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OPERATING MANUAL
AMS EM
SYSTEM
September 1, 1981 FINAL ISSUE
Work by:
Senior Process Engineer Chemicals Division Phocess Engineering Department
VAB.0001146930
Interoffice Communication
To C. L. Hiller, Aberdeen, Mississippi
From R.D. MeMirtg, Ponca City, Oklahoma Date September 1, 1981 Subject Emergency Kill System Operating Manual
The final issue of the Emergency Kill System Operating Manual is attached. This issue incorporates comments and suggestions from the August 18 plant review meeting.
Richard D. Mel 1ing Senior Process Engineer Chemicals Division Process Engineering Department
ms Enc
CC: RAF:SJV:PEM:JAD:MPB CRM:JAB:JLW:JHM
File: A-20.3
*
VAB.0001146931
TABLE OF CONTENTS OPERATING MANUAL AMS EMERGENCY KILL SYSTEM ABERDEEN PVC PLANT
I. INTRODUCTION...................................... A. PURPOSE .................................. B. OPERATOR RESPONSIBILITIES C. PROCESS INFORMATION . . .
II. GENERAL PROCESS DESCRIPTION . III. SAFETY ..........................................
IV. OPERATING PROCEDURES...................
IP
A. INJECTION PROCEDURES. . . B. ROUTINE OPERATION . . . . C. TESTING PROCEDURES. . . . V. APPENDIX.............................................. VI. PS I DIAGRAMS....................................
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I. INTRODUCTION A. Purpose
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The purpose of the Emergency Kill System is to increase the re* liability and effectiveness of equipment and procedures used to safely and quickly stop the polymerization reaction in the reactors. Stopping the reaction prevents excessive pressure buildup which can cause emergency releases through the reactor reiief valves. This system allows any or all reactors to be shut down in an orderly and safe manner. This manual describes the system and the operator's responsibilities for operating and maintaining the system.
I
B. Operator Responsibilities The operator is responsible for producing quality products in a safe and efficient manner. He fulfills his responsibilities by knowing the following and passing a written exam: 1. Understanding how his equipment functions. 2. Understanding what role each piece of equipment plays in the process. 3. Keeping a close and regular check on equipment. 4. Knowing how to spot malfunctions and correct them. 5- Keeping his area of responsibility safe and clean. 6. Keeping complete and accurate records.
C. Process information The polymerization reaction of VCM to form PVC gives off heat and accelerates as temperature increases. As the temperature increases, the reactor pressure also increases. It is there* fore necessary to remove the heat of reaction with cooling
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VAB.0001146933
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A
I. INTRODUCTION (CONTINUED) C. Process Information (Continued) water In the reactor jacket and condenser. Reactor agitation
is also required to maintain uniform reactor mixing and efficient heat removal. If reactor cooling and/or agitation is lost, the reaction must be stopped. Failure to do so would result in a runaway reaction with increasing temperature and pressure. The reac tor pressure could increase until the rupture disk/safety valve assemblies would vent the reactor contents to the atmosphere. The new Emergency Kill System provides the capability of in jecting up to 25 gallons of killing agent into each reactor either remotely from the control room or manually at the re actor top head platform. Killing agent can be injected into a reactor as soon as agitation is lost to take advantage of mixing caused by residual swirling motion. Maintaining cool ing water flow after loss of agitation will also help mixing by refluxing in addition to removing heat of reaction.
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VAB.0001146934
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II. GENERAL PROCESS DESCRIPTION Refer to tfce attached PSI diagrams for the complete system layout for each reactor area. Emergency kill injection pots are provided at grade level for each reactor. All injection pots are to be maintained at 300 psig pressure using high pressure nitrogen cylinders. A separate nitro gen cylinder and spare are provided for each injection pot. Level gauges and pressure gauges are provided on each pot in addition to board-mounted low pressure alarms and low level indicators. The A operator should check the appropriate injection pot level and pressure before starting each reactor charge sequence. Killing agent can be injected into the reactor either remotely by
^ the lead operator or locally by the A operator. Normally, the emergency kill system will be activated from the board to minimize time and maximize mixing. One switch for each reactor operates automatic double block valves at the reactor top head level. Placing the switch in automatic mode opens the valves and allows a low level switch in the injection pot to close the valves. Placing the switch in the momentary-contact manual mode also opens the valves but the valves close when the switch is released. Each injection pot low level switch also activates a local light at the manual injection point at the reactor top head level. The auto matic closure of the remote injection valves and the local low level indicator light are provided to prevent nitrogen from being injected into the reactor, blanketing the condenser and reducing
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cooling efficiency.
VAB.0001146935
II. GENERAL PROCESS DESCRIPTION (CONTINUED)
Page 4
Emergency Injection headers are provided at the reactor top head
level In each reactor area. These headers will allow any injec-
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tion pot to be used to kill any reactor in each area or to Inject
additional killing agent if needed. The procedure requires two
hoses, one to connect an injection pot to the header, and one to
connect the header to the reactor. Killing agent can then be in
jected locally by the A operator or remotely by the lead operator.
It should be noted that when the emergency injection header is
used, the injection pot low level switch will neither automatically
close the remote injection valves nor light the appropriate local
indicator light. Caution should be taken to prevent charging nitro
gen into the reactor.
The remote injection automatic valves will be operated by nitrogen supplied by a high pressure nitrogen cylinder and spare. A boardmounted low pressure alarm is provided for each area to alert the board operator when the cylinder in use has dropped below 600 psig. A cylinder with less than 600 psig pressure does not contain enough nitrogen to operate the control valves and should be immediately changed out with a full cylinder.
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III. SAFETY The operation of the emergency kill system does not present any
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extremely hazardous situations. In fact, it's main purpose is to reduce the potential for having hazardous situations in the reactor area. However, some potential hazards are present and precautions should be taken to prevent serious incidents.
AMS has been in use for some me in the plant and the operators should already be familiar with the corresponding safety hazards and proper handling procedures. The attached vendor literature describes chemical properties and safe handling procedures. It should be emphasized that AMS is highly reactive in the presence of the peroxide ini tiators used in the plant. AMS MIXED UNDER ANY CIRCUMSTANCES. B. The new AMS injection pots will be maintained at 300 psig by high pressure nitrogen cylinders. Due caution should be exer cised in the handling of nitrogen cylinders. Operators should avoid damaging the outlet valves on these cylinders. The AMS injection pots will contain AMS under 300 psig pressure, so proper safety precautions should be taken while working with or near these vessels. The injection pots must be depressurized before the block valves on the pot funnel or AMS fill line are opened. The nitrogen
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supply to a pot should be turned off at the pot prior to vent ing the pot. The pots should only be vented through the bleed valve on the pressure gauge/pressure switch piping on the top of the pots. POTS SHOULD NEVER BE VENTED THROUGH THE FUNNELS ON THE
SIDE OF THE POTS.
VAB.0001146937
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III. SAFETY (CONTINUED)
C. The rupture disk and relief valve assemblies for each injec4r
tion pot are set to relieve at 400 psig, the vessel design pressure. Since nitrogen bottle regulators occasionally leak through, a potential exists for overpressuring the injection
*
pots and causing the rupture disk to burst. Even if the killing agent didn't spray out when the relief devices opened, it is probable the relief valve would not completely reseat and the nitrogen bottle would slowly depressure through the pot and
4
relief valve to atmosphere. The outside operator should routinely check injection pot pressures to insure it is neither too low nor too high. D. The AMS killing agent is a volatile hydrocarbon, and thus fire and explosions are theoretically possible. Precautions should be taken to prevent spills and excessive accumulation of flam mable vapors. E. Since the injection pots are connected to the reactors, a poten tial exists for backing VCM into the pots. This poses no serious immediate problem since the AMS would kill any reaction that was occurring. However, it could present an exposure problem later when the injection pot is opened. The injection pots should be maintained at 300 psig pressure except when refilling. F. Finally, operators should keep in mind that this system will be used when the plant is in an upset condition, i.e., power failure, loss of cooling water, reactor runaway, etc. It is
VAB.0001146938
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1-8 A
IM. SAFETY (CONTINUED)
critical that this system must operate properly in such an 4-
emergency. System maintenance and operator familiarity with this system are equally important factors ensuring the dependability of this system.
VAB.0001146939
,V* OPERATING procedures
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Page 8
A. Injection Procedures
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1. The emergency kill system should be activated under the
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following circumstances:
a. Extended loss of cooling water to a reactor in poly
merization mode.
b. Extended loss of agitation to a reactor in polymeriza
tion mode. When agitation is lost, it is Important to
kill the reaction as soon as possible. The reactor
contents will continue to swirl for about four minutes
after agitator shutdown, and AMS injection during this
period is much more effective.
c. A runaway reaction with increasing temperature and pres
sure which is not responding to small AMS Injections
(short stop) from the initiator charge pot.
d. Any other circumstance considered by the operator to
represent a significant chance of over pressuring the
reactor or affecting safe operation of the plant.
2. The emergency kill system must be activated If the reactor
reaches the following pressures for the following products:
a. 5305 with CTA
155 psig
b. 5305 without CTA
165 psig
c. Ail other products
1A5 psig
3* Lead Operator Duties
a. The lead operator should remotely Inject AMS Into the
polymerizing reactors which require killing by placing
the appropriate hand switches In the AUTO mode.
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IV. OPERATING PROCEDURES (CONTINUED) A. Injection Procedures (Continued) 2. Lead Operator Duties (Continued) b. The lead operator should then check for confirmation of AMS injection from the board-mounted low level indicat ing lights, and from the A operator via radio. In jection time should be about 30 seconds. The boardmounted injection pot low pressure alarms will normally be tripped during AMS injection. If the pressure and level alarms are not tripped, the automatic AMS injection line may be plugged requiring manual injection. c. After AMS injection, the lead operator should closely monitor the reactor temperature and pressure. If cool ing water has been lost, he should take steps to restore cooling as soon as possible. d. If additional killing is required, the momentary-contact manual switch can be used. Caution should be exercised to prevent nitrogen from entering the reactor and blanket ing the condenser. e. If excess nitrogen does enter the reactor, the condenser should be vented to the recovery system. 3. A Operator Duties a. The A operator is responsible for field-checking AMS injection to each of the reactors to be killed. He should confirm that the injection pot level is at the low level mark on the level gauge. Too high a level
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VAB.0001146941
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IV. OPERATING PROCEDURES (CONTINUED) A. Injection. Procedures (Continued) 3. A Operator Duties (Continued) means not enough AMS was injected. No level may mean nitrogen has entered the reactor. b. The A operator should also check the pressures of the nitrogen cylinders used for AMS injection. Any cylinder with a pressure lower than 750 psig should be changed out to allow for a second AMS in-
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jection. c. After checking the injection pot and nitrogen cylinders,
the A operator should proceed to the reactor top level to confirm that the automatic injection valves are closed. If the valves are open, he should man ually block in the line and inform the lead operator that nitrogen has entered the reactor. It may be necessary to vent nitrogen to the recovery system to maintain reactor cooling. d. If the automatic injection system failed to work, the A operator should manually inject AMS to the re actor. He should open the manual double block injection valves, wait for the injection pot low level indicator light to light, then immediately close the double block valves. The valves should also be immediately closed if the line begins to vibrate from flowing nitrogen.
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IV. OPERATING PROCEDURES (CONTINUED)
A. Injection Procedures (Continued) 3* A Operator Duties (Continued) e. If additional injection is required, the A operator .should prepare the emergency injection header for use. This header is supplied to allow any injection pot to be used for any reactor. This is accomplished by connect ing one hose from a full and pressurized pot to the header and connecting a second hose from the header to the appropriate reactor. Injection can then proceed either locally or from the board. Caution should be exercized when using this header since the injection pot low level switches will not work correctly and nitrogen may enter the reactor. f. As soon as possible after injection, the A opera tor should refill the empty AMS pots and prepare for a second injection if needed. 1. Close the block valve on the nitrogen supply line at the pot. 2. Depressure the pot through the pressure gauge vent valve* 3. Refill the pot with AMS from a 55-gallon drum using
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the air operated drum pump supplied with the system. An alternate filling procedure is to manually pour AMS into the funnel on the side of the injection pot.
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IV. OPERATING PROCEDURES (CONTINUED)
A. Injection Procedures (Continued)
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3. A Operator. Duties (Continued)
f. (Continued)
4
k. Block in the pot and repressure with nitrogen from
the nitrogen bottles.
g. Radio communication between the lead operator and the
A operator should be maintained. The A operator should
inform the lead operator how the system Is operating
and what is being done in the field. The lead operator
should keep the A operator informed of reactor pres
sures and any apparent need for additional AMS injec
tion.
B. Routine Operation
1. A reactor should not be charged unless its AMS injection
system is in proper operating condition. It is the respon
sibility of the A operator to check this in the field
and notify the lead operator, prior to each reactor charge.
The following items should be checked immediately before
each charge:
a. The AMS level in the injection pot should be at the full
mark on the level glass.
b. The pressure in the injection pot should be 300 psig.
This should be checked both on the injection pot pressure
guage and on the nitrogen cylinder regulator outlet
^ pressure guage.
VAB.0001146944
IV. OPERATING PROCEDURES (CONTINUED) B. Routine Operation (Continued) c. The block valve in the AMS line near the injection pot should be fully open. d. The block valve in the AMS line at the reactor top head level near the hose connection should be fully open. e. Both block valves on the manual AMS injection line should be fully closed. If any of the above conditions are not met, they should be corrected before the reactor is charged. 2. To insure proper operation of the system, the following items should be checked by the A operator at the beginning of each shift: a. The pressure of the nitrogen cylinders being used for AMS injection should be at least 1200 psig. Cylinders with lower pressures should be changed out with full cylinders. EMPTY BOTTLES ARE NOT TO BE LEFT IN THE BOTTLE RACKS. b. The pressure of the nitrogen cylinder being used to actuate the automatic AMS injection valves should be at least 600 psig. Cylinders with lower pressures should be changed out with full cylinders. The pressure on the outlet of the regulator for this cylinder should be 100 psig.
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VAB.0001146945
Page 1A
1-8
IV. OPERATING PROCEDURES (CONTINUED)
B. Routine Operation (Continued)
c. The pressure gauges between the double block valves on + both the automatic and the manual Injection lines
should routinely be bled to 0 pslg. If pressure sub**
sequently builds up on these guages, It Indicates that
one or both of the double block valves are leaking.
Note: These gauges will have pressure on them after
AMS Injection.
d. All spare nitrogen cylinders In the racks should be
full, i.e., cylinder seals are intact.
The above items are vital to the proper operation of the
emergency kill system. If any of these conditions are not
met, they should be imnedlately corrected.
3. Other Items which should be checked on a routine basis are:
a. The automatic AMS Injection line reactor nozzles
should be checked for plugging. This can be done
while the reactor Is being rinsed. Full port ball
valves have been provided on this line so that a rod
or long wire brush can be run through the line to
knock out plugging. This line should be checked once
a week when the system Is being tested.
b. The manual AMS injection line reactor nozzles should
also be checked for plugging on a weekly basis. This
should be done In a manner similar to that used for
checking the automatic injection line.
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VAB.0001146946
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OPERATING PROCEDURES (CONTINUED)
C. Testing Procedures
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1. The AMS Injection system for each reactor will be tested weekly on a schedule set up by the process superintendent.
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Each system will be checked for line pluggage and valve operation. The testing procedure Is outlined below; a. The A operator should perform a complete visual check
of the system to be tested both at grade level and
4
at the reactor top head level. b. He should then contact the lead operator on the radio
and confirm that the reactor and Emergency Kill System are ready to be tested. c. He may then manually Inject approximately one gallon of AMS to the reactor by opening the manual injec tion valves for approximately two seconds. d. After AMS has been Injected manually, the A operator should close the block valve near the hose connec tion and notify the lead operator that the automatic system is ready for testing. The lead operator may then remotely cycle the Injection valves using the momentary-contact MANUAL mode of the control valve hand switch. e. During automatic AMS injection testing, the A operator should be checking for proper operation of the system, i.e., control valves, actuators, and solenoids.
I VAB.0001146947
1-8 Page 16
IV. OPERATING PROCEDURES (CONTINUED) C. Testing Procedures (Continued) f. After automatic injection testing, the A operator should rod out the vertical sections of line at both reactor injection nozzles to confirm the nozzles are
*
not plugged. 3. The following must be done following a test prior to
charging the reactor: a. The pot should be refilled with AMS. b. The pot should be pressurized to 300 psig. c. The AMS injection nitrogen cylinder pressure should be
checked (above 1200 psig). d. The pressure of the nitrogen cylinder used to supply
instrument air to the automatic AMS injection control valves should be checked (above 600 psig). e. The manual block valve at the reactor top head level near the hose connection should be reopened.
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V. APPENOIX
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STORAGE AND HANDUNG OF
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Page 18
4 ALPHA-METHYL STYRENE
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Alpha-Methyl styrene is usually stored and handled in steel equipment. It is also compatible with stainless steel, aluminum, and galvanized iron. Copper and copper alloys are not recommended for this service.
This product has a fairly low freezing point (about -10*F) and low viscosity. Underground storage tanks and lines should be considered, as their use will prevent freezing in winter and keep the product cool in summer. Storage temperature
J
should not exceed 100F. Storage under a nitrogen blanket is preferred; exclusion of air (oxygen) will reduce the chances of polymerization, peroxide formation, and fire.
Piping can be of the materials listed above. A centrifugal pump is
i
suggested for transfer service. "Teflon" is suitable for gaskets and packing. An inhibitor, para-tertiary butyl catechol (10-20 ppm), is used in
alpha-methyl styrene to inhibit polymerization. If storage time is prolonged, the inhibitor concentration should be checked occasionally and more inhibitor added, if needed. Alpha-Methyl styrene is a toxic chemical; contact with liquid or vapors should be avoided.
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VAB.0001146950
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oMETHYLSTYRENE
Page 19 1-8 A
CHEMICAL NAME:
C-Methyl styrene
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SYNONYMS:
CHEMICAL FORMULA:
I sop ropenyl benzene, alpha-methylstyrene, 2-phenylpropene, 1-methyl-1-phenylethylene
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cH 3 ,u
CHEMICAL STRUCTURE:
/~Vr=CHo w/ . 2
ch3
Appearance........................................................
Molecular weight............................................
Flammability limits, vol %, upper............ lower............
Flash point, open cup, C (Tag)....,........ closed cup, C (Tag)............
Autoignition temperature in air, C........
Boiling point at 760 min Hg, C................. at 10 mm Hg, C...................
Froezing point, C........................................
Vapor pressure, nam Hg at 20C...................
Solubility, wt % in water........................
(20C)
water in...........................
Specific gravity at 20/4.................
+
Heat of vaporization at 1 atm, Btu/lb...
Heat of combustion at 25C, Btu/lb..........
m
Coefficient of expansion at 20C, vol/C
Viscosity at 20C, cos.................................
Revised 3/15/76
...... I'nm
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Via ter-white liquid 118.18
6.1
1.9 52 (126F) 44 (112F) 575 (1066F) 165.4 48.5 -23.2 1.9 <0.1
<0.1
0.9106 140 17,748 0.00096 0.94
VAB.0001146951
("X- Mb TH Y l. S T Y P N E
Page 20
Some significant reactions with the more cotnmon chemicals are briefly discussed below:
Oxidation
- forms aldehydes and peroxides if exposed to air (oxygen). Can be epoxidized and is attacked by strong oxidizing agents.
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hydrogenfrtion - Can be hydrogenated catalytically in the presence
of metals. The unsaturated vinyl group and the
aromatic ring can both be hydrogenated under selec tive conditions.
nalogenation - Charac teris ti c addition to the vinyl group and substitution on the aromatic ring can occur with
halogens such as chlorine or bromine.
These exothermic addition reactions generally require
catalysts and/or elevated temperatures and are not
considered hazardous if properly controlled. However, reaction with chlorine which occurs at ambient tern-
%
peratures can be violent in the presence of light. Accidental contact of CC-rnethylstyrene with halogens or halogen-containing compounds must be prevented.
Acids
Under special conditions, the aromatic ring may be attacked by concentrated nitric or sulfuric acids. These reactions must be carefully controlled to avoid hazardous consequences. Also, hazardous oxidation may occur by contact with concentrated nitric acid.
Methoxvlation - Methylstyrene can be reacted under special condi
tions with formaldehyde or CO-H2 in the presence of a
catalyst to yield an aldehyde or alcohol. This reac tion is considered to be*nonhazardous as it is un likely to occur accidentally.
s The above discussed reactions other than oxidation, halogenation, ar'.d pel vine ri zation are generally considered to be nonhazardous. However, when conducted in the plant or laboratory, all of the reactions of f.X-methy1styrene should be properly controlled to avoid hazardous consequences.
sed 3/15/76
If the UCC customer wants to use rubber hoses for unloading tank tru 1 < the recommended materials are Vi ton A or polyethylene liningand steel or 304 SS fittings. Both Uni royal and Goodyear manufacture
rubber hoses with a Vi ton A or polyethylene liner. . 01 elastomers such as
neoprene, butyl, buna-N, etc., are not recommended for handling AMS because they will be chemically attacked by the AMS. Another type of hose that ***** can be used is 304 SS flexible metal hose.-0^
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A-METHYL STYRENE
Page 21
1-8
A-METHYL S
This is a summary of single exposure studies on animals. The data indicate the relative
degree oi hazart^in handling the product. Increasing degrees of hazard arc expressed
by rhrse terms: slight, moderate, definite, serious. It must be remembered that results of experiments on animals cannot be numerically translated to probable human response*
The Nahonjl Research Council defines tonicity as tho capacity of a subiiance to produce injury. Hazard is the probability that injury wiil result from the handling or use of the substance in the quantity, frequency and manner propo'jL-;S.
Tonicity is only one factor important iq determining ihe degree of hazard in handling a chemical or in ct proposed us,'. Physiint piop^rtics of the chemical together with c*tent and frequency of exposure ore equally important.
I fie term ID^q has been adopted as a uniform expres sion of single dose toxicity for comparing one chemical sifh another, h refers to that quantity of chemical which kills 50 per cent of exposed animals. For further uniformity, quoniuu** are expressed in grams or milliliters of chemical per kilogram of animal body weight.
Single skin penetration refers to a covered 24-hour skin contoct with the liquid chemical.
Single inhalation refers to continuously breathing a certain concentration of chemical vapors for a specified pe ric d of time.
Primary irritation refers to the skin response following
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uncovered skin contact. A covered contact can bo expected to have a more severe effect.
Eye injury refers to surface damage produced by con* lad of iho eye with the chemical.
Legal responsibility is assumed only for the foci that all studies reported here, and all opinions, oro those of qualified experts.
Single oral dose in rats: moderate hazard. LDcq * 6.50 ml per kilogram of body weight.
For comparison, isopropanol has an LDcq of 5.84 grams/kg.
Single skin penetration in rabbits: slight hazard. 16.0 mi/kg body weight killed 3 of 7 animals from a
24 hour covered exposure. This result suggests that skin penetration in harmful
amounts is not apt to occur.
Single inhalation by rats: slight hazard. Breathing vapors in a state approaching saturation in
room air for 8 hours killed 2 of 6 animals.
Skin irritation, rabbit belly: moderate hazard. The undiluted chemical caused redness of short duration
on the tender skin of the rabbit belly.
Eye injury, rabbits: slight hazard. The undiluted chemical caused no irritation when an
excess was instilled in the rabbit eyes.
TYPED
5/24/77
For Further Information Write To:
Industrial Medicine and Toxicology Department UNION CARBID CORPORATION
2-70 Pnrh Avenu*. New York, N.Y. 10017
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MATERIAL SAFETY DATA SHEET
(Approved by U.S. Department of Labor "Essen [tally Similar" to Form L58-OOS 4)
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PRODUCT NAME:
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CHEMICAL NAME:
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FORMULA:
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CHEMICAL FAMILY MOLECULAR WEIGHT:
Aryls 118.18
SYNONYMS:
Isopropenylbenzene; a-methylstyrene; 2-phenylpropene; 1-methyl-1-phenylethylene
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VAPOR DENSITY (air 3 1)
PER CENT VOLATILES BY VOLUME
0.9116 at 20/20C.
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1k VAPOR PRESSURE AT 20C.
1.9 mm. Hg
1 SOLUBILITY \ IN WATER, % by wt.
EVAPORATION
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Colorless liquid; characteristic odor.
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Methylstyrene
(See Sections III through Vlll)
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FLASH POINT [ lest melhodU)]
FIRE AND EXPLOSION HAZARD DATA
112F., Tag closed cup ASTM D 56 126F., Tag open cup ASTM D 1310
FLAMMABLE LIMITS IN AIR, % by volume
EXTINGUISHING MEDIA
Use carbon dioxide or dry chemical for small fires. Use foam (alcohol, polymer, or ordinary) for large fires
(
SPECIAL FIRE FIGHTING PROCEDURES
Self-contained breathing apparatus should be available to firemen
UNUSUAL FIRE AND EXPLOSION HAZARDS
None
1
i * EMERGENCY PHONE NUMBER 304/744-3487
This number is available days, nights, weekends, and holidays.
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WD. i' Uiwon O'bide Corporation believes m.u the fljta contained hewm am (actual and the opinions expressed are those ot Quahlied experts regarding the results I the tests conducted me ana are not to be taken as a w.u-anry 01 representation lor which Union Carbide Corporation assumes legal responsibility They are odered solely lor your consideration.
ufsir. ai'un .111(1 verification Any use ol mew u.ii.t and mior motion must be determined by llw user to be m accordance with applicable Federal. Stale.
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THRESHOLD LIMIT VALUE
100 ppm. ~ not to be exceeded. Value from ACGIH (1976)
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EFFECTS OF OVEREXPOSURE
Vapors cause irritation of eyes, nose, and throat. Headache, nausea, and vomiting may occur. Eyes are irritated by the liquid.
*
EMERGENCY AND FIRST AID PROCEDURES
Remove to fresh air and call a physician. In case of contact, flush skin or eyes with plenty of water for at least 15 minutes. Call a physician for eyes.
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CONDITIONS TO AVOID
Avoid heat and open flame.
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INCOMPATIBILITY [materials to avoid)
Avoid contamination with oxygen, strong acids, chlorine.
HAZARDOUS DECOMPOSITION PRODUCTS
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IAZARDOUS POLYMERIZATION
May Occur
Will not Occur
Burning can produce carbon monoxide and/or carbon dioxide.
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CONDITIONS TO AVOID
Avoid contamination with peroxides, strong mineral acids, metal halides, and
similar polymerization catalysts. Para-tertiary butyl catechol is used as inhibitor; maintain its concentration at 10-20 ppm.
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Wear suitable protective equipment. Collect for disposal. Toxic to fish; avoid discharge to natural waters. See Section VIII.
VASTE DISPOSAL METHOD
Incinerate in a furnace where permitted under appropriate Federal, State, and local regulations. Absorb on paper, evaporate on glass dish, then burn paper.
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Air-supplied mask in confined areas
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Rubber
......................................................................................
! EYE PROTECTION
OTHER PROTECTIVE LOUIPMENT
Eye bath and safety shower
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DANGER! CAUSES BURNS COMBUSTIBLE
Do not get in eyes, on skin, on clothing. Keep away from heat and open flame. Avoid breathing vapor. Keep container closed. Use with adequate ventilation. Wash thoroughly after handling.
FIRST AID:
In case of contact, immediately flush eyes or skin with plenty of
water for at least 15 minutes while removing contaminated clothing
and shoes, Cali a physician. Wash clothing before reuse.
FOR INDUSTRY USE ONLY
OHIfR HANDLING AND STORAGE CONDITIONS
Store under a nitrogen atmosphere; forms acetophenone, aldehydes, and peroxides if stored under air. Dangerous concentrations of peroxides are not expected to form in normal storage and handling, but storage under a nitrogen atmosphere is recommended.
This chemical floats on water, is resistant to rapid biodegradation, and is highly toxic to aquatic life. Spills should not be flushed to sewers or waterways. The preferred method of disposal is to dilute with a non-reactive solvent or fuel stream and incinerate.
Ground areas can be covered with sand or sawdust after most of the spilled material has been removed. Absorbing materials, after use on small spills, should be disposed of in an approved chemical landfill or by burning.
CAUTION:
Do not use clays, micas, or acidic materials which might catalyze
polymerization, as absorbents. Personnel engaged in disposal work should avoid contact of
wastes by wearing proper protective clothing.
VAB.0001146957
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