Document jBxGLoMw2dNR9EzXYjazoMpjR
DOW CHEMICAL U.S.A.
Building 8601 July 17, 1992
LOUt&lANA DIVISION
p. o. sox ISO
PLAQUEMINE. LOUISIANA 70768-0180
804 38S.S000
Cathy Bilello - Env Services - B-3502E - Plaquemine Tim Holder - Plastics Adm - B-807 - Plaquemine Mark Mitchell - Plastics Env - B-807 - Plaquemine
cc: Kevin Johnson - Poly C - B-8601 - Plaquemine Poly C NSPS File - Building 8601 - Plaquemine
NSPS SUBPART DDD, PROCESS SECTIONS, POLY C/LA. DIVISION
Pursuant to NSPS SUBPART DDD definitions for process sections, equipment assignments have been designated within Poly C to conform to these guidelines. Attachments Number l through Number 9 are index flowsheets for Poly C showing the color coded elements that comprise each of the of the defined process sections. The key process elements for each of the process sections are identified as follows:
RAW MATERIALS PREPARATION
Raw materials for this process section include ethylene, solvent, octene, premix (including premix raw materials), co-catalyst, hydrogen, and catalyst kill. Several areas of the raw materials preparation section are assignable to one process line only, i.e. train specific. The other areas of raw materials preparation are common to all three trains.
The following describes the raw materials prep section for each of the three process lines:
This section begins with the ethylene feed to the process line and continues through to the inlet of the reactors. It includes premix, co-catalyst, and catalyst kill feeds to the polymerization reaction section. The key process elements included in this section*are the ethylene purifi cation beds, the ethylene compressor, the solvent/ethylene mixing ejector, the reactor process feed temperature conditioning exchangers, and all process piping from the feed ethylene through to the reactor inlet connecting these elements. This section also includes the premix/co catalyst day tanks, pumps, and all process piping between these elements and to the polymerization reaction section feed inlets (see Attachments 3, 4, and 5).
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AN OPERATING UNIT OF THE OOW CHEMICAL COMPANY
DO A 01.761.4 OONFTDFNTTAl
Cathy Bilello, et al July 17, 1992 Page 3
MATERIAL -BECQYEB (continued)
This section begins at the outlet of the post reactor static mixer and continues through to the solvent/ethylene mixing ejector, through the ethylene recycle compressor, and through to the polymer outlet of the second stage devolatilization vessel. The key process elements included in this section are the post reactor devolatili zation pre-heater(s), devolatilizing vessels, first stage process gear pump, the vacuum system components (drums, exchangers, and pumps), recycle column, coalescer, recycler condensers, recycle drum (D-6X1), process solvent purification beds, recycle ethylene compressor, processr solvent pumps, and all process piping between these components (see Attachments 3, 4, and 5).
The common material recovery section includes the solvent/ monomer storage drums, the drum outlet pumps, the solvent waste drum, and all process piping connecting between these components and to the other sections (see Attach ment 1).
PRODUCT FINISHING
There are train (process line) specific finishing sections, as well as a common product finishing section.
The following describes the individual train specific product finishing:
This section begins at the outlet of the second stage devolatilizer and continues through the check hopper vessels. The key process elements included in this section are the second stage process gear pump, the addi tives side-arm extruder and weigh belt feeder system, static mixer, pelletizer, spin dryer, classifier, transfer system and check hoppers, the pellet water recirculation system, and all piping between th^se components (see Attachments 3, 4, S, 6, and 7).
The common product finishing section begins with the outlet of the additive storage hoppers, includes the transfer system supplying each train specific additive hopper (HA), includes the additive bulk rail car unloading system to the additive storage silos, the additive reclaim hopper, and the additive tank truck unloading system (see Attachment 7).
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00 A 0]76]5
CONFTDFNTTm
Cathy Bilello, et al July 17, 1992 Page 5
WON-AFFECTED AREAS (continued) section. The utilities support systems include the plant air system, cooling tower and chill water systems, high and low pressure steam systems, DOWTHERMA and hot oil systems, and the mineral oil system (see Attachments 8 and 9). All instrumentation that is part of equipment within an established process section is assigned to that process section. Two copies of this report detailing the Poly C facility process sections under NSPS DDD for Polymers will be filed one at Environmental Services and one in the Polv C NSPS file.
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Sr. Production Engineer Polyethylene C Plant (504) 389-6249 Attachments pb
DO A 017010 CONFIDFNTTAl
UNLOADING / STQRAGE CONCERNS POSSIBLE PROBLEMS / PREVENTIVE MEASURES
7. CATALYST COMPONENT VAPORS BACKING UP IN NITROGEN LINE PREVENTIVE MEASURES: A. Nitrogen line has higher pressure. B. Check valve. C. Double block and bleed.
8. CONTAMINANTS GETTING INTO CATALYST VESSELS PREVENTIVE MEASURES: A. Positive pressure nitrogen pad. B. High and low pressure alarm.
DO A 0 1 7 6 1 7 C O N F ID F N T I Al.
10/08/92 UNLOADING STORAGE AREA.RC TXT
DOW CONFIDENTIAL
1T
1l
1 RC TEST NO. l
MATERIAL)S)
1i
1i
1i 1 RCT-85-0111 i ISQPAR E
1l
1l
1i
1 RCT--84--0189 l ISOPAR E
1l
1i
1l
1 RCT-85-0112 i OCTENE-l
1l
1i
1l
1 RCT-8S-0113 l 501 ISOPAR E
1 l 501 OCTENE-l
1l
1i
1 RCT-91--0805 l 751 ETHYLENE
1 l 251 MOLE SIEVE
1[
| MAXIMUM
| TEST |
| OPERATING | TYPE |
| TEMP, j (DEG C)
1 1
1 1
11
1 50
1 | DTA
1 j
11 11
| 50
1 1 AT
1 1
11 11
| 50
1 | DTA
1 1
11 11
| 50
1 | DTA
1 I
11 1I
1 50
1 | ARC
1 |
11
11
TEMP ONSET MAX, END (DEG C) ND
ND ND
1 1 I 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1
DELTA H (J/GRAM)
-131
MAX. TEMP, t |
1 PRESS. RATE j 1j 1 (DEG C, PSIA) j
FLAMMABILITY FLASH PT. (C)
AUTOIGNITION
DETAILS
DUST
|
EXPLOSION j
DETAILS j
Kat, bar-m/sj
1 1 1 470
1
1 | 0.91 TO 7.01
| 7.0 C j 382.0 C
N/A
1 1 |
1
11
1
| 0.91 TO 1.6%
1
1
| 7.0 C
N/A
|
1 j 366.0 C
1
1 1 1 470
| 0.81 TO 6.i\ j 15.0 C
M/A
1 1 |
11
1
11
1
1 1 470
1
N/A
1 |
11
1
11
1
1 1 375
1
1 1
11
1
11
1
uo A 017618
C O N FID EN TIAL
10/08/92 UNLOADING STORAGE AREA.RC TESTS TABLE
I
DOW CONFIDENTIAL
CATALYST PREPARATION AREA
C O N FID EN TIAL
10/08/92
0-331A
DOW CONFIDENTIAL
TRAIN 3 CATALYST FEED SYSTEM
TO R-231
-4
D-331 D-307A
-A
P&-
-_________________
P-331 A
P-3318
p----------------------------------------------------------------------------------1
D-331A D-306/307
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10/08/92
DOW CONFIDENTIAL
STANDARD CATALYST RAW MATERIALS
ISOPAR E (Flammable Liquid)
BUTYL ETHYL MAGNESIUM, 15% IN HEPTANE (Pyrophoric When Heptane Evaporates)
ANHYDROUS HCL (Corrosive)
ETHYL ALUMINUM DICHLORIDE, 15% IN HEPTANE (Pyrophoric When Heptane Evaporates)
TETRA ISOPROPYL TITANATE, 50% IN HEXANE (Decomposes Slowly in Air and Moisture to Form
Isopropanol)
CONFTDFNTTAl.
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10/08/92 CATALYST AREA.RC TXT
DOW CONFIDENTIAL
STANDARD CATALYST PREPARATION
Magnesium Dialky 1(MgR2) + 2 Anhydrous HC1-------- > Magnesium Chloride (MgC12) + 2 RH + 3800 Btu/lb HC1.
40 Magnesium Chloride + 12 Ethyl Aluminum Dichloride (EADC) -------- > 40 MgC12 * 6 EADC + 6 EADC.
40 MgC12 * 6 EADC + 6 EADC + 3 Tetra Isopropyl Titanate (TiPT) --------> MgC12 * Ti(0C3H7)C12 + (C2H5)*
"Premix Catalyst"
10/08/92 CATALYST AREA.RC TXT
DOW CONFIDENTIAL
CATALYST KILL IN D-308
MgC12 + 2H20 -------- > MgCl(0H)2 + 2HC1. C2H5A1C12 + 3H20 -------- > 2HC1 + 3A1(0H)3 + C2H6.
Ti(0C3H7)4 + 2H20 -------- > Ti02 + 4C3H70H
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C O N FID EN TIAL
10/08/92 CATALYST AREA.RC TXT
DOW CONFIDENTIAL
CATALYST AREA
1. Runaway reaction in D-305 or D-305A
PREVENTATIVE MEASURES: a. HCL addition shutdown on high temperature
by the MOD V. b. PSV's to D-308
2. Overfill D-308 and Backup thru Vent Header
PREVENTATIVE MEASURES: a. Redundant High Level Alarms b. Transfer shutdown on High Level by MOD V. c. N2 purge on vent line to D-308.
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catalyst_area.rc_txt
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DOW CONFIDENTIAL
CATALYST AREA
3. Flushing Active Catalyst from D-308 to D-809
PREVENTATIVE MEASURES: a. D-308 contains water at all times. b. Sample required for transfer.
4. Materials Back-flowing from Mix Vessels to Storage Vessels.
PREVENTATIVE MEASURES: a. Higher N2 pressure on storage tanks b. Automated block valves.
A 017625
C O N FID EN TIAL
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)
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CATALYST AREA 5. Unloading EADC or ATE into BEM or Vice Versa.
(Cross Contamination of Catalyst Components)
PREVENTATIVE MEASURES: a. BEM tank trucks flange connection is unique to BEM
6. Cross-Contamination of Catalyst Components During Unloading.
PREVENTATIVE MEASURES:
a. Requires independent input by two operations personnel.
b. Maximum heat release with worst case cross-contamination of Ethyl Aluminum Dichloride into the Magnesium Alkyl tank or vice-versa is a 25 Deg C temperature rise.
CATALYST AREA.RC__TXT 10/08/92
DOW CONFIDENTIAL
uo A 0376P6 C O N F ID E N T ! A[.
TT
I RC TEST NO. 1
MATERIAL(S)
1
1
1
RCT-S2-0151 1 ISOPAR E + TEA +
1 HEC--3 CATALYST
I
1 RCT--82-0147 1 ISOPAR E +
I HEC--3 CATALYST
1
1 RCT--82--0062 I ISOPAR E + TEA
1
1 RCT--82--0148 1 ISOPAR E + TEA
I
ARCT-912
1 1 ISOPAR E + TEA +
1 ETHYLENE
1
1
RCT--92--0072 I ISOPAR E + TEA 1 -1- AIR
1
| MAXIMUM | OPERATING | TEMP. 1 (DEG C) I 1 | 60
1 1 1 | 60 1 1 1 | 60
1 1 | 60 I
1 | 60
1 1_
1 | 60 1 1
-p | TEST
TEMP ONSET |
| TYPE 1
MAX, END
|
1 1 (DEG C) j
1
1 OTA
1 1
ND |
1
1
| DTA
1 1
ND |
1
1
| DTA
1 1 UHK, 310, 330 |
1
| DTA
1 1 275, 285, 295 |
1
| ARC
1 1
1
1
1
| MCC
1 1
|
1
1
DELTA H (J/GRAM)
-
-247.0
nr MAX. TEMP, t | i PRESS. RATE j
i1 i (DEG C, PSIA) |
i1
i1
i 475
1
i1
i1
i1
i 368
1
iI
i1
i1
i 408
1
i1
i1
i 445
1
i1
i1
i-
1
i1
i1
i1
i-
1
i1
i .... 1
FLAMMABILITY |
OUST T
FLASH PT. (C)j EXPLOSION j
AUTOIGNITION j DETAILS
j
DETAILS
j Kst, bar-a/8j
1 1
M/A
1 1 1
M/A
1 1 |
1 1 1 |
1
I 1
M/A
1 1
1 |
1 1
N/A
1 1
H/A
1 1 1
M/A
1 1
1 1 |
1 1 |
1 1 1 |
1 1
DO A 0 1 7 6 2 7
CO NFIDENTIAL.
10/08/92 CATALYST ARKA.RC TESTS TABLE
i
DOW CONFIDENTIAL
ETHYLENE PURIFICATION
1. OVERHEATING THE ETHYLENE BEDS DURING PRE-LOADING. PREVENTATIVE MEASURES: a. Alarms at 100 deg C (Mole Sieve). b. Regulator on ethylene bed preload lines. c. Ethylene bed HV's which open to the flare. d. PSV1s to vent header.
2. OVERHEATING THE KATALCO BEDS DURING PRE-LOADING. PREVENTATIVE MEASURES: a. Alarms at 120 Deg C (Katalco) b. Low pressure (10 - 12 psig) Katalco preload lines. c. PSV's to atmosphere.
10/08/92 ETHYLENE PURIFICATION AREA.RC TXT
DOW CONFIDENTIAL
ETHYLENE PURIFICATION
3. COMPRESSOR INCIDENTS (ETHYLENE DECOMP. ETC.)
PREVENTATIVE MEASURES: a. High temperature shutdown. b. Low suction pressure shutdown. c. High pressure shutdown. d. High vibration shutdown.
4. FLAMMABILITY - 2.7% TO 36% BY VOLUME IN AIR
PREVENTATIVE MEASURES:
a. HAD's, sprinkers, combustible gas detectors and monitor guns are employed in that area.
10/08/92 ETHYLENE PURIFICATION AREA.RC TXT
DOW CONFIDENTIAL
DO A 0 1 7 6 2 9
C O N FID EN T TAi
NORMAL REACTOR CONFIGURATION
TO OGVOLATIZATlON
O0 A 017630
c o n f id e n t ia l
7
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10/08/02
DOW CONFIDENTIAL
239 P9I0 $Ttm
DUAL REACTOR CONFTGURATION
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recycle SOLVENT MO OCTENE
ethyletc hydrogen
10/08/92
I DOW CONFIDENTIAL
DO A 0 1 7 6 3 1
CO NFIDENTIAL.
REACTOR AREA
1. REACTOR AREA RAW MATERIAL LIST
a. Ethylene b. Solvent (Isopar E) c. Hydrogen d. Cooling and Chilled Water e. Triethyl Aluminum (ATE) f. Premix Catalyst g. Calcium Stearate h. Mineral Oi 1 i. Nitrogen
ly ilN J G IJ N 03
10 V on
10/08/92 REACTOR AREA.RC TXT
DOW CONFIDENTIAL
REACTOR ;EA
2. FLAMMABLE MATERIALS AND EXPLOSIVE LIMITS: a. Ethylene (3.0 TO 34.0 VOL %) b. Solvent (0.9 TO 7.0 VOL %) c. Hydrogen (4.1 TO 74.2 VOL %) d. ATE (Pyrophoric if < 15 wt* in Solvent) e. Calcium Stearate f. Premix Catalyst (i.e. SOLVENT 0.9 TO 7.0 wt%)
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10/08/92 REACTOR AREA.RC TXT
i
DOW CONFIDENTIAL
REACTOR AREA
3. ETHYLENE POLYMERIZATION
H2C-CH2 \/
\/ \/
CATALYST - CH2 - (CH2)N - CH3
Heat of Reaction:
1470 Btu/lb of Polyethylene
a* Low Pressure Reaction (450-500 PSIG) b. Reactor Temperatures 180-205 C c. Conversion Greater than 90% d. Reaction Stopped by Deactivating Catalyst
uo A 017634
O O N F ID F N T T Al.
10/08/92 REACTOR AREA.RC TXT
DOW CONFIDENTIAL
REACTOR AREA
4. Uncontrolled temperature rise in the reactor PREVENTATIVE MEASURES:
a. Catalyst deactivates at high temperatures b. Capability of tripping catalyst pump from
the Control Room. c. Large Solvent flows act as a coolant.
5. Tube leak on the reactor pre-coolers. PREVENTATIVE MEASURES:
a. Combustible gas detector alarms in both cooling tower and chill water tank.
DO A 0 1 7 6 3 5
c o n f id e n t ia l .
10/08/92 REACTOR AREA.RC TXT
DOW CONFIDENTIAL
REACTOR AREA
6. Reactor overpressures.
PREVENTATIVE MEASURES:
a. Redundant high pressure alarm
b. Safety valves on each reactor with redundant flow indication to D-212/222/232.
c. Safety valves on reactor pre-cooler feed lines and on process line to post reactor heater set to relieve at lower pressure than reactor safety relief valves.
d. Fail open pressure control valves for each train.
NOTE: Reactor dump lines for Train 2 have been removed and dump lines on Trains 1 and 3 disabled. (Complies with Tech Center LPTEC Standard 207)
C O N F ID E N T
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2>
o 10/08/92 "vj REACTOR AREA.RC TXT
DOW CONFIDENTIAL
REACTOR AREA
7. Reactor thermocouple failure. PREVENTATIVE MEASURES:
a. Reaction begins to terminate with increased temperature due to catalyst deactivation.
b. Redundant thermocouples throughout the reactors.
8. Reactor seal failure (internal/external).
PREVENTATIVE MEASURES:
a. Mineral oil leakage into the reactors presents no reactivity hazard.
b. Mineral oil leakage to atmosphere before complete failure should be picked up by the combustible gas detectors near the seals.
c. Flow indication on the mineral oil flow to the seals.
d. HAD's installed near seal area to detect fire and trip the sprinkler system.
10/08/92 REACTOR AREA.RC TXT
DOW CONFIDENTIAL
DO A 0 1 7 6 3 7 C O N FID FN TIAL
REACTOR AREA
9. Flammable Materials PREVENTATIVE MEASURES:
a. Combustible gas detectors throughout the area. b. Deluge system covers the area. c. HAD's located to detect presence of fire.
10. ATE Exposure To Air
PREVENTATIVE MEASURES:
a. Small leak should not ignite. ATE reacts with moisture in the air faster than solvent evaporates to yield a pyrophoric mixture. In addition, procedure dictates having a water source and fire extinguisher present.
b. Solvent flush procedure prior to line openings.
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c. Large leak - Water Curtain Fire Protection.
10/08/92 REACTOR AREA.RC TXT
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REACTOR AREA
11. Blowdown Drum, D-212,222,232, Reactions
PREVENTATIVE MEASURES:
a. Blowdown drums maintain a water level for Premix dumps from D-311,321,331 and ATE dumps from D-312,322,332. The water will kill the catalyst however, be aware of the heat release and resulting temperature rise. The vessels do vent to the flare for this scenario.
00 A 017^39
confidential
10/08/92 REACTOR AREA.RC TXT
DOW CONFIDENTIAL
I
1 RC TEST NO. 1
MATERIAL(S)
1
1
1 RCT--85--0113 1 50% 1SOPAR E
1 50% OCTENE-1
1
1 ISOPAR E + RCT-85-0114 1 1-OCTENE +
1 POLYETHELENE
1
1
RCT-85--0115 1 ISOPAR E +
1 POLYETHYLENE
1
1 RCT-85--Ollfi 1 1-OCTENE +
1 POLYETHYLENE
1
1
RCT--82-0062 1 ISOPAR E + TEA
1
1
1 RCT-82--0148 1 ISOPAR E + TEA
1
1
ARCT-912
1 1 ISOPAR E + TEA + 1 ETHYLENE
1
1 RCT-82-0151 1 ISOPAR E 4- TEA +
1 HEC--3 CATALYST
1
1 RCT-82--0147 1 ISOPAR E +
1 HEC--3 CATALYST
1 1
RCT--81--1585 1 ISOPAR E +
1 CALCIUM STEARATE
1
1 ISOPAR E + RCT-88--0284 1 CALCIUM STEARATE +
1 IRGANOX 1010
1
1 ISOPAR E + RCT--88--1033 1 CALCIUM STEARATE +
1 IRGANOX 1010
1 I ISOPAR E + RCT-86--0323 1 CALCIUM STEARATE +
1 IRGANOX 1010
1
MAXIMUM
| TEST |
OPERATING j TYPE |
TEMP. (DEG C)
1 1
1 |
-jTEMP ONSET,
MAX, END
1
(DEG C}
1 1
DELTA H (J/GRAM)
i MAX. TEMP. 8 | i PRESS. RATE j
i1 i (DEG C, PSIA) |
11
1i
1
220
1 | DTA
1 |
ND
1i 1 - i 470
1 1
1I
1i
1
11
1i
1
11
1i
220
| DTA
| 100, 111, 118 1
-
i 470
1 1
11
1i
1
11
1i
I
11
1i
220
| DTA
| 97, 110, 120 1
-
i 470
1 1
11
1i
1
11
1i
1
11
1i
220
| DTA
| 91, 110, 121 1
-
i 470
1 1
11
1i
1
11
1i
1
11
1i
220
| DTA
| UNK, 310, 330 1
-
i 408
1 1
11
1i
1
I1
1i
I
11
1i
220
| DTA
| 275, 285, 295 1
-
i 445
1 1
11
Ii
I
11
1i
1
220
1 | ARC
1
1i 1 - i-
1 1
11
1i
1
11
1i
1
220
1 | DTA
1 |
ND
1i 1 - i 475
1 1
11
1i
1
11
Ii
1
220
1 | DTA
1 |
ND
1i 1 - i 368
1 1
11
1i
1
11
1i
1
230
1 | DTA
1 |
ND
1i 1 - i-
1 1
1I
1i
1
11
1i
1
230
1 | DSC
11 | 219, 229, 235 1
i i 250
1 1
11
1i
1
11
1i
1
230
1 | DSC
1
11 | 213, 236, UNK 1 11
i
ii i
250
1 1 1
11
1i
1
11
1i
230
| DTA
| 110, 119, 130 1
-
i 370
1 1
11
1i
1
11
1 i .. 1
FLAMMABILITY 1
DUST
FLASH PT. (C)j EXPLOSION
AUTOIGNITION j DETAILS
DETAILS
j Kst, bar-n/s
1
1 N/A
1
1
1 N/A
1
1
1 N/A
1
1
1 N/A
1
1
1 N/A
1
I
1 N/A
1 1
1 N/A
1 ! 1
N/A
1 1 1
N/A
1
1
1 N/A
1
1
1 N/A
1 1
1 N/A
1 1 1
N/A
1 1
1
o| i
1|
i
DO A 0 1 7 6 4 0
CO NFIDENTIAL
10/08/92 REACTOR A.
DOW CONFIDENTIAL
RC TEST NO.
1 1 1 1
HATERIAL(S)
1 MAXIMUM
| TEST
1 OPERATING j TYPE
| TEMP.
1
1 (DEG C)
1
TEMP ONSET, MAX, END
(DEG C)
| j
1 |
DELTA H (J/GRAM)
1 MAX. TEMP, t | 1 PRESS. RATE j
11 1 (DEG C, PSIA) |
FLAMMABILITY |
DUST
FLASH PT. (C)j EXPLOSION
AUTOIGNITION j DETAILS
DETAILS
j Kst, bar-a/s
1 11
11 1 1
1 11
11 1 1
RCT-81--1460 1 ISOPAR E + DHT-4A |
230
| DTA
310, 315, 325 |
-
1 380
1
N/A
1 11
11 1 1
1 1 1 ....
11 1 I
1 11
11 1 1
RCT-81-1817 1 ISOPAR E 4 DHT-4A |
1 4 IRGANOX 1010
j
230
| DTA 1
ND | - 1 11
1 1
N/A 1
1 11
I1
1
1
1 11
11
1
1
RCT-86-0325 1 ISOPAR E + DHT-4A |
230
| DTA
251, 258, 267 |
-
1 370
1 4 IRGANOX 1070
j
1
11
1 1
N/A 1
1 11
11
1
1
1 ISOPAR E + DHT-4A |
RCT-86-0324 1 + IRGANOX 1070
j
! 4 PEPQ
j
230
1 | DTA
1
254,
260,
268
1 j
1
-
1 1 370
1
1 1 1
1 N/A
1
1 11
11 1 1
RCT-84-0298
1 ISOPAR E 4 DHT-4A |
1 4 IRGANOX 1070
j
1 4 PEPQ 4 CAST
j
230
1 | DTA
1
65,
120,
152
1 |
1
-
1 1 361
1
1 1 1
1 N/A
1
1 11
11 1 1
1 ISOPAR E 4 DHT-4A |
1
11
RCT-85-0575 1 4 IRGANOX 1076
j
230
| DSC
278, 289, 299 |
9.0
1
299
1 4 PEPQ 4 CAST
j
1
11
1 1 1
1 N/A
1
1 11
11
1
1
1 ISOPAR E 4 DHT-4A |
1
11
RCT--85-0577 1 4 IRGANOX 1076 4 j
230
| DTA
105, 117, 131 |
-
1 435
1 PEPQ 4 CAST 4
j
1
11
1 IRGAFOS 168
j
1
11
1 1 1 1
1 N/A
1 1
1 11
11
1
1
1 11
11
RCT-84--0299 1 IRGANOX 1010 4
j
230
| DSC
300, 389, 400 j
43.3
1
450
1 PEPQ 4 POLYMER
j
1
11
1 1 1
1 N/A
1
1 11
11
1
1
11
RCT--81--0914 1 IRGANOX 1010 4 | 230
1 ISOPAR E
j
| DTA 1
11 ND | - 1 500
11
1 1 1
1 N/A
1
1 11
11
1
1
1 RCT--81--0919 1 IRGANOX 1010 4
I ISOPAR E 4 PEPQ
1
| j
230
I | DTA
1
11 ND | - 1 500
11
1 1 1
1 N/A
1
1 11
1 1 _1
1
11
RCT-86--0322 1 IRGANOX 1076 4 | 230
1 ISOPAR E
j
1 | DTA
1
335,
385,
UNK
1 j
1
-
1 1 415 1
1 1 1
1 N/A
I
1 11
11 1 1
1 TSOPAR E 4 PEPQ 4 I
1
1
n RCT--86--0974 1 IRGANOX 1076 4 j 230
1 IRGAPOX 168
j
| DSC 1
133, 294, UNK | 1
\1 1
1
400
1 1 1
1 N/A
1
1 11
11 1 1
10/08/92 REACTOR AREA.RC TESTS TABLE
DOW CONFIDENTIAL
ISOPAR E
CALCIUM STEARATE AREA
A 017642
CO NFTDFNTIAL
10/08/92
P-411A/B
TO MX-212 DOW CONFIDENTIAL
CALCIUM STFARATE AREA 1. CALCIUM STEARATE RAW MATERIALS LIST:
a. Calcium Stearate b. Irganox 1010 c. Isopar E d. Nitrogen
DO A 0 1 7 6 4 3
C O N FID EN TIAL
10/08/92 CALCIUM STEARATE AREA.RC TXT
DOW CONFIDENTIAL
CALCIUM STEARATE AREA
1. Dust Explosion PREVENTATIVE MEASURES:
a. N2 pads on unloading lines and vessels b. All equipment grounded.
2. So 1 vent/Ca1ciurn Stearate explosive mixture in unloading lines.
PREVENTATIVE MEASURES: a. N2 flow in unloading lines for conveyor requ i red to open slide valves. b. Low pressure in tank required to open si ide valves.
DO A 0 1 7 6 4 4
CONFTDFNTTAl
10/08/92 CALCIUM STEARATE AREA.RC TXT
DOW CONFIDENTIAL
CALCIUM ,EARATE AREA
1. CATALYST DEACTIVATION
2TiC12P + 4H20 --> 2T102 + 2HP + 4HC1 + H2 P = growing polymer chain
MgC12 + H20 --> --> -->
MgCl(OH) + HC1 + H20 MgO + 2HC1 + H20 Mg(0H)2 + 2HC1
C2H5A1C12 + 3H20 --> 2HC1 + A1(0H)3 + C2H6
Ti(0C3H7)4 + 2H20 --> Ti02 + 4C3H70H
A1(C2H5)3 + H20 -->
A1203 + 6C2H6 AI(OH)3 + 3C2H6
MgC12 + Ca$t2 --> MgSt2 + CaC12
CaSt2 + 2HC1 --> CaC12 + StH
uo A 0 ] 7645
c o n f id e n t ia l
10/08/92 CALCIUM STEARATE AREA.RC TXT
DOW CONFIDENTIAL
r1
MAXIMUM
| TEST |
TEMP ONSET
1
OPERATING j TYPE j
MAX, END
I
RC TEST MO. 1
MATERIAL*S)
| TEMP.
1
1
I
1
(DEG C)
1
| (DEG C)
1
1
11
1
1
11
1
RCT-41--1565 1 ISOPAR E + 1 CALCIUM STEARATE
| j
30
| DTA 1
| 1
MD 1 1
1
11
1
1
11
1
RCT--61--1417 1 ISOPAR E +
| 30
| DTA
|
HD 1
1 IRGANOX 1010
|
11
1
1 1 CALCIUM STEARATE RCT--48--0284 I +ISOPAR E + 1 IRGAHOX 1010
j j j
30
1 1 | DSC
1
11 11 | 219, 229, 235 1 11
1 1 CALCIUM STEARATE RCT-88--1033 1 -fISOPAR E + 1 IRGASOX 1010
j j j
30
1 | DSC
1
11 11 | 213, 236, UMK 1 11
1
11
1
1 CALCIUM STEARATE RCT-86--0323 1 ISOPAR E
1 IRGANOX 1076
| j
j
30
1 | DTA
1
1I 1 HO. 119, 130 1
11
1
11
1
1
RCT--86--0325 1 ISOPAR E + DHT-4A |
1 IRGAHOX 1076
j
30
1 | DTA
1
11 j 251, 258, 267 1
11
1 1 ISOPAR B + RCT--86--0324 1 PEPQ + DHT-4A +
j j
30
1
1 | DTA
11
11 | 254, 260, 268 1
1 IRGAHOX 1076
|
i1
1
1
I1
1
I ISOPAR E + DHT-4A |
RCT--84--0298 1 + PEPQ + CAST -f
j
1 IRGANOX 1010
j
30
1 | DTA
1
11 | 65, 120, 152 1 11
1
1 ISOPAR E + DHT-4A j
RCT--85--0575 1 + PEPQ + CAST +
j
1 IRGAHOX 1010
j
30
1 1 | DSC
1
11 11 | 278, 289, 299 1 11
1 1 ISOPAR E + DHT-4A j RCT--85--0577 1 + IRGAHOX 1076 + j 1 IRGAFOS 168 + CAST j
30
1 1 | DTA
1
11 11 | 105, 117, 131 1 11
1
11
1
1
11
1
RCT--85--0113 1 ISOPAR E + 1 1--OCTENE
| 30 j
| DTA 1
| 1
HD 1 1
1
11
1
DELTA H (J/GRAM)
-16.0 9.0 -
r MAX. TEMP, t | i PRESS. RATE |
i1 i (DEG C, PSIA) j
I1
i1
i-
1
i1
i1
i i-
1 I
i1 i1
i i 250
1 1
i1
i1
i i 250
1 1
i1
i1
i i 370
1 1
i1
i i i 370
1 1 1
i1
i1
i i 370
1 1
i1
i1
i i 361
1 1
i1
i1
i i 299
1 1
i1
i1
i i 435
1 \
i1
i1
i i 470
1 1
i1
i1
FLAMMABILITY FLASH PT. (C) AUTOIGNITION
DETAILS
DUST EXPLOSION
DETAILS Kat, bar-n/s
- M/A
- N/A
- N/A
- M/A
- M/A
- M/A
- M/A
- M/A - H/A
- M/A
- M/A
A 017646
CO NFIDENTJAL
10/04/92 CALCIUM STEARATE AREA.RC TESTS TABLE
DOW CONFIDENTIAL
DEVOLATILIZERS
00 A 017647
C O N FID EN TIAL
10/08/92
TO VACUUM SYSTEM
TO PELLETIZER
DOW CONFIDENTIAL
DEVOLATILIZATION
1. Overfill of the Devolatilizers.
PREVENTATIVE MEASURES: a. High level switch provided to alarm at 60% of
devolati1izer level.
2. Restricted discharge line on pumps P-511,521,531 and P-512,522,532.
PREVENTATIVE MEASURES:
a. High discharge pressure shutdown. b. High gear box torque shutdown.
c. Low temperature on discharge line of both pumps prevents startup.
i
10/08/92 DEVOLATIZATION AREA.RC TXT
DOW CONFIDENTIAL
DO A 0 1 7 6 4 8
CO NFT0FNTIAL
DEVOLATILIZATION
3. Tube leak in E-512,522,532 - OTA to polyethylene.
PREVENTATIVE MEASURES: a. No reactive chemical problem but will create a
process problem.
4. High devolatilizer jacket DTA pressure. PREVENTATIVE MEASURES: a. All devolatilizer's have PSV's that relieve to the DTA storage drum, D-502.
10108/92 DEVOLATIZATION AREA.RC TXT
DOW CONFIDENTIAL
1
1 RC TEST NO. 1
MATERIAL)S)
1
1 1 33% ISOPAR E 4
RCT-85-0I14 1 33% 1-OCTENE 4 1 34% LLDPE
1
1 13% ISOPAR E + RCT-87-0877 1 52% DOWTHERM A +
1 20% LLDPE 1 14% CAST
1
1
RCT-82--1105 1 DOWTHERM A
1
1
1
1
1
1 RCT-85--0113 1 50% ISOPAR E
1 50% OCTERE-1
1
| MAXIMUM | OPERATING 1 TEMP, j (DBG C) | 280
| 300
| 300
| 220
TEST TTPE
DTA
DSC
DSC ARC
FP FL AI
DTA
TEMP ONSET |
MAX, END
j
(DEG C) 100, 111, 118
1 |
1
1 |
218,
241,
UNK
1
1
1 j
209,
ND 359,
UNK
1 1 1 1 |
|
DELTA H (3/ORAM)
-
13.8
_
-
1
1 ND -
MAX. TEMP, t PRESS. RATE (DEG C, PSIA)
470
400
370 350
-
_
470
I flammability | FLASH PT. (C)
1 autoignition | DETAILS
1 1 11 1 1 11 1 l_
1_
1 11 Ill 1 0.8% TO 7.0% 1 815 1 1 1
DUST EXPLOSION
DETAILS Kst, bar-a/s
H/A
N/A
N/A H/A M/A M/A M/A
M/A
00 A 017650
CONF TD FN TIAL
10/08/92 DBVOLATIZAXIOM AREA.RC TESTS TABLE
1
DOW CONFIDENTIAL
PELLETIZING AREA
MOLTEN POLYMER
10/08/92
FL-531 1
DOW CONFIDENTIAL
DO A 0 1 7 6 5 1 CO NFIDENTIAL
PELLETIZING 1. Materials Handled
REACTIVE CHEMICAL HAZARD: NONE a. Water b. Dowtherm A c. Polymer (pellets)
2. Safety Concerns
PREVENTATIVE MEASURES:
a. MX-512 (static mixer) upstream of pelletizer has a rupture disk in case of excessive pressure.
b. A guard is provided over the disc to prevent injury to personnel in case of release.
c. Should DTA line to die open to the pellet water, no reactive chemical hazard is present.
oo
5^ 10/08/92
pelletizing_area.rc_txt
H \j
DOW CONEIDENTIAL
MATERIAL HANDLING SYSTEM
1. Dust Explosions. PREVENTATIVE MEASURES: a. Combustible gas detectors in all hoppers and silos. b. Air purge on all hoppers and Silos.
2. Solvent Buildup in the check hoppers. PREVENTATIVE MEASURES: a. Optional Nitrogen purge on check hoppers. b. Calculated solvent content based on process conditions.
u A 017653
OONFIOFNTTAI..
10/08792 MATERIAL HANDLING AREA.RC TXT
DOW CONFIDENTIAL
ADDITIVE SYSTEM
DO A 0 1 7 6 5 4
CO NFIDENT JA!
0/08/92
* DOW CONFIDENTIAL
ADDITTVES
1. Additives added via Side-arm Extruder, XS-512,522,532 REACTIVE CHEMICAL HAZARD: NONE WITH PLANT CHEMICALS
a. Erucamide b. Irgafos 168 c. Superfloss ($i02) d. Irganox 1010
e. PEPQ f. Talc g. Calcium Stearate h. DHT-4A
2. Side-arm Extruder Overpressuring
PREVENTATIVE MEASURES:
a. Protected by rupture disk and high pressure shutdown.
DO A 0 1 7 6 5 5
CONFTDFMTTAL
10/08/92 ADDITIVE AREA.RC TXT
DOW CONFIDENTIAL
FROM -SM
SOLVENT RECOVERY
TO T-611
10/08/92
DOW CONFIDENTIAL /
DO A 0 1 7 6 5 6
CONFTDFNTTAL
SOLVENT RFCOVERY 1. TUBE LEAK IN E-513A/B - WATER INTO SOLVENT
CONCERNS: a. Process efficiencies will be affected. b. Could result in a plant shutdown. c. Potential for reaction - none.
2. TUBE LEAK IN E-514 - REFRIGERANT 22 INTO SOLVENT
CONCERNS:
(No Longer Used)
a. Process efficiencies will be affected.
b. Potential for reaction - none.
3. FLAMMABILITY
PREVENTATIVE MEASURES:
a. Gas detectors located throughout area.
b. Foam and water available in area.
10/08/92 SOLVENT RECOVERY AREA.RC TXT
DOW CONFIDENTIAL
DO A 0 1 7 6 5 7
C O N FID EN TIAL
SOLVENT PURIFICATION
TO
DO A 0 1 7 6 5 8
CO NFT DFf NT T Al.
10/ '92
> OOW CONFIDENTIAL
SOLVENT PURIFICATION
1. E-617 TUBE LEAK SOLVENT/OCTENE INTO WATER PREVENTATIVE MEASURES: a. Leak will be detected by combustible analyzers in the chill water system.
2. E-611 TUBE LEAK - SOLVENT INTO CONDENSATE SYSTEM PREVENTATIVE MEASURES: a. Combustible gas detector on condensate drum. b. Pressure relief valve on condensate surge drum.
3. E-613 TUBE LEAK - SOLVENT INTO WATER SYSTEM
PREVENTATIVE MEASURES:
a. Leak will be detected by combustible analyzers in the cooling tower water system.
10/08/92 SOLVENT PURIFICATION AREA.RC TXT
DOW CONFIDENTIAL
`JO A 0 1 7 6 5 9
CO NFIDENTIAL
SOLVENT PURIFICATION 4. RE-611 TUBE LEAK - WATER IN SOLVENT
CONCERNS: a. Process efficiencies will be effected. b. No reactive chemicals concerns.
5. FLAMMABLES IN ENTIRE AREA PREVENTATIVE MEASURES: a. Analyzers near pump area to detect leaks. b. Foam and water available in entire area.
6. OVERHEATING MOLECULAR SIEVE BEDS PREVENTATIVE MEASURES: a. Solvent absorbs any heat that is generated.
7. REACTIONS OR POTENTIAL REACTIONS NONE
A 017660
confidfntial
10/08/92 SOLVENT PURIFICATION AREA.RC TXT
DOW CONFIDENTIAL
RC TEST HO. | I
MATERIAL!S)
| 33* ISOPAR E + RCT--#5--0114 j 33% 1-OCTEHE +
j 34% LLDPE
MAXIMUM OPERATING j TEMP, | (DEG C)
j | 200 |
RCT--85--0113 j 50% ISOPAR E 50% OCTENE--1
j I
RCT--85-0115 j 50% ISOPAR E + 50% LLDPE
j
| 59.4% RECYCLE
j
RCZ--88--0300 j SOLVENT (CONTAINS
2.1% STEARIC ACID + 2.1% PALMITIC ACID) + 40.6* SILICA GEL
200 200
50
TEST TYPE
DTA DTA DTA ARC
TEMP ONSET MAX, END (DEG C)
100, 111, 118
KD
97
1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1
DELTA H (J/GRAM)
-
1 MAX. TEMP. 8 1 1 PRESS. RATE |
11 1 (DEG C, PSIA) j
11
11
1 470
I
11
11
1 1 470
1 1
11
11
1 1 470
1 1
11
11
1 1 300
I 1
11
11
11
11
11
FLAMMABILITY |
DUST
|
FLASH FT. (C)j EXPLOSION j
AUTOIGNITION j DETAILS
j
DETAILS
j Eat, bar-B/s|
1 N/A
1 1 |
1
1
1 M/A
1 |
1
1 N/A
1
1 |
1 1
N/A
1 |
1 !
1 1 1
DO A 0 1 7 6 6 1 C O N FID FN TIAL
10/08/92 SOLVENT PURIFICATION ARKA.RC TESTS TABLE
\
DOW CORF1DENTIAL
DOWTHERM AREA
INJqi jwqj
S OO r,, . .
OD I> D
r\
Jr>
10/08/92
DOW CONFIDENTIAL
DOWTHERM DISTRIBUTION
PSV HEADER DOWTHERM RETURN TO D-500
DTA
DTA
^-9Wli9/NlJoOIyJNnOoO
10/08/82
DOW CONFIDENTIAL
DOWTHERM AREA RAW MATERIALS
DOWTHERM A FUEL GAS
COOLING TOWER WATER 235 PSIG STEAM NITROGEN AIR
10/08/92 DOWTHERM AREA.RC TXT
1
DOW CONFIDENTIAL
OOWTHERM AREA
1. LOSS OF FLAME IN FURNACE PREVENTATIVE MEASURES: a. Dual piot detectors/dual flame detectors. b. Automatic furnace trip.
2. EXPLOSIVE MIXTURE IN FURNACE WHEN LIGHTING
PREVENTATIVE MEASURES: a. Furnace purged automatically prior to lighting sequence. b. Automatic double block and bleed on main/pilot gas.
10/08/92 DOWTHERM AREA.RC TXT
DOW CONFIDENTIAL
uo ^ 017665
CONF TDFNTTAl
DOWTHERM AREA 3. TUBE RUPTURE INSIDE FURNACE
PREVENTATIVE MEASURES: a. Internal inspection of furnace tubes. b. Remotely operable valve for snuffing steam. c. Remote emergency shutdown. d. Remotely operable EBV*s on flash drum. e. High convection temperature trip.
uo A 0176
confjdfnt
10/08/92 DOWTHERM AREA.RC TXT
i
DOW CONFIDENTIAL
DOWTHERM AREA
4. WATER LEAKAGE INTO SYSTEM DURING SHUTDOWN
PREVENTATIVE MEASURES: a. Trip on high pressure in flash drum. b. PSV's on flash drum. c. Non-condensable vents open to storage tank during startup.
5. PROCESS LEAK INTO E-511
PREVENTATIVE MEASURES:
a. High pressure alarm on E-511 shell side.
b. PSV's to protect D-519 and D-500.
c. Remotely operable valve for isolating E-511 shell
from D-500.
.
10/08/92 DOWTHERM AREA.RC TXT
DOW CONFIDENTIAL
DO A 0 1 7 6 6 7
CO NFIDENTIAL
1
1 | RC TEST NO. i i i | RCT--8 2 -- 110 5
1 1 1 1 1 1 j RCT--83--0969
1 1 1 j RCT--86--0306
1 1............................
1 1 | MATERIAL(S)
1 1 1 | DOWTHERM A
i i i i i i | DOWTHERM A + | OXYGEN
1 i | DOWTHERM A + j ABSORBENT PADS
1
| MAXIMUM
| TEST |
j OPERATING j TYPE j
j TEMP. j (DEG C)
i j
TEMP ONSET MAX END
{DEG C)
| j
i j
| 300
| DSC j ARC
11
11 j ND | j 209, 359, UNK j
| 300 1 30
| rp 1 FL | AI
| DTA
| DTA
1"| |-|
11
| 1 ND
1 |
ii
ii | ENDOTHERMIC |
| 120, 138, 144 |
11
11
DELTA H (J/GRAM)
-
-
_
-
1 MAX. TEMP. & | 1 PRESS. RATE |
1i 1 (DEG C, PSIA) |
FLAMMABILITY FLASH PT. (C) AUTOIGNITION
DETAILS
DUST EXPLOSION
DETAILS
| j
j
Kst, bar-a/sj
11
1
1 1 370
1 1
_
1 350 1 -
N/A N/A
1 | |
11-
1 in 1 0.8% TO 7.0%
N/A N/A
| |
1"
1 615
N/A
|
11
1
1 1 310
1 1
N/A
1 |
11
1
11
1
11
1
1 325 1 -
N/A
|
11
1
11
1
iu o A 0 7 6 6 8
CONF TDENTJAL
10/08/92 DOWTHERM AREA.RC TESTS TABLE
\
DOW CONFIDENTIAL
. lARE system
oo o
o^ . go
N( O'
vO
***** ! 10/08/92
I
DOW CONFIDENTIAL
FLARE 1. Leakage of Air into the Flare Header System
PREVENTIVE MEASURE: a. Nitrogen purge on each branch of flare header. b. Oxygen analyzer on the flare header at the flare. c. Small positive pressure on the flare.
2. Outside Spill which could be Ignited by the Flare, FV-904A PREVENTIVE MEASURE: a. Remotely operated steam valves to snuff pilot.
3. High or Low Water Level in Flare PREVENTIVE MEASURE: a. High and low water alarms b. High pressure alarms
uu A 017670
OONFTDFNTJAL
10/08/92 FLARE AREA.RC TXT
DOW CONFIDENTIAL
REACTIVE CHEMICALS ISSUES 'ND OPPORTUNITIES
1. Further investigate the reactive chemicals potential of the portable waste trailer that is routinely used for waste containment within Poly C.
2. Consider the need for a plant policy on lab chemical ownership, auditing and receiving. Consider the need for a Reactive Chemicals Chart for Lab Chemicals.
3. In the Additives Area, require reactive chemicals testing of new additives packages for the Dowlex Process.
4. Update the Poly C Process Reactive Chemicals Chart.
5. Investigate the need for additional reactive chemicals testing of absorbent materials employed at Poly C.
6. Review the depad procedures for unloading alkyls. What would be the reactive chemicals consequences of not closing the manual nitrogen valve after off-loading?
7. Is electronic access to pertinent reactive chemicals test data generated for the Poly C Process (or any process) acceptable versus plant hardcopies?
8. Consider the need to document the emergency reactive chemicals functionality of applicable critical instruments.
u A 017671
C 0 N F .T D F N T T A I
10/08/92 CONSOLIDATED AUDIT.ISSUES OPPORTUNITIES
DOW CONFIDENTIAL
DOW CONFIDENTIAL POLYETHYLENE C - OCTOBER 8, 1992
SELF EVALUATION QUESTIONNAIRE
1. TESTING AND EVALUATION OF REACTIVE CHEMICAL DATA
a. Has reactive chemical test data been gathered for the following:
Process materials and mixtures that are normal to the process Yes [X] No [ ]
Mixtures that may result from abnormal conditions. Yes [X] No [ ]
Material of construction throughout the process. Are wrong
materials of construction identified?
Yes [ ] No [X] N/A
Effects of pH
Yes IX] No [ ]
Abnormal temperature
Yes [X] No [ ]
Water
Yes [X] No [ ]
Abnormal concentrations
Yes [X] No [ ]
Flammable dusts
Yes [X] No l ]
Explosive range known
Yes [X] No [ ]
Rate of pressure rise data
Yes [X] No [ ]
Accelerating Rate Calorimetry (ARC) test on reactive mixtures that are handled in drum or larger volumes.
Yes [X] No I ]
Chemical formulations.
Yes [X] No I ]
Changes of chemical components in formulation. Yes X] No I ]
Significant change in concentrations of components in formulation.
Yes [ ] No [X] SOME
b. Have all systems been evaluated with regard
to result from test data?
Yes IX] No I ] NO
DOCUMENTATION
Has all reactive chemicals data been reviewed by the
Reactive Chemicals Test Group and Process Engineering
as it relates to the process?
Yes [X] No [ ] NO
DOCUMENTATION Has all data been reviewed by Process Engineering as
it relates to pressure relief design?
Yes [X] No [ ] NO
Do all individuals involved with reactive
DOCUMENTATION
chemical evaluation understand the information
on the data sheets and know the limitations
for extrapolating operating parameters
from the data?
Yes [X] No t ]
DO A 01767? CONFTDFNTTAI
d. Is process data current?
Yes [X] No [ ]
Does it thoroughly define hazardous bounds? Yes [X] No [ ]
Side reactions?
Yes [X] No [ ]
Does data include total potential energy available? Yes [ ] No [X] SOME
Has test data that was generated before 1/1/82 been reviewed with the Reactive Chemical Testing Lab?
Yes [ ] No IX]
Has irrelevant RC data been discarded?
Yes [X] No [ ]
Has reactor pressure relief analysis and design documentation been completed for vessels containing reactive materials?
Yes [X]
No l ]
2. CONFIRMING ANALYSIS OF RAW MATERIALS
a. Is there a program in place for confirming positive identification of all raw materials? (Includes outside vendor and Dow supplied raw materials and also raw materials being supplied by pipeline). Yes [X] No I ]
Is a Certificate of Analysis required and received
for those difficult to test?
Yes IX] No I ]
b. Are inhibitor levels tested on in-coming raw materials that require an inhibitor?
Yes [ ] No [ ]
N/A
3. CRITICAL INSTRUMENTS AND DEVICES
a. Are critical instruments and devices provided with redundancy?
Yes l ] No [X] NOT ALL
b. Do you have a program for testing all critical instruments?
Yes [X] No [ 1
i
c. Are there any critical instruments in the process that,
if failed, would not alarm or indicate that
the signal is incorrect?
Yes [X] No l ]
d. Are alarms activated when critical instruments fail? Yes [X] No I ] SOME
e. Is the emergency reactive chemicals functionality of
critical instruments documented?
Yes [ ] No [X]
f. Has the process been reviewed within the past two years
to determine if adequate monitoring of important
parameters is in place?
Yes [X] No [ ]
g. Is there a policy covering changes in set points
for trips and alarms?
Yes [X] No [ ]
DO A 017673 CONFIDENTIAL
4. MATERIALS OF CONSTRUCTION
a. Are unwanted reactions that can be caused by material of construction known by those who can install the wrong material? Yes t ] No [X] N/A
b. Are there procedures in place to assure that materials such as lubricants, thread compound, valve packing, leak repair compounds, etc. are compatible with the process chemicals? Yes [X] No [ ]
c. Are completely halogen-saturated lubricants used
in Chlorine service?
Yes [X] No [ ]
d. Does the Tech Center provide information/recommendations for
material of construction?
Yes [X] No [ ]
e. Is information on material of construction sought from
suppliers of raw materials?
Yes [X] No [ ]
5. SIDE REACTIONS
a. Have side and insitu reactions in your process been
adequately researched and identified?
Yes [X] No [ I J50MEWHAT
b. Have conditions for unwanted reactions been identified? Yes [X] No [ ]
SOME
PH Yes [X] No [ ]
Water Yes [X] No [ ]
Contaminants Yes [X] No l ] H2 evolution Yes [ I No [X] n/A
c. Is any part of your process subject to peroxide, acetylide
or azide formation?
Yes [ ] No [X] N/A
If so, are the sources known and a program in place to
keep this under control?
Yes [ ] No [X]
6. OPERATING DISCIPLINE
a. Is Operating Discipline documentation current and complete? Yes [ ] No [X] 50%
Has it been reviewed by all operating personnel within
the past 12 months?
Yes [ ] No [X] 50%<
b. Are the Start up and Shutdown sequences written and
available for operating personnel?
Yes [X] No [ ]
Are reasons for sequences and consequences of deviation well documented and understood by operating personnel?
Yes [X] No [ ]
c. Is the process designed to avoid the activation of large amounts of reactants together at the same time? Yes [X] No [ ]
Is the most critical reactant metered in under carefully
monitored rates that are controlled by temperature/pressure/
flow parameters?
Yes [X] No [ ]
DO A 01767. CONFIDENT!,-
Is it possible for a critical operating parameter such as flow to be wrong without the operator knowing?
Yes [X] No [ ]
Are analytical devices in place to verify critical parameters? Yes [X] No [ ]
d. Are procedures in place to prevent charging of the wrong
materials from look-alike drum?
Yes [ ] No [ ] N/A
Are look-alike drums stored in different storage areas? Yes [ ] No [ ] N/A
e. Are conditions that approach out-of-range parameters alarmed? Yes [X] No [ ]
Is redundant instrumentation and procedures in place to
prevent over-filling vessels?
Yes [X] No [ ]
7. SCENARIOS
a. Are worse case credible scenarios and corrective procedures documented for each step of the process? Yes [X] No l ]
b. Have worst case scenarios been highlighted and the process system analyzed for preventive or fail-safe provisions?
Yes [X] No [ ]
Do these provide automated protection if the operating
personnel fail to take proper action?
Yes [ ] No [X]
SOME
Are the consequences known by operating personnel when equipment and operating errors occur in the same scenario?
Yes [X] No [ ]
c. Do all parts of the process go to a fail-safe mode in a:
Power failure? Cooling loss? Nitrogen failure? Air failure?
Yes [XJ Yes [ ] Yes [ ] Yes [X]
No l ]
No [X]
No [X] No [ ]
8. SCRUBBERS (NOT APPLICABLE)
a. Is back-flow of the scrubber chemicals into the process
possible?
Yes [ ] No [ ]
b. Can flammable or reactive materials accumulate in the
scrubber medium or vapor space?
Yes [ ] No [ ]
c. If the scrubber is pH controlled, are pH monitoring and
adjustment features provided?
Yes [ ] No [ ]
d. Are additional scrubber gases such as nitrogen purges etc.
controlled adequately to prevent loss of scrubber
efficiency?
Yes [ ] No t ]
DO A 017A75 CONFTDFNTTAL
9. WASTE WATER STRIPPER (NOT APPLICABLE)
a. Is the waste water storage vessel protected from the wrong
material entering it?
Yes [ ] No I ]
b. Is the stripper protected from back flow or back pressure? Yes [ ] No [ ]
c. Is level monitoring with low level alarm provided for the stripper and any associated knock-out vessels? Yes { ] No [ 1
10. CATALYSTS
a. Can catalyst in your process transport downstream and
become a hazard?
Yes [X] No [ ] REMOTE
b. Can iron chloride be made in your process by inadvertent pH excursions? Iron chloride is an effective catalyst for many reactions and has been responsible for many incidents. Yes [X] No [ ] REMOTE
c. Are procedures in place for starting up a catalyst or
adsorbent bed that prevent a high temperature plug-flow
temperature front?
Yes [X] No [ ]
d. Are all potential reactions known for improper flows
or conditions across the catalyst bed?
Yes [ ] No [X]
e. Can the catalyst be affected by material of construction,
or some ingredient in the formulation?
Yes [X] No [ ] 02,CO,
C02
f. Can an unintended material backflow or migrate into the
process and have a catalytic effect?
Yes [X] No [ ]
11. INHIBITORS
(NOT APPLICABLE)
a. Are inhibitor levels monitored?
Yes [ ] No [ ]
b. Are inhibitors temperature sensitive with respect to
effectiveness?
Yes [ ] No [ ]
c. Is freeze protection necessary?
Yes [ ] No [ ]
d. Is separation of inhibitor from product temperature dependent? Yes [ ] No [ ]
e. Does the inhibitor require a small amount of oxygen to be
effective?
Yes [ ] No [ ]
If so, are oxygen levels monitored?
Yes ( ] No [ ]
f. Is the inhibitor affected by material of construction or
vice versa?
Yes [ j No [ ]
12. LAB CHEMICAL STORAGE
a. Is there a policy governing ownership responsibility for lab
chemicals?
Yes [ ] No [X]
b. Has the material of construction for the chemical containers
been tested for long term compatibility?
Yes [ ] No [X]
00 A 017676 rONFTDFNTTAl.
c. Is there a receiving procedure to prevent chemicals from being left at a delivery point for excessive periods of time?
Yes t 1 No [X]
d. Is the storage life/self-reactivity/aging data known for
stored materials so as to establish a maximum storage age
at a given temperature?
Yes [ ] No [ ] N/A
e. Are Unstable chemicals given special storage provisions? Yes [X] No [ ]
Are stored items in drums checked for over-pressure? Yes [ ] No [ ] N/A
Are containers occasionally found to be over-pressured? Yes [ ] No [ ] N/A
Is moisture a problem with some chemicals you store? Yes [ ] No [X]
f. Are drums of materials that are sensitive to water stored
indoors?
Yes [ ] No [ ] N/A
13. HAZARDOUS MATERIAL HANDLING
a. Have inadvertent operations been identified which could subject process materials (specifically gases) to heat of compression?
Yes [XI No [ ]
b. Do you vacuum break with nitrogen?
Yes [X] No [ ]
c. Do you monitor for oxygen content in the part of the process
that operates under vacuum?
Yes [X] No [ ]
Is oxygen monitored in process systems where the components
can be easily oxidized?
Yes [X] No [ ]
d. Is the design of your process system such that it is
virtually impossible for two highly reactive chemicals
to get together unintentionally?
Yes [X] No [ ]
Are there redundant safeguards?
Yes [X] No [ ]
e. Are drums of materials that are incompatible kept segregated?
Yes [ ] No [
N/A
Are they identified by label/color code etc.? Yes [ ] No [ ] N/A
f. Are procedures, equipment, and training in place to quickly handle leaks of hazardous materials to prevent exposure to the plant or community? Yes [X] No [ ]
g. In the event of a leak or spill do you know which absorbent
material to avoid? Spontaneous combustion incidents are
WE ONLY
common.
Yes [X] No [ 1 USE ONE.
DO A 017677 CONFIDENT! A!
h. Can material be concentrated or built up in a recycle
stream to the point of instability?
Yes [X] No [ ] REMOTE
Can polymer or other materials in the process build up and become pyrophoric when exposed to air?
Yes [X] No [ ]
i. Are any peroxide-forming materials and conditions present
in your process?
Yes [ ] No [X]
14. WASTE HANDLING
a. Is sawdust or cellulosics based materials used as
an absorbents?
Yes [ ] No [X]
If so, are procedures and ratios specified to prevent
reaction or spontaneous combustion?
Yes [ ] No [ ] N/A
b. Have all absorbents in use been tested with the process
materials?
Yes [ ] No [X] ONLY ONE
Are there any prohibited absorbents? Do employees know?
Yes [ ] No [X] MOC
REQ'D TO Yes [ ] No [X]-CHANGE
c. Are different waste chemicals collected in a common container?
Yes [X] No [ I
If so, is control of what is put into the container
vested in one person or job?
Yes [ ] No [X]
Are pH or other analytical procedures used as part of
this control?
Yes [ ] No [X]
d. Are joint procedures with Environmental Services periodically
reviewed?
Yes [X] No [ ]
e. Does control of waste include?
Yes [X] No [ ]
Material of construction Time limit of storage
Written procedure for disposal Ownership
Yes [X] No [ ] Yes [X] No [ ] Yes (X] No [ ] Yes [X] No [ ]
15. HEELS IN TANK CARS, TANK TRAILERS, BARGES, PROCESS LINES AND STORAGE VESSELS
a. Are procedures in place to analytically test all heels to
assure that the look-alike heels are what they are supposed
to be?
Yes IX] No I ] NO
ANALYTICAL
b. Is odor used as an identifying method?
Yes [ ] No [X]
c. Are low points in pipelines checked?
Yes [ ] No [X]
d. Are heels from cleaning, such as water, a hazard
with your products?
Yes [ ] No {X]
e. Are vapors in pressurized vessels/trailers analyzed if no
liquid sample can be obtained?
Yes [X] No [ ]
> Nl
f. Are dedicated transport vessels used without confirming
analysis of the heels?
Yes [X] No [ ] DO A m /6
CONFIDENT!
16. EXCHANGERS
a. Is the exchanger media compatible with the process material? Yes [X] No [ ]
b. Vill a leak into the process be hazardous?
Yes [ ] No [X]
c. Is monitoring provided to detect a leaking exchanger? Yes [ ] No [X]
d. Is the exchanger essential to the safety of the process? Yes [ ] No [X]
e. Is temperature monitoring provided around the exchanger? Yes [X] No [ ]
f. Has the maximum temperature of the reboiler been evaluated
with respect to length of time exposure, such as during
total reflux conditions?
Yes [ ] No [X]
g. Have the effects of a leaking steam valve to a shutdown
reboiler been evaluated?
Yes [X] No [ ]
h. Has the heat history of polymerizable bottoms been
evaluated with respect to reboiler temperature and length
of time of exposure?
Yes [ ] No [X]
i. Have you evaluated the effects of recirculation or
cooling failure?
Yes [X] No [ ]
17. AGITATORS
a. Is monitoring provided to detect agitator failure? Yes [X] No [ ]
Motor amps? Rotation detectors? Blade detector?
Yes [X] No [ ] Yes [ ] No [X] Yes [ ] No [X]
b. Has agitator failure been evaluated during the step with the most available energy to determine if a run-away can occur?
Yes [X] No t ]
c. Are reactive feed flows interlocked to stop on agitator
failure?
Yes [X] No [X] MOD-YES
TDC-NO
d. Are run step procedures in place to assure proper mixing
and proper reaction?
Yes [X] No [ ]
e. Are amp readings alone onthe agitatorappropriate to
determine the progress ofthe reaction?
Yes [X] No [ ]
18. STATIC MIXERS
a. Are temperatures before and after monitored? Yes [X] No [ ]
b. Are there sufficient reactants within the mixer that overheat
could result if flow of reactants is suddenly stopped
without purge-out?
Yes [ ] No [X]
oo A 017679
o onf
19. PUMPS
a. Are feed pumps interlocked with shutdown trips?
Yes IX] No [X] M0D=YES
b. Are pumps temperature monitored on or within 6-inches
TDCN0
downstream of the pump casing to detect deadheading?
Yes l ] No [X]
c. Does the monitoring scheme assure detection and alarm on pump
cavitation?
Yes [ ] No [X]
d. Are pump seals monitored for flow of seal fluid and seal loss? Yes [X] No t ]
e. Have seal fluid leaks into the process streams beeni evaluated? Yes IX] No [ ]
f. Is temperature monitoring provided for pumps that are
used for mixing?
Yes l ] No l ]
BACK FLOW
a. Have potential back flow scenarios been evaluated? YES
b. Has process back-flow been effectively prevented in the following?
Feed lines Nitrogen connections Condensate Gas cylinders
Yes [X]
Yes [X] Yes [X] Yes [ ]
No [ ] No [ ] No [ ] No [X]
c. Are means other than block valves and check valves provided to prevent back flow, such as stopping pumps and depressuring?
Yes [ ] No [X] 21. LOW FLOW RATE
a. Have low flow rates been evaluated for their effects on
reaction stability and heat removal?
Yes [X] No [ ]
Example: throttle back during startup/shutdown/hurricane shutdown.
b. Has total reflux of your distillation column or reactor
systems been evaluated for loss of overheads through leaking
overhead valves?
Yes [ ] No [X]
Concentration of unstable components in certain trays Yes [ ] No [X]
Overheating/heat history problems in the reboiler? Yes [
22. RELIEF DEVICES and VENT SYSTEMS
No [X]
a. Have pressure relief systems been designed for worse case
credible reactive chemicals run-away?
Yes ( ] No [X]
b. Are relief valve discharge headers combined with other vents? Yes [X] No [ ]
If so, is there a reactive problem?
Yes [X] No [ ]
DO A 017680 CONFIDENTIAL
c. Have hazard analysis been performed and documented to define credible reactive pressure relief scenarios? Yes [ ] No [X] FIRE SIZING
d. Does documentation of reactive pressure relief designs meet minimum requirements as it applies to the following? Yes [X] No [ ]
Reactive chemicals tests or kinetic data used as a basis Yes [ 1 No [X]
Scenarios used for design. Required capacity
Yes [X] No [ ]
Device size, PSV orifrice, manufacturer, serial no., spec sheet.
Yes [X] No [ 1
23. COMPATIBILITY CHART
a. Has a current cross compatibility chart been developed for displaying chemical compatibility of the materials used in the block that may be mixed unintentionally? Yes [ ] No (Xr
b. If so, are the materials that are self-reactive included
in the data?
Yes [X] No [ ]
c. Is the compatibility chart posted where all block
employees can use it?
Yes [X] No [ ]
d. Is there a policy for keeping the cross-compatibility chart
up-to-date?
Yes [ ] No [X]
24. REACTIVE CHEMICAL TRAINING
a. Is periodic reactive chemical training conducted and
documented?
Yes [X] No l ]
b. Does reactive chemical training include materials
specific to the block?
Yes {X] No [ }
c. Has hazard information of chemical mixtures that can be
reactive/flammable/explosive been included in the
training program?
Yes {X] No [ ]
d. Is the cross-compatibility chart included in the periodic
reactive chemical training?
Yes [X] No [ ]
e. Are case histories of past incidents in your unit, the Dow world, and the chemical industry that are related to the process you operate included in the training program?
Yes [ ] No [X]
f. Have potentially wrong mixtures or procedures been emphasized in the training program so that employees will know not to allow certain chemicals to mix or to get out of parameters?
Yes [X] No [ ]
g. Are employees trained on the ways instruments and control
devices are prone to fail?
Yes [X] No [ ]
^ A Ol7681
CONFTDFNTTAl
h. Are employees trained on materials of construction that can cause a potential reactive chemical problem? Yes M No (X] N/A
25. REACTIVE CHEMICAL REVIEWS
a. Are all processes in the block reviewed-by line supervision
and engineers, technology center, and Safety Superintendent
at least every two years?
Yes (X] No [ ]
b. Is a Reactive Chemical Committee Review held for your processes every tvo years or within 90 days of a new superintendent?
Yes [X] No ( ] c. Are process changes reviewed by members of the
Reactive Chemicals Committee before they are implemented? Yes [X] No [ ]
d. Are pre-startup reviews held for process changes and
recommissioning out-of-service equipment?
Yes [X] No I ]
e. Are product formulation changes reviewed by the Reactive
Chemicals Committee?
Yes [X] No [ ] -
Michael P. Olsen Production Specialist Polyethylene C September 21, 1992
00 A 01768? conftdfntial
1992 CONSOLIDATED AUDIT RECOMMENDATIONS AND RESPONSES
REACTIVE CHEMICALS SECTION:
page 1
1. OBTAIN ABSORBENTS DATABASE FROM JOE SCHELL AND REVIEW COMPATIBILITY OF THE 3M OIL SORBENT WITH VARIOUS CHEMICALS FOUND IN THE POLY C BLOCK. IF OTHER ABSORBENTS ARE USED, TESTING SHOULD BE DONE IF DATA IS NOT AVAILABLE ON THIS DATABASE.
Responsibility/Timing: Mike Olsen / 4th Qtr, 1992
Answer: Database reviewed and the only current testing was with Dowtherm A. Testing is scheduled for the 4th qtr on 3M Oil Sorbent with 1-octene and Isopar E.
2. SINCE THE ANHYDROUS HCL SCRUBBER IS USED INFREQUENTLY, CONSIDER REVIEWING THE WORST CASE SCENARIOS ASSOCIATED WITH THE SCRUBBER AND MAKE SURE THAT THE LINES OF DEFENSE ARE APPROPRIATE.
Responsibility/Timing: Bob Cameron / 4th Qtr, 1992
Answer: Scenarios will be documented and a procedure developed for the control room McIntosh.
3. CONSIDER ADDING STORAGE OF LAB CHEMICALS TO THE C-9 CHECKLIST. THE DESIRED OUTCOME IS TO HAVE A PROGRAM THAT WILL INSURE THAT REACTIVE AND HAZARDOUS CHEMICALS ARE NOT KEPT ON-SITE PAST THEIR SHELF LIFE.
Responsibility/Timing: Alvin Hebert / 1st Qtr, 1993
Answer:
4. IMPLEMENT A PROGRAM TO AVOID ACCUMULATION OF LARGE QUANTITIES OF ALKYL SAMPLES IN THE PLANT LAB. Responsibility/Timing: Dan DuRousseau / 4th Qtr, 1992
Answer: Complete. Program in place.
5. MAKE SURE THAT A PROGRAM IS IN PLACE TO AVOID ADDITION OF INCOMPATIBLE WASTE INTO THE PORTABLE WASTE TRAILER. A LIST OF APPROVED MATERIALS TO BE ADDED TO THE TRAILER SHOULD BE POSTED ON THE TRAILER. Responsibility/Timing: Ada Simpson / 1st Qtr, 1993
Answer:
00 A 01768 C.ONF IDFNTI 1
page 2
6. IS BACKFLOW OF PROCESS CHEMICALS INTO THE ISOPROPYL TITANATE CYLINDER A CREDIBLE SCENARIO? IF SO, WITH THIS CREATE A REACTIVE CHEMICALS HAZARD? Responsibility/Timing: Bob Cameron / 4th Qtr, 1992
Answer:
7. CONSIDER INCLUDING CASE HISTORIES OF INCIDENTS IN YOUR ANNUAL REACTIVE CHEMICALS TRAINING.
Responsibility/Tiraing: Mike Olsen / 2nd Qtr, 1993
Answer: This will become a part of the annual C-9 reactive chemicals training presentation. The mechanism is in place to make it happen.
8. REVIEW PRE-1982 REACTIVE CHEMICALS TEST DATA WITH THE REACTIVE CHEMICALS TESTING GROUP TO MAKE SURE THE DATA IS STILL APPROPRIATE. Responsibility/Timing: Mike Olsen / 1st Qtr, 1993
Answer:
9. IF COMPACTED CALCIUM STEARATE IS USED INSTEAD OF POWDER DETERMINE IF A DUST EXPLOSION HAZARD WILL EXIST IN THE HOPPER. THIS MAY BE POSSIBLE BY EROSION OF THE PELLETS.
Responsibility/Timing: George Shofoluwe / 4th Qtr, 1992
Answer:
The phase III design of the system calls for the use of nitrogen rather than compressed air for the conveying of the calcium stearate and purging of all hoppers. The use of an inert gas such as nitrogen virtually eliminates the dust explosion potential of calcium stearate in the system even if pure powder were to be used. A special design dense phase conveying system to be used will also reduces attrition of pellets and affords low nitrogen use. (The cost of nitrogen to operate this system is approximately $295/yr) Combined with proper equipment grounding, this should provide more than adequate safeguards.
10. POLYETHYLENE CAN UNDERGO SLOW EXOTHERMIC DEGRADATION IF HELD ADIABATICALLY AT TEMPERATURES EXCEEDING 250 DEGREES C FOR EXTENDED PERIODS OF TIME (CRI REPORT #LAD AR 89-19). REVIEW THE POTENTIAL FOR THIS TO OCCUR IN YOUR PROCESS AND MAKE SURE THE APPROPRIATE LINES OF DEFENSE EXIST.
Responsibility/Timing: Mike Olsen / 1st Qtr, 1993
Answer: Have reviewed CRI and will check process data to ascertain if adiabatic conditions exceeding 250 C are even possible. First pass look indicates probably not.
A 017684
conftdfntt^l
page 3
11. REACTIVE CHEMICALS TEST DATA IS NEEDED TO DETERMINE COMPATIBILITY OF ADDITIVES AND DOWTHERM A. IF INCOMPATIBLE, MAKE SURE ADEQUATE LINES OF DEFENSE ARE IN PLACE TO AVOID AN INCIDENT.
Responsibility/Timing: Mike Olsen / 1st Qtr, 1993
Answer;
Contacted Reactive Chemicals Group to schedule testing. Plans are to test Dowtherm A versus each neat additive and two of the predominant additive packages utilized at Poly C. Contact between Dowtherm A and additives requires an E-5X2 tube leak or XS-522 1st zone barrel jacket leak.
12. UPDATE POLY C CHEMICALS COMPATIBILITY CHART. Responsibility/Timing: Ada Simpson / 1st Qtr, 1993
Answer; Will utilize the software package developed in Texas.
13. REVIEW DEPAD PROCEDURES FOR UNLOADING ALKYLS. WHAT WOULD BE THE REACTIVE CHEMICALS CONSEQUENCE OF NOT CLOSING THE MANUAL NITROGEN VALVE AFTER OFF-LOADING?
Responsibility/Timing: Bob Cameron / 4th Qtr, 1992
Answer;
14. CONCERNING THOSE CRITICAL INSTRUMENTS THAT EXIST PRIMARILY AS LINES OF DEFENSE FOR AVOIDING REACTIVE CHEMICALS INCIDENTS, CONSIDER DOCUMENTING THE WORST CASE SCENARIOS.
Responsibility/Timing; Mike Olsen / 1st Qtr, 1993
Answer: Utilization of LPETC Standard #202 will be the starting point for considering this potential need.
Michael P. Olsen Production Specialist
Polyethylene C December 2, 1992
00 A 017685 CIONFIDFNTIAI
From: LACSDC::OLSEN
"MICHAEL P. OLSEN, POLY C, BLDG 8601, 504-389-6155"
-1992 13:10:04.65
To: LARNDC::SCHELL
CC: OLSEN
Subj: RX CHEM CONSOLIDATED AUDIT QUESTION - JOE, THESE ARE ALL OF THE EXISTING
2-DEC
PRE-1982 TESTING I COULD LOCATE. I COULDN'T FIND ANY IN THE REACHEM
DATABASE. HOW DO WE/I PROCEED FROM HERE? A MEETING OR CAN YOU LOOK AT
1992 CONSOLIDATED AUDIT RECOMMENDATIONS AND RESPONSES
REACTIVE CHEMICALS SECTION:
8. REVIEW PRE-1982 REACTIVE CHEMICALS TEST DATA WITH THE REACTIVE CHEMICALS TESTING GROUP TO MAKE SURE THE DATA IS STILL APPROPRIATE.
Responsibility/Timing: Mike Olsen / 1st Qtr, 1993
Answer: RC TEST NO.
REA'CTIVE CHEMICALS PRE-1982 TESTING INFORMATION
MATERIAL(S)
MAXIMUM TEST OPERATING TYPE
TEMP. (DEG C)
TEMP ONSET MAX, END
(DEG C)
MAX. TEMP. & PRESS. RATE
(DEG C, PSIA)
RCT-81-1565 ISOPAR E +
30 DTA
CALCIUM STEARATE
ND
-
RCT-81-1817 ISOPAR E + IRGANOX 1010
30 DTA
ND
-
RCT-81-1460 ISOPAR E + DHT-4A 230 DTA 310, 315, 325
380
RCT-81-1817 ISOPAR E + DHT-4A 230 DTA + IRGANOX 1010
RCT-81-0914 IRGANOX 1010 + ISOPAR E
230 DTA
RCT-81-0919 IRGANOX 1010 + ISOPAR E + PEPQ
230 DTA
ND ND ND
500 500
Michael P. Olsen Production Specialist Polyethylene C
A 01768/ CONFTDFNTI/