Document ymmYyoyJ85myr6GVZazMnOV94

Tetra and Per/Tri COOLING TOWER WATER TREATMENT PROGRAM OPERATING MANUAL PPG/MAZER COHPIDEKTIAL TRADE SECRETS, HOT TO BE RELEASED 14th MO. 91-1145 CUIt SL 002507 TABLE OF CONTENTS Water Basics Cooling Water Systems The Heat Exchanger Chemical Treatment Scale Corrosion Fouling Microbiological Growths PPG/Mazer Treatment System Sabine River Water Make-up Guidelines Well Water Make-up Guidelines Trouble Shooting Guidelines High pH Low pH Mazplex MO Feed Loss Maztreat 838 Feed Loss Loss of Blowdown Make up Valve Sticks Open Fire Water Intrusion High or Low Halogen Analytical Procedures, Molybdate. Analytical Procedures, TotalHalogen (Chlorine) LMI Pump Information Brominator Information Material Safety Data Sheets Molybdate and Chlorine charts 't 2 6 8 9 10 11 13 14 15 18 19 20 20 21 22 23 23 23 24 26 27 30 32 34 37 48 SL 002506 CONFIDENTIAL: Subject to Protective Order of 14th Judicial District Court No. 91-1145 WATER BASICS 2 ALL WATER IS NOT THE SAME Completely pure water is non-existent. All natural water contains various types and amounts of impurities. Since water impurities cause problems in a cooling system, careful consideration must be given to the quality of the water used for this purpose. Water is an excellent solvent; it dissolves the rocks and soil it contacts. It absorbs gases from the atmosphere and the soil it contacts. It picks up suspended matter as it runs across or percolates through the ground. In general the type of impurities water contains depends on what it contacts, and the amount of impurities depends on contact time. The impurities which water picks up can be put into three broad groups: 1. Dissolved solids 2. Suspended solids 3. Gases CONFIDENTIAL: Subject to Protective Order of 14th Judicial District Court No. 91-1145 3 DISSOLVED SOLIDS The impurities ( minerals in a dissolved state ) which water picks up consist chiefly of calcium carbonate, calcium sulfate, magnesium sulfate, silica ( sand ), sodium chloride, sodium sulfate, and small quantities of iron, manganese, fluorides, aluminum and other substances. SUSPENDED SOLIDS Natural water may contain turbidity, color, soil, and precipitated minerals. In addition, water can contain other wastes. Turbidity may consist of very finely divided organic mater, minerals and microorganisms as well as suspended clay and silt. Color comes from decaying vegetable matter. Wastes can be oil, fats, greases, and sewage as well as a variety of effluents from many different sources. GASSES Gases (primarily carbon dioxide and oxygen) are absorbed from the air by water as it falls to earth. Additional carbon dioxide and oxygen are picked up from decaying matter in the soil as the water runs across and percolates through the soil DISSOLVED SOLIDS Calcium Magnesium Silica Iron Manganese Sodium Chloride Sulfates Fluorides Carbonates Bicarbonates Aluminum SUSPENDED SOLIDS Soil Decaying vegetable matter Precipitated minerals Oil Trade waste Microorganisms Clay GASES Carbon Dioxide Oxygen Others 4 Fresh water supplies are grouped into two categories: (A) ground water and (B) surface water. Some of the water reaching the ground seeps down through the surface to form the under-ground streams and lakes. A portion of the water reaching the earth's surface runs across the soil then into brooks, streams, bayous, rivers, ponds or lakes. The former is referred to as ground water, the latter as surface water. Because ground water (shallow and deep wells) is in contact with the rocks and soil for a longer period of time (in percolating down through the various layers of soil and rock) it will contain a higher amount of dissolved solids than surface water. Surface water on the other hand will contain a higher amount of suspended solids. As pointed out earlier, the types of impurities found in water depend on what the water contacts, the amount that it contains depends on the contact time. One way to measure the amount of dissolved solids in water is Conductivity. The dissolved salts conduct electricity through the water. The greater the dissolved solids load, the greater the amount of electricity the water will conduct. One measure of suspended solids in water is Turbidity. The sabine river water used in the Lake Charles plant is clarified in the Sabine water clarification unit operated by the Plant C powerhouse operators. They use treatment chemicals to remove the suspended solids. They measure the turbidity of their outlet water. They also chlorinate the water. SL 002511 CONFIDENTIAL: o 'tt".iiv_ Ve order strict Court 5 Waters which contains large amounts of calcium and magnesium are referred to as Hard water. The amount of hardness in natural water may vary from several parts per million to over 500 parts per million. 1 part per million is 1 pound per 1,000,000 pounds, and is abbreviated ppm. An average surface supply will contain about 95 ppm total hardness as opposed to an average of about 200 ppm for ground water supplies. In the Lake Charles complex the surface water we use is clarified Sabine river water, and it has a total hardness of about 25 to 30 ppm, which is below the average. Since hardness (calcium and magnesium) is relatively insoluble in water, it tends to precipitate (fall out) of solution and form deposits in the cooling water system. While all impurities found in water must be taken into consideration when used in a cooling system, special attention must be given to the hardness present. SL 002512 C ofSu1b43tiev ctjuaic;.' lc.u COOLING WATER SYSTEMS 6 Simply stated, a cooling water system absorbs heat from one area and dissipates it into another area. There are a number of types of cooling water systems. There is the spray pond, the once through system, the refrigeration system and the cooling tower system. Each of these systems has their own treatment problems. The cooling tower system works by mixing warm water with cool air. The heat transfer is accomplished partially by a transfer of sensible heat which raises the temperature of the air. The majority of the cooling is due to an exchange of latent heat resulting from the evaporation of a small part of the circulating water. All cooling towers have the same basic function, to break up the water into droplets and move air across them. These functions result in a more efficient evaporation of water and in that process, dissipation of heat from the system. There are two ways in which the tower can break up the water into small droplets. One involves the use of spray nozzles in the tower, the other relies on splash plates. As the water falls from the top of the tower it hits the splash plates and small droplets are formed. The tower can draw air across the water droplets by either natural convection or forced draft. The towers in the Lake Charles plant are all forced draft. A fan forces air across the water droplets to aid in evaporation. SL 002513 7 Because water is evaporated from the system, water must be added to the system. This fresh or makeup water has some of the impurities pointed out earlier. As water evaporates, it leaves as pure water vapor. The impurities stay behind in the recirculating water stream. As the impurities increase in concentration they will reach a point where they cannot stay in solution. ' They will precipitate out and cause problems through out the process equipment serviced by the water. The impurities Cycle up. that is their concentrations in the tower water increase to double or triple their concentration in the make up water. When their concentration becomes double that of the make up we say the tower is running at 2 cycles. The TETRA and PER/TRI towers should run at 7 cycles. The lower the number of cycles the more treatment chemicals that must be added to maintain the proper level for corrosion or scaling control. The method of removing the impurities that accumulate in the cooling tower system is called Blowdown. Blowdown is the intentional or unintentional purging of water from the system. Blowdown should be done from the warm inlet side instead of the cool outlet side. Like wise make up should be added to the cooler basin water. The make up on the TETRA and PER/TRI towers is controlled by a LCV and LT on the tower basin. The blowdown is manually controlled using the conductivity of the recirculating water. SL 002514 Subjec of 14th ' i " 7' i, * Proce-ti orcdoeu+r+ rt cial DiBtnot , 9I-H45 8 Heat transfer between the process and the cooling tower water occurs in a heat exchanger. The heat exchanger may be a direct contact type as with a barometric condenser. It may be a shell and tube type of exchanger, where the water is on one side and the process is on the other side. A lot of the exchangers on the TETRA and PER/TRI cooling towers have the water on the tube side of the exchanger. This helps maintain good water velocity through the tubes and helps prevent suspended solids from settling out. When the water is on the shell side of the exchanger solids can settle out in the low velocity areas. We will speak later of the problems this can cause. There are some designs that allow the shell side of an exchanger to be cleaned easily, such as with a removable bundle. If the distance between the tubes and the geometry of the tubes allow, full cleaning is possible. Some exchanger designs prevent adequate cleaning by any method. These are sometimes found in refrigeration units. Whenever possible tube side'water is better from a cleaning standpoint. SL 002515 CONFIDENTIAL: Subject to Protective Order of 14th Judicial Distri' * r . 01-11*' 9 CHEMICAL TREATMENT WHY IS CHEMICAL TREATMENT NECESSARY? As we have already seen water contains solids which if not controlled and treated can precipitate and form scale. The gases in make up water plus gases which can be carried into the tower by the air draft are corrosive. Airborne contaminants such as dust and silt can be drawn into the tower cooling water. Biological growths such as algae, slime forming bacteria, fungi and other microorganisms can breed readily in cooling water systems. Alone or in combination, the solids, gases, airborne contaminants or microorganisms can cause serious problems in the efficient operation of a cooling system. SL 002516 CONFIDENTIAL: Subject to Protective Order of 14th Judicial District Court No. 91-1145 SCALE 10 Scale deposits One of the most serious problems which can develop in untreated cooling tower water is that caused by scale. Scale formation occurs when the solids and gases in the cooling tower water reach their limits of solubility and precipitate out onto piping and heat transfer surfaces. As the scale deposits on heat transfer surfaces, the ability of the cooling tower water to absorb heat is reduced. This results in reduced capacity and higher power consumption. Prevention of Scale Scale prevention is a twofold approach: (A) Chemical treatment is added to the cooling tower water which retards or delays solids from precipitating out and forming scale. (B) While treatment chemicals increase the solubility of solids in water so they stay in solution, a point is reached where they will precipitate (their solubility has been exceeded). When this point is reached the system must be bled. The control of scale then involves both chemical treatment and the limiting of solids through "bleed". SL 002517 Protctive Order 14th Judicial District Court No. 91-1145 CORROSION 11 Causes of Corrosion Corrosion is simply the eating away of metal. It is actually a chemical reaction between the metal in the system and the recirculating water. Three types of corrosion can take place in a cooling water system. (A) General corrosion is when the corrosion attack is uniform and lightly distributed over the entire area of the metal. (B) Pitting corrosion exists when a large part of the area is protected and only a small localized area is attacked. Pitting is considered more objectionable since a large corrosive force is concentrated in a very small area and rapid penetration and failure may result. (C) Galvanic corrosion is the third type of corrosion encountered. This can occur when dissimilar metals are in contact with each other. Conditions which foster corrosion are high oxygen concentration, high temperature, high velocity of liquid on the metal surfaces, low pH, high soluble sulfates and chloride concentration and galvanic action. SL 002518 CONFIDENTIAL: Subject to Protective Order of 14th Judicial District Court No. 91-1145 Prevention of Corrosion 12 The prevention of corrosion usually requires one or more of the following approaches: (A) Treatment of the water to make it less aggressive such as adjustment of the pH. (B) Developing a protective coating by film-forming chemicals added to the cooling tower water. They are recirculated in the water and deposited on the system metal. The is a measure of the acidity or alkalinity of a solution. It is based on a scale of 0 to 14. The mid point of the scale is 7. Solutions which measure 7 are said to be neutral, neither acid or alkaline. Solutions which measure between 0 and 7 are acid, and those between 7 and 14 are alkaline, Since pH is a logarithmic function, solutions having a pH of 6, 5, and 4 are 10, 100, and 1000 times more acidic than one with a pH of 7. Sl 002519 CONFIDENTIAL: Subject to Protective Order of 14th Judicial District Court No. 91-1145 FOULING 13 Airborne Contaminants Contaminants scrubbed from the air as it passes through the tower can result in fouling of heat exchangers, condensers, piping and tower packing. The most common type are those which leave a silt like deposit. These fall under the general heading of suspended solids. They can also enter the system through the makeup. The deposits can build up and retard heat transfer, restrict water flow, promote corrosion and harbor microorganisms. Chemical treatment (synthetic polyelectrolytes are most commonly used) to prevent accumulation of silt is added to the cooling tower water. These polymers serve to agglomerate the silt particles and bind them into loose but coherent larger masses. The effect is to keep these larger particles suspended and remove them during "bleed". Fouling from inorganic deposits can easily happen in low flow or low velocity areas of the system. This can happen on the shell side of exchangers. When deposits start to grow, underdeposit corrosion can start and the deposit protects the corrosion cell from the passivating effects of the treatment program. SL 002520 tTofpr^%otrcoort of 31Vo- 91'11 PPG/Mazer Chemical Treatment System 15 The treatment chemicals that make up the total treatment system are as follows: t Mazplex MO is a mixture of Phosphorus containing organic compounds called Phosphonates, Zinc and Molybdate. These compounds help form a protective coating in the cooling tower system. It also contains dispersants and polymers to help keep some of the impurities in solution, and prevent them from precipitating out of solution. The component of Mazplex MO that will be monitored by chemical analysis is the Molybdate. Maztreat 838 is a solution of Tolytriazole. This is a premium copper / copper alloy corrosion inhibiter. This is a compound common in automobile radiator rust inhibitors. The PPG/Mazer representative will monitor the level of this component in the tower. Mazsperse 830 is a mixture of two powerful dispersants. They are helpful m extending the solubility of iron, zinc and other dissolved sol ids. They also help condition the suspended solids so they may be purged from the system in the blowdown. SL 002522 CONFIDENTIAL*- order trict Court PPG/Mazer treatment chemicals cont. 16 Mazide BC 915 is a Glutaraldehyde solution. This is a powerful biocide, algicide. It is fed to the system on a slug basis. The amount fed to the system should bring the glutarald hyde concentration up to 30 ppm. Mazide Br-cl is l-Bromo-3~Chloro-5.5-dimethylhydantoin (BCDMH). It is used in the system to help destroy any biological growths. It is called an oxidizing biocide. These growths were explained in an earlier section of this manual. When BCDMH dissolves in water HOBr and HOC1 are generated. The HOC1 is called hypochlorous acid, and the HOBr is called Hypobromous acid. C5H6BrClN;0* + 2H20 --> C5H8Nj02 + HOBr + HOCl They are Hypohalous acids and are the actual biocides. They can penetrate the cell membrane of the organism. A further reaction also occurs: HOCL = H* + 0C1' and HOBr = H* + OBr' SL 002523 CONFIDENTIAL: Subject to Protective Order of 14th Judicial District Court No. 91-1145 17 The OCL" and OBr' ions are not very good at killing bioorganisms. These reactions are pH dependant. In the pH range of the Tetra and Per/Tri towers the more predominate specie will be the HOBr. This component will be maintained in the range of .2 to .5 ppm total halogen as Clj. SL 002524 CONFIDENTIAL: Subject to ^^oistrict Court o ml. SYSTEM TREATMENT REQUIREMENTS 18 Clarified Sabine River Water Make-un Chemical constituent Molybdate Tolytriazole Glutaraldehyde Target 6 to 10 ppm Tetra tower Per/Tri tower 16 ppm Tetra tower Per/Tri tower 30 ppm per treatment Tetra tower Per/Tri tower Controlled by: Mazplex MO 1.5 gpd 0.7 gpd Maztreat 838 .25 gpd .12 gpd Mazide BC 915 3 gallons / week 1.5 gallons / week BCDMH .2 to .5 ppm as Cl2 Mazide Br-Cl The actual operating control parameters to be monitored by the operators will be the Molybdate and total Chlorine concentration. The lab test procedures follow in the next few pages. The Maztreat 838 feed rate should be a ratio from the Mazplex MO feed rate at 6 gallons Mazplex MO to 1 gallon Maztreat 838. The pH should run between 7.2 and 8.4 SL 002525 W II Water Make-up 19 When using well water as make up to the tower the following treatment chemical should be added to the normal sabine river water recipe. This is an Iron and Zinc dispersant. Mazsperse 830 1/2 gallon / day 1 ml / minute The pH will run higher while on well water. The pH should be kept below 9 by using blowdown. The number of cycles will run low, maybe as low as 2 to 4. When a Sabine river water supply outage is planned, the Mazsperse 830 should be started two days ahead of time. If the outage is unplanned or the switch over to well water is an emergency, 3.5 gallons should be added to the basin at the suction of the circulating pumps. SL 002526 CONFIDENTIAL: Subject to P^^trict Court of -u'5 20 High pH, greater than pH 9.5 Add additional make-up water, and increase blowdown. Try to purge the system until the pH goes back down. The lower pH sabine river water should help reduce the pH. The high pH can cause the zinc and iron in the system to precipitate out. Purge at all bleed points in the system to see if there is any milky or colored water in the system. The Mazsperse 830 should be turned on to 1/2 gallon per day and 3.5 gallons should be shot fed after the pH is back down to normal. The Mazsperse 830 can be turned off after one week. Allow the system to cycle up to 7 cycles again. SL 002527 CONFIDENTIAL: Subject te ProtecUve Ord^^ f 14th a;i_?iUr Low pH, Acid leak into the system, lower than pH 5 21 An acid leak can strip away the protective layer of inhibitor within the system. It also dissolves iron and other yellow metals. The pH must be restored as soon as possible. The blowdown valve should be opened fully and the make-up opened. The dissolved solids must be purged from the system before redeposition can occur. If the pH cannot be restored within one hour soda ash should be added to the system. CAUSTIC SHOULD NEVER BE ADDED AS IT CAN CAUSE AN IRON HYDROXIDE FLOC TO PRECIPITATE OUT. IT IS EASY TO OVERSHOOT USING CAUSTIC. When the pH has been restored triple the Mazplex MO, and Maztreat 838 feed rates. They may be reduced to normal levels when the Molybdate level has recovered to 10 ppm. 3.5 gallons of Mazsperse 830 should also be shot fed after the pH is back up. Feed Mazsperse 830 at a rate of 1/2 gallon per day for one week. Allow the system to cycle up to 7 cycles again. s<- 002528 v e order o vrotecti Court *1. ciai District JU?,o 91-UV3 Mazplex MO fe d loss 22 Determine how much Molybdate is in the system and shot feed per the following table. Molybdate level 0 ppm 1 ppm 2 ppm 3 ppm 4 ppm 5 ppm Gallons of Mazplex MO 4 gallons 3.5 gallons 3 gallons 2.5 gallons 2 gallons 1 gallons This is based on raising the Molybdate level to the minimum level of 6 ppm. The level should be worked up to the middle of the spec range, 8 ppm. SL 002529 Subject of l4th 91'1145 or<jer Court Loss of Maztreat 838 Fe d 23 When the Maztreat 838 has been found to be off for awhile the PPG/Mazer representative should be notified. He will be able to analyze the water for Tolytriazole and recommend how much the feed should be increased, or if shot feeding is in order. Loss of Blowdown If the blowdown valve sticks and the cycles go up above 8, the make up valve should be opened to allow fresh water into the system. Blowdown should be started at any place possible in the system. The blowdown should continue until the cycles are back down to 7 or below. The Mazsperse 830 should be started at 1/2 gallon per day rate, or shot fed after the cycles are back down to normal. Turn off the Mazsperse 830 after 48 hours. Check the bleeds in the system for milky or colored water. Purge where necessary to bleed the discolored water from the system. If cycles are brought too low in trying tc recover, add Mazplex MO per the previous table. Make up valve sticks coen Treat as the earlier problems of loss of Mazplex MO and Maztreat 338 feed. SL 002530 . tCf Protective order Subject to v t trxct Cour o Uth ^lU-US Fire Wat r Intrusion 24 There are two ways fire water can get into the cooling tower. The first way is for the sprinkler system to trip within the tower. The second way is for the level to get too low in the clear well in the Sabine River water clarification unit. When the sprinkler system in the cooling tower is tripped, fire water from the raw water impoundment at Sabine water clarification unit is pumped into the tower. The fire water lines are not purged very often and a lot of iron builds up in them. The fire water pumps take their suction from the old sportsman lake, and they bring up a lot of silt and other suspended solids. These suspended solids and iron must be removed from the system before they can settle out. When the level goes low in the clearwell at the sabine water clarification unit, a set of gates open to admit raw water. This water will have lot of suspended solids. Again as above, these suspended solids must be purged from the system before they can do any damage. In either case above, the cooling tower system must be purged by opening the blowdown valve and letting the make up valve open. The bleeds at each exchanger should be blown down. SL 002531 ;0NF1DENTIM^ No r court Fire water intrusion coni. 25 Mazsperse 830 should be added to the system. Add 2 gallons to the basin by the suction of the circulation pumps. Start the addition pump or shot feed at 1/2 gallon per day (1.5 ml per minute). This addition should be stopped after^l After the extra make up has been stopped, check the Molybdate level and add per the table on page 18 _J: --------- ' The PPG/Mazer representative must be notified so he can determine if any other steps should be taken. SL 002532 ufidektiJ*'5 High or Low Halogen 26 If the Halogen level in the tower goes up, and stays up for a prolonged period of time, it can cause damage to the wooden structure of the cooling tower. The water should be halogenated to between .2 and .5 ppm as total chlorine. If the halogen level goes up above 1 ppm for any length of time, a reason should be sought. There could be several reasons for high or low Halogen in the tower. The flow through the Brominator should be checked. If the halogen level (Clj level) is low, the flow through the brominator should be raised. If the halogen level is high, the flow through the brominator should be lowered. The make up water from the sabine river water clarifiers is chlorinated before it is pumped into the distribution system. Check with the operators at Power House C to see if they are having a problem with the chlorinators at the clarifiers. High chlorine from the clarifiers can depress the system pH also. Sodium Thiosulfate can be added to reduce the chlorine level if necessary. This will be necessary only on very rare occasions. SL 002533 CONFIDF.KTiAL: V protective Order nistrict Court Molybdate as MoO^ 1 ANALYTICAL PROCEDURES 27 Safety: All laboratory glassware should be free of chips and cracks. Safety glasses should always be worn while in the lab. Required reagents and apparatus: 1) Klett Sommerson Spectrophotometer. 2) Light filter number 66. 3) Narrow sample cell. 4) Hach Molybdenum 1 reagent powder pillows. Wo , a.T>S^"l 5/' 5) Hach Molybdenum 2 reagent solution with 1 ml dropper, a, 2 S cl 6) Mixing cylinder, 50 ml size. 7) Beaker, 50 ml size. 8) Clippers for opening powder pillows. ?"7 Procedure: 1) Install light filter number 66, and turn light power switch on. 252) Fill the 50 ml graduated mixing cylinder with ml o sample. Dilute to 50 ml with distilled water. SL 002534 CONFIDENTIAL' order Subject V? "^Distil ct Court of l4th no! n-u45 28 3) Add the contents of one Molybdenum 1 reagent powder pillow to the graduated cylinder. Stopper and shake to dissolve the reagents. This is the prepared sample. A brown color will develop. 4) Pour 25 ml of this prepared sample into the 50 ml beaker. This will be used as the blank. Leave exactly 25 ml in the graduated cylinder. 5) Add 1 ml of the Molybdenum 2 reagent to the graduated mixing cylinder. Swirl to mix and allow the sample to develop for 2 minutes. A blue green color will develop if molybdate is present. 6) Fill the narrow sample cell with the blank (brown) and ins rt it into the spectrophotometer, making sure the cell orientation is correct. Turn the dial until the galvanometer needle returns to the center line, and record the absorbance. 7) When the 2 minutes are over, fill the narrow sample cell with the developed sample and record the absorbance. 8) Subtract the blank absorbance reading from the developed sample A absorbance reading, and read the ppm MoO/: from the chart. The glassware used for the test may develop a blue color. This may effect the results of the test. Rinse the glassware with a dilute SL 002535 CONFIDENTIAL: Subject to o 14th ^tctal^Dtstr HCL solution followed with distilled wat r. 29 Zero check: Once per day the spectrophotometer galvanometer should be zeroed. The switch on the right side of the instrument should be switched off, which is down. Turn the small black knob on top of th galvanometer until the needle returns to the center line. Turn the switch back on. SL 002536 ANALYTICAL PROCEDURE TOTAL HALOGEN Halogen as C1j 30 Safety: All laboratory glassware should be free of chips and cracks. Safety glasses should always be worn while in the lab. Required reagents and apparatus: 1) Klett Sommerson Spectrophotometer. 2) Light filter number 54 3) Wide sample cell 4) DPD Total Chlorine Reagent Powder Pillow. 5) 50 mL stoppered graduated cylinder. 6) Clippers for opening powder pillows. Procedure: 1) Install light filter number 54, and turn light power switch on. 2) Fill the 50 mL graduated cylinder to 25 mL with the sample. 3) Add the contents of one DPD Total Chlorine Powder Pillow to the sample. Swirl to mix. A pink color will develop if chlorine is present. Accuracy is not affected by undissolved powder. SL 002537 *oo v pro3*te*ct'el.ea, ordcoeUt rt Subjec t ` i oistr1- of l4th No- 31 4) S t the timer for three minutes for the reaction to take place. 5) Fill the cuvette with the untreated sample and insert it in the instrument, making sure the cell orientation is correct. Zero the spectrophotometer with this blank by turning the small black knob next to the cell chamber until the galvanometer needle returns to the center line. 6) When the three minutes are over, pour the sample into the sample cell and insert it into the spectrophotometer. Turn the dial until the galvanometer needle returns to the center line. Read the ppm C12 from the chart. Zero check: Once per day the spectrophotometer galvanometer should be zeroed. The switch on the right side of the instrument should be switched off, which is down. Turn the small black knob on top of the galvanometer until the needle returns to the center line. Turn the switch back on. To reorder reagents from HACH company, use the cat. no. 14064-66 for the DPD Total Chlorine Powder Pillows. SL 002538 CChFIDEEfTIAZ,: Subject to Protective QrdF Of 14th Judicial Distriet Gmiffc No. 91-1145 LMI PUMP OPERATION 32 The LMI pumps used with the cooling tower treatment chemicals are positive displacement pumps. They are somewhat different than other positive displacement pumps. They have no rotating armature in their motor. The power end of the pump is a vibrating armature. The diaphragm is attached to the armature. There are ball type check valves in the suction and discharge. This type of pump can be dead-headed without damaging the diaphragm. The vibrating armature simply will not be able to overcome the pressure on the discharge side and it will stop. It will restart when the discharge side pressure is reduced to normal. Setting the flow with these pumps is a simple matter. The pumps are rated for either 18 gpd or 14 gpd. The % speed and % stroke are a percentage of the 18 gpd or 14 gpd. If the % speed is set to 45% and the % stroke is set to 75%, the flow delivered by the pump will be 18 x .45 x .73 = 6gpd, in the case of the 18 gallon per day pump. In the case of the 14 gallon per day pump, a high range and low range % speed are available. The high range % speed covers 100% down to about 12%. The low range covers 12.5% down to 1%. In the high range % speed scale the pump flow is variable from 14 gpd to about 1 gpd. In the low range % speed scale the pump flow is variable from 1 3/4 gpd to about .05 gpd. SL 002539 CONFIDENTIAL: Subject to Protective Order i4th Judicial District Court No. 91-1145 33 A closer, more accurate measurement can be made with a stopwatch and graduated cylinder. The larger the volume of sample caught, the more accurate the measurement. Divide the volume by the elapsed time to get mL/min. Multiply the flow rate in mL/min by .3804 to get gallons per day. Lf^r - SL 002540 CONFIDENTIAL: BROMINATOR 34 The amount of Halogen (read as Chlorine) in the cooling tower system is dependent on the water temperature and flow through the brominator. For this reason care should be taken to make sure water flow is always maintained. The water inlet line has at least one "Y" strainer in it. If flow is lost, the strainer should be taken out and cleaned. Because Halogen demand (Chlorine demand) can vary greatly, there is not a direct relationship between water flow and total halogen in the tower. There is a direct relationship between water flow and pounds of Mazide Br-Cl used. Refilling the Brominator To maintain accurate dispensing rate performance, refill the Brominator when it reaches half-capacity. The following steps describe how to fill the Brominator. Safety note: Always wear appropriate personal protective equipment when filling or servicing the Brominator. This should include rubber gloves and chemical safety goggles. Do not get Mazide Br-Cl in eyes or on skin or clothing. In case of contact with eyes or skin, flush thoroughly with water. SL 002541 CONFIDENTIAL: ect to Protective Orde h Judicial District Court No. 91-1145 35 Brominator cont. 1) To remove the top tank cap, close the inlet valve first and then the outlet valve. Open the drain valve to release any water pressure. Carefully unscrew and remove the top lid and then close the drain valve. A hook wrench is provided for this purpose. 2) Open the inlet valve and fill the tank half full with water. Close the inlet valve. Using the pail and funnel, add the proper amount of chemical to the tank. Remove the O-ring while filling, so it does not fall in the top opening. 3) Clean the threads on the top lit and collar. insert all O-rings. Inspect and re 4) Slowly open the inlet valve and allow any head space in the tank to be displaced with water. Close the inlet valve and screw the lid on the tank and tighten. Do not tighten excessively. Be very careful not to cross thread! 5) Crack open the inlet valve slightly to allow normal operating pressure to be established slowly, without inducing water hammer. Continue opening both inlet and outlet valves slowly. 6) Open the outlet valve completely. Control water through-put by throttling the inlet valve to eliminate pressure fluctuations. SL 002542 CONFIDENTIAL: Subject to Protective Order of 14th Judicial District Court No. 91-1145 Brominator cont. Readjust flowmeter level. outlet ball valves. 36 Never quickly open or close inlet or Storage precautions. Store Mazide Br-Cl in a cool, dry, wel 1-ventilated area. Keep away from fire or flame and organic chemicals. Contamination with moisture, organic matter, strong reducing agents, or other chemicals may start a chemical reaction with generation of heat, hazardous gases, and possible fire or explosion. Mazide Br-Cl tablets do not burn, but can liberate toxic gases upon incineration. Keep away from sunlight. Thoroughly wash containers with large quantities of water before disposal in a safe place. Containers should not be reused. SL 002543 CONFIDENTIAL: Subject to Protective Order of 14th Judicial District Court No. 91-1145 w t- tco O' rr u- 3* fD n SO t U CQoH.- ft , 0 O O 2tH)1 o o; t-t O O ft Mz (o0 ^M3 ft > (-* .< h- (5 n o- on o a* Ocn CHD -c__ ho cn cn cen O' (ot> fi- o 2 o c . rOt o2 n (- \yt-> t-' f1ut O O rCOt nrt t--i ow2t-3 >r* < CD lO ]rt O*1 Oo aCO cn n rt Water lniet Per/Tri Cooling Tower Brominator MATERIAL SAFETY DATA SHEETS 37 1) Mazplex MO, Maztreat 838, Mazsperse 830: These compounds all contain caustic. They will burn any open cuts, eyes, nose or mouth. Rubber gloves and goggles should be worn while handling these materials. If skin contact is made the effected area should be washed with clean water. If contact is made with the eyes, they should be washed with clean water for 15 minutes. You should then go to first aide for further attention. 2) Mazide BC 915: This compound contains Glutaraldehyde, a powerful biocide. It is used to kill living tissue. Prolonged skin contact may cause severe inflammation and possibly skin burns. Eye contact will cause severe conjunctivitis and corneal damage. Vapor may cause stinging sensations in the eye and excess tearing, but not injury. The vapor is irritating to the nose, throat, and lungs. If this material is swallowed - DO NOT INDUCE VOMITING. Do not give anything to drink. CALL A DOCTOR, and refer to the "notes to physician" on page 2 of the Mazide BC 915 MSDS. When handling this material, rubber gloves, long sleeve shirt, and goggles should be worn. Small spills can be washed down with large amounts of water. Large spills should be contained and picked up for disposal. Refer to page 3 of the Mazide BC 915 MSDS. SL 002546 No. 91-1145 MAZER CHEMICALS A Division of PPG INDUSTRIES, INC. Chemicals Group 3938 PORETT DRIVE GURNEE, IL 60031 Informational Phone Number: (708) 244-3410 24 Hour Emergency Phone No. (304) 843-1300 MATERIAL SAFETY DATA SHEET PRODUCT INFORMATION Trade Name: MAZPLEX MO Name and/or Family or Description: COOLING TOWER TREATMENT Address: 3938 Porett Drive, Gurnee, Illinois 60031 DOT Hazard Classification: NON-HAZARDOUS DOT: NFPA:HEALTH HAZARD-2-HAZAAOOUS; FLAMMABILITY-! -ABOVE 200 DEG F.; REACTTVITY-O-STABLE CAS NUMBER: PROPRIETARY RCRA HAZARD CLASS: (IF DISCARDED) NON HAZARDOUS EPA PRIORITY POLLUTANTS NONE SARA TITLE III (Sec. 313)HAZARDOUS MATERIAL NONE A* determined by the National Toxicology Program INTP), the International Agency for Research on Cancer (IARC), or by the Occupational Safety and Health Administration (OSHAI. HAZARDOUS INGREDIENTS (This material contains no ingredients which are known by Mazer Chemicals to be hazardous unless listed below.) MATERIAL OR COMPONENT TLV (UNITS) APPROX % As established by the American Conference of Governmental Industrial Hygienists and/or standards promulgated by the Occupational Safety and Health Administration. Physical Data: BOILING POINT, F SOLUBILITY IN WATER @ 25C SPECIFIC GRAVITY @ 25C VAPOR PRESSURE, am Hg @ 25C VAPOR DENSITY, (AIR-1) APPEARANCE 25C ODOR FLASH POINT, PMCC, F PHYSICAL DATA 212 (INITIAL) SOLUBLE 1.3 >1 >1 LIQUID CHARACTERISTIC > 200 FIRE AND EXPLOSION HAZARD DATA Flash Point: (See PHYSICAL DATA section) Flammable Limits in Air, % by Volume: Unknown LOWER: Undetermined UPPER: Undetermined Extinguishing Media: Use Carbon Dioxide or Dry Chemical on small fires. Use foam (alconol, polymer or ordinary) and water spray for large fires. Special Fire Fighting Procedures: Se I f-contained breathing apparatus and protective clothing should be worn in fighting fires involving chemicals. Unusual Fire & Explosion Hazards: May give off irritating and toxic fumes when exposed SL 002547 CONFIDENTIAL'- Subject to protecvcwti*v-eDistrict . court Of Jud-iC1Vl-H43 ;.t>. LCA IVIU Page i of 2 HEALTH HAZARD DATA Threshold Limit Value: See HAZARDOUS INGREDIENTS seccion Effects of Overexposure: Contact with skin or eyes will cause irritation. Emergency and First Aid Procedures: Flush eyes with copious amounts of water for a minimum of 15 minutes. Wash contacted skin areas with soap and water. If irritation develops, consult a physician. Soaked clothing should be changed immediately! With regard to inhalation, remove person to fresh air. If artificial respiration is required, obtain medical help immediately. REACTIVITY DATA Stability: Stable [X] Unstable [ ] incompatabilities: (Materials to Avoid) Strong oxidizing material can cause a reaction. Hazardous Decomposition Products: Thermal decomposition or burning may produce carbon mono/dioxides as well as inorganic salts. Hazardous Polymerization: May occur [ ] Will not occur [X] Conditions to Avoid: See above statements. SPILL LEAK AND DISPOSAL PROCEDURES Action to take for spills: (Use appropriate Safety Equipment) Contain liquids and prevent discharges to steams or sewers. Leaks should be stopped. Spills, after containment should be shoveled up or removed by vacuum truck to chemical waste area. Disposal Method: All Local, State and Federal Regulations concerning health and pollution should be reviewed to determine approved disposal procedures. SPECIAL HANDLING INFORMATION Ventilation: 1. Local Exhaust: None should be needed 2. Mechanical (general): Recommended 3. Respiratory Protection (type): Canister for organic/inorganic vapors (i.e. type GM8 from Mine Safety Appliance Co.) Protective Clothing: Clean, body-covering clothing. In addition, rubber gloves, boots, and apron, depending upon the exposure likely, or as required by your company. Eye Protection: Chemical Workers Goggles recommended. Other Protective Equipment: Eye Fountain and Safety Shower in work area. PRECAUTIONS TO BE TAKEN IN HANDLING AND STORAGE Store in well ventilated areas at temperatures below 120F, segregated from oxidizers, acids and flammable materials. Avoid skin contact. This data is furnished gratuitously independent of any sales of the product and only for your investigation and independent verification. While the information is believed to be correct Mazer Chemicals, shall in no event be responsible for any damages whatsoever, directly or indirectly, resulting from the publication or use of or reiiance upon data contained herein. No warranty, either expressed or implied, of merchantability, of fitness, or of any nature with respect to the product or to the data, is made herein. You ere urged to obtain data sheets for all Mazer products you buy, process, use, or distribute, and encouraged to advise anyone working with or exposed to such products of the information contained herein. State regulatory and Right-To-ICnow information is available upon request. SL 002548 ist revised 27 APR 1990 MJC CONFIDE'"'1^' Sublet to o 3uaicialJ>i4. Order ct Court MAZER CHEMICALS A Division of PPG INDUSTRIES, INC. Chemicals Group 3938 PORETT DRIVE GURNEE, IL 60031 Informational Phone Numb r: (708) 244-3410 24 Hour Emergency Phone No. (304) 843-1300 MATERIAL SAFETY DATA SHEET PRODUCT INFORMATION Trade Name: MAZTREAT 838 Name and/or Family or Description: PROPRIETARY BLEND Address: 3938 Porett Drive, Gurnee, Illinois 60031 DOT Hazard Classification: NON-HAZARDOUS DOT: NFPAHEALTH HAZARO-O-NORMAL MATERIAL; FLAMMABILITY-1 -ABOVE 200 DEG F.; REAC1TVITY-0-STABLE CAS NUMBER: PROPRIETARY RCRA HAZARD CLASS: (IF DISCARDED) NON-HAZARDOUS EPA PRIORITY POLLUTANTS NONE SARA TITLE III (Sec. 3U) HAZARDOUS MATERIAL NONE A determined by the Natienel Toxicology Program (NTP), the International Agency for Reeearch on Cancer (IARC), or by the Occupational Safety and Health Administration IOSHA). HAZARDOUS INGREDIENTS (Thii material contains no ingrediants which ara known by Mazar Chemicals to ba hazardous unless listed below) MATERIAL OR COMPONENT TLV (UNITS) APPROX % As established by the American Conference of Govarnmantal Industrial Hygienists and/or standards promulgated by the Occupational Safety and Health Administration. Physical Oata: BOILING POINT, F SOLUBILITY IN WATER @ 25C SPECIFIC GRAVITY $ 25C VAPOR PRESSURE, mm Hg @ 25C VAPOR DENSITY, (AIR-1) VOLATILES, %, BY VOLUME APPEARANCE 25C ODOR FLASH POINT, PMCC, F PHYSICAL DATA 212 INITIAL DISPERSIBLE 1.04 >1 >1 50 LIQUID MILD >200 FIRE AND EXPLOSION HAZARD DATA Flashpoint: (See PHYSICAL DATA section) Flamnable Limits in Air, $ by Volume: Unknown LOWER: Undetermined UPPER: Undetermined Extinguishing Media: Use Carbon Dioxide or Dry Chemical on small fires. Use foam (alcohol, polymer or ordinary) and water spray for large fires. Special Fire Fighting Procedures: Sel f-contained breathing apparatus and protective clothing should be worn in fighting fires involving chemicals. Unusual Fire & Explosion Hazards: None Known to Mazer Chemicals. SL 002549 CONFIDENTIAL: bject to Protective Order 4th judicial District Court qi-IIAS MAZTREAT 838 Page 2 of 2 HEALTH HAZARD DATA Threshold Limit Value: See HAZARDOUS INGREDIENTS section Effects of Overexposure: Contact with skin or eyes may cause temporary irritation. Emergency and First Aid Procedures: Flush eyes with copious amounts of water for a minimum of 15 minutes. Wash contacted skin areas with soap and water. If irritation develops, consult a physician. Soaked clothing should be changed immediately! REACTIVITY DATA Stability: Stable [X] Unstable [ ] Inc mpatabilities: (Materials to Avoid) Stong oxidizing material can cause a reaction. Hazardous Decomposition Products: Thermal decomposition or burning may produce carbon mono/dioxides and/or nitrogen oxides. Hazardous Polymerization: May occur [ ] Will not occur [X] Conditions to Avoid: See above statements. SPILL LEAK AND DISPOSAL PROCEDURES Acti n to take for spills: (Use appropriate Safety Equipment) Use absorbent material to collect and contain for disposal. Contain large spills and pump into a suitable tank. Wash area with suitable detergent and thoroughly rinse. Disposal Method: All Local, State and Federal Regulations concerning health and pollution should be reviewed to determine approved disposal procedures. SPECIAL HANDLING INFORMATION Ventilation: 1. Local Exhaust: None should be needed 2. Mechanical (general): Recommended 3. Respiratory Protection (type): Canister for organic vapors (i.e. type GMA from Mine Safety Appliance Co.) Protective Clothing: Clean, body-covering clothing. In addition, rubber gloves, boots, and apron, depending upon the exposure likely, or as required by your company. Eye Protection: Chemical Workers Goggles recommended. Other Protective Equipment: Eye Fountain and Safety Shower in work area. PRECAUTIONS TO BE TAKEN IN HANDLING AND STORAGE Store in well ventilated areas at temperatures below 120F. This data is furnished gratuitously independent of any sales of the product and only for your investigation and independent verification. While the informetion is believed to be correct Mazer Chemicals, shall in no event be responsible for eny damages whatsoever, directly or indirectly, resulting from the publication or use of or reliance upon data contained herein. No warranty, either expressed or implied, of merchantability, of fitness, or of any nature with respect to the product or to the data, is made herein. You are urged to obtain data sheets for all Mazer products you buy, process, use. or distribute, and encouraged to advise anyone working with or exposed to such products of the information contained herein. State regulatory and Right-To-Know information is available upon request. SL 002550 last revised 10 MAY 1990 ;ONFIDENTlAV\a MAZER CHEMICALS A Division of PPG INDUSTRIES, INC. Chemicals Group 3938 PORETT DRIVE GURNEE, IL 60031 Informational Phone Number: (708) 244-3410 24 Hour Emergency Phone No. (304) 843-1300 MATERIAL SAFETY DATA SHEET PRODUCT INFORMATION Trade Name: MAZSPERSE 830 Name and/or Family or Description: PROPRIETARY BLEND Address: 3938 Porett Drive, Gurnee, Illinois 60031 DOT Hazard Classification: NON-HAZARDOUS DOT. NFPA:HEALTH HAZARD-0-NORMAL MATERIAL; FlAMMABIUTY-l-ABOVE 200 OEG F,; REACTIVITY-O-STABLE CAS NUMBER: PROPRIETARY RCRA HAZARD CLASS: (IF DISCARDED) NON-HAZARDOUS EPA PRIORITY POLLUTANTS NONE SARA TITLE IN (Sec. 313)HAZARDOUS MATERIAL NONE As datdrmined by the National Toxicology Program (NTP), the International Agency for Research on Cancer IIARCI. or by the Occupational Safety and Health Administration (OSHAI. HAZARDOUS INGREDIENTS (This material contains no ingredients which are known by Mazer Chemicals to be hazardous unless listed below I MATERIAL OR COMPONENT TLV (UNITS) APPROX % As established by the American Conference of Governmental Industrial Hygienists and/or standards promulgated by the Occupational Safety and Health Administration. Physical Data: BOILING POINT, F SOLUBILITY IN WATER $ 25C SPECIFIC GRAVITY 25C VAPOR PRESSURE, mm Hg % 25C VAPOR DENSITY, (AIR-1) VOLATILES, *, BY VOLUME APPEARANCE 3 25C ODOR FLASH POINT, PMCC, F POUR POINT, 3C PHYSICAL DATA 212 SOLUBLE 1.3 >1 >1 70 LIQUID MILD >200 0 FIRE AND EXPLOSION HAZARD DATA FlashPoint: (See PHYSICAL DATA section) Flammable Limits in Air, % by Volume: Unknown LOWER: Undetermined UPPER: Undetermined Extinguishing Media: Use Carbon Oioxide or Dry Chemical on small fires. Use foam (alcohol, polymer or ordinary) and water spray for large fires. Special Fire Fighting Procedures: Self-contained breathing apparatus and protective clothing should be worn in fighting fires involving chemicals. Unusual Fire & Exp I si on Hazards: None Known to Mazer Chemicals. cot^o Pd*Eo!:te;Cc^titvricottdCour SL 002551 14th o t:',G MAZbHtHbt^ dJU Page 2 of 2 HEALTH HAZARD DATA Threshold limit Value: See HAZARDOUS INGREDIENTS section Effects of Overexposure: Contact with skin or eyes may cause temporary irritation. Emergency and First Aid Procedures: Flush eyes with copious amounts of water for a minimum of 15 minutes. Wash contacted skin areas with soap and water. If irritation develops, consult a physician. Soaked clothing should be changed immediately! REACTIVITY DATA Stability: Stable [X] Unstable [ ] Incompatabilities: (Materials to Avoid) Strong oxidizing material can cause a reaction. Hazardous Decomposition Products: Thermal decomposition or burning may produce carbon mono/dioxides. Hazardous Polymerization: May occur [ ] Will not occur [X] Conditions to Avoid: See above statements. SPILL, LEAK AND DISPOSAL PROCEDURES Action to take for spills: (Use appropriate Safety Equipment) Use absorbent material to collect and contain for disposal. Contain large spills and pump into a suitable tank. Wash area with suitable detergent and thoroughly rinse. Disposal Method: All Local, State and Federal Regulations concerning health and pollution should be reviewed to determine approved disposal procedures. SPECIAL HANDLING INFORMATION Ventilation: 1. Local Exhaust None should be needed 2. Mechanical (general); Recommended 3. Respiratory Protection (type): Canister for organic vapors (i.e. type GMA from Mine Safety Appliance Co.) Protective Clothing: C1 ean, body-covering clothing. In addition, rubber gloves, boots, and apron, depending upon the exposure likely, or as required by your company. Eye Protection: Chemical Workers Goggles recommended. Other Protective Equipment: Eye Fountain and Safety Shower in work area. PRECAUTIONS TO BE TAKEN IN HANDLING AND STORAGE Store in well ventilated areas at temperatures below 120F. This data is furnished gratuitously independent of any sales of the product and only for your investigation and independent verification. Whila the information is believed to be correct. Mazer Chemical*, shall in no event be responaible for eny damages whatsoever, directfy or indirectly, resulting from the publication or uaa of or reliance upon date contained harem. No warranty, eithar expressed or implied, of merchantability, of fitness, or of any nature with respect to the product or to the data. 1* made herein. You are urged to obtain data sheets for all Mazer products you buy. process, use. or distribute, and encouraged to advise anyone working with or exposed to such products of the information contained herein. State regulatory and Right-To-Know information is available upon request. Sl_ 002552 last revised 31 MAY 1990 MJC CONFIDENTIAL 1 Protective Sublet to nlz'crioc of 14th Judicia Nt i. ^ PPG/MAZER CHEMICALS A Busin ss Unit of PPG Industries, Inc., Chemicals Group 3938 Porett Drive Gurnee, IL 60031 Informational phone number: (800) 552-1912 24 hour emergency phone number: (304) 843-1300 MATERIAL SAFETY DATA SHEET PRODUCT INFORMATION Trade Name: MAZIDE BC 915 / ITEM 919158701 Name and/or Family or Description: WATER TREATMENT MICR0BI0CIDE DOT Hazard Classification: HAZARDOUS DOT; CORROSIVE LIQUID, N.O.S., (GLUTARALDEHYDE SOLUTION), CORROSIVE MATERIAL, UN 1760, ERG# 60 NFPA:HEALTH HAZARD-2-HAZARDOUS; FLAMMABILITY-1-ABOVE 200 DEG F.; REACTIVITY-O-STABLE CAS NUMBER: RCRA HAZARD CLASS: (IF DISCARDED) ERA PRIORITY POLLUTANTS SARA TITLE III (Sec. 313)HAZARDOUS MATERIAL 111-30-8 N0N-HAZARD0US NONE NONE MATERIAL OR COMPONENT GLUTARALDEHYDE INERT INGREDIENTS COMPOSITION APPROX % 15~ 85 HAZARDOUS INGREDIENTS (This material contains no ingredients which are known by Mazar Chemicals to be hazardous unless listed below.) MATERIAL OR COMPONENT GLUTARALDEHYDE CAS#: 111-30-8 TLV (UNITS) 0.2ppm cei1ing APPROX % 15 As established by the American Conference of Governmental Industrial Hygienists and/or standards promulgated by the Occupational Safety and Health Administration. BOILING POINT, F SOLUBILITY IN WATER 8 25C SPECIFIC GRAVITY 8 25C VAPOR PRESSURE, inn Hg 8 25C %,VAPOR DENSITY, (AIR-1) VOLATILES, BY VOLUME APPEARANCE 8 25C FLASH POINT, PMCC, F PHYSICAL DATA 212 INITIAL SOLUBLE 1.042 >1 >1 100 CLEAR LIQUID >200 SL 2SS3 urat S Prtective Order Di=t'-ict CC Wo. 91-1145 MAZiut^ bc yio / ntM aiaiDti/ui Page 2 ot 4 FIRE AND EXPLOSION HAZARD DATA Flashpoint: (See PHYSICAL DATA section) Flammable Units in Air, % by Volume: Unknown LOWER: Undetermined UPPER: Undetermined Extinguishing Media: Use Carbon Dioxide or Dry Chemical on small fires. Use foam (alcohol, polymer or ordinary) and water spray for large fires. Special Fire Fighting Procedures: Self-contained breathing apparatus and protective clothing should be worn in fighting fires involving chemicals. Unusual Fire S Explosion Hazards: None Known to Mazer Chemicals. HEALTH HAZARD DATA Thresh Id Limit Value: 0.2 ppmv, ceiling Effects of Overexposure: Contact with skin or eyes will cause temporary irritation. Effects of a Single Overexposure: Swallowing: May cause moderate to severe irritation or burns of the mouth, throat, esophagus, and stomach, with abdominal and chest discomfort or pain, nausea, vomiting, diarrhea, dizziness, faintness, weakness, circulatory shock and collapse. Skin Absorption: Toxicology studies Indicate that prolonged or widespread c ntact could result in the absorption of potentially harmful amounts of material. Skin Contact; Brief contact will cause local reddening and swelling. More prolonged contact may result in severe inflammation and possibly skin burns. Eye Contact: Liquid will cause severe conjunctivitis and marked corneal Injury. Vapor may cause stinging sensations in the eye and excess lachrymation but not injury. Inhalation: Vapor is irritating to the respiratory tract causing stinging sensations in the nose and throat, coughing, chest discomfort and tightness, difficulty with breathing, and headache. Effects of Repeated Overexposure: May cause skin sensitization in a small proportion of individuals, and presenting as a typical allergic contact dermatitis. Emergency and First Aid Procedures: Flush eyes with copious amounts of water for a minimum of 15 minutes. Wash contacted skin areas with soap and water. If irritation develops, consult a physician. Soaked clothing should be changed immediately! Remove to fresh air. Ingestion-DO NOT INDUCE VOMITING. Do not give anything to to drink. Obtain medical advice with urgency. Significant Laboratory Data with Possible Relevance to Human Health Hazard Evaluation: Laboratory studies have shown glutaraldehyde is not teratogenic, and in vitro studies have demonstrated an absence of mutagenic effects. Medical Conditions Aggravated by Overexposure: May aggravate existing dermatitis. NOTES TO PHYSICIAN: Moderately toxic perorally and by sustained contact. Most of the adverse effects are due to the intensely irritating nature of this material. Due to its' corrosive effects on mucosal surfaces, any material aspirated during vomiting may cause lung injury. Thus, induction of emesis is NOT recommended. If evacuation of stomach contents is considered necessary, the means least likely to cause aspiration should be undertaken (i.e., gastric lavage in the presence of endotracheal Intubation). Due to irritation and possible ulceration of the upper alimentary tract, there may be blood and fluid loss resulting in electrolyte and fluid imbalance. Also, large swallowed volumes could result in perforation of the esophagus or stomach, causing mediastinltls r peritonitis and complications thereof. SL 002554 CONFIDENTIAL: Subject to Protective Order ct Court o l4th MAZIDE BC 915 / ITEM 919158701 Page 3 of 4 REACTIVITY DATA Stability: Stable [X] Unstable [ ] Incompatabiiities: (Materials to Avoid) Acidic or basic materials catalyze an aldol- type condensation (exothermic, but not expected to be violent). Hazardous Decomposition Products:Thermal decomposition or burning may produce carbon monooxide abd/or carbon dioxide. Hazardous Polymerization: May occur [ ] Will not occur [X] Conditions to Avoid:Avoid high temperatures (removal of water, >20QF). SPILL LEAK AND DISPOSAL PROCEDURES Action to take for spills: (Use appropriate Safety Equipment) Wear suitable protective equipment. Toxic to fish; avoid discharge to natural waters. VERY LOW concentrations (10 ppm or less) can be degraded in a biological treatment system. Thus, SMALL spills can be flushed with LARGE quantities of water. Large quantities can be harmful to the treatment system. Thus, large spills should be collected for disposal. It may also be possible to decontaminate spilled material by careful application of aqueous ammonium hydroxide or sodium bisulfite solution. Considerable heat and fumes can be liberated by the decontamination reaction; wear suitable protective equipment. Oisp sal Method: All Local, State and Federal Regulations concerning health and pollution should be reviewed to determine approved disposal procedures. Atomize into a very hot incinerator fire, or mix with a suitable flammable solvent and incinerate under appropriate regulations. High water content may dampen flame. SPECIAL HANDLING INFORMATION Ventilation: 1. Local Exhaust: Sufficient exhaust ventilation to maintain exposure below TLV. 2. Mechanical (general): Recommended 3. Respiratory Protection (type): Canister for organic vapor and dust/mist (i.e. OV/DM #8741 or #8751A from 3M) Pr tective Clothing: Clean, full body-covering clothing. In addition, rubber gloves, boots, and apron, depending upon the exposure likely, or as required by your company Eye Protection: Chemical Workers Goggles recommended. Full body protection recommended when transferring material Other Protective Equipment: Eye Fountain and Safety Shower in work area. PRECAUTIONS TO BE TAKEN IN HANDLING AND STORAGE Avoid breathing vapor. Avoid contact with eyes, skin, and clothing. Keep container closed. Use adequate ventilation. Wash throroughly after handling. FOR INDUSTRIAL USE ONLY SL 0D2S5S CONFIDENTIAL^ 8?^;eUlc!" District CO of 14th Jud: A-J MAZIDE BC 915 / ITEM 919158701 Page 4 of 4 This data ia furnished gratuitously independent of any sales of the product and only for your investigation and independent verification. While the information is believed to be correct Mazer Chemicals; shall in no event be responsible for any damages whatsoever, directly or indirectly, resulting fr m the publication or use of or reliance upon data contained herein. No warranty, either expressed or implied, of merchantability, of fitness, or of any nature with respect to the product or to the data, is made herein. You are urged to obtain data sheets for all Mazer products you buy. process, use, or distribute, and encouraged to advise anyone working with or exposed to such products of the information contained herein. State regulatory and Right-To-Know information is available upon request. last revised 04 NOV 1991 MJC SL 002556 CONFIDENTIAL: Subject to Protective Order of 14th Judicial Distri ct Court No. 91-1143 A^TZ&fL "T^-OT7>H ^7 tferrsS (^J^) m-0 $n<$x>U!) big' % ^fWP (Sm/U. A*tf) i* cm 7*hr ^fML 5^^>0^ /^tr crvt^K /?o AA tC^2o /U if 1<J ;,; : . * * " rWH'v:- -;* Read A * fcapresen ;.'... ' :&<? !'- V - .) - - , For UvV. ^ . ShoCnir v7 >, Hot?*. the ~ iarf' SL 002557 .J - si". ...J. i i". oRi; ir i/' - sV>v- %i. .v ai .;. pp; ~ ^ .. e ^CONFIDENTIAL: Subject to Protective Order of 14th Judicial District Cou No. 91-1145 TO: Op rators and Charles Long October 21, 1991 FROM: Carey Brazitis^^ fh ^ SUBJECT: Cooling tower Responsibilities The following is an outline of individual responsibilities for the operation of the Tetra and Per/Tri cooling towers. OPERATIONS S Operations is responsible for controlling and maintaining the Tetra and Per/Tri cooling tower's treatment systems based on the control variables and guidelines as stated below. Perform at least once per shift: Analyze the tower water for the following control parameters and make adjustments as necessary. Molybdate Tetra Per/Tri 6 to 10 ppm 4 ml per min. 2 ml per min. Mazplex MO 1.5 gpd. 0.8 gpd. Conductivity of Make-up and Blowdown: Cycles should be controlled between 6.5 -- 7.5 based on conductivity of blow-down divided by conductivity of make-up. pH; Maintain the basin water pH between 7.2 -- 8.4. Low pH should be controlled by adding soda ash. Maintain water flow through the brominater at 3 GPM. Bromicide tablets from the warehouse as needed. Order Measure the Mazplex MO and Maztreat 838 flow with a stopwatch and graduated cylinder. If not flowing, troubleshoot and correct. Check the calibration of the lab pH meter. Weekly Checks and Duties: Check the calibration of the conductivity meter on Saturday days. Add Mazide BC 915 (Biocide) @ Tetra @ Per/Tri Add on Saturdays ' 3 gallons 1.5 gallons Read each new report from the PPG Specialty Chemicals Service Representative for any new instructions or suggestions. Upsets & Special Prog^dure^; For non-routine operations and problems refer to the Trouble ^Shooting and Special Procedures section in the operating manual. Communications; Note any adjustments, changes, chemical additions or probl ms in the Tetra/Bottoms Plant Logbook. CONFIDENTIAL: Subject to Protective Order SL 002558 of 14fch Judicial District Court No. 91-1145 PPG Sp eialtv Chemicals s rvice R presentative; The service representative is responsible for reviewing the chemical treatment syst m operation and recommending procedures and special instructions for proper system operations. The service representative is also responsible for reporting on the integrity of the cooling towers treatments. Weekly Duties! Perform necessary water analysis. Perform microbiological testing. Maintain adequate chemical inventory. Check chemical feed pumps for proper operation. Review operator logsheets for consistency and problems. Adjust Maztreat 838 pumps as needed to maintain proper level of Tolytriazol in the tower system. Provide system review reports outlining special instructions and procedures necessary for proper tower operation. Monthly Duties: Perform corrosion coupon testing. Other Responsibilities: Assist in developing statistical tools to improve tower operation and control. Discuss operator problems and suggestions. Perform equipment inspections and deposit analysis. Evaluate new treatment chemicals and biocides, and make recommendations for system improvements. Provide quarterly chemical usage reports. Provide a semi-annual report outlining chemical usage, existing project status, and new project plans. SL 002559 fIDENTlM^e ocder Drotectl . r*.oU SL 002S60 Mazer Chemicals P.O.Box 1000 Lake Charles, Louisiana 70602 Telephone: (318)491-4271 To*. Cary Brazitis September 29, 1991 Prom': Charles Long Subject: Cooling Tower Chemical Pumps Th LMI pumps used with the cooling tower treatment chemicals are positive displacement pumps. They have no rotating armature in th ir motor. The armature part of the motor in these pumps moves in and out like the solenoid part of a solenoid valve. A diaphragm is attached to the armature. There are ball type check valves in the suction and discharge ports of the pump head. This type of pump can be dead-headed without damaging the diaphragm because the motor is not as strong as the diaphragm. The pump will just stop pumping when dead-headed and will restart when the discharge side pressure is returned to normal. These pumps have two main controls on them. One control is for the speed, and the other controls the length of stroke of the motor armature. The speed controller is the small knob and the stroke controller is the larger knob. You should adjust the flow from these pumps using only the speed knob. Your service representative will adjust the stroke knob if necessary! A high and low speed range are available using the toggle switch in the upper left corner of the pump. The Mazplex MO pump should normally be used on th high range speed setting, while the Maztreat 838 pump should be us d on the low range speed setting. Setting the flow with these pumps is a simple matter, and can be done by measuring the amount of liquid pumped during a certain length of time such as one minute. You will need to us a stopwatch and graduated cylinder. Divide the volume, measured in milliliters, by the elapsed time, measured in minutes, to get ml/min. Multiply the flow rate in ml/min by .3804 to get gallons p r day. The Mazplex MO pump at TETRA should deliver about 1 1/2 to 2 gallons per day. This is 4 to 5 ml/min. The Mazplex MO pump at PER/TRI should deliver about 3/4 to 1 1/2 gallons per day. This is 2 to 4 ml/min. Routine adiustments to these pumps should be made in small amounts. A normal adjustment would be to raise or lower the speed bv 2%. A large adiustment would be 5%. During upsets, larger adjustment mav need to b mad . such as 10 to 20%. If you have any question please call me at 4271. Subject of 14th J ^ Division of lndnstriQ* COOLING TOWER Control Guide When using Clarified Sabine River Hater as make-up: Chemical constituent: Target: Controlled by: Molybdate @ Tetra i Per/Tri 6 to 10 ppm 4 ml per min. 2 ml per min. Mazplex MO 1.5 gpd, 0.8 gpd. Tolytriazole 8 Tetra 8 Per/Tri Your service representative will set pump. This pump should always be on the low range. Maztreat 838 .25 gpd, .12 gpd. Eiocide .8 Tetra 8 Per/Tri Biocide to be added once per week, Mazide BC 915 Add on Saturdays. 3 gallons per week 1.5 gallons per week Cycles should be controlled between 6,5 and 7.5 based on conductivity of blow-down divided by conductivity of make-up. The conductivity of the make up should not be greater than 130 uM. If the reading is high the make-up should be resampled to confirm, and Power House C should be notified. The pH should run between 7.2 and 8.4. High pH should be controlled through lowering cycles by increasing Blowdown. Low pH should be controled by adding soda ash. SL 002561 CONFIDENTIAL: Subject to Protective Order of 14th Judicial District Court No. 91-1145 when using Hell Water as make-up: When using well water as make up to the tower the following treatment chemical should be added. Hazsperse 830 25 ppm Iron, dispersant 1 mL per minute 1/2 gal per day The pH will run higher while on well water. The pH should be kept below 9 by using blowdown. The number of cycles will run low, maybe as low as 2 to 4. When a Sabine River Hater outage is planned the Mazsperse 830 should be started two days ahead of time. If the outage is unplanned or the switch ver to well water is an emergency, 3^5 gallons should be added to the basin at the suction of the circulating pumps. ^H3||gii|||2|||_^ilS||i In case of abnormal operating conditions call the FFG Specialty Chemicals representative, Charles Long, at 491 4271 or page him at 437 2303. (This would include switch-over to well water, oil intrusion, acid, caustic, firewater or brine leaks into the tower and sudden changes in MoO,'!) In case of an emergency involving our chemicals call the FFG 24 hour Emergency Phone No. (304) 843-1300. SL 002562 ma2cr Mazer Chemicals P. 0. Box 1000 Lake Charles, Louisiana 70602 Telephone: (318) 491*4271 EMERGENCY CONTACTS FOR HATER TREATMENT PROBLEMS 1. Charles Long. Lake Charles Area Representative. Office 491 4271 Home 855 9442 Pager local 437 2303 Pager Nationwide 1 800 999 6710 access number 37404 2. Bob Hatch. Business Manager, Hater Treatment PPG Office 1 800 447 0825 or 1 708 249 6365 Home 1 708 816 7405 Auto 1 708 370 0595 3. Gary Herchian. Technical Service Representative. Office 1 800 447 0825 or 1 708 249 6361 4. John Pratt, Sales / Service Representative Home / Office 1 805 589 2274 Auto 1 805 332 3081 5. Ed Gannon. Sales / Service Representative Home / Office 1 406 252 5120 SL 002563 CONFIDENTIAL: Subject to Protective Order 14th Judicial District Court No. 91-1X45 -.vision of PPG Industries. Inc Chpmiraie Gro"n