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T. G. Grumbles February 15, 1991
VENTILATION IN CONFINED SPACES
VISTA
The attached article reviews the principles involved and makes recommendations on the most efficient way to ventilate confined spaces where oxygen deficiency is a concern. It's a lengthy article but if you go to page 139, the recommendations are summarized.
T. G. Grumbles
dlj
Attachment
Distribution: SAFETY DIRECTORS
Bruce Trego-Aber, Balt, Harry Peirce-Blane, Kathy Perez-Hmd, K. L. Fogg-LCCP, R. V. Gantz-LCLAB, G. M. Shirley-LCVCM, Brent White-Okc, R. B. Martin-Austin, J. R. Drumwright, Rick Quy
VVV 0000X1847
Ventilation to Eliminate Oxygen Deficiency in a Confined Space-- Part III: Heavier-Than-Air Characteristics
Richard P. Garrison and Muzaffer Erig School of Public Health, The University of Michigan, Ann Arbor, Michigan 48109
This study investigated characteristics of ventilation co elimi
nate oxygen deficiency caused by heavier-than-air (HTA) contam
inants in confined space (CS) models. The HTA `'contaminant''
gases were carbon dioxide, halocarbon-22, and sulfur hexaftuor-
ide, having specific gravities (SG) of approximately 1.5, 3 0, and
5.0, respectively. Neutrally bouyant nitrogen (SG = 0.98) also
was tested, consistent with previous studies. CS models having
cubical and vertical noncubical shapes were tested. Other variable
design parameters included ventilation mode (exhaust and sup
ply), volume flow rate, inlet/outlet elevation, and sampling ele
vation inside the CS model. Testing confirmed that HTA con
taminants would stratify in the CS models. Regressions of
experimental data provide a means to calculate oxygen recovery
times from initial deficiencies. Ventilation time was found to
increase significantly with increasing contaminant SG. The effect
was most pronounced at low CS model elevations. Supply ven
tilation was more effective than was exhaust. A low ventilation
inlet/outlet elevation was considerably more effective than was
a high elevation. Geometrically similar cubical models of different
size performed in very similar manners. Results for vertical, non
cubical CS models emphasized the importance of introducing
ventilation near the bottom of the space. Guidelines for CS ven
tilation from this and previous studies, additional issues, and
recommendations are discussed. fafTiSOfl, R.P.; Erig, M.: Ventilation
to Eliminate Oxvaen
in . ; ,.,,fmeu Space--ran ill: Heavier-
Than-Air Characteristics. Appl. Occup. Environ. Hyg. 6:131*140; 1991.
Introduction
Oxygen can be displaced and diluted inside confined spaces (CS) to the extent that the atmosphere inside the space is unsafe to breathe. Any air contaminant can cause this if present m sufficient quantities. Of course, toxic con taminants can also pose serious hazards in much smaller quantities, without causing oxygen deficiency'.
Relatively nontoxic contaminants, for which oxygen dis placement may be the primary potential hazard, and toxic contaminants may include gases having densities quite dif ferent from that of air. Gases having greater density than
air are described as being heavier-than-air." The specific
gravin' (SG) of a gas or vapor is defined as the ratio of the
gas/vapor density to that of air. Specific gravity can be
calculated by dividing the molecular weight (MW) of a
given gas/vapor by 28.9, which is the average "molecular
weight" for air as a mixture of oxygen (approximately 2196,
MW = 32) and nitrogen (approximately 79%, MW -- 28).
If a heavier-than air (HTA) contaminant is released slowly,
in sufficient quantity and without agitation, then it is pos
sible for the contaminant to stratify, causing significantly
higher concentrations in lower regions of confined spaces.
Failure to recognize this has lead to accidents, including
fatalities, during confined space entries.
This study examined characteristics of HTA contaminants
in laboratory CS models. The overall objective was to ob
serve and evaluate parameters affecting mechanical ven
tilation to eliminate oxygen deficiency' caused by HTA con
taminants. A second objective was to supplement an
empirical database for CS model ventilation which could
be used in the development of computer-designed models
to predict CS ventilation performance.
This study is Part IH-of a series investigating'ventilation
characteristics to eliminate oxygen deficiency in confined
spaces. Part I examined characteristics of a cubical CS model,
using nitrogen (neutrally buoyant. SG = 0.98) with a rel
atively broad range of design parameters)l> Part II also
used nitrogen and investigated characteristics of noncub
ical CS models, constituting progressive expansions from
the basic cubical configuration.121 These studies have been
pan of a research project funded by the National Institute
for Occupational Safetv and Health.
ooooi'18*
Experimental Method
'*
The experimental facilities and testing methods for this study were very similar to those of the two previous stud ies)121 A "contaminant" was used to displace oxygen (02) inside a confined space model. Oxygen concentration (%02)
APPL OCCUP. ENVIRON. HYG. 6121 FEBRUARY 1991
1047-322X/91/0602-131JZ50/10 1991 AlH
w.is measured at different loiations inside the C.s model, prior to and following mechanical ventilation ot the modd with fresh ( uno ilium in.ucd i .nr. The primary differences from the experimental procedures followed in the two previous studies were:
GinuinunanLs oilier than N_>--sjiealicallv. the i IT\ gases carbon dioxide (COG halocarbon-22 (chlorodifluoromethane. HC22), and sultur hexalluoride (SF;>) were tested. The test gases were selected on the basis ot specific gravity and ot having relatively low hazard po tential. They were introduced slowlv at the bottom of the CS model to minimize dispersion prior to venti lation testing.
Different sampling locations--with HTA contaminants, it was necessary to place greater emphasis on effects at different elevations inside the CS model, For this study, samples were taken at four elevations on the vertical central axis. In previous studies, the sampling locations were in different vertical quadrants ol the CS models.
Limited CS model configurations--in order to have a manageable number of tests in the final experimental protocol, it was necessarv to reduce the number of CS model shapes and sizes and the variations of ventilation design parameters.
Figure l illustrates the CS model shapes, ventilation con figurations. and sampling locations tested in this study. Three CS models were used: 1) a basic cubical shape <CS Model AV. 2) a vertical, noncubical shape I (IS Model H2) three times higher and greater (volume) than CS Mode) A; and 3) a double-sized cubical shape tCS Model b) geo metrically similar to CS Model A and having eight times greater volume. The CS model designations A. E2. and b are the same as used in the previous study.1 J' Additional designations (lower case letters) were also used to name
specihe test configurations for each model shape. Table 1 summarizes the six CS modeLventilatioa sam
pling configurations investigated in this study. These con figurations were selected to provide tour types ol comparist >n.v
CS Models A;t versus Ah versus Ac--ventilation flow rate variation for the basic cubical model, with flow rate measured in terms of air changes per hour (ACH), i.e.. the 1-hour (oO-mmute) volume flow divided by the volume of the O model.
CS Models Aa versus ba--doubling all CS Model ven tilation and sampling dimensions (i.e., maintaining geometric similarity) and using the same nondimen sional ventilation volume flow rate (ACH) for two cu bical models of different size.
CS Models Aa versus E2a--expanding die cubical model to a vertical, noncubical shape, with ventilation inlet/ outlet (LO) and sampling elevations moving propor tionately to maintain the same nondimensional heights C\>H. percent of CS model height, H) and the same nondimensional flow rate (ACH);
CS Models Ah versus E2b--adding cubical volumes on top of the original basic cube to form a vertical, non cubical shape, keeping the actual dimensional flow rate (cfm > and the I/O and sampling elevations (inches) the same.
The final test protocol involved 96 test cases (6 x 2 x 2 x -4) consisting of the following: 6 CS model/ventilation configurations; 2 ventilation modes (exhaust and supply); 2 iniet/outiet elevations (25 and "5 %H); and -i contami nants of different specific gravities (N>, CO?, HC22. and
SF(,, having SG = 0.98, 1.50. 3 00, and 5.05, respectively). Four sampling elevations were monitored for each test case: at 10. 25. *0, and ~0 oH for most cases.
Figure 2 shows the experimental facilities A test run for
VVV 000011849
+ denotes sampling point
a0
Aa.b.c
Basic cube
E2a `Expanded"
E2b "Add-on"
Vertical Noncubes
Double-size cube geometrically similar to basic cube
FIGURE 1. CS model configurations, with ventilation inlet/outtet and sampling elevations, for testing HTA contaminants.
132
ARPL OCCUR. ENVIRON. HYG fU2l . FFOOIMPV ,otu
TABLE t. Characteristics of CS Models Tested with Heavier-Than-Air Contaminants
Config uration
Aa
Description Basic cube and flow rate
CS Volume Ccf)
8
Ventilation Flow Rate
ACH cfm 20 2?
Inlet/Qutlet Elevations
%H inches
25 6 75 18
A& Basic cube, high Dow rate
8
60 8
25
6
75 18
AC Basic cube, higher flow rate
E2a Vertical noncube, nondimensional expansion, sampling and I/O elevations moved upward
E2b Vertical noncube, add-on voiume expansion, sampling and I/O elevations in bottom cube
Ba Double-sized cube, geometrically similar to basic cube
8 24
24
64
120 16 20 8
same as Aa
18 54
20 8
8.3 same 25 as Ab
20 64
same as Aa
12 26
Sampling Elevations
%H inches
10 25 40 70 10 25 40 70 same as Aa & Ab same as Aa
33 8.3 13.3 23.3 same as Aa
2.4 60 96 168 2.4 6.0 96 16.8
7.2 18.0 28.8 50.4 same as Ab
48 12.0 19 2
Contaminant Volume (cf) 4
4
12
same 3S Ab
32
involved checking and adjusting all four sampling locations to read a nominal ambient concentration of 21.0 %Ov introducing the desired volume of a particular contaminant gas into the CS model: turning ventilation ON; and recording %0> versus time (minutest using a com puter with analog/digital data conversion from the fourchannel O2 monitor. Data were collected continuously, with one measurement approximately every second for each sampling location until oxvgen recovery was very nearly complete (within 0.1 %02 of ambient)
The CS models were constructed of wood (four sides) and clear plextglas (two sides). The overall dimensions (width x depth x height) of the CS models were as follows: Model A wax 0.61 x 0.61 x 0.61 m (2 x 2 x 2 ft); Model E2 was 0.61 x 0.61 x 1.83 m (2 x 2 x 6 ft); and Model B was 1.22 x 1 22 x 1.22 m (-4 x 4 x 4 ft). The circular CS top opening, Itxiated in the center of a quadrant, had a diameter of 15.2 cm (6 in.) for CS Models A and E2. and 30.4 cm {12 in.) for CS Model B. The inside diameter of the ventilation pipe was 5.1 cm (2 in.) for CS Models A and E2, and 10.2cm (4 in.) for CS Model B.
A contaminant volume equal to 50 percent of the CS model volume was used for most test cases, consistent with previous studies using nitrogen. Each sampling lo cation was connected to one sensor of a four-channel, electrochemical oxygen monitor (ENMET Corp). The same fiow rate (approximately' 0.25 L'min) was drawn through each sample line, connected to a manifold at the inlet of
small diaphragm pump. Ventilation flow rate was mea sured with a calibrated orifice plate and manometer.
Previous .studies11-1 have shown that oxygen recoverv could be described reasonably well with a simple expo nential relationship, specifically.
%0? = 21 -(21 - B)e-Cl
in this model, tile coefficients (21 - B) and C represent the initial oxygen concentration and an oxygen recovery' time constant, respectively. The time constant (C) de scribes the rate of oxygen recovery from an initial defi ciency. This parameter can be used to calculate the ven tilation time required for the oxygen level to change from an initial value to some final value.
Ventilation time (mm) _ In ((21 - %02 initiai)/(21 - %Qg final)]
for oxygen recovery "
q
Using this mcxiel, regressions were performed on the experimental data to obtain values for C. For the 96 test cases, and four sampling locations for each case, the av-
VVV 000011350
FIGURE 2. Experimental facilities showing CS models, with contaminant de livery, ventilation, sampling, and oxygen monitoring systems.
APPt 0CCUP. ENVIRON. HYG. 6(2) FEBRUARY 1991
folt
rj TABLE II. Regression Values of Oxygen Reccvery Time Constant (C) lor Exhaust * Ventilation with Different Specific Gravity Contaminants and CS Model Configurations
Oxygen Recovery Time Constant C
CS Model Parameters
Contaminants (Specific Gravity)
Configuration
Volume Flow Rate
(ACH)
Inlet Elevation
f%H)
Sampling Elevation
(%H)
N, (0.98)
CO, (1.50)
HC22 (3.00)
SF* (5.05)
Aa
20 25
10
027 0.10
007 005
25
050 041
041 030
40
062 061
061 044
70 100 120 123 100
75
10
032 002
0013
0.012
25
030
0021
0017
0016
40
0 32
0 043
0036
0035
70 0 32 too 082 130
Ab
60 25
10
0.90 025
013 009
25
0.80 1.10
1 00 0 73
40
0 82 1 50
1.30 100
70 0 82 2.40 2 20 1.70
75
10
0.70 0 04
0 021
001
25
061
0045
0027
0011
40
067 0.10
0 05 0.021
70
0 67 1 20
080 050
Ac 120 25
10
1 20 050
020 0.14
25
too 1 50
1 70 200
40
1.00 210
230 2.50
70
1.10 2 40
300 250
75
10
095
0 055
004
0014
25
088 010
0 05 0.015
40 080 0 24 0 22 004
70 0 85 150 020 1 40
E2a 20 25
10
035 003
0 026
002
21
0 33 100
060 0.50
4(1
0 33 1 30
080 0 70
70
0 33 150
1 40 1.10
< <
o Q O E2b o I-4
CO U1 t--
75
10
0.32
0017
0016
0 012
25
032 002
0045
0.035
40 0 31 005 011 010
70
033 200
2.00 2 40
20 B.3 3.3 090 017 0.11 009
3.3
080 080
1.00 079
13.3
080 1.00
1.50 1.00
23 3
080 150
240 230
25
3.3
0 70
0022
0.018
0014
8.3
060
0029
0026
0015
133
0 70 006
006 0022
23 3 0 70 008 0.85 060
TABLE III. Regression Values of Oxygen Recovery Time Constant (C) for Supply Ventilation with Different Soecitlc Gravity Contaminants and CS Model Configurations
Oxygen Recovery Time Constants. C
Config uration
Aa
Ab
Ac
fc2a
E2b
CS Model Parameters
Volume Flow Rate
(ACH)
Outlet Elevation
(%H)
20 25
75
60 25 75
120 25
75
20 25
75
20 83
25
Sampling Elevation
(%H)
10 25 40 70
10 25 40 70
10 25 40 70
10 25 40 70
10 25 40 70
10 25 40 70
10 25 40 70
10 25 40 70
3.3 83 133 23 3
33 83 133 23.3
Contaminants (Specific Gravity)
N, (0.98)
084 083 080 051
041 0 38 0.41 0.40
0 89 086 092 092
0 92 086 0 94 092
1.40 1.40 1 40 1.48
150 f 60 155 160
061 061 061 0 59
041 042 042 042
0.90 086 092 0.92
090 0.90 092 0.92
CO, 0.50)
0 30 030 031 031
0 10 011 020 0 44
083 084 088 0 89
0 75 0 74 002 083
1.50 150 1 00 1.40
1 50 140 140 130
0 30 0 30 030 031
014 0.20 039 0.43
0 70 050 0.53 054
045 0.42 044 0 43
HC22 (3.00)
016 030 0 30 030
004 005 011 060
081 081 082 081
048 049 069 0 70
1.20 130 1.30 120
070 080 0 70 050
028 0 37 037 037
014 0.20 0 43 0 42
100 0.87 077 080
040 0.55 067 0 70
Sf. (5.05)
011 020 0 30 040
0 027 0 032 0 087 050
069 0 69 069 068
0 20 0 30 0 53 060
0 65 080 080 065
060 065 0 70 0 70
020 030 0 35 0 30
007 012 030 025
068 069 069 060
020 0.33 0 55 063
A P P L OCCUP. ENVIRON. HYG. 6(2) FEBRUARY 19
erage coefficient of determination <R2) was 92 percent, ranging from 80 to 99 percent. The standard errors of the regression estimates of C were within 1-5 percent. These results were considered acceptable, although previous studies involving only N2 were found to have somew'hat higher R2 and lower standard errors. Results
Tables II and III provide the regression values of C for all of the test cases except those involving CS Model Ba. which are adequately represented by the data for CS Model Aa (discussed subsequently). Values of C are given for each sampling elevation, for the test configurations, and for ex haust (Table II) and supply (Table HI) ventilation. These tables supplement the database of C values established in the previous rwo studies.1121 The regression database can be used to compare ventilation effectiveness for different CS model situations. A one hundredfold difference in C values represents a one hundredfold difference in venti lation time, e.g., 3-9 minutes when C = 1.2 and 390 minutes when C = 0.012 for oxygen recovery from 10 to 20.9 %02.
Figures 3 and 4 present oxvgen recovery characteristics (%C>2 versus minutes) of HTA contaminants for the basic cubical CS Model Aa at a flow rate of 20 ACH. Figure 3 compares results for the lightest (N2, SG = 0.98) and heaviest (SF^, SG = 5 05) gases at three sampling eleva tions (10, 25, and 40 %H) for exhaust and supply ventilation
RGURE 3. Oxygen recovery for the cubical CS Model Aa for N2 and SF6 at three sampling elevations (10. 25, 40 %H), with high (75 %H) 1/0 elevation at 20 ACH.
at high i" %\{ \ I/O elevation. Figure 4 shows 02 recovery for the same CS Model Aa at 20 ACH. with high ("5 %H) and low 125 %H) I/O elevations for all four contaminants (N>, CO>, HC22. and SF,,) at the lowest (10 %H) sampling elevation.
Figure 5 provides a general comparison of the two cu bical models of different size iCS Models Aa and Ba) which w-ere geometrically similar and were ventilated at the same
nondimensional volume flow rate of 20 ACH. Data wrere taken from 02 recovery curves of all 32 test cases for these models. The purpose of this comparison was to evaluate whether findings for small-scale laboratory models could be applied reasonably to larger models, perhaps ultimately to actual confined spaces.
Estimating the length of time needed to ventilate a con fined space is a fundamental design objective. For 02 de ficiency. it is obviously a function of the rate of recovery, which can be represented empirically by an 02 recover.' time constant (C). Previous studies*1-2' have compared dif ferent CS models using ventilation times calculated using
regression values of C; specifically, "delta T." the time for nearly (99%) complete recovers- from a 10 %02 initial level to 209 %02. For consistency, this same lime parameter
w as used for comparisons in this study. However, it should be kept in mind that recovery often required more time, sometimes considerably more, for HTA conditions involv ing initial oxygen levels below 10 %02 and, therefore, requiring additional time to reach 10 %02.
Figure 6 illustrates effects of changing ventilation vol ume flow rate on ventilation time, delta T, for oxygen recovery from 10 to 20.9 %02, calculated from time con stants in Tables II and III. These data are for the basic cubical shape (CS Models Aa, Ab, and Ac) for all four contaminants under exhaust and supply ventilation with low (25 %H) I/O elevation.
Figure 7 provides comparisons of ventilation time char acteristics for cubical (CS Models Aa, Ab) and larger, ver tical, noncubical (CS Models E2a. E2b) configurations. These comparisons present data for the lowest sampling eleva tion, for which oxygen recover.' times were greatest. Con sequently, the HTA characteristics illustrated are more pro nounced than they were at higher sampling elevations.
The comparisons of Figure 7 include significant differ ences in ventilation design. CS Models Aa and E2a utilized the same nonditnensiotial design parameters: ventilation flow rate of 20 ACH (2.7 cfm for Aa; 8.0 cfm for E2a); I/O elevations of 25 and -,5%H; and sampling elevation at 10 %H. CS Models Ab and E2b had the same dimensional design parameters: ventilation flow rate of 8 cfm (60 ACH for Ab; 20 ACH for E2b); I/O elevations of 6 and 18 inches; and a .sampling elevation of 2.4 inches. Figure 7 can be described as involving comparisons between the basic cu bical CS model and a proportional, threefold, vertical "ex pansion" of the cube and the ventilation design parameters (Aa versus E2a) and comparisons between the basic cube and a vertical noncube made by "adding on" two cubic volumes on top of the basic cube, leaving the ventilation design in the bottom cube unchanged (Ab versus E2b).
APPL 0CCUP. ENVIRON. HYG. 6(2} . FEBRUARY 1991
WV 000011S52
135
Oxygen concentration (%Oj)
EXHAUST Ventilation time (minutes) FIGURE 4. Oxygen recovery tor the cubical CS Model Aa at the lowest sampling elevation (10 %H) for exhaust and supply ventilation at 20 ACH.
FIGURE 5. Comparison of oxygen recovery data for two geometrically similar cubical CS models (Ba vs. Aa) of different size for all test cases, with ventilation at 20 ACH.
vvv 000011353
136
APPL OCCUP. ENVIRON. HYG. 612) . FEBRUARY 1991
Discussion
In ail of the test eases, mechanical ventilation caused
more rapid air mixing and contaminant dilution than would
have occurred without it. Figures 3-~ show that recovery'
from HTA contaminant stratification and oxygen deficiency occurred within periods of time ranging from minutes with
effective ventilation design to hours for heavy contami
nants with poor ventilation design. Preliminary testing in
dicated that O: recovery by diffusion alone would take
much longer--roughly 2-4-36 hours for the basic cubical
CS model containing 5Fft.
Contaminant density had a significant effect upon ven
tilation effectiveness. Figures 3. 4, 6. and ^ show that ven
tilation time generally increased with increasing contam
inant density-. This effect was most pronounced for the
lowest < 10
elevation in the CS models, as shown in
Figure 3 Differences between contaminants were least ev
ident for effective air mixing, such as caused by low (25 %H)
outlet supply ventilation in Figures 4. 6, and?.
Supply ventilation was generally- more effective than ex
haust ventilation. Figures 3, -t, 6. and ' show supply' ven
tilation causing oxygen recovery- in less time than for ex
haust under otherwise identical conditions for ail of the
CS models. This advantage tended to improve with in
creasing contaminant density (Figures 3. 4, 6, and 7), was
greatest at low elevations (Figure 3), and was not affected
significantly by CS shape variations (Figure 7). The mag
nitudes of the differences between supply and exhaust
i ventilation can be dramatic, e g., from several minutes for
complete recovery under supply ventilation to an hour or
more for HTA contaminants under exhaust ventilation. The
reason for more rapid contaminant dilution under supply
ventilation is the increased dynamic mixing caused by the
airflow jet discharged from the ventilation outlet.
I/O elevation was found to have very significant effects
upon ventilation characteristics. Figures 4 and 7 show that
ventilation time was less for low (25 nH) I/O elevations
compared to higher C75 %H) elevations. This advantage of
tow I/O over high I/O was most pronounced for high
contaminant densities and low CS mode! sampling ele
vations (Figure 4).
Ventilation volume flow rate can significantly affect ven
tilation time for oxygen recovery. Figure 5 shows venti
lation time, delta T. dropping substantially for increasing
volume flow rate (ACH) for both supply and exhaust ven
tilation. This increase was not in proportion to change in
flow rate. A three-times change from 20 to 60 ACH reduced
ventilation time for HTA contaminants by less than 50 per
cent for exhaust ventilation and by variable amounts with
different contaminants for supply ventilation at the lowest
(10 %H) sampling elevation, with different characteristics
at higher elevations. Reductions in ventilation time were
observed over the full range (20-120 ACH) tested for ex
haust, but there was little improvement above 60 ACH for
supply ventilation for the cubical CS Model A
Geometric similarity is necessary for two CS models of
different size to experience similar ventilation perfor-
Vantllotlon volume flow rote (ACH)
FIGURE 6. Oxygen recovery times, delta T(10--20.9 %0j), for different ven
tilation volume flow rates (cubical CS Models Aa, b. c) lor different contam
inants. with low (25 %H) 1/0 elevation.
...... _ -^
VVV 000011854
mance. Similarity' must apply for both the CS configuration and the ventilation design. Figure 6 shows that geometric similarity' was sufficient for the two cubical CS models (Aa and Ba) of this study to exhibit nearly the same oxygen recovery. Empirical results such as found by this study (Tables II and III) are limited to the CS model and ven tilation design parameters which were tested. Geometric similarity may make it possible to extend application of the data to larger field CS situations. However, it may be unlikely that any field spaces will conform closely enough io die icsi uaia ui aiiow- nigniv accurate predictions of ventilation time.
This study allows limited consideration of CS shape ef fects; .specifically, Figure " provides comparisons of cubical and vertical, noncubical CS models. The effects of differ ences between cubical CS Model Aa and the "expanded," noncubical Model E2a include a three times greater ven tilation rate and amount of contaminant. Higher flow rates (cfm) for CS Model E2a resulted in increased vertical air flow velocities through the unchanged horizontal crosssectional areas of the CS model and the ventilation pipe. Higher velocities caused increased air mixing within CS Model E2a. Low (25 %H) elevation supply ventilation was most effective for eliminating O2 deficiency in both the cubical and noncubical CS models. Findings for the "ex panded," vertical, noncubical CS model indicate a signif-
APPL 0CCUP. ENVIRON- HYG 6(21 FEBRUARY 1991
137
.'iiii-J
*
C( jJlfcv
g 500
500 400 300
EXHAUST Ventilation Inlet elevation 6 In. 18 In.
200
100 +
f
Contaminants :
d~l N
0 Ab
17/2X CO^ EZ8 HC22
fa Hi E2b
SF<
500
SUPPLY Ventilation
,,t
400
Outlet elevation
300-
6 In.
18 In.
VVV 0 0 0 0 1 1 8 5 5
200
100 +
0 Ab E2b Ab E2b
Ventilation rate : 8 cfm (Ab=60 ACH, E2b=20 ACH)
Cubical CS Model (Aa) vs. "Expanded" Vertical-Noncubicaf CS Model (E2a)
Cubical CS Model (Ab) vs. "Add-on" Verticai-Noncubical CS Model (E2b)
FIGURE 7. Oxygen recovery times, delta T (10 to 20.9%02), for the cubical and the vertical, noncubical CS models. Aa and E2a had the same nondimensiona! ventilation design parameters (ACH,l/0-%H). Ab and E2b had the same dimensional parameters (cfm, 1/0-inches)
S
icaru advantage in reducing ventilation time when using low I/O elevation for HT\ contaminants.
Findings for the "add-on," vertical, noncubical CS model also show the importance of providing ventilation near the bottom of a CS containing HTA contaminants. Ventilation characteristics for the cube and vertical noncube were similar, suggesting that ventilation design for the "cubical'' bottom of a vertical noncube may be predicted reasonably well using cubical CS model data, with relatively little shape (depth) effects.
Data in Figures 3, 4, 6, and 7 show that N2 was not a good predictor for HTA contaminant effects. Nitrogen was the only contaminant used in the previous studies of cu bical and noncubical CS models.0 Findings for nitrogen may be more useful for dilution ventilation to control toxic contaminants in low concentrations for which the mixture density is nearly the same as that of air.
The relationships between CS ventilation design param eters (e.g., CS shape, contaminant SG, ventilation I/O, ACH, and iocation/elevation in CS) are very complex. Combining these with other relevant parameters (many not yet stud ied) would result in an empirical database so complicated as to defy almost any effort to establish a rational, accurate, and comprehensive computer design model based solely on empirical findings. A truly comprehensive design model for confined space ventilation probably must come from an analytical basis. This requires developing user-friendly computer programs to solve difficult mathematical models.
Research should continue towards development of prac tical guidelines for effective CS ventilation. More field test ing is needed. This will enhance working experience and improve the predictive capability of laboratory experi ments, particularly when done in conjunction with scale model testing. The development of analytical models should be encouraged. Such models could be tested and evaluated against the empirical database obtained in these studies for oxygen deficiency. There are many additional and un tested design parameters, such as different CS model shapes (e.g., cylindrical), internal CS surfaces, more than one CS opening, and CS opening size variation, to list a few.
Guidelines and Recommendations
The conclusions from this study, and those from the two previous studies/1'21 help to establish a framework of de sign guidelines for CS ventilation which can be summa rized as follows:
Air movement caused by mechanical ventilation will greatly enhance contaminant dilution inside a CS. Con taminant dilution by diffusion and/or natural ventila tion can be much slower than with mechanical ventilation.
Heavier-than-air contaminants can stratify' inside con fined spaces. Rates of contaminant dilution tend to decrease as contaminant density increases, especially near the bottom of a confined space.
Supply ventilation is generally more effective than ex haust in reducing the length of time required for di
APPL OCCUP. ENVIRON. HY6. 8(2) . FEBRUARY 1991
lution of atmospheric contaminants because air mixing is enhanced by the supply jet. Decisions to ventilate by either supply or exhaust methods should also in clude considerations of other advantages and disad vantages (discussed subsequently). A directed supply jet of fresh air can provide very effective air mixing and dilution, such as rapid oxygen recovery, at locations aligned with the jet. It is highly advisable in many CS ventilation situations to direct fresh air to the breathing zones of workers. Low ventilation I/O elevations (e.g., less than 25 %H) are generally more effective than higher I/O elevations (e.g., above 75 %H). This characteristic can be pro nounced for HTA contaminants, increasing with con taminant density. Ventilation volume flow rate can have significant effects upon ventilation time. Reductions in ventilation time typically are not proportional to increases in volume flow rate. Benefits from exceeding 60 ACH may be minimal for supply ventilation. Flow rates below 20 ACH are not recommended for most CS situations. If geometric and air flow similarity are maintained be tween two confined spaces of different size (i.e., same CS and ventilation geometry and same ACH), then they will probably have similar ventilation characteristics. If geometric similarity is not maintained, then venti lation characteristics may be very different. The shape of a CS can have significant effects upon ventilation characteristics. HTA contaminants may cause substantial differences between characteristics of cu bical versus noncubical shapes in vertical and hori zontal orientations, A cubical CS model may be able to predict ventilation effects in the "cubical end" of a noncubical CS. Variations in ventilation effects with CS shape (e.g., cubical versus noncubical) are less pronounced when contaminant density' is not significantly different from air, such as for neutrally buoyant nitrogen and for toxic contaminants in relatively low concentrations. Findings from these studies do not address all important issues of ventilation control for confined spaces. Consid eration should be given to other important engineering and administrative control measures, to advantages and disadvantages of different ventilation alternatives, and to ventilation equipment, testing, and training. Mechanical ventilation of a confined space does not pre clude the importance of stria administrative control mea sures for safe CS entry. Both engineering and administra tive controls are needed unless either can be confirmed to be unnecessary (and this can be difficult to do). Entries should be avoided whenever possible. Confined spaces should always be opened as much as possible prior to entry. Advantages of supplyventilation for a CS can include: rapid and moveable localized dilution directly to worker breathing zones; it can cause more effective air mixing throughout the CS; and it can accomplish mancooling. Dis advantages include: enhanced dispersion/evaporation of
VVV 00G011B56
139
dust.v liquids; contaminant discharge from CS openings; contaminant buildup if supply air is not fresh: and possiblv hazardous mancooling with cold ambient temperatures.
Advantages of exhaust ventilation include: the tendency to be nondispersive of contaminants; contaminants can be discharged away from CS openings; localized control is possible if inlets are positioned close to localized sources; and lower general air flow velocities can reduce man cooling effects. Disadvantages of exhaust ventilation in clude: less effective general air mixing and dilution; the possibility of drawing contaminants through breathing zones; and the possibility of high localized contaminant concentrations.
Local exhaust ventilation (LEV) can be used effectively in confined spaces provided the inlets (hoods) can be kept close enough to localized contaminant sources. LEV offers the possibility of air cleaning to remove contaminants. LEV may not have sufficient volume flow rate to satisfy needs for dilution ventilation if contaminants are not captured at the hood(s).
Natural ventilation, typically caused by wind and/or ther mal convection, can have significant effects upon contam inant concentrations in confined spaces. Natural ventilation has the advantage of not being subject to mechanical fail ure. However, it can also be changeable without warning and should be used only with strict administrative controls. Natural ventilation should be utilized to whatever extent it may exist. However, mechanical ventilation should be required whenever highly toxic contaminants are present.
Equipment limitations can be significant factors in ven tilation design for a particular CS entry. Ventilation lime is a function of the fan volume flow rate. Planning and designing for CS ventilation should be made well before an entry is needed in order to be certain that proper equipment will be available. Ventilation equipment can cause problems for egress, visibility, communication, undesired mancooling, and other aspects of CS entry safety.
Testing before and during CS entries should always em phasize monitoring for atmospheric contaminants, even when effective tentilation is in place. Testing during CS entries should also include observations and measure ments of ventilation parameters to help evaluate ventilation
effectiveness. Training for CS entries should include setup and op
eration of all ventilation equipment for all persons in volved in routine entries and emergency rescues. Training should address ventilation testing and the calibration and operation of gas/vapor/oxygen monitoring instruments. It should emphasize "hands-on" experience. Training drills at actual confined spaces, with potentially hazardous con taminants present, are highly recommended in addition to classroom instruction.
There will be some CS entries for which ventilation is impossible, such as when air must be excluded from the CS (eg., pyroforic catalysts) or when space size and ge ometry prevent effective ventilation (e.g., long, complex utility tunnels). It is advisable to provide ventilation as close as possible to work areas that cannot be ventilated directly. It is necessary in such situations to place special emphasis on administrative controls to offset the loss of safety resulting from poor or nonexistent ventilation.
Poor ventilation is a defining characteristic of a confined space. There is great need to improve the awareness of potential atmospheric hazards in CS and of ventilation as a primary means of control. More specific information is needed on metfiods for implementing effective CS ventilation.
Mechanical ventilation, even lacking solid comprehen sive quantitative design criteria, should be used for most confined space entires. Mechanical ventilation does what no administrative control can do (e.g., entry attendant, permit, atmospheric testing, or personal protective equip ment)--it will directly reduce concentrations of potentially hazardous air contaminants in confined spaces.
References
1. Garrison, R.P.; Nabar, N.; Erig, M.: Ventilation to Eliminate Oxygen Deficiency in a Confined Space--Pan I. A Cubical Model. Appl. Ind. Hyg. 4:1-11 <1989).
2. Garrison, R.P.; Erig, M.: Ventilation to Eliminate Oxygen Deficiency in a Confined Space--Part 11: Noncubical Models. Appl. Ind. Hyg. 4:260-268 0989)
Received 12/26/89: review decision 2/23/90: revision 8/3/90; accepted 9/4/90
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140 APPL 0CCUP. ENVIRON. HYG. 6(21 FEBRUARY 1991
TO:
Distribution
Interoffice Communication
FROM: DATE:
SUBJ:
T. G. Grumbles February 15, 1991
CMA CAER WORKSHOP
vc
Attached is information regarding regional CAER implementation workshops. It appears this workshop is focusing on employee and community outreach.
T. G. Grumbles
dlj .265
Attachment
Distribution:
SAFETY DIRECTORS
Bruce Trego-Aber, Balt, Harry Peirce-Blane, K. L. Fogg-LCCP, R. V. Gantz-LCLAB, G. M. Shirley-LCVCM, Brent White-Okc, R. B. MartinAustin, J. R. Drumwright, Rick Quy
cc:
PLANT MANAGERS
R. W. Seymour-Aber, L. R. Eauer-Balt, G. D. Williams-Blane, J. Pavao-Hrad, J. Friend-LCCP, J. W. Ware-LCLAB, R, A. Conrad-LCVCM, H. D. Garrison-Okc, P. L. Foote-Prem, V. W. Weiss-Austin
ENVIRONMENTAL COORDINATORS
F. G. Jeanson-Aber, D. L. Mahler-Balt, G. D. Williams-Blane, Matt Tonkovich-Hmd, M. G. Hayes, G. L. Foshee, J. L. Johnson, Julie Bozich, Diane Johnson-LCCP, Tony Salah-LCLAB, D. R. Booth-LCVCM, Joyce Callen-Okc, G. C. Lipps-Prem, R. B. Martin, J. R. RoheimAustin, R. B. Quy
M. S. Reynolds, C. Bozman, M. A. Stephenson
WV 000011858
Registration Form
Plg^e register the following person(s) for the jCode.of Management Practices
Workshop. A check in the amount of per person) Is enclosed.
Mall registration form and check or money order, payable to the Chemical Manufacturers Association, to: Heather Feltmate, Chemical Manufacturers Association, 2501 M Street, N.W., Washington, DC 20037. Refunds will be made if cancellations are received at least two weeks before the date of the workshop.
Workshop Location:
Register by:
.4/10/91 New Orleans, LA .4/24/91 Chicago, IL .5/14/91 Sacramento, CA
4/1/91 4/9/91 5/6/91
So we can better identify you on your meeting badge!, please register using your name as you wish It to appear on the badge. Name
Title. Name___ Title____
Company Address _
City________________________
Stat* Zip Phon_J______ L
Workshop Agenda
8:00-8:30 a.m.,
8:30-6:45
i
8:45-9:00 9:00-10:15
10:15-10:30 10:30-12:00 noon SESSION 1:
SESSION 2:
SESSION 3:
12:00-1:00
Registration and Continental Breakfast
Welcome and Opening Remarks James Hinton, Chairman CAER Task Group Dow Chemical U.S.A--Texas Operations
Welcome from the Chemical Industry Council
Community Outreach Overview
Members of the Responsible Care Public Advisory Panel History and overview of the
code The need for community
outreach The benefits of community
outreach
Break
Three Concurrent Break-Out Sessions:
Community Advisory panels Who is involved Function of the panel How ft works Types of panels
Employee Participation and Communications Stimulating interest Methods of communication Employees' role in outreach
activities
Outreach to Target Audiences Educators and students Local, state and federal officials Medical community
Lunch
1:00-2:30
2:30-2:45 2:45-4:15
o o o o
> > >
Repeat Three Concurrent Workshops
Break
Repeat Three Workshops
H( \t&!
A block of rooms has been reserved at the following hotels for the CMA workshops. This block of rooms will be held until two weeks prior to the workshop.
After that date, room reservations will be subject to availability. Please refer to the CAER Code Workshop when making reservations.;
New Orleans, LA April 10,1991
Royal Sonesta Hotel 300 Bourbon Street New Orleans, LA 70140 (504) 5866300 Room Rate: $115/Single
Chicago, IL April 24, 1991
The Westin Chicago 909 N. Michigan Ave. Chicago, IL 60611 (312) 943-7200 Room Rate: $130/lngie
Sacramento, CA May 14,1991
Sacramento Hilton Inn 2200 Harvard Street Sacramento, CA 95815 (916)922-4700 Room Rate: $78/Single
$85/Double
V
CMA IS NOT RESPONSIBLE FOR MAKING HOTEL RESERVATIONS.
Responsible ore CAER Code fy^lanagement
ctices Workshop
{re$ch programs are becoming an fngiylmportant part of the chemical
ifhe ability to deal with the public and fjc segments is becoming a more ilOSfilewill' for plant managers to have in the
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pie^f^jcal industry bears greater scrutiny fonmental groups and their growing the media and a more skeptical
jbUc. Tljle ill and its reporting requirements iav'palspd the profiles of chemical facilities in Se community.
its member companies have long community outreach. The public
)rpe aware of industry operations telndu^try has to be sensitive to commuIpcerns. Under Responsible Care, the
H'fty Awareness and Emergency iespgfjSe.'Or CAER, process is the vehicle for )mf|iuntcatlpg the industry's commitment to
Its operations. CAER participation is Ijgajion for CMA members. They have to >tjn 6 the community. But they also should arryp for the benefits it brings.
tfjg jhree CAER workshops planned this jring, participants will learn how to meet the somrriunjty awareness elements of the CAER
Management Practices. Speakers and s will discuss their experiences in com ing with a number of specific audiach speaker will discuss strategy and
jsjworkshop;Wlll bffnjustr Sara1 members of the public.' *M *
will be beneficial for plant R coordinators and others irj communication with the )mnlun|ty.
Registrafie..
Registration for the CAER Code Workshop is $175 per person, which includes breakfast, lunch and beverage breaks.
Telephone registration and cancellations will be considered binding. To register, please notify CMA by close of business April 1 (New Orleans), April 9 (Chicago), May 6 (Sacramento). 3 If you have registered and are unable to " attend, please call (202) 887-1273 by dates . listed. CMA cannot make a refund for cancel lations received after those dates. To register, detach and mail the registration form along with a check or money order payable to the ,, Chemical Manufacturers Association jo:
Heather Feltmate Chemical Manufacturers Association 2501 M Street, N.W. Washington, D.C. 20037 (202) 887-1273
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TO:
R. D. Gamblin
Interoffice Communication
FROM: DATE:
SUBJECT:
T. G. Grumbles February 15, 1991
PROGRESS REPORT
VISTA
1. The draft Responsible Care Employee Safety and Health Code is
out for review by CMA Member Companies,
It has been
distributed internally and comments are due back prior to
April 1.
2. The initial Responsible Care Distribution Code is out for self-evaluation. This code is difficult to review because multiple departments and locations are involved in the code element areas. S&T, Manufacturing and Environmental all have ownership of the code elements.
3. A visit was made to Sun Polymers in Baton Rouge to assess their capability to process Aberdeen No. 2 Pond Resin. Sun Polymers already handles off-grade PVC materials for Vista. Sun also processes PVC from BFG, Oxy, Certainteed, GeorgiaGulf and Formosa. The plant is not run the way Vista would operate,/ but considering the low hazard of the PVC, is a reasonable risk.
4. JCL and Aberdeen Plant personnel met with MS DEQ to discuss renewal of the Aberdeen Air Emission Operating Permit. The MS Air Toxics Policy was discussed in detail and our consultant, Peter Voytek of Clement International, presented information on the appropriate vinyl chloride unit risk factor. DEQ will contact EPA regarding the unit risk factor and get back to us.
5. JCL and Dave Penney of R&D met with EPA Office of Toxic
Substances regarding a potential SARA 313 delisting petition
for di-n-octylphthalate. Our alcohol customer, Aristech, also
attended the meeting. The intent of the meeting was to get an
indication from EPA of our chances of successfully delisting
DNOP.
At this time, chances seem slim, due to potential
objections from the EPA Office of Water. A meeting with OW is
being arranged by our outside counsel.
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T. G. Grumbles /Ijw
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