Document NEMGxxQ0pLDkymOpBJBmG2DNQ
Stationary Source Sampling Report Mercury Emissions from the End Box and Hydrogen Systems PPG, Lake Charles. LA Deceiifcer, 1984
PPG Industries. Inc.
Environmental Testing Group Barberton Technical Center
P. 0. Box 31
Barberton, OH 44203
SL 025692
TABLE OF CONTENTS
Page No.
I. Introduction ......................................................................................................
1
II. Abstract........... .................................................................................................
1
III. Sampling Procedures*......................................................................................
1
V. Results .................................................................................................................
2
V. Discussion ......................................................................................................... 4
VI. Approvals ...........................................................................................................
4
APPENDICES
A. Sample Location - End Box ..............................................
5
B. Sample Location - HydrogenSystem.......................................................... 8
C. Sampling and Analytical Methods ............................................................ 10
D. Sampling Parameters, FieldData and Results ..................................... 24
E. Analytical QA and Results, Emission Calculations and Chain of Custody............................................................................................ 48
F. Sampling QA ...............................................................................
55
SL 025693
I. Introduction
Effective June 20, 1983, the State of Louisiana was delegated the authority to implement and enforce the National Emission Standards for Hazardous Air Pollutants (NESHAP) for stationary sources* Sections 76.18 of the Louisiana Emission Standards for Hazardous Air Pollutants (LESHAP) requires all LESHAP sources to demonstrate compliance with applicable regulations within ninety days of the effective date and yearly thereafter.
This report covers mercury emissions from the end box stack and hydrogen
Sroductlon at the chlor-alkall facility. Lake Charles complex during the period cember 12 and 13, 1984. Sampling procedures, quality assurance, analytical methodology, and process related data are presented.
II. Abstract
Stationary source sampling was performed at the chlor-alkall facility. Lake Charles complex for mercury emissions December 12 and 13, 1984. The test results showed mercury emissions ranging 26 to 72 g/day at the end box stack and <11 to 140 g/day at the hydrogen system.
Testing was conducted In accordance with USEPA Test Methods 101 and 102 (40CFR61 Appendix B) with the following exceptions waived by the LESHAP Adnlnlstrator: 1) One lane of the end box stack was sampled with the nunfcer of traverse points doubled due to structural Interferences, 2) Non-Isokinetic sampling was performed at the hydrogen system due to production constraints. Testing was witnessed In part by Mr. N. Coltrln, Louisiana Department of Natural Resources, Dept, of Environmental Quality.
III. Sampling Procedures
A. Sample Locations
1. End Box Stack (Appendix A)
Sample ports were Installed on the south and east sides of the 12" ID end box stack 10'-9" downstream and 7'-8" upstream from any point of streamline disturbances such as bends, turns, constrictions, or expansions. Revised (48FR45035) Method 1 dictates an eight point traverse (four per lane). Building interferences negated sampling the west lane. The AAnlnlstrator approved sampling the south lane only using eight traverse points Instead of four. Traverse point locations and a stack diagram are shown In Appendix A.
2. Hydrogen System (Appendix B)
Routinely, the hydrogen produced at the mercury cell operation Is sold as a raw material to a local chemical plant. If sales are Interrupted for any reason, the hydrogen Is used as boiler fuel. If an upset condition occurs In the cell operation, the hydrogen could be vented through the tertiary stack. Due to the size and pressure of the Hg vent header and the potential disruption of product sales, the Administrator waived Isokinetic sampling at this source. Integrated sampling was performed at the centroid of the PuraSiv bed vent lines (8"). Hydrogen flows were calculated based upon production. A flow diagram Is shown In Appendix B.
SL 025694
-2-
B. Sampling Methods
1. End Box
Isokinetic sanpllng was performed at each of eight traverse points located along the north-south lane of the end box stack In accordance with Method 101 (40CFR61 Appendix B) Included In this report as Appendix C. The recommended minimum sample duration of 2 hours was adhered to*
2. Hydrogen System
Integrated, non-lsoklnetlc sampling was conducted for the minimum
recomnended 2 hours duration at the hydrogen system utilizing a Method 102
train (Appendix C) without the pltobe assent)!y. Hydrogen under pressure was
valved Into a mixing bottle from the discharge of the active PuraSlv* unit
using 1/2" TFE tubing. Sampling was performed by attaching a short piece of
1/4" TFE tubing (valved) from the mixing bottle to the first Implnger. To
assure positive pressure In the mixing bottle at all times, the bottle was
vented through a seal pot before being discharged to the atmosphere at a safe
distance from the sampling equipment. The sample train orifice discharge was
also vented away from the equipment for safety purposes. Appendix B shows a
sampling flow diagram.
^
C. Analytical Methodology (Appendix C)
The analytical method employed for the determination of mercury followed the procedure detailed In Method 101 (40CFR61 Appendix B) Included In this report as Appendix C.
IV. Results (Appendices D, E, and F)
The pertinent test results are presented In the following tables. Appendix D details sampling parameters, field sampling data sheets, and calculations. Appendix E contains the analytical quality assurance and results plus chain of custody. Appendix F presents sampling quality assurance.
025695
A. End Box
-3-
84EB-1
12/12/84 09:03-11:03
Stack Gas Flow Rate, Dry scfm*
2260
Sample Volume, Dry SCF
77.399
Mercury Found, ug
525
Emission Rate, g/d
- 25.98
Isokinetic Sampling Rate, %
97.8
Test Mo. 84EB-2
12/12/84 13:30-15:30
2653
77.180
1450 71.80
97.8
84EB-3 12/13/84 08:10-10:10
2600
74.562
525 26.38
96.4
B. Hydrogen System
Hydrogen Flow Rate, Dry scf*/day Sanple Volume, scf Mercury Found, jig Emission Rate, g/d
84PV-1
12/13/84 05:54-07:54
East Bed
6.0S6E0S
Test Mo. 84PV-2
12/13/84 12:53-14:53 East Bed
6.889E06
84PV-3 12/13/84 19:53-21:53 East Bed
7.092e06
65.897 <125
<11.49
65.046 <125
13.24
73.359 1450
140.18
*Std. cubic foot at 68#F, 29.92" Hg
SL 025696
-4V. Discussion
PPG Industries, Lake Charles has demonstrated compliance with the Louisiana Emission Standard for Hazardous Air Pollutants.
This report has been reviewed and approved by Mr. R. J. Samel son. Manager of Environmental Programs, Chemicals Group. VI. Approvals
vvs
-5-
APPENDIX A SaRpie Location - End Box
SL 025698
MERCURY CELL FUME SYSTEM
SL 025699
rreuminary f ield Data
PI AMT K1ALG
^At
+-*r.
, SAKPLNG LOCATION D
DUCT DEPTH FlOa WSCEFA* MAUL TO OUTSOC OF FORT
JUS*
NPPLE LENGTH S7S~
DEPTH OF DUCT /z-.o"
WIDTH CRCCTANCLL4R DUCT)
EQUVALENT OUACTER: Ur,t~- -2*OOCEFTPHTN**WMOOTTHH __ (2< X ))
ii
I"
I-
I-:
UI -l--i
i
B l--i--b
DISTANCE FROM PORTS u^tpfau
TO NEAREST FLOW
-/
DISTURBANCE: rtT *0-7
STICK OUICTERS
PPWfilKAM
7'-*"
STACK AREA:__ (R Y *______sO-Wttfi
LOCATION. OF TRAVERSE FONTS M CVOJUM STXOS
1 1
4 a.*
4 4.4
t.t
m. U. 1.4 a.i
U. _M_ IM IM
M__ 1.4
n i.i
..P. 4.1
.
IL. IM
1 1
*
n.a n.a
aa.a n.a
u.a i*.a
a.a aa.a
4.T u.a
.T a.a
a.a M
4.4 T.t
IM 4.T
M *M
IM M
4 *.* aa.a u.l 11.4 IT.* MM ti.a MM a.i 4.T T.a
i . at.a at.a M.a n.a n.i u.a MM u.a MM MM
4 V
at,* aa.c aa.a 14.4 n.a UM MM 14.* MM . UM aa.a n.a aa.a M.a M.l I1.4 M.4 MM MM
aa.a aa.a n.a *1.* IT.* n.a MM UM M.a
* aa.a aa.i 11.1 41.* MM M.4 MM UM
ia at.a aa.l M.a n.t 41M MM UM 11.1
:i ai.l a.a MM M.a 41M M.l M.l
u aa.a MM n.i M.a a.a M.l MM
:i -- aa.i a.a 1.1 Mm a.a MM
i4 aa.a a.a M* mm TIM T.T
It aa.i aa.a 1.* MM MM
;a
IT
n.a
ai.a at.
*.l M.l
UM a.a
TIM MM'
l* a.a ai.a M.4 i.a
IV aa.i 41.1 MM
M aa.i 44M MM
u MM M.1
u MM MM
11 MM
M.a
SL 025700
LOCATTM OF TRAVERSE FONTS N RECTUCUMA SXAOCS
7 ii*
n.a mm n.i
i.i >.}
i* *;# *.i m. n. M.a *t.i
a :r- *. it.* ia.a
n.l n.l
__ iiaa ii
i.i> Vv..Fr Cl"
ia. u.a
i>.a n.a
u.a
n.i
u.l
M.a
IM
M.a aa.a
m. i
fnt..aI
M.a a.i *a.a
i.a M.l aa.a
m.* M.a ai.t
n.a ai.a MM
u.a aa.a M.a
n*r..i
*i.a
i.a ai.l n.i ai.a M.l *a.i
*.* ai.i n.a 44.! U.l
M.a n.a n.i M.a
ii;
ti.a aa.a n.l at.* at.t
^ NM MsMaIrU MIMUMUIMKl11M mMmarlUaraomCaurt a
I 7* ^ . w .7r 2 foS /.2.C 7,0/
3 /i-i x 13
4 Jl-}
9.ez
5 gji. ir.il
6 X*-u 17 7 %T /
8 %! //tl* /A.1S
9
K) < II
12 13 *
14
IS 6
17
18
19
20
21
22
23 F> 4
8- -
APPEHDIX B Sample Location - Hydrogen System
SL 025701
TO A * PHERE
TRAIN
MERCURY CELL HYDROGEN SYSTEM'
APPENDIX C Sampling and Analytical Methods
025703
sl
C: 11
Part *1, App.
IMo 40 ProtocHoa of Environment
Arrmtx B--T**t Mxtmom
Mt-DmuiattiM or Puneon Owmoi ilacm Pmiii)w hut-Auui Punra--An Snwa
L imWMIUr at PrtMW^-U AppUoobUUp. Thio method aopUe* to the deter*
Of pHtlollAll OOMOMt Mf*
r <Hf) awlMlnM from chioralball plaata other aoureaa <*a medfled la tb* n* laUoae). abort Um eorrlor-o* atnom la iht duet or atadi It priadpally olr. L3 Prtadjrf*. HrticuliM tad coaeouo Be
i art withdrawn taoklactlcally Hat Um ea and eaPoctod la addle ladlna
byAi
After MUM dOutfon. Um toad* of a ls to 1M c Mf/mL Tba Tad by f `
tba i___ AX AroaffMfa Tba aandtlvAy of Ibla ao tba rocordar/a
A IMaAhar Aaowta A1
reduce* Id i
of Um IO BttlutflMQ*
AX Anofpda. ICt
tbAD if*4 moUr
raducUoo of tbs
H* (II) Ion la the
of
i*l
A,
are
UI
ALL IU ALA Ui. ALA aad ALIA it> apoctlaaly.
LU Proto Linar, Soroalllrata or quart* llaaa toblnc. Tha taatar mar uoe a hoaUn* ayttam capable of maintaining a eaa tem perature of 120*14' C (3te*Xt* P) at the
i axlt durtoe aampllnp to prevent water
Moic Do not nee metal i
ALS bwbiot Ft) tanplacara aonnaetad hi aartaa wtth t*ak*free around daaa fluinea or any tbnllar laak-froo nnneontamlnattne flttiacL Far the ftnL third, aad fourth kaptnem. the taab uae taapiaean that art modlflad by In* tba Up wtth a l*mm*ID (AA-bD tuba aataadtag to IX am (AS A) i bottom of tba flaaA
LL4 Add Tnp. Mine Safety
eiWT. uttb
AAl
Uoat with
aMAudWd
AAA
iaf Cpttadar. XAO-a
AAX Ptmad end bettor FaKcMama, lb
old la t
ifdMca--1 to coat
rylfaQX
AA4 Pbaaal CHaaa, to aid Miample ia>
~AA,j
niaaraflmi and dnalyefn
TbafoOowtneoaatpaaot la needed
AAl atomic ilNffMos J^c
Mftet a
iMrlUtiraqalMdone, corn
the optical cad daaarlbad la Sooth AAA Optical CM. Cylindrical i
i wtth
la Pleura 101-A wtth appradmaidy X motors of
.Thai
I a MJof Hp/ool (la 0.1 K ICU etaadard nbtmmd a atu of SAT ad Ht/aL
A dpperofua-Al JdaaUa# SVata. A achamatle of the aapMnt train la abowa la Pleura Idl-L It la dmflar to Um Method A trala (bmbUob of Method f rafan to Pena 00 of 40 OPItl Um aawipllnr inla corutrto of tha followinc component*:
1U Proto Jfoaalt Pilot TUta, DiffmnUml Praeuro Oawp* MWirbf SpUcm. So rometer, mmd Ooa Onullr OdimiudM Saulpmcmt Soma aa Method 0.
AAL
AAA VOriette naailbwr. To vary Um
volt*ea op Um optical coU from 0 to 4 volte.
AAA Hood. For vaaUae optical adl ax-
hiitfC
IA.T AAA
fntowwemMadUerr.iaRr oVtUaaaatotar
or
aquiva*
lent, capahla of maaaurtne a e*e flow of IA
Uten/mla.
SL 025704
628 I
C:12
Part 41* App. t
Tltlw 40--Pf*tdl(i pf InvIrMMMl
(LX) Into i 00Add 10 ml of the I KX aarf 1 ml of tho 0.1 MIC1 eM km aa i bunk (TJJ) ond 00 ml with datoniaad dfctilled Ihgmodlhr. htf--T.l fMfUm 1--iw of of thia method. taatora nlnod aad txportaocad with the to amufo relistolo rmuiu.
;be< to
>10 atainlom eteel or Teflon forruloa may ho wood. Mark the probe with hMUwWut tape or by aome other method to denote the proper diotaneo Into the dad or duet far each aampllnc point. Animbli the train aa ahown in nuro 101-1. ualnc (tt noeamaryi a very Ucht eoat of alltcono praaao on all (round fiaaa Jotrna. Oreaao only the outer portion (are APTD-OST01 to avoid poaoftlUty of oontaalnation by the aUlaoni paaao
Hots An empty Impincer may bo bmactad between the third Imptneor ond the dUn
Aftor tho aampllnc train ha* bled, turn on and aot the probe. If apoHaaMe. at the dealrad oporatlao imwtMm. Allow time for the tampmturao to atabOlm.
T.1.1 teeKCbadr Praoodaiaa. Follow the leak-check pmeeduraa outlhmd la Method , Section* 4.1A1 tPratom leak Chockk iUI
T.Ut Jbrcnry IMa Oparofloa. Maw
the (onaral paomduro (Ivan In Mothod .
Soctlan
fbr oKh run. roaord tlm dun
roqulrod on a data (hoot ouch aa tha ana
dwwalaniMtlM.
T.U Chlrulortoa of ftiwil hilkdlt
Saaao oa Method ft, Section eta
ctaanup proeoduro aa aeon ae the inSrk removed from the etack at the end of tho
Allow the probe to coot Whoa k eon be aafely handled, wipe aff any extemol parUoolale matter near the Up af the probe
off the probe up tlphtly while the naktaf train la oooHnc Capping would create a vacuum and <kaw liquid out from the tm-
<Citation <n Section 10) lor doeither
Ihwfw the probe and Impincer aaeembty in a cleanup area that la dean, pretarted from the wind, and free of Hfe onwtamkmp tlen. The ambient air In laberetorlm lecatad In Um Inunadlalr ddnlty of Hc-tulnc (acmtlea la net normally free of Bs oeotamlno Uon.
Inapoet tho train before and during aaaem-
Treat tho aamptaMtTfollowc
U1 Cbntaiacr JVO. i (Imptneor and Probel. Oainc e (raduated cylinder, mraeurt the Uquld In the first three bnpincora to
630
C: 13
Chapter I-- hvfciwimM Erelectin Aftaqr
Part *1, App.
within cl nL llsoocd Um rnturns of liquid pm wit (ex. M Figure 14 of Method IX This Information to neodod to calculate the mototuru oontont of tbo offluont gas. (Um only glam atone* bottlm and graduated ctlIndus that has* boon prodoanad aa tat Sec tion Til) Plaea the oontonto of th* tint thro* taaplnian Into a 1000 tal glass Miapt*
Dottia.
Ttktoinra that nMjn^th*|Mtoiddoof
not cat into Um sample. quantitatively re cover ttao Ht (and any condensate) fnn Um
TJJ MiKmx Flpet a 3-ml aliquot from the diluted sample from Til Into a MO ml volumetric flask. Add 10 ml of 0 percent UOi sad adjust th* volume to exactly MO ml wtth deionised dtotUlsd water. Them so lutions are stable for at least T1 bouts.
Norm The dilution factor wtll be MO/3 for this solution.
7.4 juafyeta CUIbrste th* spectrophoto meter and rseordsr and prepare the callkratlea curve as damribsd tat Sections 0.1 to 0.4.
7.4.1 Mercury lamplsa Itepeat the proco-
with appropriately stood aliquot* (tut mil
of eeeh of Um diluted samples (from Section TJJ) mitO two conesculive peek betebU
agree within cl pareent of their avanta
eaten, Tba peak msrtauum of an aliquot (asoopt Um M aliquot) must bo pmtar
than 10 pareent of the recorder fun scale. If
the peek maximum of a U-aU aliquot to off Mis on the recorder, further dilute the
It to alee meemm ended thet et lead ana aamplt from each stack test be chocked bp the method of atandecd eddltlona to eonfirm that matrix effects have not interfered teUMineiyda.
7.4J Cbafafner Mn i CSOtea 0*1). Weigh the Meat silica gri (er silica gal ptam tmplngarl to Um itssiml U g using a bulanen mdaatep maybe camtected In UmflehL)
fnllnse brush with seep end water. Uberally
ikM* wtth tap water, soak for I hour In M pvuant SMOfc and than rinse etth doMn
U flam OshOrefien. temlla th* aoratlao Mctem as shown In Figure Ml-A. Set
te etetet pruMuru entbejnrstlonmMjcylj
flask and adjust the votamM to umatty 1000 ml wtth dstontasd dtotltted water.
MO mm Hg (10 pa and use Um flowmeterteg valve and a bubble flowmeter or wet tod motor to obtain a flow rate of LSc0.1 liters/
mte through Um aeration eoll. After the
flow aaHbrallon to comptot*. remove the Wafcfe|d fUteBftnr fron the tytUOL
AS Optical CWf Meettap Svefem CWfbrutton. Udng a 90ml graduated cylinder, add M ml of detootoed dlsUUed water to th* bottle section of the aorstlan ceH and attach the bottle section to th* bubbler section of
tbo con. Attach Um aeration can to the opti
cal call; and while aerating et IJ Utera/min. determine the ---*--- variable traaaferm-
of mototurekTute opUeal call and In Um
M-ur o--m--u
631
SL 025706
025707
Chapter I--CnvirMUMfltat fralxlim Agency
M *1* Apf B
cm. ie determine the final total weight ef mercury In nanograna In the aeration oeil for cadi source ounple. Comet tor an? di lution* oiado to brine the sample In the working rmng* of the spectrophotometer. Titan coleeloto the He In pg (nj to ttoa original (elution ao foUowK
CumXFJ(V,io-* S
Bt 101-1
of mercury In allWank subtract-
DLP.-DOutlon factor ter the : solution (bgfoie filing to the
eon; u. OP..1M/* If the i
TAX) V*8otuti
ed for flection TA1. I0**-Conroteon factor, pg/ng. 8Aliquot setaoao added te
apelleablo national amhetan standard, uaa tho average of tha moult* of all rcpetiUope.
IX tiMUmMa 1. Addendum to Spidftcatlona for Indnoratar Tooting ot Federal Podlltioa. raa. NCAPC. Oocambrr X100T.
X Determining Duet Conoontratlon In a Oaa Stream. A8MK Performanee Toot Code Not IT. New Tort NY. 1MT.
X Drvorfcta. Howard, at aL Air Pollution Source Testing Manual Air Pollution Con trol District loo Angeloo. CA. November IMS.
X Hatch. WJU and WX OU. Determinetion of Suh-Mloogram Quontltlm of Mar* airy by Atomic Absorption Spectrophoto
metry. AnoL Cbm. <SMI IT. 1MX X Mark. LA Mcchenlcel tetgtoeerr Hood-
book. MoQrata-HBI Book On. Inn. .Mo* York.NY.lMl.
X Martin, Hebert M. Cunetructiow DetaOa ef taokineite Santee Sampling SgulpionaL DA SnelioamMdal FietaeUen Agency. He* aaorch Triangle Park. NC. PuMkntlan Re.
APTD-MkL Aprt IfTL T. Weeteru PridpWaflnn Dtahten ef Jdy
J Jtefeerr the Kg amlarton rate R In g/day ter cooUnuouo onoratlono Mine aquation 101-L For cyclic nratlwt eoo only the time per day each atact h In operation. The total Hg nlaalan nte from aaouiua wm bo the nun-
inllacacka.
WtAdMdOxlO-T R- k
tv, v^xvpj
MM.
K-OilM *K/mm Hg for motrio uafta. ITAI H/tn. Hg for Baghah untto.
xlfledlonrAn
and 14A teapacUroly. XT PetenufaHno qf Cbmgfloaoa. Baeh
performance toot aonolata of throe repetlUooo of tha mclkoltla toot motliod. FUr the purpose of determining cwmpHanru wtth an
April Mil
R.T, WA TodX and WX
offerers to Stack Sam-
DUM-1XI
Btafe Sampling Neva. 1*TX
1LJ with HO*
. APCA Paper Mo. ST-11X UWT.
IX Saaltlu WA. AT. J
WJT.
,A1 _ _ JtlKA*IT.
IfTX
IX SpodOn
aaPadaralfaidmtea, PHSLIiCAFXyST:>fcj
for Particulate Matter. Ms 1PU Annual of ASTM Standards Part ZX ASTM D-3-Tl. Philadelphia. PA.
1T1. IX VennarX JJX Bementary Plold Me
chanics. John WUey and Sana. Inc. Me*
York. 1MT. IX MltcfadL WA. and >CJL MMgett. Un
proved Procedure for Determining Mercury KmlmiOM from Mercury CeU Chior-Alkali Plants. J. APCA. Ml gT4-gTT. Ady ltTX
IT. Shlgehara. R-T. Adjuatmonte la the EPA Nomograph for DUferont Pitot Tube Coeffldenta end Dry Molecular Weights.
Nona. M-IL October IflTX
633
025708
C: 16
Fart *1, App. I
It. VoUaro. ILF.
for Soiapla Ttinn InDuotef
la InrtMo la
OA birtronmonul
Proioctloa Acme?.
Trtancto rut NC Mo
im
TM* 40 ProtocHon of favtmwont
lt. KMn, R, oad CI Uook Dm and *`t**--*-- to i OMtrte UiuunMoU. Am. Lap. paL ItTT.
30. Wator. AUoMplwrta Analyata. Ik of ACTM CUadar*. Fart *L O-llM-TL miadol-
ptala. PA. IVT4.
C
Chop*
C
634
c
SL 025709 j ;
r~
?
0MF1CI MAHOMITU
MVTmWTKM 101*1
?
C r 18
r
***.
L636
SL 025711
C: 19
Pwfdfaa A(*ficy
i/ Part il, Aff. i
IM MALI BALL JOINT BOM TVPLON CTOPCOOC
TO OmCALCfLL
1C/B MALI BALL JOINT
WPMLNhrUM Rpn 101-X AmmIbw
Si
02^lZ
3T
cr
1 \
!
SL 025714
fw tw Hwi AgMcy
Ftgun 101*4. Schwmlc of Mnftlofi
SL 025716
APPENDIX D Sampling Parameters, Field Data and Results
05*
0:25 /Us*--/*-
FIELD SAMPLING DATA
- f*/<b07*O
. fi-JhT */
PLANT & LOCATIONj
ASSUMED: Z HiO'vZ.O T7
INOUSTMES
fifty *C
Pa, 1a. WG 7P. *>>
DATE : nJn*! & TEST NO.:
EQUIP
MFC. { -P--------
METER BOX NO. &--*/
LEAK CHECKS
INITIAL k
FINAL
YD r> 9/9# A Ha: 7 Q?> SAMP. BOX NO.
OPERATOR
/jf/CfA.
y
TRAIN: PITOT: IMP. f-*
O ft ~ 7'----------
PITOBE: NOZZLE:
NO. /A
NO. /
TYPE <7 Cp Z>- W
,^-oV
ID, la. Oj?9 Ft* /?(?
STACK: DIMENSIONS / *Z*
AREA O 7?^ Ft*
K r A P REF.
/. .f*7 C FACTOR
WAKE FIELD METER CHECK CuJLlZi
riMt'
Comm W
/
2--
3
V
t
025718
k1
< t
7
dock Tlaa
o
-- Dir Cm
Iktll. CP
:t #.
Pita*
ar
la. S.O
/17 i .
AM s tit a/fir.
j^sr bfl*
Orlflc*
A
Dry Cm
-T&*M*....**P*
Z
' for ta. Toay. f r
Stack
Ptom.
la 1.0
5-w 18 T5 e>.o jee +s -.40
Stack Tcm*
#P
r 4iV
7*/ ei
44
/o 4lb .4 00 t**?
5 *** |D1 7L 8-S PSft Mu
u4
tr 4?0.f7f
\ *40 1>7 18 er
48
2-0 4*4 MAC .7S*
w 457.8SD 1 ?o </?/? S4S
?r Hi[Lrtfp hlo ?o </y). i9o I!**
1*0 lC i.Mo |n
/. f j|^
/.If bio
ft, e>r PMo Si 4 Ml
J7 2?? y* -O.A6
r.r79
yjIT
9/ ?.r ?^r /7
/r /./S' -To +<7.000 i.t*
/. 7-Tly v
?.r 2T6 n
.o
Ml
,rT 45011$* l.LS_ 4S4.4aSj 0*1
6a" 4S141S- 0.^1
1.1T (At |.5D|\3d l.SolnS
S\ o
1.6 *r 1.0
^4<r
4(,
4b ......... <4u
C7
7 V4I.4TT 0.17
7J" *kS,oo*
fo 4Lfl.*0 oMl
018$* 0.4 3
Iff 47s.no o.8a fr ^ y# 0.J3
- t<SO lii^
i*45 1 u 1-44 1/iA
`W Ins
\ *58 JuA
9f 7.o ?4v Ml VoHl
<*s 1* * 7M1
4t 7.*
^ST>
H 48
1.0 as-
-.48 UL
9 $_ (, .o (
\
C.D rVf Y7
/Dtl * i* o->1
/.L* l//S> U,
2Y? &_
riiir
o
(/
D: 26 Vm
n
*T $M
NMV. cr
nut
At
la. U
"i m
A
`/to.fls o ?r
/.to
/H>
\ -
hu
i* ir
Am1i Rlur to. Aj Tv
IV?
ItlM. --it--
So -olr
*
*
-
.
*
y. - rt i/ w`
5/ tf" /
^o.fwr - ^.3S'3 Ft * (Dry)' 55- /2~T
, 5Fl-
**WB P* - 0.</4 "WC
5 2*f** "* 5 P* -- ?. o5 "H*
Pn ba.-
"H* P bAJ
/ "Hg
Additional CoHMnts: hT ^ <^bm
:t-
?
:ii- S~^S^ %
SL 025719
D:27
ORSAT ANALYSIS
TP?
MkS
INDUSTRIES
Tcac no. 6*4
_________
Sampl L cation E^'ljQy ^4tvc.|C
Dace Analyzed by__ tA* V^T0^
Sample Type Xkj-V *<^r* ^
Volume (30 L minimum) Time (4 hrs. max. afcer sampling)
Il3
.
.
Orsac Leak Checks(Mandatory)
Before
<0
After
o*.
Orsac Test No.
1 2
3 4
5 6
AVE.
-go?. <0.o
c. 0
O.o
+ Op
as> ao-8 SQ>
0?~2o
A \ fL ^ fo
CO o o o
-Ji2TU-
7T-7-
st 025720
m
. /_
Teat No. 2*j/&&-1
Plant
INDUSTRIES
Inplnger #1
TJ7 3 g
a
Silica gel 7J? / 9 g
H--- TffVi
Inplnger
#2
gg>-7_l P7 4 >
--a^.-g
Total H,0
/
Iapinger f55*5 8
^3 --^ N - 75, 7 g
>./ZCcS
2*?7*"T _ / 2^5
Bottle No
810017 No'.
Bottle No.
Gross filter wt.
Avg. gross wt. Tare wt. Particulate wt.
ng Gross blldwt.
ng Avg. gros ng Tare w
t Blank''wt.
Date Tina Rel. Hun. Analyst '8 /1 /n/f4 12e>0
1222
Particulate wt. Blank wt. Weight of particulate on filter
_ng
Acetone Wash Beaker No.
Mis used
11 Blank Beaker Mo.
Gross wash wt.
Avg. gross wt. Tare wt. Particulate wt.
ng Gross blk wt.
g 8 Avg. gross wt. ng Tare wt.
g Blank wt*
g ng
*g ng
8
Date
Tine
Mis used Rel. Hun. Analyst
Particulate wt.
ng
Blank wt.
ng
Weight of particulate in washmg
Total particulate on filter
_____________ ng
Total particulate in acetone washng
Total particulate
Total Ha0
_____________ pd
FIELD SAMPLING DATA
P/2*
PLANT A LOCATION
ASSUMED: Z H,0>. > :Tj?*F 3
Bay
(yf'A' <*Pb* ** ^ 7tf-***
--____________________ ----------------"y-
^
DATE:
TEST NO.:/FVg/r-;
LEAK CHECKS
EQUIP.: Mva./Z^U.......... MEIEt BOX HO.
*/
INITIAL %
FINAL
ID /*. 99f A Ha: 2^CO _ SAMP. BOX NO. /?- */
TRAIN:
|P* PC/..*
OPERATORtfjf
______________
PITOT: IMP.
PITOBE: NO. /^ NOZZLE: NO. /
TYPE X Cp >-f*/
ID, In.ftJaP? Ft*/
,-0*/
WAKE FIELD METER CHECK
STACK: DIMENSIONS
AREA ^ lXS'*/ Ft*
7-*/ *<
63 _c*c
K r A P REF.: / <^7
C FACTOR_
Float
act
/
/
SL 025722
TUt la.
Clock TIm
HDattoyrC.mCF
P1a0it,or1t .0
/Tp
0 5D&.U& \.ao
r SoSMf \'}
/> BOQ.Tpo
/r l.-WS"
la*
.T3\4ao us
3o *a.C lea \.Xr,
jlftAeS .<
Vb |.oS
yr /./^ r 910,010 /,/5 ,fT >13-too- /. IS
5p.i03 1*05
S5i.ii3 l. 05
Wh.md l,of
7/" jss.1 p.'l
aPo $6/.*33 # 13 5ts.no 0,13
*/> Hft.Lrf D,7f
yr 57/-741 0.77 /oo 37H.W
r^VJo.
Orlflco InA 1.0
9rf Cm twTo> mM-.oamtJ
u"S Com
gocp Tofm.
T1m1o"fm1*** _
Stock Pimto1m.0.
Stock ToPm.
I.8S Si
6-d
48 -0^1 6 (a
t.^o nt ...
Ip*V
Ml
lAo
UA *K? *0
1<V> life L cs we 41 -OHS (c(
IAO ne
6x
HT
\.So It* tfl
2SH_. H7
u A* 6-a a? 4? l.7o u <W U*o *54 4(a
US
1. Uo 190 <4 la-d ?S4 Ml
/`7.T' /z# <?r Co
-o.Vo <r
/*7a7 ftf 17 6<
*75 /3^ 7* 4( A5 V7
/.*/ / 7/?
*t7 -ft 37
/4/ in 11
255
Mf /w n 5
*t7
itf ill 11 5 3 a^s V5 *0.33 IS
;.w3 171 It *3 a5o ^//!
Mi 111 10 5 3 as V.4
/. 21 1/1 1* 5.0. M*
-nia
/2I Hi i& 50 25{ 1L in ILL._1L 5 o iiL
0:30
vx*
T-dA?o*s2.:-31C7`/79/
w Ft*(Dry)
dditi nil Coainci:
/.i/Tfc e>iJtb
P55a
fahiba-
J. SJ
<9? 9- - /
SL 025723
* WC %
P*a
aPr*baa--^--
C?. 39 gl^<O.Q
"""wHh*ci
;5 tTa. -- _5*25"__#*H
Date
D:31 PARTICULATE data sheet
Test No. fr*/
- 2- pun
INDUSTRIES
#1 h28,2 g 8.a g
#2 iya.o I
1^
Imninger '3
6*5 / x
wjtZi
t 3 g
Silica gel No.
76?. 4 _g
7___ 8
l v *___ %
Total Ha0
Filter No.
Bottle No.
3J 1
Blank No.
(,*, 3 c.t * TC/ /CX? ______ Bottle No. ______
Gross filter wt.
Avg. gr ss wt. Tare wt. Particulate wt.
mx Gross blk wt. mg mg Avg. gross wt. _mg Tare wt. mg Blank wt.
Date Tine Eel. Hum. Analyst
i
img U/ll/lt /SO*9
&2L
i
ja'*g* (i/ii/k mo
Particulate wt.
_____________ mg
Blank wt.
_____________ mg
Height of particulate on filter mg
Acetone Wash Beaker No. __________ Mis used Blank Beaker No. Mis used
Gr ss wash wt.
Avg. xr ss wt. Tare wt. Particulate wt.
mg mg _ 8 mx
g
Gross blk wt.
Avg. gross wt. Tare wt. Blank wt.
Date Time
mg mx mg
B mg
Rel. Hum. Analyst
Particulate wt.
____________ mg
Blank wt.
____________ mg
Weight of particulate in wash mg
Total particulate on filter T tal particulate in acetone wash Total particulate Total H>0
-------------- g --------------- g ----------------pg
ml
SL 025724
# 0:32
ORSAT ANALYSIS
INDUSTRIES
Test No. Sample Location
Q-
Date
Aflk.r
^crJAarSlefonalyzcd bv OJ * VA^WylT
Sample Type
______________________
Volume (30 L minimum) .
Time (4 hra. max. after sampling).
Orsat Leak Checks (Mandatory)
Before
Ot.__________
After ______________________
Orsat Test No.
1
2
3
4
5 6 AVE.
+ 0
cJQ.1
CO o
o
-Ji2_ n'
H'Tu
*3"--
a^JL^yr
-? <j % n
,1& o'*5 SV
0:33
FIELD SAMPLINC DATA
3V*l0
ASSUMED: Z H,0 g
lEJr
MOUSTMCS _:Tt.*F 6$
P, In. WG
METER BOX HO. ZP"/
LEAK CHECKS IHITIAL _Jl
* D, 94,98A OPERATOR jlU
_OQ_ SAMP. BOX HO. ^O,______________
PITOBE:
HO. /Xf
g
TYPE_
c aJ></
^
NOZZLE: NO. /____ ID, in. bJ2%it'Jdj!.
TRAIH:
Ml
PITOT: IMP. 53 *<
y HAKE /
FIELD METER CHECK
STACK: DIMENSIORS /?/ , AREA 0, IfS'7 Pt*
FINAL
3 Ok
K or A P KEF.:
C FACTOR
FliM
Tut I*.
riMt
fb\t 0
<71^* T1m
HMty*I.nCF
Kla4t.MtlaO
/T*
nr LYiffao Q"71 0-845>
/y> 6W.fe23
O4rif1lM
-TSo
i5% te. g
/PI nt 4t>
f*l-S4 IOC
5L0
VlUar ttmf , nf* 24 7
frtaaacak.
TVflp*
vrK i*W -.03
,
f i
a
_
--
V* -
Z/Tfc OA9SO
x TdO.<?C^8
(;/ZpS)* o.Wco
- l3L2fe*l_^**y>
ddielonal Coxmiics:
X tm 1 S4
X Pb - O.U
h *- SI'Sl
r
*VC P -
"HC
"Hx s Pa * -- 0-03 "Ha
"fc P xbx^ 2*1- U7 "Hx A
: T* ToH
*f
i Tl 5^
SL 025727
D: 35
Dice ^7,
dl.H
>
125./ s ^ ^____ 8
Silica gal
N .Itt 5 _g
-- /I .*/
_g %
PARTICULATE DATA SHEET
INDUSTRIES
Test No.
Imoinger
i^
_8
#2 "CT"_g
A. 3 _JB
Total HtO ___ H 1
Plant!
Impinger C 1*0
13 hO/.f
_____0*?
-ST
8 8 8
Filter No. Bottle No. Blank No.
Bottle No.
Gross filter wt.
Avg. gross wt. Tare wt. Particulate wt.
mg mg
g . g
mg
Gross blk wt.
Avg. gross wt. Tare wt. Blank wt.
Date Time
B s mg /2//5//i/OY5 * * *R t2.hr/ti HOO
eg ' Y
Rel. Hum. Analyst
V%-
Particulate wt.
_____________ mg
Blank wt.
_____________ mg
Weight of particulate on filter mg
Acetone Wash Beaker No. ______ __ Mis used Blank Beaker No. Mis used
Gr ss wash wt.
Avg. gross wt. Tare wt. Particulate wt.
g Gross blk wt.
eg
Avg. gross wt. eg Tare wt. 8 Blank wt.
Particulate wt. Blank wt. Weight of particulate in wash
_*8 _*8 mg
Date
g mg mg "mg mg
Time
Rel. Hum. Analyst
Total particulate on filter Total particulate in acetone wash Total particulate Total H,0
mg mg . mtt ml
REMARKS: O.i 7o 9 <!
A** V .i ZUiS to8>
SL 025728
A.'--*
*0 .<- y '& 4aoa (a**} v^~l
.ISA ^
rH I
JI,'KV
f 0:36
Eft
ORSAT ANALYSIS
INDUSTRIES
Test No. Sample Location
Dace
1 9- "
^cruVWL&*cX-Analyzed bv M
Sample Type J^eyoici)
Volume (30 L minimum) Time (4 hra. max. after sampling)..
Orsac Leak Checks(Mandatory)
Before
d>*C.
After
Orsac Test No.
06^
1
2
3
4
5 6
AVE.
CO?
09
CO ___H2. ni
A A. 3' ** 0030
SL 025729
- 0:37
PARTICULATE HUSSIONS SMffUNS REPORT
r PLANT-NAME AND ADDRESS
TEST TEAM LEADER
t4ff CHARLES
KURYLA
t TEST I 84CM TEST : 9<fp-:
( TCST 3 WEI-3
RUN WRIER
( TEST DATE
1 12/12/84
2 12/12/84
3 12/13/84
c T TIK-START TF TIIC-FINISM n NET TIIC OF TEST,MIN.
r nr NET SAHPLIN6 POINTS
903
1103 120.0
S.
1338 1530 120.0
t.
810
1010 120.0
I.
DN
SAMPLING NOZZLE DlA., IN.
o.m
0.119
0.109
CP PITOT TUBE COEFFICIENT
0.84 0.84 0.84
<
PH AVERAGE ORIFICE PRESSURE
1.40 1.59 1.54
MOP. IN. H20
VN
VOLUC OF DRY GAS SAHPLO
12.353
82.771
79.344
CU. FT. AT METER CONDITIONS
TH AVERAGE 6AS METER TEIT
102.5
104.0
100.0
MtSTU
DEGREES F VOLUME OF DRY GAS SMTIED
77.399
77.180
74.542
AT STANDARD CONDITIONS*,SCF
c Ml TOTAL K2C COUECTEI IN
34.10
32.10
29.90
IMPINGERS 1 SILICA GELiH.
MU' VOLUME OF HATER VAPOR
1.405
1.511
1.407
AT STANDARD COMITIONSt. SCF
i PHU PERCENT MOISTURE IT VOL.
2.0 1.9 1.9
FHD MOLE FRACTION MY BAS
0.980
0.981
0.981
fco:
PERCENT C02 DT VOL..IRY
0.0 1.0 0.0
(
P02 PERCENT 0? DY VOL.,HIT
20.10
20.90
20.90
PCO PERCENT CO IT VIOL..MR
0.0 0.0 0.0
PIC PERCENT 1C IT VOL.,MY
70.20
79.10
79.10
(
FUND MOLEULAR NT-DRY STK GAS
28.83
28.84
28.84
FNV MOLECULAR UT-STK GAS
28.41
28.43
28.44
PD
IAROHETRIC PRESSURE* IN. H6. 29.84
29.79
29.70
V
PSI
STATIC PRES OF STK GAS IN. US -0.44
-0.39
-0.44
IN. ICO
t \
PS
STACK PRES,ADS. IN. HE.
29.804
29.741
29.448
T$
AVERAGE STACK TEIT. KB. F
45.0
45.0
44.0
IPS SO OF AVE OF SO ITS OF DELTA P S
1.0420
1.0340
0.9950
STACK GAS.IN. H20
VS
AVE STK GAS VELOCITY.FFS
57.52 57.38 54.24
AS STACK AREA.FT. SORD
0.8 0.8 0.8
OS STK FlOH RATE.IRT.DSCFM
2440.
2453.
2400.
QA
ACTUAL STK FLOU KATl.ACFN
2710.
2704.
2451.
PERI PERCENT ISOKINETIC
97.8
97.8
94.4
W 4` . -L-_. `
SL 025730
./ I
n
PsJ' I
l* LOCATION*
0:39
FIELD SAMPLING DATA
Sb2J?,6?
U4
ASSUMED: Z H.O:T..*F Pa* in. VC
lUt
mdusimcs
. TEST HO.: r^/v- ^
LEAK CHECKS
EQUIP.: MFG.
iD 0.1tn! i OPERATOR
_ METER BOX HO.
sakp- *"
/U//'
^ INITIAL k
PITOT: DtP.
FINAL
H
PITOBE: HO. >t//yW
Cp__________
HAKE _
-----------
NOZZLE: NO.
ID, in.
Ft* ^________
FIELD METER CHECK
STACK: DIMENSIONS
, AREA
Ft'
K or A P REF.:______
C FACTOR
pimc_____________________
rc n.
Data
Clock Dry Coo TIM Macar. CT
j2_ G24Z/2.
Pita* AP
f- o
/o Oil .Uo ?rO fltyO.OSO
7<? TiS73
OS/.flo
m
rt> si^ui
o 0C1.1SO
4*- mm fn IH.llS 9n iO.lOo
fetio
/Dp //2/&^ USio
iW
-i
co.7J *6 /
v/
KS ^ f/ rf7.Ml y\
r~
90*
_>
0
*>
Or&flca I Dry Cm
Pom TtM
At 1 Tom-* *K- -U. c
to M M Aw*^ Cmm
O./r 7 70 3 o.l 1H 11 .?
0.01 7: 7/
b01 71 It o1 10 11
3
j
o t__ 7# 3
3
iMia* Plica* l tm. TMp.
f P
Stack
Pimtm1s.0.
Stack Tom.
P
o. 1
7P
0.01 tb 11
0*1 11 7?
3
3 3
o.o? 7? 7? ?
o-oi H 1L
\1
r Afjb V
i-C u/> 7G# 75
SL 025732
L 0
o7 /7.7 9 n.rii
1
1
--------------(7/ dJ J40
-- . Xtoc -
^ r a> i
/
/f/= > <
nt
D:40
T1m
#ry Su
Hmc Af
/r*
OrifftM aa
A*7
t-*.. _ _ In.
-
VAUW aJr w
%
i
1W
*
-
Vn x Td -
Ft* 5/^ Ft*<Drr)
ddlclooal Coanenta:
-
t
--
1
*1
*
i F* -
iia-
*-
*VS V F* "b ;Fi"It Fa abiF
SL 025733
; Ta 5 Ta -
**UG "h* "Ha
*
?
1
JV /=v-/
Dace /yj/Z, f 8</
0:41
PARTICULATE DATA SHEET T.,t NO. ??/ PLS--L fU
10
CJU<-
tu
Impinger #1
5'C-J* ^ g *
Silica gel No. _______
| MJ ,,.
_8 _8
_8
Impinger 12
Total H,0
O
/7. 7
g
l 8
Inplnger *3
<5 (0 ^
g 8 JR
/oo
0*1 M ZFC/
Filter N .
Bottle No. /
/ 2^ 3 / BlankTNtf; _
loccle No.
Gross filter wt.
Avg. gross wt. Tare wt. Particulate wt.
mg Gross blk wt.
mg mg Avg. gross wt. mg Tare wt. mg Blank wt.
Rel. Hum.
mg --------------
mg mg
mg (*//<* no _x&&,
mg
Analys
Particulate wt. Blank wt. Weight of particulate on filter ________
mg g mg
Acetone Wash Beaker No. ___________ Mis usedBlank Beaker No. Mis used
Gross wash wt.
Avg. gross wt. Tare wt. Particulate wt.
mg mg mg
*8 __mg
Gross blk wt.
Avg. gross wt. Tare wt. Blank wt.
_ mg mg mg mg
g
Date
Time
Rel. Hum. Analyst
Particulate wt. Blank wt. Weight of particulate in wash mg
mg mg
Total particulate on filter
_____________mg
Total particulate in acetone wash
mg
T tal particulate
mg
T tal H*0
_______ P1
REMARKS:
-P /Jc
02573'' SL
0:42 FIELD SAMPLING DATA
/Q 2-
MONIES
ASSUMED * * H.sSfcl-jT,f*F________ 0
TEST NO.: MP^
Pm, in. WG LEAK CHECKS
EQUIP .: MFC.
METER BOX MO.
6. n9?^/j//1jld^/* ALJiUhi:-t--i---L---- SA_MP. _BOX BNOX NO.
OPERATOR
PITOBE : NO/^-- TYPE
Cp *"
NOZZLE: NO.
ID. in.
Ft1
STACK: DIMENSIONS
. area
INITIAL %
TRAIN: .pots' fr/9"
FINAL
tOa/G. 7
PITOT: IMP. ________ ________ ________
WAKE ___ ________ ________
FIELD METER CHECK
Ft*
K r A P REF.:______
C FACTOR
nut
Tut It.
at*
/z s'3
i^sr
Ctdock try 6u
tlM Naur.
r> Tfjs-t
nut
AP U. 1.0
/Tf
Oriflea A
la 1.0
Dry Taap.. *P
tv*.
7F
Xa. || ?
/Q- /'''S' ui.ST)
A oJ 7<
7* ' ^
77
So
a. on
7f ?
Va t/i.nc
.r?> U5.HS
Jju tuns
a ft n ft-.fc ?
6i97 * 3 $/ 3
1 Q,V7 $* ex 3
7ft l3iJU* 1*3- 330
1,47 R3 8* 3
Q r 01 8i 93 3
J2n_ iSiiiiwjji
$.07 &t 01 ,?
0.67 Si O.i 3
0.07 8+ 83 3
PUtar taap.
f
Iapl*~ 1"
Taap. P
-
Stack Stack Praaa. Tea. la l.o
"w"
i-1..
r
J
67,*//o
jlmu
/?)(
41 aMig
/*
waTf*lTrfl
AV-
| */7^t / >
X oo
P?l>>.< * /
o^
T*-
A
' cjL 025735 s.
jfZL^O 276
X2
J21L
7ttt: 1 > . ^ r
J*'0 --7-^
*
------------- \
*******
tint.
TMt It,
0:43
v* -
Ft* 5/T3C
x Td
<s/*p=>-
- Ft*{Dry)
ddltlonal Ccwcati:
SL 025736
5* ;fi aba-
"ME Fl> "h S Fl % P abl^
; t ;tm
"WG "Ha "H
*f *r
Jsis
wr
D:44 PARTICULATE data sheet
Is/*/------------ Test No.
Dace f 2*
P\/~7^
n sci.l___ 3 L. 0 3
Silica g 1 Lit* 8
No. ___ 8
__ IaA. 8
Impinger AIL
1#2 T3q
3 3
Total H,0 JO / 6
O. //*
Filter No.
Bo
Blank No.
Boccle No.
Gross filter vt.
Avg. gross vt. Tare vt. Particulate vt.
mg Gross blk vt.
_ s mg Avg. gross vt. mg Tare vt. mg Blank vt.
Particulate vt. Blank vt. Weight of particulate on filter
8
8
mg
Dace. Time Rel. Hum. Analyse
. "8 U=ilalMJl* _________ _________
ms
mg ,
L)
- - "8
Acetone Wash Beaker No. __________ Mis used _ Blank Beaker No. Mis used
Gross vash vt.
Avg. gross vt. Tare vt. Particulate vt.
8
8 *8
. *8 mg
Gross blk vt.
Avg. gross vt. Tare vt. Blank vt.
8 mg mg
....... *8 mg
Dace
Time
Rel. Hum. Analyst
Particulate vt.
____________ mg
Blank vt.
mg
Weight of particulate in vashag
Total particulate on filter Total particulate in acetone vash Total particulate Total H,0
8 8 jag
ml
REMARKS:
/A *W-mA~7
SL 025737
PLANTv4 LOCATION
D:45 FIELD SAMPLING DATA
ASSUMED: X H.O
r j/f
7?
INOUSTHIES
^T* *F_
------------- !----------------
Pn, in. VC
yjaU- TEST NO.:. JWPtS-1 EQUIP.: MFC.J&C-------- r METER BOX NO.
FINAL
*p6. 7fr> <___ * Hg
sJ</OPERATOR
us.
SAMP. IOI NO.
7&-
--/
LKALai no -
^-O
zs*..ooi ff i`
_______ -y=LJU
PITOBE: NO.
TYPE
VAKE
NOZZLE: NO.
ID, in.
Ft1
FIELD METER CHECK
STACK: DIMENSIONS
, AREA
Ft*
K or A P REF.: ____
C FACTOR
riMc
Tt a*.
Bat*
SL 025738
flMt
Tmc ,
Mm d*ck Dry Om a r TiM *m. _er
m
OrlflM
A
*5.% )
2T5
bfi** Mim ta*.
kMk
JP t
*
-
'
Vb -
x Td -
Ft*
(;/^)a Ft*(Dry)
Wddltlonal Comnti:
-
* -
------------------------------- r
i
IF*-
; Pi *
fi tb&*
"HC Fa -
**Bx ;?
"i Fa aba^
SL 025739
? Ta ; Ta
"WC
"h*
"Ha
*F
Dace
#1Implnger
saw . __SLnPa-A_____8g
Silica gel
_8No. ___ (,61.0
(H^-%
0:47 PARTICULATE DATA SHEET
Teat No.
Pl/S
Plan
INDUSTRIES
Implnger
____ g
>-- - ^ >
8
Total H,0 77 'C*
Implnger #3
SAC-I % C> ' ___8
Filter No.
Bottle No. Blank No.
Bottle No.
Gr ss filter wt.
Avg. gross wt. Tare wt. Particulate wt.
mg Cross blk wt.
mg mg Avg. gross wt.
8 Tare wt. mg Blank wt.
Date /Tine
mg
mg
mg
mg uhs/ii mo
mg
Rel
Particulate wt. Blank wt. Weight of particulate on filter
mg eg mg
Acetone Wash Beaker No. __________ Mis used
______ Blank Beaker No. _______ Mis used
Gross wash wt.
Avg. gross wt. Tare wt. Particulate wt.
mg mg mg __mg mg
Gross blk wt.
Avg. gross wt. Tare wt. Blank wt.
Particulate wt.
Blank wt.
__
Weight of particulate in wash ___
eg
Date Tine mg mg mg mg
8
Rel. Hum. Analyst
Total particulate on filter Total particulate in acetone wash Total particulate T tal H*0
8
8 J8 ml
REMARKS:
SL 2S?4o
APPENDIX E Analytical QA and Results, Emission Calculations and Chain of Custody
0257*1
CHEMICALS
9 . J. P
M 141
INDUSTRIES
E:49
INTEROFFICE/LAKE CHARLES
TO I. A. Ruryla FROM M* G- Carver
DATE SUBJECT
Dec. 20, 1984 Hg Analyses
Attached are the results fron the analyses of the saaples obtained while stack sanpling the Mercury Cell End Box (EB) stack and the Purasieve (FORA) Unit.
Also included is the calibration curve data and spiked recov ry analyses.
It you have any questions concerning these data, please call,
ce
Attachments
cc: M. W. Wood W. H. Cooper H. J. Hoenes
K. s. Konoroski
SL 025742
MERCURY ALYSES DATA FROM DECEMBER 12 fc 13
E:50
STANDARDIZATION
Hg tactual) (ug)
Hg (analyzad) (ug)
i SPIKED RECOVERY .! DATA *
Sample
Hg spiked Hg ree.
(ug)
(ug)
X rec
1.0 0.80 0.60 0.40 0.20 0.00
0.89
0.68 O.SS 0.38 0.18 0.00
PURA-2 EB-2 BLANK
0.88 1.02 0.00
0.88 0.97 0.00
100 95.1
--
SAMPLE ANALYSES DATA
-
RUN ID
Hg (ug)
-
PURA-1 PURA-2 PURA-3
EB-1 EB-2 EB-3
< 125 < 125
1450
525 1430
525
"
SL 025743
ACTUAL -VS- INSTRUMENT RDING
Coleman model 00
RBADIMO ( U |)
C'W'Vtt v.3/ts/7t
BARBERTON TECHNICAL CENTER
1:52
V.......... f
............................................................................................ ...... .... i...........>.....\.....i.....i.....i..................................... *..... *.....*.....
-i.......... *...........I...........`........... i...........I*
*1--.....................................
* * *J *
. ........... .
4^.
.......... |...........i........... ......................................... {...........*........... i........... -...........*;-------
....... .
M*
,... .
.....i..... i.
---*--
*''******
Xu-, s*.
!3-r.7
7
- k....
J*.3?
:.... ......vs^ 0^57
om c>n-*ia wv.3/is/71
lRBERTON technical center
Barker! a, Ohio
3 3 4 5 * 7 l ; ) 1113 13 14 1$ H : 17 It It -30 31^33 : 33 ; 34 35 34 : 37 :> :3V : 30 : 31 :j:
'h
13 :
.itr3i.tr:.
4 ::::::::::
IS :
r? ;e>rw
j
.........>* y^*i**"`>**-**f......-- *-f < **! ---} -- *!................* 4- - -- *<...... *
- \9. /
.......*-^*^*
mok
"<.......... r
........ .
:%
31
3$ ' SL 025746
*****
/9:S3 J.lj.ifj Lj
-#S
............V`
oi
/4p.fc
....
CHAIN OF CUSTC RECORD
bS: 3
eta
SLii&>vStL,-
JjJi2
4
ff / /V-/ 'S'1/,g^--g
gV/V- 2--
ryC.5t^22CT
z
uiihed by: Wowa**/
Data/Tima ftacafwadby:
tJnkklii*
7
Is I
/
ssiT/S
Raliriquithad by: (SJt**
? PL/-
*>UtX
&I7Z2/Z2ZS Oata/Tima Raeatvad by: A/bwMM/
tuithad by: IStpnttyH)
Crt t*
uithtd by: Kbwiv^ o
ro m VJ ______ JS
DDaatatJ//Tima Raeaivad by: rtynnml
Ralinquithad by: (S*t***n)
Data/Tima Raeaivad for Laboratory by: dywim/
Data /Tima
Ramarki
Data / Tima Raeaivad by: (tbMiiw/
-55-
APPENDIX F Sailing QA
SL 2574S
F:5G CALIBRATIONS * QUALITY ASSURANCE
_*NRAL
All measuring equipment PPG uses Is Initially calibrated before use. Equipment which can change calibration Is both checked upon return from each field use nd Is also periodically recalibrated In full. When an instrument Is found out of calibration. It Is so noted In the report and appropriate adjustments are Mde t the final results. The equipment is then repaired and recalibrated or retired as needed. Specific equipment Is handled as follows:
PITOT TUBE
All pitot tubes used by PPG, whether separate or attached to a saapllng probe, re calibrated using EPA geometry standards. In general, if a type "S pitot tube is assembled correctly, and positioned properly. In relation to the probe nozzle. It will have an average Cp of 0.84. As long as it Is not damaged. It should not change Its calibration. The recalibration schedule for pitot tubes is related to the physical condition and usage of the pitot tube, not a fixed time schedule. Pitot tubes are calibrated before each field use.
ORY GAS 1CTER AND ORIFICE METER
All PPG meter boxes are calibrated upon purchase and at least once every six months against a secondary test meter (one calibrated against a wet test meter) according to their usage history. Basic procedures are outlined In the EPA Publication No. APTD-0576. The only differences are In the choice of flow
*tes used and the volumes metered at each flow rate. After each field use, :lck checks are performed to insure all changes of less than 21. These checks coopare the orifice against the dry gas meter. If greater than 21 changes cur, recalibration and repair are instituted. EPA and PPG Method 5 audit -rile s are also used In the field or at the laboratory.
NOZZLES
Each nozzle Is calibrated upon purchase, and thereafter whenever It becomes apparent that the nozzle has become damaged. Each nozzle is inspected upon return to laboratory from each field use. The diameter Is measured on four different axes, with the high and low readings differing by no more than 0.004 inches as a tolerance.
!EWERATURE MEASURING INSTRWCNTS
After each field use, the thermocouples or thermometers are calibrated against 4n ASTM precision mercury-in-glass thermometer across a wide range of temperatures. If the Initial reading Is not within 1.51 of the absolute temperature reading of the standard thermometer, the Instrument is adjusted until it Is in the acceptable range.
$1
9
%
F: 57
WAGMEHELIC gauges Aft r each field use, each magnehelic gauge Is calibrated against an Inclined nanometer at three different settings (low, medium, high) over the range of the individual gauges. If the readings differ more than $% from the monometer readings, the magnehellcs are recalibrated.
BAROFCTER
After each field use, each barometer is checked against a mercury barometer.
SPUME ANALYSIS ??G Industries, Barberton Technical Center, actively participates In the EPA quality assurance audit program, i.e.. Methods 3, 5, 6, I 7,
0^1$ SV
\
irroet u. itm i, ihhi m* miMtim t.
f. I. HI )| IMIlltM,
*ir - oc* 0 ' uxuc mui
it* it*
MtUHilHtTNI f V#* tnnM
< lIKt tM 1 NlUfMI - IM
tU Mlltllt IKMltt
sitBfjii mu
e,it t.nit O.Ntl,
It* - (IKK *tt*
.{r*.mn.
D.IHI O.tIH r.tIM
ti!tui.uiiftiitt
.1
...
* **S *m
'ft
SL 025751
I1700* NO. LfNN 0. MU '
P> ** MPK KMItlllt IOC.
MlliTWt M *4701
fill * 00)
tsifis* MRU!
II* *1* II*
ynip^f
F:59
cr:?
itw Minn
< ii m t
MuyMM IM
Mill (Wit NT*t
IfSMJU IUII
0.7)**
0.1)** B.7)*
.UMIIK.
.!*M
0.1*1*
0.7*1*
UltllLUlUIUU
*.
:J
1*'K3 o>
SL 025752
I
N*1 S 5? f
' |H-f- H1 1
Ml:.
METCK COX IDENTIFICATION:. prm s/a) e$3(f
n
&UJ/ **
.CAUIRATION MUCK IDENTIFICATION: JSLiZZ0C-
in
CM
ain
, lAKOMCTRlC fRCSSURE tl- 29.V PB 99
to. K|
AFfROXIMATC now RATE IB) tot
.53
,91
/<4 P
ORIFICE READING
1 AH 1 to. HjO
0. 0.4 /C
3^
CAUIRATION METER
GAS VOLUME
iv<,l
H)
METER COX METER
GAS VOLUME
IVi
H>
4.C7V-
s.i^L L.113
9/77 5.54* 7.743
4.77/
.Um4-
TEMFE RATURE
CAUIRATION MITER
METER IOX METER
INLET OUTLET
W f
(W) f
74 J 75.7
77 74 77 76,7 n% 77
7? 77.7
average
(lit) *F
74 74.r 7^.y_
77.5" 77. 4
INLET
M *F
OUTLET
Hit) f
AVERAGE
*F 7f
96. S 7U /0&.3 /d,7
TIME
W)
ato.
/AAA /AA /0.AA
/AOA /#.AO
METER IOX METER
COEFFICIENT (Vi
^751
.$777 .979*
1
(OHO)
474
/.!?
/tf? /.f?
7TT- 196 f TvT
i *fk %/ oH
AH
AMf . ------------- |-- --------- 1
% fli * 4M)
v*cT
V|, rtrf * 4*0) 'fit
v< . 410) (Ffc . *j|
WHIM: AHf ORIFICE FRESSURE DIFFERENTIAL THAT CIVIC0.75lOF AIK AT TO* F AND 2I.IE totfcft OF MERCURY,in.HtO. TOlCRANCI 10.IS
TT'-'i , !
1 tTTT : r r-'T-;-
i*i *
/
^'9ufe 4- 6**ntple data ibcct lot calibration ol meter box gat meter againtt a calibration drv gat meter (Englith unite).
i
6vvvvv*^>-
'CtJC/
CtJX&K+Hv* A-t.
. tLl/S'J
WC/9*V AU4^L<| 0^-l-'X. A^-^'LS' *
y
-5 Motor lot Hwtlfttitloi> 0M Calibrated bv; tAV\pHk^
_ jr>
Dedicated OGM S Point Sol rootUr
, Collbrototf by;
__________ 0ete:_JLkJfe3__________
IoVIqt________ Calibration Motor Identification
Tdt
Poto;
laroaetrlc Protiure IP^I: Afl.^1
In Hg
Approilatte Flow lato (01
cfa
OH flea loading
(OKI In KjO
. O.S
Calibration Motor
Cat Voluae V ft3
('U*.mo
MMk
Motor Ion Hour
Pat Voluae
ft3
41. ILL . i\ .ifc-i
Temperature
Calibration Motor
i
Meter lot 9 oUr
Inlet Outlet Average Inlet Outlet Average
,tdf1 *W <*dt>
<`dl>
ltd,*
v
*F *F F F F *F
*1*L M '
OL iL
tir
Inti /al
At
q*4 all
i. /.
TTTB"
qrin
'K IS
*n 11
it w
Hi. <i** loC
tn 4t.
107
*
l.i
w n 74
S4 Ilf
TOOL 111
w
i
iff
io
IL?
'*! .ML -JCMB
*11
7Lm
115 lo>
116.
.Oft! 1 T -- n
"L
llo
IAL
i/L
Tine (0) atn.
10 io
IA 10
Motor Ion Motor
Coefficient
u
UHt)
'O.TIT3W
1vi-y-
TFT.V --
6,oi "T^ST
emei
i.li
IO HV iaH V krii -kAfl \o WT?K*7+ r^i3B r*i- L
i________
15 A.QvtlA IO
i.W I.CB
r1
B.1M "B3BC 75
OArt
IJmT
'll n
iLVl
*IO
ion in
! 1
"STBS"
o-iliM
o to
<J7
1.0 ^.o
o.oi4"
L' P tit
uarHn
'
4V
ri
7L
14.
I3C 1M
41 "1X3!
MO
Mi
to o-ino 0.01
A.0151
5.01
(ji
1
l*oAifo
*r*-.*i **
F:60
ah# . * Pb(ttf * 4601 d|(Td*>
*
, .t
!ii. JSLi22-----------d Itd, * 4601 ,,b , *M#)
UHCRE: *M0 Orifice Protiure Differential that give! 0.7$ da of air at 70*F and 29.92* of aorcury, In HgO. foloranco *0.1$
Hater let Identification *5^3 Calibrated by: fo.X^rv^S
Oate:_
1-a.vw
Dedicated DCM S Point Splroaeter Calibrated by: ftwtx<toia Calibration Hater Identification Barone trie fretture (Pfcl:
Data; tdi OS
In H|
-a- O.OnfQH %ltd 60) f^lTdt)
*
ltd *601 Ud( 0)
AH t <Pb * n.i'
MKttt AH# Orifice Preswre Differential that jive* 0.75 cfm of air at 70*f and 19.91* of nercury, In HjO. Tolerance *0.15
F:62
iompany Name:
TPa.
N.
PITOT TUBE INSPECTION DATA SHEET
Pre-sa*>le . Oate H hl /8-t
Post Sample Oate t-3-&
YS
NO
NO *
r
r o'
/ _ O' /*
0.815 o. **0 o. *t .37*
0
level? obstructions?
damaged? -10* < a < +10* -10* < oj < +10* -5* < Bi < +5* -5* < B* < +5*
T*S
bo o,,
3
o' o' .
I*
Y 8 of
A 0-fi>u
1.05 Ot < Pa < 1*5 Ot 1.0S Dt < ?b < 1.5 Dt
3/16" *4 Ot '< 3/8"
0*4^ 0.4-1* o.vrs
A tan y < 0.125"
o
A tan 8 < 0.03125*
O
Pa - Pb t 0.063"
Counts:
* SLIGHT MtAe* ^7>nc
of fUgf
FlLf> 76 SMOQ*H*tCSS
pitot tube/probe number
/
meets or exceeds all specifications
criteria and/or applicable design features* and is hereby assigned a
pitot tube calibration factor of 0.84.
**
Signature
Date _ n/n/H
u. <s cm u.
m. *o. *** i.
Kk MtlMt *r IM tktn(Ml< M
** If*
gratia* kiUN* * k'ut tx6 Mt tt tilt
u* %m * tkii m*.
'Vfc+L*-
SL 025757
*