured by sniff-tests ftom the head-space
Continuing exposutt to an odor usually results In a gradual diminution or even disappearance of the smell
above aqueous dilutions. Theoretically, the air-dilution
sensation. This phenomenon Is known as olfactory adapta
threshold and the water-dilution threshold ate simply
tion or smell fatigue.10 If the adaptation has not been too
related by the air-water partition coefficient of the
severe or too prolonged, sensitivity can often be restored
odoiant, provided the concentrations are measured in
by stepping aside for a few moments to an unconlaminated
equivalent weight per volume units. This expectation has
atmosphere, If available. Unfortunately, workers chronically
been borne out In comparisons made for n-butyl alcohol, pyridine and isovaleric acid,14 and has been farther supported by the data for many compounds listed in Table 2(b). For example, the data for n-butyl alcohol in Table 1 exhibit, for the reported olfactory thresholds, mote than a 1000-fold tange, yet the gtoup means of the 20 air thresholds and the nine water thresholds differ by a factor of only about three-fold, and this is not considered signifi cant (/*>0,1). Odor thresholds measured in air and water dilutions art generally concordant, unless the water-air distribution ratio Is lesi than approximately ten. In that case, the ttpotted water-dilution threshold concentration is liable to be too high, due to substantial evaporative loss of odoiant from the solution during the coutse of conducting the odor threshold tests.
The air-dilution thresholds in column 3 of Table 2(a) are based on a pool of all available data from both ait- and water-dilution measurement!, omitting water thresholds for compounds with unfavorable water-air distribution tatios. The water dilution thresholds in column 10 of Table 2(b) wtit generally calculated ftom the data in column 3 of Table 2(a), by applying the water-air distribution ratio. In this way, we have been able to calculate wattt-dilution ihtesholds fot many compounds for which only air-dilution threshold data were previously available. By applying the same distribution ratio, the water equivalent concentrations were also calculated for the TLV, and are listed in column 8 of Table 2(b). With odorants that ate lonlzable (acids and bases), these calculations art strictly valid only within
specified pH limits, as explained in the Methods section. We felt that It would be Informative to provide the
theoretital water threshold and TLV data,'even for com pounds with distribution ratios of less than ten. The equi librium air concentration can develop and persist in conditions of high liquid-vapor volume ratio and low vapor loss, such as a dosed vessel pr a sewer. TLV and threshold data for odorants with distribution ratios less than ten art In parentheses in Table 2(b). This Is to Indicate that
exposed to a Strong odor can develop a desensitization which persists up to two weeks or more after their de parture from Lite contaminated atmosphere. In such cases, it should be the responsibility of supervisor and inspectors to note the odot and take appropriate action.
Hydrogen sulfide and pethaps other dangerous gases can very quickly lose their characteristic odor at high concentrations. At levels of H;S above 100 ppm (over 10 000 times the average detection threshold), the sense of smell is rapidly abolished, so that potentially lethal concen trations may not be detected by odot at aU.11 Certain commercial diffusible odor masking or suppressing agents may reduce the perceptibility of odots, without removing (lie chemical source. The use of such agents might interfere with the capability of the nose to provide a warning at the expected concentration level.
There are many potential applications of these data in chemical safety and in air- and water-pollution control, some or which have been mentioned pieviously. In addition, we believe that the data might find some less - apparent uses: Table 2 is also a guide to what data are in the literature on odor thresholds, on TLV-listed substances, it unavailable, unconfirmed or erratic. Readily ptepared water dilutions could be used to test the individual smell thresholds of workers to the chemicals they handle. A water TLV dilution of an odorant could be prepared to demonstrate quickly to workers the practical experience of its TLV concentration. The general experimental pro cedures for preparing and testing aqueous solutions of odorants have been described." These concepts could
Impiove the reliability of odor breakthough as an indication
of when to change the organic vapor cartridge in a respirator. The feasibility might be considered of using class A or B compounds as warning odorants to be added to class D or E substances, or to pesticides. The water-sir distribution tatios could also be a guide to iht possible Success of water-scrubbing aa a means of removing vapors from effluent gases.
2B8 JOUTNAL OF APPLIED TOXICOLOGY,VOL. J.N0.6. 19B3
00 A 039804
CO NFTDFNTIAi
UlAJK AS AN Ain IO LMI.MH.AL >AI I.IT
The TLVj used hi Table 2 and discussed In (hit paper are
last warning. During chemical operations, when an odor
llioie moininended by the ACGIII in its 1982 lining.'
la detected, the source should be located and the concen
The values are ic published annually, and are subject to
tration determine-!. Then effective steps can be taken to
revision, usually with two yean notice of Intended changes.
prevent the escape of vapor, and restore a neutral and
The US Government Occupational Safety and Health
healthful odor background. Even In the unnatural environ
Administration (01I5A) and many State Administrations
ment of the Industrial workplace, our sense of smell has
have established their own lists of permitted exposures.
much to offer as a natural safety warning system.
Mule the values adopted ate often based on the ACGIII
i
recommendations, they may not coincide with current ACGIII TLVs, and quite different standards may be set for
Acknowledgements
ctrtain compounds. Some foreign governments issue guide
We art very grateful to Dr R. G. Buttery far measuring the air-water
lines with Independently derived limits. If the applicable
partition coefficients of some Infinitely soluble compounds by gas
exposure limit for a particular compound Is different from
chromatography, and ro Mr C I. Thompson for an advance copy of
^I
the TLV cited In Table 2. column I, It will be necessary to
his manuscript with Whitman er et. on the ittponiWencss of people to gas odosants,'* We thank Ms W. D. Kelly, Executive Secretary of
adjust the values In columns 5, 6 and 8 by the appropriate
the American Conference of Governmental InduiUlal Hygienists.
fat
ratio, and perhaps reassign the odor safety class (column 7).
Inc., for peimiislon la use the TLV data from Ref 1 In Tabic 2(a).
Values In Table 4, column 5 may also have to be altered.
The preparation cf this paper was supported in part wish funding
Every chemical that can be detected by smell exhibits
provided under Service Order No. 34 016, from the Hazard Evalua
tion System and Information Service, Department of Health
il
a properly that can be turned to advantage as an aid in
Setvlces-Department of Industrial Relations, State or Catilomia.
maintaining safe operating conditions. It mutt be
This repott has been teviewed by the staff of the Hazard Evalua
recognized that background odors, odor fatigue, preocupa-
tion System and Information Service Section. Department of Health
tlon and individual Insensitivity may combine to reduce the margin, if any, between odor detection and safe operating conditions. No odor safety factor is large enough to justify
Servicer-Department of Industrial Relations, State of California, and approved for publication. Approval does not signify that the Contents necessarily reflect the views and policies of the Hazard Evaluation System and Information Service Section, nor does
condoning the presence of a fleeting odor, let alone a per
mention of Dade names or commercial products constitute endorse
sistent stench, unless professional assurance has been
ment or recoinmend.-tion far use.
,,
K obtained that the working conditions arc safe.
Reference to a company and/or product In this publication b
only for purpose* of biformation and does not imply approval or
The first detectable odor should be a sure signal that
recommendation for the product by the US Department of Agri
something abnormal has happened somewhere. It may be the
culture to the exclusion of others which may also be suitable.
* 1
REFERENCES
Thrttbold Limit Valuer for Chemical Substance! tnd Physical Agents in me Workroom Environment, American Conference of Governmental Induiirial Hygienists. Cincinnati 11932). P. Latfort. Esiii de standardisation des sculls ollactifs humaint Pour 192 corps puts. PrcS, Set. Physiol. 17.75-10$ (1SS31.
2. F. Petti. M. Etcfeto end P. Lilfort. Selected and standardised
valuer of tuorainreihokj odor Inteniities (or 110 substances. Chem. Sant Plt.cr 1. 333-305 11975).
L. J. van Gemfit and A. H. Netttnbreijer. Compilation of Odour Threshold Values In Air end Water, Ctntttt Institute for Nutrition and Food Research. Ztist 11977).
S. L J. van Gemen, Compilation of Odour Threshold Vaturt in
Air, Supplammt Iff, Central Institute (or Nutrition and Food Research, Zeist 119801.
F. A. Patzalarl, Compilation of Odor and Terre Threshold Valuer Data, American Socifiy (or Tailing and Materials. Philadelphia 119731.
Documentation of tha Threshold Limit Valuat, 3rd edn, 4th printing. American Conltrtnca of Governmental Industrial Hygienists. Cincinnati 119771. T. M. Hallman and F, H, Small. Charactertzailon of the odor
properties of 101 petrochemicals using sensory methods.
J. Air Poll. Control. Artec. 24.979-982 11974).
9. D. R. Stull. Vapor pressure o( pure substances. Ind, Eng,
Chem. 39. 517-550 119471.
to. A. Seidell, Solubilities of Organic Compoundt, 3rd edn, Vol. 2.
O. Van Nostrand, New York (1941).
It. A. Seidell and W, F, Unite, Solubilities of Inorganic and
Organic Compounds. Suppl. to 3rd edn, O. Van Nostrand
New York (1952). 13. K, Verichuertn, Handbook of Environmental Oata on Organic
Chemicals, Van Nostrand Reinhold, New York (1977).
13. cr/irem'r Hanobueh dtt organitchen Chemie, 4th edn and
Supplements 1-4. Julius So'inger, Berlin (19S8 If.). 14. J. E. arnoers, and R, G, Buttery, Panition coefficients and
comparative (19781.
olfactometry, Chem. Sant,
39f) 0?'
OO
0 (D? ^
1
Al
flavor 3, $7-71
C
15. G. J. Pierottl, C. H. Oeal and E. L. Derr, Activity coefficients and molecular structure. Ind, Eng. Chem. 51,95-102 (1959).
16. J. E. Amoore, Odor theory and odor class!)ication. In Fragranct Chemistry, ad. by E. T. Thelmer, pp. 27-76. Academic Press. New York (19321.
17. J. E. Amoore, Odor blindness at a problem In odonzation. Am. Gal Alton. Optr. Secz. Prop., Oiitribuhon Cool. pp. 242-347 1)963).
18. J. E. Amoore. P. Ptlotl and L. J. Forrester, Specific anosmias to 5o-androti-16-en-3-ona and u-pentedtcalacionc: ihe urinous and musky primary odors. Chem. Sant. Flavor 2. 401-425 (1977).
19. M, L. Whitman, J, W. Goetzlnger, F. O. Conon. 0. W. Brinkman and C. J. Thompson. A New Look at Odoriaadon Ltvelt tor Propane Get, Bartlesville Energy Research Canter. Bartelfeille, OK 119771.
20. A. C. Flefdner, R. R. Sayers. W. P. Yam, S. H. Katz. J. B. Shohan and R. 0. Laireh, Warning Agentt tor Fuel Carer, U.S. Dept, ol Commerce, Bureau of Mines, Monograoh 4 (19311.
21. R. I. Henkin, The definition ol primary and accessory areas of Olfaction as the basis lor a claisilication of decreased olfactory acuity. In Olfaction and Taatt II. id. by T, Hayashi, pp, 235252. Peigimon Press. Oilord (1967).
22. S, H, Katz and E. J. Talbert, Intensities of odors and irritating effect! of warning agents lor inflammable and poisonous gases. U.5. Dept, ol Commerce, Bureau ol Mines. Technical Paper 480 (19301.
23. J. E. Amoore, D. Venurom and A. R, Davis, Measurement of
Specific anosmia. Percept, Uotor Skills 26. 143-164 (19631. 24. V. C. Allison and S. H. Katt. An instigation of stanches and
Odors (or industrial purposes, ind, Eng. Chem. 11, 336-338 (1919) 25. P. M. Patterson and 9 A. Lauder, The incidence and probab'e Inheritance ol smelt blindness. / Heredity 39, 295-297 (1948). 26. J. E. Amoore. Specific anosmia and Ihe concept ol primary odors. Chem. Sent Flevgr 2, 267-381 (1977).
JOURNAL OF APPLIE Q TOXICOLOGY. VOL. 3. NO. 6, 1983 289
J. I,. AUUUKI \.NL> I., II At' I ALA
27. A. H
J, E. Amnorfl *nd V, Weigel, The pvndlna teslt
for Clm<Ct measurement Of OlfC!Ory threshold 1 Quantitative
rrtvilumon, Oioltiyngol. Htsd Ntck Surg. 17, 717-733
(1979). 28. A, A, Schneider, The sens# of jm!| in man -- its physiologic
tut>i N*w ngtt J. Mtd. 277, 299-303 (1967). 29. R, L. Doty, A ftvurv of Olfactory dysfunctions in man. Am, J,
Otoltryngof, 11 57-79 (1979). 30 G. T. Pryor, G. $innmti r\d H. Stone, Changes In absolute
detection threshold and in subjective intensity of supra-
threshold Stimuli during olfactory adaptation end recovery Pirttpt, Ptychontoft 8,331-335(1970). 31. Occup*tton/ *po\ufi to Hydro*)** Suit'd*- C/rferre tot # A*comm*nd*d Ztrui*rd, National Institute for Occupational Safety and Health. Washington DC (19771 32, J, E. Amoorf, Directioni for preparing aqueous solutions 0* primary odorants to diegnost fight types Of specific anosmia, Chtm, Sens. Fistor 4, 153-161 (1979).
Received 17 August 1982, accepted (revised) 15 February 1983
^on imieiiM nc * obi ten THYirm AflV Vfll 3 NO 6 1983
00 A 039806 C0NFT0FNT JAl
DOW INDUSTRIAL HYGIENE GUIDES (IBGs) COMPLETE CURRENT LISTING** M. G. Swank October, 1986
I. CHEMICAL AGENTS
Material___________________________ ______IHG________________ Date
Acfc'.e cya'o-yer.r,
1 ppm Ceiling-Sr *
1 SEC
Ace^-.e^e lefab'omiCe
see 1,1,2.2-tefat'omcethane
N-Acety -p-am nopbeno!
10 mg
1975
Ac'yiam.de
0 03 mg-Skin
1 98a
Ac*yiic a: c
2 ppm-Skin
i960
Ac-y xn.tvie
1 ppm-Skin; 10 ppm Excursion
1 96 -
-**-AVa ce'vcse
2 mg. as NaOH
1975
A-^apasr Ye'isw-lndandone
0 05 mg
1975
A--,as as* Ye' da PFL
.0.05 mg
1975
A~ -oe,ky ema^c'arn.re
2 mg-Sk:n
se:
A~ *.rc e Am-p-. j- b'P--i'ce
C 1 mg 10 mg
1976 i SEC
A -- :* pe-s^ate
5 mg
1975
A": > \ z '
2 mg
1960
A-p: . -
2 mg
i se2
Aspr.n
10 mg
1976
At-azme
3 mg
1977
Benzene
10 ppm Ceiling
1977
B!PPE (B pbe-yiy: phenyl e1ber)
10 mg
1575
3 3-5,s.'b,omcme*.,~y')oxe!a',.e
1 mg
1 9"
E s lz~ c'se^y. .etr.e-
C.5 ppm
1577
E z-z spc'esy'jetr.e-
use WEE L
E Er~e*: A
5 mg
1976
E' -e
10 mg
1975
15 ppm.
1 975
B-z-zz-zi
10 mg
` 576
* ,2-5_:ac e'e
50 ppm. 2C0 pp~ Excj'sor
953
A-te"-6-tx .ce:ecboi
5 ppm-Skin
I960
E-yie^e cx ce
AC ppm. 100 pp- Exc-'s or
'.950
**''*E^:y',sccyane!e
0.02 ppm-Skm
1565
1er'-B^:y: pe'be-zoate
0 1 ppm
1 975
p-ten-Buty Ip7.er.pl
2 mg
1575
BuTy. stearate
150 ppm
I960
p-'ert-Butylstyrene
10 ppm
1978
Cab-O-S:
1 mg respirable
NOTES
Units given as "mg" = mg/nr . Indicates changes or new additions since last list. Glossary of terms is on last page of this list.
1976
DO A 039807 OONFTDFNTTAl
-2-
Cs c w>m b'pm.oe
Material
Ca z jm chior.ce (32% trine; Cac.u'r steafate
Ca zo ai ;anne cyan.ne Caro Chinclme Yelcw ZSD Ca<co Rec (4775) -i-Ca!co Rec ZiR (5020) Catechp;
**Cbiorarnphenicel (and esters) Chicrcacetyl chloride
i-t3-Cr, icrcaiiyij-S.S^.-triaza-i-
arcn 6acamanto,'e cnionde
Cno'cmethy. mery etKe'
p-Ch'o'c-c-cresO'
o-C-iS'dphenoi p-C"iOropheno!
Chlpropnenylphenoi 1 -Chioro-2-propanol 2-Chloroproplomc ac>d "Ch.orcsu'lpnic acid
Chr-p-.e-./amme ma eate C.:*: arc
C;oa * c* cnce
Cy*co,` p'oTiide Cya'J'iC CK>C'>C6
Do D-"
Dea'PC"" 922 in-,:ptC'
DecaC'o'nociphery etr.eDiP'CTcaceton:!' ;e
* .2-D brorno-3-ch,orop'opane
Dib'pmorr,ethane
Dib'omoneopenty! g'yccl
Dibrornonitriiopropionamide Dichiomacet.c acid
1,1 - dic.hlcro-2,2-d/fljoroefhylene
10 mg
IHG
10 mg
10 mg
0.05 mg
0 05 mg
0 05 mg
0 05 mg
5 mg-Skm
use WEEL
10 ppb-Skin, 50 ppp E*Cj'Sion
1 mg 0.1 ppm 1 ppm 0.2 ppm 1 ppm see DOWICIDE* 32 see Propylene chlorohydnn 1 ppm use WEEL . 0 1 mg 10 mg 0.1 mg as Cc 0.3 ppm Ceiling, S*t;n 0 C3 mg see Dowpon 1 mg use WEEL 0,1 ppm Ceii.ng, S,:n 0.1 ppm-Skm see Methylene bromide 7 mg 2 mg Ceiling' 400 ppb-Skin see Freon 1112-A
Date
1 960 1975 iS^S 1975 1975 1975 1 975 1975
196-
1 977 *976
* QT
1 9"5 1975
is::
* 96* * S* *975 1 9f4 1976
* 9~5
*964 *s:e
1 9~E 1579
1977
*Trademark of The Dow Chemical Company
Do A 039808 CONFTDFNTJAi
2 <-Dichiorophenol
Material
5.5-DicMcKop.co'inic aod
2 3-Dichloropropene
2,2-Dichloropropi0nic add, sodium sal:
D:electnc Fluid C4
2-(Dielhylamino)ethano!
Diethylbenzene. mixed isomers Diethyl disulfide
DiethylenB glycol butyl ether
Diethylene giyco' ethyl ether
D ethylene g'yco methy' ether
D ethyl phosphorochlo'idoth'cate (DEPOT)
1 .f -e Vucroethai-e
* 2-C'f;uorctefachio'oe'mane
D"sopropybehzehe neta, para isomers Dim,ethyl disulfide
"Dimethyl ether
Dimethyl phosphorochlondothioate (DMPCT) Dimethyl sulfide
Dmitro-o-sec-butylphene!
D'Octy adipate VS
2.6-D-te,t-buiy'-p-C''e6Cl
2 4-Q ;cet-b,,ty ,p`'e"'p
2,^-D,;ter`-bj,yi;phehol
2 6 - D1; t e': b u t y1p h e n c i
2 ^-Dilte't-b-ty'ipnehc;. soc.um sa"
D o~e"y su" ce
Distea-y' th,oo p'op'cmate
DOWANOL* DB
DOWANOL DE
DOWANOL DM
DOWANOL EE
DOWANOL EM
DOWANOL EPh
DOWCO* 290
1 ppm
IHG
10 mg
i ppm-Skm
see Dowpon
10 mg
10 ppm
10 ppm
1 ppm
35 ppm
30 ppm
30 ppm
0.1 ppm-Skm
see Freon 152-4
see Freon V2-A
10 ppm
3 ppm
use WEEL
0.1 ppm-Skin
10 ppm
0.3 mg-Skm
see V9 DOA
see lono'
5 mg
5 mg
5 mg
5 mg
1 ppm
10 mg
see Diethyien.e 5 .:o b-'y ether
see DiBthyiene g. :o et~v ether
see Diethylene g yoo metnyi ether
see Ethylene g'yco monoethyi ether
see Ethylene giyco moncmethyl ether
see Ethylene g'yco pneny' ethe'
see 3.6-Dichio'oo :o n.o acid
Trademark of The Dow Chemical Company
Date
1S75 197S tse:
i o~ 1975 i s~r i 975 : 952 952 1982 157*
1977 1979
1977 : 975 195;
1 1975 19-5 'S~5 1c~~ 1975
-4-
DOWCO* 356
Material
Pc* Com.ng Fluid 550
DOWFAX* 2Al surfactant
Dowfiake calcium chionde [11%, solid)
DOWlCIDE* 1
DOWlCIDE A
^.DOWICIDE 32
DOWICIL* 75. 100 ano 200
DOWPOIM*
DCWTHERM* G DOV/THERM J
DOW7HERM SR-1 " E r y f r, r c m y c' n
ethdcei*
Emop'opncs
Ev~y! chio'cacefafe
Etrylere dbrormde
Ethylene glycol monoetny1 ether
Ethylene g'ycol monomethy1 etner
Etnyiene g'yco pnenyi ether
2-Etfy hexy' aery,ate 2-Etny -E-cxazcl ne
Et"y';c'jene ;m,e:a pa-a isome'S'
FREE' FRt 135
F-e = n -12-A Freon 12-A
Freon 1112-A
F-eon E-6 5
Fjma'ic acic GARLON*
Gasolme
Glyoxa!
"Haicxytop ethoxyethyi
"Haicxyfop methyl
1 ppm
IHG
Date
1979
10 mg
1976
5 mg, as achve mg-ed ent
1976
10 mg see o-phe"y pheno
1975
5 mg 1 ppm
1975 1976
see Chlora'iy!l',&2aa2on,aadamantone chloride
3 mg
1976
use TLV 1o' phe"y ether
see Diefy oe'rene
use TLV fc efylere g'ycol
use V.'EEL
10 mg 0.01 ppm S x1 n 100 ppb-S* r 0,5 pprrvSx.n 5 ppm-Skin. 10 ppm Excursion 3 ppm-Skm 6 ppm. Excursion
1975 1978 1977 1980 1981 1981
25 ppm-Sxi' 25 ppm 3 ppm 10 ppm
1 98* 1976 1976 1977
see pentacomochrcrocycichexane
see <j,bre'-cnecse*:y oyoC 50 ppm 500 ppm
i 9"5 * q"*5
50 ppm
1975
1000 ppm
1 975
10 mg
1976
see Trichloro-2-pynoyicxyacetic acid
use TLV
2 ppm 0 05 mg-Sxin
1975
i see
0 05 rng-Skm
1986
Trademark of The Dow Chemical Company
Of, A OR9R10 CONFIDENT! Al
-5-
__________________ Mater ial__________________________________ IHG_______________ Date
Hansa Yellow 4R (421)
0.05 mg
1975
Hexachlorpbenzene
150 ppb in the blood (Biological Limit Guide) 1978
Hexadene
use WEEL
Hydrogen iodide
3 ppm
1976
p-Hydroxybenzaide^yde
10 mg
1975
2-Hydrpxyethy. acrylate
1 ppm-Skin
1976
^Hydrcxyethy1 ce'ijicse
10 mg
1975
Hydroxyethyl methyl cellulose
10 mg
1975
Hydroxypropyl celljlcse
10 mg
1975
Hyd'Oxyp'Opy! methyl ce^j'ose Ipnpl Irgancx 101C Fganox iC~6
1 0 mg 1C mg 10 mg 1C mg
1975 1975 1975 1980
lfcn
10 mg
1975
Iscbj'.ane
600 ppm
1978
Isobutylene
see Methylpr&pe-e
2`lsocyanatoe`hyl metnacylate
25 ppb Ceil.ng-S*.-
1978
Isomazid
1 mg
1980
2-lsopropenyl.2-oxazolir.e
0.1 ppm-Skin
1979
Isop'opy' chioroiprmaie Ke'osene LONTREl*
0 1 ppm-Skin 10 mg see 3.6-Dich;prop co'.me aoc
1978 1 97S
Magees _*- "yc'c* oe
10 mg
1975
MethacyOc ac c
20 ppm-Skin
1976
METHDCEl*
10 mg
1575
Methcxy'.ura-e
1C ppm
1 975
Me^y1 b:p-e-. Methyl chio'ice Methyl chlo-oace'ate
0.2 ppm 25 ppm, 75 ppm Excursion. 100 ppb-Skm
1980 196* 1 977
2-Metnyl-<-chiO'cphenoxy acetic
5 mg
1976
Methyl chlorpynfos
see RELDAN*
Methylene bisacrylarmde
3 mg
1976
Methylene bromice
15 ppm
1980
2-Melhylprppene
1000 ppm
1975
Metoclop-amide
0.3 mg
198C
Trademark of The Dow Chemical Company
DO A 039811 CONFIDENT TAI
-6-
___________________ Material________
V:'c:,vo'ca:e,x aoc M:-.oet`.y' picsp'-.oroc.thioridolhioate (MEPCT) Nop-'.-.s p-N t'cbe'tza ce-tyde c-N tropheno p-N tropbeny' serme 'acetic methyl ester threo i-N'trcsO'A-methyl p,perazine Ncpcowax 22-DS Ncpcowax DS-'Ci N;.05FE'EO 6X G- 2 "r'e~\a2'C~zz-,D'oz; z o* stare Pera:- s'cse-re'e
c'pp>r 3 re Fe*rc a'j'Pne-ate br^e Phenylephrine hydroch'or.de o-Pne-yiphe-ro, p-Phe^y pfce''C o*P-.e,"y<pKe'ic sod j" sa1' P'6"> p'ooano a~ re rycccrorise Fne-y sa o. a'e Pv-a p:yar' re B _e '*'3 p-'-s y s_'E'e*~,arc e "a o^a-Proo ,-e pc a~ ce
Pp vC'vCD S Pc ystyene latex. Dry 9<S F 0 y"y alcoo; Potass jm bfcmaie Potassum bfo"".ioe Potassum carbonate Potassium chlpMde Potass:jt, lodate Potass j-n ioc.ce
use WEEL 0 1 ppm-Skin
IHG__________
350 mg-Vapor, 1C mg-Ae'OSOl
3 mg 1 mg
10 mg 2 pp"
10 mg
10 mg
3 mg 1C mg
3 mg 0 i ppm
7 mg 5 mg 5 ppm 0.5 mg 5 mg 5 mg
see DOWtCIDE A
1 mfi 10 mg
0 05 mg 10 mg
use WEtL 10 mg
use WEEL 10 mg
10 mg
use WEEL 10 mg 10 mg
10 mg 5 mg
5 mg
Date
1677 1979 1981 1977 1981 1978 1975 1975 1980 1975 1986 1976 1977 1975 1975 1981 1977 1977
1981 1975 1975 i960
1 67
1975 1979
i960 1975 1975 1975 1975
D0 A 039813 CONFTDFNTT Al
-7-
__________________ Material
Potassium pe-su'fate Potassium sulfate Probucol Propachlor Prop.onalcehyde d-Propoxyphene hydrochloride ^"Propylene chlo'ohydr.n "Propylene g!ycol Propylene oxide RELDAN (Metny! eh'o'pyn'es R 'arnpxin R/a^ycn SV Saccnann, see j~ sa t Se'icya'ce^yce Sa cy:,c aoc Sa'oi Santonox Sodum acetate Sodom bicarbonate Sodom bO'onyo'`Ce Sod -m pro-ate Sodom b'c^'ce Sec _rr, catenate Sodom encode Sodom ch o' te Sod um hexametaonespnate ScP.m hyc'cs-1'ce Sccom, monochic'oacetate Sodom persj'fate Sooum phenate Sooiurn polyacrylate Sodium sulfate Sodium thiosulfate Sodium frichlorcacetate Stearic ana
IHG________________ Date
5 mg
19?6
10 mg
1975
10 mg
1979
0,5 mg
1980
5 ppm
1978
1 mg
1978
3 ppm Ceiling-S^.
1976
useWEEl
20 ppm; 100 ppm Excu'Sion
1980
0 1 mg-Skm
1976
2 mg
1977
5 mg
1977
10 mg
IBS'
5 mg
1575
2 mg
1975
see phenyl salicylate
10 mg
1975
10 mg 10 mg
1975 1975
2 mg
1978
5 mg
1987
10 mg
i960
10 mg
1978
10 mg 0 5 mg
1975 1975
iC mg
se:
3 mg
' 975
1 mg
1977
5 mg
1576
5 ppm
1975
3 mg
1976
10 mg
1975
10 mg
1976
1 mg-Skin
1976
10 mg
1975
OfiV
A 03-
oo 1 AV
C.ONF
8-
__________________ Material______________
Streptomycin Styrene dime's and tnme's Sultadimethoxine Sulfolane Terfenadme Tetrabromobisphenol A **l,l ,2,2-Tetrabromoethane 2,3,7,8-Tetrachlorodiben.2o-p-dioxin 1.2.3.4- Tetrachlorober.zene 1.2.4.5- Tetrachlorobenzere l,l,2.2-Tetrachloree`hane 3.<.5.G-Tetrachicropicc!inic acid 2 3.S,6-Te*,racMioropyric;ne T efacyc.me Thicphosphoryi chlorice T nipjrea Tnjvm P Titanium tetraiodide Toluene disocyanate Topano' CA Trip'CT'.cneopenty' aicohc T fich.opyr 2 4.5-Tr,cnicros,",soie 2.4.5- Triphlo'ophenoi 2 ^.6-Tricn:0'opheno', sod.jm sal; 3.5 6-Thchioro-2-phr:d:nc' **T ricMorcp'opane 1,2.3-T ricbioropropene 315.6- Tricl'.loro-2-pyndinoi, sodum sa't 3.5.6- Trichloro*2-pyridyl dimethyl phosphate 3.5.6- T nchloro-2-pyndyioxyacetic acid 3.5 6-Tnchloro-2-pyndyloxyacetic acid, DOWANOL EB 3.5.6- TricMoro-2-pyndyloxyacetic acid, methyl ester 3.5 6-Trichloro*2-pyridylcxyacetic acid, tr.ethylamme T richlorphon
tHG________
1 mg 100 ppm 2 mg 4 ppm 1 mg 5 mg 0.1 ppm 0.01 ug 0.4 ppm 0 4 ppm 0 1 ppm-S*:" 2 mg-S*,n 2 mg 1 mg O.i ppm. 0.1 mg-Skin 10 mg 0.1 ppm, as lod ne 0 02 ppm. Ce.I.ng 10 mg 5 mg see Trich:aro-p, * ccxyacet: ac'= 10 mg 1 ppm 5 mg 7 mg 1 ppm-Skm 1 ppm-Skm 7 mg 1 mg-Skin 10 mg 10 mg. as acid ec.. valent 10 mg, as acid ecu vaient 10 mg. as acc ec^ va!e~: 10 mg
Date
16r 7 1975 1 SBC 1561 1 4 *.976 1976 1975 1977 *5" *^ . 1675 : C"? 15"c 1 976 * sec 1975 1975 1964 1575 1976
i C' 1976 * C~ .
5E 1976 1977 *577 * 96" 1981 1981 1961 1976
oo C-ONF
0,"-?1< 9814 TOfrNTTAl
-9-
_Mater
Tnsodum phosphate Uii'ama'ine Blue (5045) V9/DOA (D'CTy! adiphate V9) Viny1 benzyl chlonde V.tamin C VORANOL* CP700 ~"Z-6 2-11 methyl ester Z-200 Z^C brom.se Z 'K sul'ide d "jse' 2693
lajIHGDate
use WEE L 10 mg 500 ppm 0.5 ppm Ceiling. S'mn 10 mg 10 mg 1 mg 1 ppm 0.5 ppm 5 mg 10 mg
1975 1975 198A 1976 1975 1977 1977 1977 1 SBC 1975
II. PHYSICAL AGENTS Noise
Bearing conservation (8-hr day): 85 dBA with 5 d exchange rate.
Engineering controls (8-hr day): 90 dBA with 5 dB exchange rat .
Trademark of The Dov Chemical Company
DO A qDDBI-F
dfnttai
CONFT
GLCSSiPV
Ceiling - This concentration should ret be exceeded, even for brief periods.
Excursion -
Excursion guides, as opposed to ceilings, are not intended as absolute limits in either concentration or time. They indicate that sustained exposures at or above the guide number are not appropriate. Excursion exposures should last minutes, not hours, but do not need to be arbitrarily limited to any specific time period. Likewise, the concentration at ary given time might exceed the guideline by a moderate amount, but should average out to the excursion guice level over the period of the excursion. The longer the excursion, the more important it is for,the average level during the excursion to be at or below the guideline. Excursions should not follow quickly one after another and the shift-length time-weighted average (TWA) should not be exceed. This definition does not preclude decisions to arbitrarily set definite time limits or more conservative concentration limits in particular plant situations.
IhG -
The Industrial Hygiene Guide (IHG' is the internal Dow guideline for 8-hcun TWA exposures to airborne
concentrations of materials. These guidelines were prepared by industrial hygienists in cooperation with toxicology, medical, production and product department representatives and were approved by the Dow Industrial Health Board.
Skin -
This material may be absorbed through the skin in amounts sufficient to cause toxic effects. Although the IHG is for inhalation exposures, skin contact with this material can contribute to the overall exposure and invalidate the "WA exposure evaluations. It is reoorimendec that skir contact be avoidec.
TLVs 3rd
WE EL Guides -
The exposure guidelines established by the ACGIH (TLVs) or the AI HA (WE EL s) are usee by Dow unless a lower Dow IHG already exists or a new, highe- IHG is adopted. Therefore, some IHGs have been replaced by TLVs or WEELs. Those IHGs which will no longer be used are indicated in this list and will be dropped fror future lists.
M. G. Swank, IHG Coordinator Health & Environmental Sciences Information Center 1803 Building (S17) 636-3976
MS/maf
00 A 039816 CONF TDFNTTAI,
IWORKPLACE
American
INDUSTRIAL HYGIENE ASSOCIATIC
AIHA WEEL GUIDES 1986
t-Hr TWA
Short*T*f?n TWA
B*ni*jC*nyO*
2 ppm
B'-(2<?Moroiopropyi 3 ppm
4 ppm. 15 min --
Cr.OrVr.snniCO'
0. mg. mJ
-p
Cr.'crosuifonic e:C 0.3 ppm
-
O.*ii0rotnfluoro#:*iy:e'i# 5 ppm
-
C*c*e'omoO.E*i*ny! 5 mg^ mJ
--
CAiOi
pi!r.yi*r># gtyepi
50 ppm. total
10 mgjmJ
*'0*01 only
O''oeuryitn*
600 ppm
--
thar
50C ppm
--
C>m#:nyi ;*r*pn;ri*,at* 10 mgfli1, totAJ $ mg/m\
rvapiraoi*
Erytriromyein
3 mg/mJ
--
HkCi*`1#
100 ppm
--
H**nCioi Ciac-yitit
1 mg/mJ
-
utnium hyCrOnfl*
-
1 mg/mJ. } mm
L.tf'iurr, Okie* -- 1 mg/m3, 1 min
3-M*tfic*yprepyi*mi'i* 10 ppm
20 ppm 15 mtn
Monotliorotcatic c:C 0.3 ppm,, Sum ,\ pom, ''S mtn
i-Gctanoi 3ert**'yrnnt0'
tnic^v-iie
SC ppm 1 mg-itt
--
P.coim*a
2 ppm Skm 5 POm
Ppii-iOi'i#
1 ppm
--
cS'ytnvi*n* giyCOU 10 mg, mr
--
sO'yprOPyie^* g'yCOi* i0 mg. rrr
-
ps:i*.ufr. p'omt*
0 1 mg. m'
--
P'Ppyi*-.* gi.co. Cu^Ount
5C pom. ioi*i 10 mg. nr
a'0*oi only
0 i ppm. tun
r*!'**myi''egiycoi ei*crv*te
1 mg.mJ
--
p-TOiu*ie lullony! enionoe
--
5 nia/lti' i min
-nt!hyi*r,*gtycoi oi*c*yi*te
. nm*tnyi*min#
1 mg/mr i ppm
-- --
T nm*t*iyiOiO'ODne tn*cryit#
1 mg, mJ
--
nm*inyioiproc*n*
mo/ m'
--
tnme:nvi*c-yi*te
'ftooiwm pnoscnait
-
wfei
^Q mg, m'
S mgmJ, 15 min
R*vi*#a S-66
NOTE- For convenience, may oe cut to tit insic* a pocket manual.
Workplace Environmental Exposure Level Guides (WEE^j are developed by the AIHA WEEL Committee for age"which have no current exposure guidelines establish by other organizations. They represent the workpia: exposure levels to which, it is believed, nearly all empic^ ees could be repeatedly exposed without adverse effect All WEEL's are expressed as time-weighted average cor centrations; however, different time periods are specifie depending on the properties of the agent. An 8-hr TWA indicates a time-weighted average eoncc tration for a normal B-hr workday ano 40-nr worxwee When it is believed that excursion levels shouic be me limited, a one to 30 minute TWA may oe recommences either in conjunction with, or in place of. an 8-nr TW value. The time specified is relevant to exposure. r.; necessarily to sampling. The word "Skin" indicates that the material may ; absorbed through the skin. Therefore. Skin contact cz contribute to the overall exposure and invalidate :r TWA exposure evaluations.
DO A OOAfllJ COMF1 DFNT1A1