Urgent request: Complete set of operating procedures for crude benzene refining and tar refining
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1. Oil temperature before the washing pump: 25–35°C
2. Acid addition amount (based on the raw material): 5–8%
3. Concentration of waste acid: 40–45%
4. Reactor temperature: 40–45°C
5. Concentration of alkali added: 11–13%
6. Amount of dilute alkali added: sufficient to make the oil slightly alkaline
7. Maximum distillation temperature in the distillation vessel: ≥95°C
8. Acid tar discharged from the bottom of the distillation vessel: alkaline in nature
9. Temperature of acid and alkali: 50–70°C
10. Concentration of sulfuric acid: >93%
11. The raw material (unwashed) must be free of water.
12. The pressure from the steam used for preparing the alkali must not cause an increase in pressure inside the tank.
(II) Distillation System
Biphenyl tower, Initial distillation tower, Benzene distillation tower, Pure benzene tower, Toluene tower, Xylene tower
Number of feed trays per m³/n: 1.5–2.5, 1.5–2.5, 1.5–2.4, 1.5–2.4, 0.3–0.5, 0.3–0.5
Reflux ratio relative to the raw material: 2.5–3.5, 0.3–0.8, 1.0–1.5, 1.5–2.5, 0.8–1.5
Boiler temperature (°C): 91–96, 125–130, 155–156, around 160
Top temperature of the tower (°C): 75–82, <60, 95–105, 80±0.5, 110±0.5, 90–100
Temperature of the liquid leaving the evaporator (°C): 110–120, 105–115
Bottom temperature of the tower (°C): 140–150, 90–94, 124–128, 150–155, 130–145
Temperature of the 5th tray (°C): 88–89, 108–115, 136–141, around 130
Temperature of the 30th tray: 65–75, 8.2–8.3, around 113, 110–120
Pressure at the bottom of the tower (kg/cm²): <0.35, <0.4, <0.3, <0.4, <0.4, <0.35
Pressure of the heating steam (kg/cm²): 1–1.5, 3–4, 5–7; indirect: 8, direct: 1
Liquid level at the bottom of the tower: 1/2–2/3, 1/2–2/3, 1/2–2/3, 1/2–2/3, 1/2–2/3, 1/2–2/3
Oil temperature at the outlet of the condenser: 15–30, 15–30, 15–30, 15–30, 15–30, 15–30
Water temperature at the outlet of the condenser: <45, <45, <45, <45, <45, <45
Oil temperature at the outlet of the residual oil cooler (°C): 25–35, 20–30, 20–30, 20–30
Note: Parameters for the xylene tower refer to those when producing 10°C xylene using direct steam. Section 4: Analysis and Testing System
Sample Name, Quality Requirements, Analysis Items, Sampling Time and Location
Crude Benzene: Specific gravity 0.871–0.900; distillation yield before 180°C ≥ 93%; distillation test – dew point at 100°C, 125°C, 150°C, 160°C; specific gravity measurement. Analysis is carried out once upon discharge from the tank and after each batch of material processed.
Light Benzene: Specific gravity d4^20 ≤ 0.88 (dry point ≥ 96%, ≥ 150°C); distillation test, dew point, temperature measurement at 10%, 20%, …, 90% distillation levels; specific gravity and colorimetry measurements. Analysis is performed once per shift.
Weak Alkali: Concentration 11–13%; d4^15 = 1.125–1.145; specific gravity measurement. Analysis is done once per shift.
Waste Acid: Concentration 40–45%; d4^20 = 1.30–1.35; specific gravity measurement. Analysis is done once per shift.
Unwashed Powder: Dew point > 82°C; CS2 content < 0.05%. Distillation test – dew point measurement. Analysis is carried out every two hours.
Washed Powder: Colorimetry value ≤ 0.5; bromine value – colorimetry measurement. Analysis is done every two hours.
Benzene Vapor: Colorimetry value < 0.6; colorimetry measurement. Analysis is performed once per shift.
Pure Benzene: Product specifications as per factory standards; distillation test and colorimetry measurement. Analysis is done every two hours.
Pure Benzene Residue: Dew point ≥ 183°C; distillation test and dew point measurement. Analysis is carried out twice per shift.
Toluene: Product specifications as per factory standards; distillation test and colorimetry measurement. Analysis is done every two hours when the tank is full. Toluene residue: Dew point ≥ 138°C; distillation test and dew point measurement. Analysis is carried out twice per shift.
Xylene: Product specifications as per factory standards; distillation test and colorimetry measurement. Analysis is done hourly when the tank is full. Xylene residue: Dew point ≥ 155°C; distillation test measurement. Analysis is performed once per shift.
Initial Distillate: Distillation yield before 80°C > 90%; distillation test and dew point measurement before 80°C. Analysis is done once per shift.
Residue from Distillation Tank: Oil content < 2%; distillation test, dew point measurement, and oil content determination. Analysis is carried out once per batch processed.
Heavy Benzene: d^20 = 0.91–0.98; initial boiling point ≥ 160°C; distillation yield before 200°C ≥ 60%. Distillation test – dew point measurement, distillation yield before 200°C, specific gravity measurement. Analysis is performed once per shift.
Chapter 2: Operating Procedures for Refined Benzene
Section 1: Safety Procedures for the Washing System
(a) Preparatory work before starting up the system. 1. Drain the water from the uncleaned mixed mixture tank and take a sample for distillation testing. 2. Check that all equipment, pipelines, valves, instruments, and the entire washing system are in good condition and operating properly. The vent valves of equipment such as reactors, alkali oil separators, and stripping units should be closed, while the feed valves should be open. Rotate the couplings of each pump and apply lubricant. 3. Check the levels in each storage tank and prepare diluted alkali. 4. Fill the acid and alkali tanks to capacity. (II) Commencement of work. 1. Start the feed pump to feed material into the feed tank. 2. When the level in the raw material sump is at 1/2. Start the washing pump by first opening the acid valve. Open the oil valve again. After the washing pump reaches normal flow rate, the amount of acid added should be higher at first. After meeting the requirements, it is gradually adjusted to the normal ratio. 3. Once the reactor is filled with oil, start adding water. 4. When the acid oil separator is full of oil, open the alkali addition valve to add alkali, and at the same time start discharging a small amount of waste acid into the regenerated acid sedimentation tank. 5. When the alkali-oil separator is at full flow, oil flows automatically into the washed intermediate tank; the entire washing system operates, and the start-up process is completed. (III) Normal production operations. 1. Regularly check temperatures and pressures in various areas, and adjust the flow rates of the feed pump, washing pump, as well as acids, bases, and water to maintain stable production. 2. Regularly check the levels of raw materials, acids, and bases in the storage tanks to prevent interruptions in the supply of these substances. 3. Emission of waste acid and acid tar. The waste acid and acid tar from the acid oil separator are discharged every two hours; operation stops once oil is detected. The regenerated acid is discharged into the regenerated acid sedimentation tank, while acid tar can be discharged directly for distillation; however, when it cannot be properly separated from the regenerated acid, it should also be sent to the regenerated acid sedimentation tank for separation. 4. Acid tar treatment: Acid tar is discharged from the acid and oil separator into the stripping unit; the acid tar separated in the regenerated acid sedimentation tank also flows into the stripping unit. The stripping unit processes acid tar once per shift, neutralizes it using waste alkali or fresh alkaline solution, and then heats it up with direct steam. The acid tar is required to be neutralized to an alkaline state; regenerated benzene is distilled off through stripping (with a top temperature of 95°C), the residue containing less than 2% benzene, after which the waste liquid is discharged into the underground tank for acid tar. 5. Waste alkali discharge: The waste alkali is discharged intermittently into the stripping tank as indicated by the interface. 6. The interface of the regenerated acid in the regenerated acid sedimentation tank is strictly controlled at 0 above the full-flow level of acid tar. Under 5 meters, to prevent regenerated acid from entering the stripping unit. 7. Treatment of waste alkali: During the operation, any remaining waste alkali is continuously discharged into the acid-base distillation vessel, where it is distilled and blown away using direct steam. (IV) Suspension of work. 1. Once the processing of the untreated raw material in the tank is complete, stop the raw material pump. 2. After the material in the raw material sump has been processed, first close the oil valve of the washing pump, then close the acid valve, subsequently stop the washing pump, and close the reactor outlet valve to halt the addition of water. 3. Drain the waste acid and acid tar from the acid oil separator. 4. Open the valve to force all the oil in the acid oil separator out, then stop adding alkali or water. 5. Drain the waste alkali from the alkali oil separator, then continue adding water; once all the oil in the alkali oil separator has been pushed into the washed mixture tank, stop adding water. 6. The remaining oil in the reactor is subjected to blow-off treatment. 7. After the blowing and steaming treatment is completed, the system must be vented; no material should remain inside. 8. Empty all equipment such as the acid oil separator and the alkali oil separator. 9. Stop supplying heating steam to the alkali holding tank and the raw material holding tank. Temporary shutdown: If washing cannot continue due to certain reasons and the shutdown is short-lived (48 hours), the oil, acid, water, etc. in the entire system will cease to be in use. The waste acid from the acid-oil separator, such as acid tar, must be completely drained to prevent tar from clumping together. After draining it, it should be emptied again after one hour, as more acid tar will settle in the subsequent feed. In winter, when there is a temporary shutdown, normal shutdown procedures must be followed, that is, all equipment needs to be emptied. Temporary shutdown: If washing cannot continue due to certain reasons and the shutdown is short-lived (48 hours), the oil, acid, water, etc. in the entire system will cease to be in use. The waste acid from the acid-oil separator, such as acid tar, must be completely drained to prevent tar from clumping together. After draining it, it should be emptied again after one hour, as more acid tar will settle in the subsequent feed. In winter, when there is a temporary shutdown, normal shutdown procedures must be followed, that is, all equipment needs to be emptied. Precautions: 1. When unloading and transporting acids and bases, it is essential to follow the operational procedures strictly and wear protective equipment to ensure safe production. 2. The indirect steam pressure used in the acid tar distillation kettle must be strictly controlled at less than 0.2 MPa. 3. The liquid level in the regenerated acid sedimentation tank must be carefully controlled to ensure that waste acid does not enter the distillation vessel, and to prevent acid tar from entering the regenerated acid storage tank. 4. For the steam blowing operation, water should first be passed through the condensation cooler, after which heating should be carried out gradually to ensure that the pressure inside the steam blowing vessel remains at atmospheric pressure or a constant positive pressure, thereby preventing benzene vapor from escaping and causing poisoning. 5. Try not to make large adjustments to the washing flow rate; instead, adjust it gradually according to production conditions in order to maintain balance in the operation of the distillation system. Section 2: Safety Technical Regulations for Distillation Systems (II) Startup and Shutdown Procedures for the Two Benzene Towers 1. Preparations before startup: (1) Check whether there is water in the crude benzene tank, and drain all the water. (2) Notify the instrument technician in advance to inspect the instruments and check whether all equipment is in good condition and meets the requirements for operation. (3) Open the valves for the condensation cooling water in the diphenyl tower system. (4) Press the oil-water separator to 1/3 of the level gauge height. (5) Close the oil-water separator vent valve and the bottom reboiler vent valve. (6) The steam pipeline discharges condensate water. 2. Startup: (1) Start the feed pumps for the diphenyl towers, and open the steam valves of the feed heaters in these towers; the crude benzene is then heated before entering the diphenyl towers. (2) When 1/3 of the material is accumulated at the bottom of the tower, indirect steam is turned on, while direct steam is used for gradual heating and blowing. (3) The feed rate should be low at the beginning; once the temperature at the bottom of the tower reaches the specified value (145–155°C) and the heavy benzene meets the required standards, the valve for extracting heavy benzene from the bottom of the tower can be opened to allow its discharge. (4) When the oil level in the reflux column reaches a certain height (400 mm from the oil outlet), start the reflux pump to introduce a small amount of oil back into the tower, thereby stabilizing the reflux flow rate and controlling the vapor pressure at the bottom of the tower to maintain the liquid level in the reflux column. (5) While ensuring the temperature at the bottom of the tower (by adjusting it using the vapor from the reboiler at the bottom), gradually adjust the feed rate and reflux flow rate to their normal values. (6) Determine the tower top temperature based on the mass of light benzene, and decide on the level of reflux or whether to operate it or not. 3. Shutdown: (1) Close the outlet valve of the crude benzene tank, stop the feed pumps for the two benzene towers, and then close the steam valve of the feed heater. (2) Close the bottom of the tower heavy benzene extraction valve, then close the reboiler steam valve. (3) Stop the backflow into the tower; use water pressure from the reflux column of the oil-water separator to push all the light benzene into the light benzene storage tank. (4) Open the device vent valve to vent the device. (5) Close the cooling water valves of the diphenyl tower system. Temporary shutdowns: When production cannot continue for some reason and the shutdown duration is short, a temporary shutdown is carried out. In accordance with the requirements for such shutdowns, the entire system is brought to a stop, but the oil-water separator is not pressurized with water and the equipment is not emptied. (III) Startup and shutdown operations of the initial distillation tower: 1. Preparatory work before startup. (1) Allow the light benzene storage tank to drain water by standing it still. (2) Notify the instrument technician in advance to inspect the instruments and check whether all equipment is in good condition and meets the requirements for operation. (3) Close the equipment vent valves, close the valve allowing the mixture to flow into the uncleaned tank, open the valve for the initial distillate, and open the valve for sending the mixture to the light benzene storage tank. (Note: When the untreated fraction and the initial distillate are unsatisfactory, no sampling is taken during circulation. ) (4) Open the cooling water valve of the initial distillation system. (5) Pre-pressurize water into the initial distillate oil-water separator (1/3 of the water level gauge is sufficient). (6) The steam pipeline discharges condensate water. 2. Driving: (1) Start the feed pump for the initial distillation tower and adjust the feed rate. (2) When the material accumulation at the bottom of the tower is 1/3, open the heater steam valve and gradually heat it to around 93°C. (3) When the reflux column reaches a certain height (above 400 mm from the oil outlet), start the reflux pump to feed the reflux liquid into the tower and stabilize the reflux rate. Control the indirect vapor pressure. The above over-stability is a cycle. After 4 to 6 hours, the entire tower becomes stable; the temperature of the five trays is between 88% and 92%. An analysis of the mixture is conducted – if the drip point of this mixture is above 82°C, and the amount distilled from the initial fraction at temperatures above 80°C is sufficient, then the circulation can be stopped. (4) Open the valve leading to the unprocessed tank for the mixed mixture, close the valve leading to the light benzene tank, and open the valve leading to the distillate tank for the initial distillate. (Generally, the initial distillate is not required either at the beginning of operation.) (5) The extraction of the initial distillate is determined by the tower top temperature; when the tower top temperature is below 60°C, forced extraction should be carried out in an appropriate amount, and it is not allowed to allow the liquid to flow back completely to the light benzene tank. When the tower top temperature is above 60°C, extraction is not permitted, and the flow rate should be adjusted by allowing the liquid to flow back completely temporarily. 3. Parking: (1) Open the valve for sending the mixture to the light benzene tank, and close the valve for sending it to the unprocessed tank. (2) Close the outlet valve of the light benzene tank, stop the feed pump for initial distillation, and close the heating steam valve of the reboiler. (3) Stop the reflux to the tower; use water pressure in the reflux column of the oil-water separator to send all the initial distillate to the initial distillate tank, and then stop the reflux pump. (4) Open the device’s vent valve to completely empty the device. (5) Close the cooling water valve of the initial distillation system. (6) Record the tower shutdown time and venting conditions. 4. Intermediate cycle in case of temporary shutdown: When discharging material cannot continue for some reason, it is possible to cycle or shut down temporarily. (1) If discharge cannot be achieved after a short period of cyclic operation, follow the cyclic process flow used at startup. (2) Temporary shutdown: If it will take a long time to resolve the fault, a gradual transition process should not be used; instead, the entire system should be shut down as required. However, the equipment should not be emptied, and there is no need to press water into the oil-water separator or the reflux column. (III) Startup and shutdown procedures for the benzene blowing tower. 1. Preparatory work before starting up: (1) Drain the mixed water from the tank to clean it. (2) Notify the instrument technician in advance to check the instruments. Check whether all equipment is in good condition and meets the requirements for operation. (3) Contact the washer to add fresh alkali solution to the circulation alkali oil separator up to 2/3 of the liquid level gauge, open the outlet valve for the circulation alkali, and start the circulation alkali pump. Under normal operation, fresh alkali solution should be replaced when the concentration of the alkali solution is <4%. (4) Open the cooling water valve of the benzene blowing tower system. (5) Close the oil-water separator and reboiler vent valves, and open the bottom of the tower slag discharge valve. (6) Steam pipes drain condensate water. 2. Startup: (1) Start the feed pump for the benzene blowing tower, and open the heating steam valve of the evaporator. The washed mixture is first heated to 105–115°C in the evaporator before being fed into the benzene blowing tower. (2) When there is material accumulated at the bottom of the tower, use direct heating steam for blowing, while simultaneously activating the indirect steam heating system located inside the bottom of the tower. (3) The feed flow rate should be low at first to ensure that the temperature at the bottom of the tower and the slag are free of oil, after which the flow rate can be gradually increased back to normal levels. 3. Shutdown: (1) Stop the feed pump of the benzene tower, and then close the heating steam valve of the evaporator. (2) Reduce the direct steam supply, then open the slag vent valve to discharge the slag at the bottom of the tower into the benzene residue tank; after discharge is complete, turn off the direct steam supply. (3) Stop the circulating alkali pump, and use pressurized water to push the oil in the alkali oil separator into the underground drainage tank. (4) Drain the circulating alkali tank. (5) Close the main water valve of the benzene blowing system. Temporary shutdown: If the benzene stripping tower cannot continue operating for some reason, but the shutdown duration is short, a temporary solution can be adopted – that is, feed supply is stopped, heating of the evaporator and the tower is ceased, steam is introduced at the bottom of the tower and venting is carried out there; no venting is required for the other equipment. (IV) Startup and shutdown procedures for the benzene tower, toluene tower, and xylene tower: 1. Preparatory work before startup: (1) Check whether the equipment in the system is in good condition and meets the requirements for startup. (Pipes, valves, instruments) (2) It is necessary to drain any water present in the benzene tank, the pure benzene residue tank, and the toluene residue tank. (3) Close the equipment vent valve, open the system water valve, and fill the oil-water separator to 1/3 of its liquid level. (4) Open the residue at the bottom of the tower. The tower top product is returned to the pure benzene feed tank; the start/stop valve for that tank is operated. (5) Drain condensate from steam pipes. 2. Commencement of operation: (1) Start the feed pump to supply material into the tower and adjust the flow rate accordingly. (2) When 1/3 of the material is remaining at the bottom of the tower, open the reboiler steam valve to heat gradually. (Note: For the dimethyl tower, direct steam should be introduced gradually once heating has stabilized.) (3) When the oil level in the oil-water separator reaches a certain height, start the reflux pump; the reflux liquid is then fed into the tower to stabilize the reflux process. (Note: The reflux pump should be started in the dimethyl tower when the oil level at the reflux inlet exceeds 400 mm above the outlet.) (4) Adjust parameters such as the feed rate and the amount of indirect steam (including direct xylene steam) to ensure stable operation of the tower; the product is collected before the product pump and flows into the raw material tank via the oil-water separator, while the residual oil at the bottom of the tower is also returned to the tank used for starting up or shutting down the process. The above process is a cyclic overshoot; after 4–8 hours, the operation of the tower will stabilize. When the temperatures at the top and bottom of the tower reach the specified operational values, a real-time sample can be taken for analysis; if the product meets the quality standards and the residue at the bottom of the tower also complies with the emission regulations, then the circulation process is completed. (5) Transfer the product to the product tank, drain the residual oil to the raw material tank for the next cycle (next distillation), and drain the dimethyl residue to the dimethyl residue tank; close the valves for the residual oil and product return tanks as well as those for starting and stopping operations. 3. Parking: (1) Return the residual oil at the bottom of the tower to the original start/stop tank. (2) Turn off the heating steam and stop the feed pump. (3) Stop the recirculation pump. (4) Use water pressure in the reflux column of the oil-water separator to push all the oil into the product tank (water pressure is not necessary if the shutdown time is not too long). (5) Open the vent valves at the bottom of the tower as well as those on the oil-water separator and other equipment, to drain all the remaining oil from these devices. (6) Close the system cooling water valve. If this system is unable to continue operating for some reason, it can run in the cycling mode as when it was started up. Section 3: Causes of Common Problems and Solutions (I) Washing Section: 1. The washed mixture does not meet the quality standards. Reasons: (1) Moisture in the raw materials. (2) Imbalance in the flow ratio of acid and base. (3) Concentration reduction: Treatment method: Empty the washed tank ; 2. Acid cannot be added. Reasons: (1) The acid storage tank is empty; (2) The acid delivery pipeline is blocked. Solutions: (1) Add acid to the acid storage tank; (2) Clear the pipeline; (3) If acid still cannot be added after 5 minutes, initiate a temporary shutdown. 3. Alkali cannot be added: Reason: Same as why acid cannot be added. Treatment: If the alkali still cannot be added after 15 minutes, temporary shutdown is initiated. 3. The oil temperature behind the reactor rises suddenly. Reason: (1) Moisture in the raw material (2) Sudden change in the raw material composition. Action: Check for the above reasons. 4. Acid tar formation is caused by a low initial boiling point of the raw materials, as well as high bromine value and CS2 content. Action: Contact the distillation operator to increase the frequency of acid tar discharge. (II) System section: 1. Sudden power or water outage – Action: Immediately stop heating and shut down the system temporarily. The equipment does not need to be vented. 2. Steam supply interruption: Handling: Implement a temporary shutdown; for towers that cannot operate properly due to a drop in steam pressure, they can be switched to the startup cycle or placed on temporary shutdown. 3. Compressed air interruption: Handling: Immediately use manual valves to shut off the automatic control valves and stop using the instruments. If normal operation is disrupted, the system can be switched to the startup cycle before making adjustments; in severe cases, a temporary shutdown may be necessary. 4. Oil leakage from the drain pipe of the condensation cooler. Causes: (1) Water supply interrupted or insufficient water volume. (2) The reflux or feed rate is too low. (3) Freezing in the pipeline after the primary distillation condenser for pure benzene. (4) Blockage in the pipes after the condenser: Check whether the cooling water volume, as well as the feed and return flow rates, are normal. 5. The feedstock or reflux pump stops operating suddenly. Raw materials: Electrical issues. Solutions: (1) Replace with a backup pump and adjust to normal operation; (2) Reduce the amount of direct or indirect steam used; (3) Switch to circulation mode when the tower temperature rises; (4) Shut down the tower promptly in severe cases. Chapter 3: Safety Technical Regulations for the Benzene Refining Workshop Section 1: General Provisions 1. The benzene products produced in the benzene refining section are highly prone to causing fires, explosions, and poisoning incidents. Therefore, all staff members must be familiar with the safety regulations and adhere to them strictly. 2. For safety technology work, it is necessary to mobilize and organize employees so that everyone is involved in safety efforts, thereby eliminating potential hazards for accidents at their earliest stage. 3. Safety technology work must be given high priority in terms of mindset and included in the work agenda; it should be planned comprehensively to ensure that safety technology work is carried out effectively. Ensure the normal progress of production. 4. After any accident, large or small, it is necessary to organize the personnel on duty to investigate the causes, draw lessons from them, and formulate measures to prevent such accidents from occurring in the future. 5. Smoking is prohibited in areas where smoking is forbidden. 6. All employees of Jingben should be familiar with the fire alarm number, as well as the phone numbers of the security department and the health clinic. 7. All staff at Jingben must keep in mind that our workshop is a class-1 flammable and explosive area, and they should give top priority to safety over production tasks. Section 2: Technical Regulations for Production Safety 1. All new workers must undergo three levels of safety training provided by the company, as well as the workshop and production team, and only after passing the examinations may they be allowed to enter the production areas. 2. Visitors from outside the company must obtain approval from the relevant department of the company before they can enter the site. 3. External visitors and trainees must undergo safety training before they can enter the production area. 4. All personnel in this work area, as well as visitors from outside, are prohibited from wearing shoes with nails or carrying any flammable items (such as lighters, matches, etc.) into the production area. 5. All personnel in this section must keep the fire alarm phone number and the procedures for reporting fires in mind. 6. All operators in this work section must wear all necessary personal protective equipment before entering the site. 7. All operators in this section are prohibited from placing oil-stained rags on the steam pipes or using benzene-based substances for cleaning the floors. 8. When motor vehicles enter the benzene purification site, fire prevention measures must be taken and approval from the relevant authorities is required. 9. All equipment and pipelines in this section shall be equipped with grounding and lightning protection devices to prevent lightning strikes and static discharge. 10. The lightning protection system must be kept in good condition; a thorough inspection must be carried out each year in conjunction with the relevant higher-level authorities, with records to be kept. 11. The vent pipes and flame arresters of each storage tank must be kept in good working condition. 12. It is prohibited to use iron measuring tools to measure the volume of storage in various tanks; only non-ferrous metal or wooden measuring tools may be used. 13. No items are allowed to be placed in the various passages within the work area; they must remain unobstructed. Nothing that could hinder operations shall be kept inside the factory building. 14. For the operating equipment in this section, non-explosion-proof motors are prohibited; explosion-proof lighting fixtures must be used, and temporary lights are not allowed. 15. Equipment such as steam, fire extinguishing, and foam systems must be kept in good condition; they should be tested once per quarter, and all personnel must be able to use fire extinguishing equipment skillfully. 16. Operators in this work section who enter equipment with high concentrations of benzene vapor must wear gas masks, and at least two people should be present. 17. It is prohibited to expose sampling bottles containing benzene to direct sunlight, as well as to use benzene for washing hands, utensils, and clothing. 18. It is prohibited to use iron tools to strike equipment in this area; to avoid the generation of sparks, all tools used here must be made of non-ferrous metals, or if iron tools are used, they must be painted yellow. 19. If the skin is burned by acids or bases, it is forbidden to use neutralization; instead, it must be rinsed with plenty of water. 20. When adding acids, bases, and feed materials, one must not leave the site to prevent accidents caused by a full tank. 21. The warning safety signs installed on site must not be moved arbitrarily. 22. When diluting sulfuric acid, water must be added first and then the acid; it is strictly forbidden to pour water into the acid. Section 3: Safety and Fire Prevention Technical Regulations 1. Fire prevention and extinguishing: Fire prevention: (1) Welding and other flammable operations are prohibited in all areas except those designated for such purposes; if such operations must be carried out, the necessary procedures must be followed. (2) Flammable materials, hazardous substances, and various types of oils must be stored in designated locations, with a dedicated person responsible for their custody. (3) It is prohibited to use oilcloths, paper, and flammable materials to dry things over radiators, steam pipes, or heated equipment. (4) Each production facility should be equipped with adequate ventilation to keep the flammable gases inside at levels below the explosive range. (5) The grounding wires of various equipment and the static electricity protection devices of pipelines should be inspected regularly. Inspect twice a year and keep records. (6) The fire hydrants in the workshop should be regularly inspected and protected from freezing. (7) All fire-fighting equipment at each post should be under the responsibility of a designated person to ensure it remains in good condition. In the event of damage or loss, report it promptly for repair; regular inspections must be carried out, and fire-fighting equipment must not be used for other purposes. (8) The equipment used for foam suppression must be unobstructed, and a dedicated person should be assigned to conduct regular inspections. Fire extinguishing: (1) In the event of a fire, call to inform the relevant supervisors within the company as well as the appropriate departments. (2) In the event of a fire, stop the vehicle immediately and mobilize personnel to extinguish it. (3) After the fire is extinguished, a dedicated person should inspect the site to completely eliminate any sources of fire. (4) After the fire is extinguished, clean the fire-fighting equipment, return it to its original place, and replace any items that have been used. 2. Hot work regulations: (1) Any work involving open flames in areas not designated for such work requires a hot work permit. (2) Once the hot work permit is approved, it must not be altered; it must be carried with the person at all times for inspection. 3. Explosive limits of flammable substances (%): (1) Carbon monoxide: upper limit of 75, lower limit of 1.28. (2) Carbon dioxide: upper limit of 5, lower limit of 1.28. (3) Pure benzene: upper limit of 6.75, lower limit of 1.31. (4) Toluene: upper limit of 6.75, lower limit of 1.27. (5) Xylenes: upper limit of 6, lower limit of 1.0. Section 4: Safety and Health Technical Regulations 1. Permissible concentrations of hazardous substances: (1) The maximum allowable concentration of oxygen in indoor air is not more than 0.03 milligrams per liter. (2) The maximum allowable level of carbon monoxide in indoor air is not more than 0.03 milligrams per liter. (3) The maximum allowable concentration of carbon disulfide in indoor air is not more than 0.01 milligrams per liter. (4) Indoors or within equipment, the maximum allowable concentration of pure benzene in the air is not more than 0.04 milligrams per liter. (5) Indoors or within equipment, the maximum allowable concentration of toluene in the air is not more than 0.1 milligrams per liter. (6) Inside indoor equipment, the maximum allowable concentration of xylene in the air shall not be less than 0.1 milligrams per liter. 2. Occupational health: (1) The production facilities should be cleaned regularly to maintain cleanliness. (2) In all production workshops equipped with ventilation systems, the ventilation should be turned on 10–15 minutes before starting work; the exhaust fans should be activated first, followed by the supply fans. (3) Sufficient lighting shall be provided at passages, safety doors, safety ladders, etc. (4) It is prohibited to heat lunch boxes on production equipment, and it is forbidden to eat in areas that are toxic or dusty; hands must be washed before eating. (5) It is necessary to wear protective equipment suitable for the nature of the work before starting work. Chapter 4: Commissioning Plan for Pure Benzene Section 1: Pneumatic Pressure Testing of Pure Benzene Pipelines I. Pneumatic pressure testing of pure benzene pipelines. (Air or steam pressure testing is both acceptable.) (I) Purpose of pressure testing: 1. To check through pressure testing whether equipment, pipes, welds, flanges, etc., are airtight, so that any defects can be identified and corrected in a timely manner. 2. By conducting pressure testing, conditions are created for subsequent commissioning and operation, while also enabling operators to become more familiar with the equipment and its interconnections. (II) Pressure testing preparations: 1. For the feed pipes of each tower, a pressure test pressure of 5 kg/℃·m² is used. 2. For the reflux pipes of each tower, a pressure test pressure of 5 g/cm² is used. 3. For the vapor pipelines from the condenser to the tops of the towers, a pressure test pressure of 5 K/℃·m² is used. 4. For the oil-water separator, a pressure test pressure of 15 kg/℃·m² is used. 5. For the pipelines from the washing mixing pump to the alkali-oil separator, a pressure test pressure of 5 kg/℃·m² is used. 6. For the pipelines carrying concentrated acid, a pressure test pressure of 5 kg/℃·m² is used. (III) Pressure testing: 1. Connect the temporary gas pipes properly. 2. Prepare several temporary pairs of rubber hoses. 3. Prepare an adequate quantity of flange gaskets and blind plates in various specifications, as well as wire. 4. Prepare pipe ends and pressure gauges of different specifications. 5. Prepare a notebook for recording defects. 6. Before pressure testing, all equipment pipes, valves, safety devices, etc. should be thoroughly inspected to ensure that no blind flanges remain in place. 7. Conduct closing tests on all valves in the piping system and pumps to check their flexibility. 8. Cooperate well with the test personnel; assign specific individuals to each area to conduct inspections, keep records, and handle each issue one by one. 9. Pressure testing must be carried out before the equipment pipes are insulated. 10. Before pressure testing, first open the valves of the pipes in each device and use gas to clean them, removing any dirt and accumulated water inside the devices, before closing the valves. 11. The pressure and airtightness tests of individual units shall be carried out by the construction unit and relevant departments (before conducting pipeline pressure tests, all records related to these tests must be collected thoroughly as one of the bases for putting the device into use). (IV) Pressure testing methods: 1. Each oil-water separator system should be tested as a single integrated unit, that is, as one complete device. (1) Install a blind flange at the condenser outlet. (2) All valves of the vent pipes at the bottom of each oil-water separator, as well as the reflux extraction valves, shall be fully closed. (3) Attach a temporary gas pressure gauge using a rubber hose to the glass level gauge of the oil-water separator. 2. Raw material pump and reflux pump systems: (1) Blind flanges should be installed at the inlet and outlet of each pump to prevent dirt from entering the pumps. (2) Check the pressure at the pressure gauge on the pump outlet pipe. (3) Clean the pipeline by blowing air through it; once the pipeline is clean, adjust all valves to the following positions: A: Close the suction valves at the bottom of each raw material tank. B: Close the return suction valve for each clutch. C: Close the valves of the feed pipes to each tower. d: Close the valves of each reflux tube. E: Open all the piping for the pumps (without using the control valves). 3. Washing system: (1) The pipelines from the outlet of the raw material surge tank and the outlet of the concentrated acid surge tank to the inlet of the mixing pump, as well as the pipeline from the outlet of the mixing pump to the inlet of the reactor, constitute one pressure testing system. A: First, clean the pipeline with gas and then conduct a pressure test. B: The gas passes through a bypass pipe, without going through the pump body. C: The gas bypasses the rotameter, not passing through it. (To prevent internal leakage of the valve and damage caused by gas entering the flow meter, the flange at one end of the single flow meter can be opened.) (2) The pipeline from the reactor outlet to the acid oil separator inlet constitutes a pressure testing unit. Gas does not flow through the rotameter. Section 2: Testing of Pure Benzene Equipment Testing of pure benzene equipment: (I) Purpose of testing: 1. Through testing, to check whether the equipment, pipes, valves, as well as the welds and flanges are airtight, and whether the valve actuators operate smoothly. 2. Check for defects in the equipment during operation to facilitate correction. 3. Observe and adjust to ensure that various control instruments operate accurately and smoothly. 4. Check that all pipelines are installed properly and unobstructed. 5. Through trial operation, the operators become familiar with the operation of the equipment, improving their proficiency in handling it; they also learn about the location of the equipment, pipes, and valves as well as their performance characteristics. Additionally, they understand the interconnections between different positions, thereby laying a foundation for full-scale production. (II) Test run projects. 1. Feed pump for distillation 2. Reflux pump for distillation 3. Discharge pumps for various products and by-products. 4. Two benzene towers, distillation tower, benzene blowing tower, neutralizer, pure benzene tower, xylene tower, etc. 5. Condensers, coolers, reboilers, etc. 6. Oil-water separators and alkali-oil separators, etc. 7. Various pipes and pipe fittings. 8. Instruments for indicating, recording, and regulating various temperatures, flow rates, pressures, and material levels. 9. Washing system. 10. Fire protection system (water, steam, foam). (III) Testing conditions: 1. All equipment must be fully installed, and safety devices must be complete. 2. Before testing, all equipment and pipelines must pass pressure tests before testing can proceed. 3. Before testing, the interior of the factory building, the area around the equipment, as well as the inside of the equipment and pipelines must be cleaned. 4. Before the test run, ensure that all necessary tools, materials, spare parts, as well as the records and forms required for the test run are ready. 5. Conduct a trial run before insulating the equipment pipes. 6. Contact the workshop scheduler and request that the suppliers of water, electricity, gas, and air ensure timely and adequate supply. 7. The instruments have been installed and calibrated successfully. Requirements: (1) Medium-pressure steam pressure: 8–10 kg/Cm²; (2) Cooling water pressure: 3–5 kg/Cm²; (3) Voltage: 380 V; (4) Air pressure: 5 kg/Cm² (to ensure adequate air supply for instruments). (IV) Commissioning of the pure benzene distillation system: 1. Method of commissioning: (1) Test each tower’s system by circulating water. (2) The steam pipeline is purged with steam, and steam is introduced for inspection. (3) After the steam testing of the equipment in each unit is completed, a coordinated startup test is carried out. (4) Distillation coordination system: Conduct a coordinated startup test in accordance with the normal production sequence. 2. Startup test criteria: (1) Time: Each oil pumping pump shall operate continuously and normally for 4–8 hours; the total startup operation time for this system is 3 days (to achieve stability). (2) Equipment operation criteria: A. Raw material pumps and return pumps: The temperature of each bearing shell of the pump shall not exceed 60°C; the temperature of the motor shall not rise by more than 50°C. There shall be no leaks from the packing gland (or mechanical seal). The pump and motor must not experience friction or vibration, and there shall be no oil leakage or splashing from the lubrication parts of the bearings. B. Each distillation tower: The tower body, as well as all associated pipelines, flanges, and valves, must not leak. The bubble formation on the tower trays shall be proper. C. Each separator: The main body and all pipe connections must be leak-free; water testing should be conducted at each sampling port. D. Condenser and cooler: The main body and all pipe connections must not leak. F. All instruments must be accurate and in good working condition. 3. Commissioning operations: (1) Preparations before commissioning A. The operator checks to ensure that the equipment within this system has been cleaned properly. B. Check whether the lubrication parts of the moving components of the equipment have been lubricated. C. The electrician should inspect the relevant electrical equipment and prepare to supply power. D. Check whether the water supply and steam pipelines are unobstructed. E. Use steam to check whether the suction and discharge ports of each pipeline pump are unobstructed, paying special attention to any pipes that may be blocked by blind plates. F. Check whether the safety devices are complete and whether the equipment is properly grounded. G. Check the temperature, pressure, flow rate, level of the metering system, as well as whether all the instruments are properly installed and complete. H. It is necessary to specifically inspect the various piping systems and the accessories associated with the pumps, to check whether the valve closing tests are performed smoothly. I. Prepare all kinds of tools and lubricants (in addition to the standard tools, each post has two “F” wrenches). J. All devices are in operational status. (2) Operation steps: A. First, conduct a system trial run for the two benzene towers. B. Prepare all power sources. C. Supply direct steam to the tower to maintain a pressure of 0.5–0.8 kg/Cm^2 inside it. D. Add water to the oil-water separator. E. Temperature, level, pressure, and instrument operation. F. Reduce the reflux flow rate and conduct a bubbling test on the tray. H. Fill the heavy benzene storage tank with 40–50 tons of water, and open the valve of the lower pumping pipe. i. After the tray bubbling test is completed, start the feed pump to supply water into the distillation tower. It circulates through the cooler to the heavy benzene storage tank, while the raw material flow meter is put into operation. J. Start with a small dose, then gradually increase it to the maximum amount. K. When the feed pump meets the requirements, stop feeding from the top feed pump and start the return pump; the circulation method remains the same. L: The amount of water fed into the tower must be equal to the amount discharged, in order to maintain the liquid level inside. For M and other types of oil leaks, they can be cleaned using steam or made pressure-resistant once the inspection is successful. N. Commissioning operations for the other towers, modeled after the diphenyl tower. 5. Procedures after the vehicle owner parks the vehicle: A. Vehicles can be parked one after another once the test driving meets the requirements and the designated time has arrived. B. Stop the steam. C. Stop the feed material and the reflux pump. D. Drain the pumps inside the tower and the storage tank. E. Remove the inlet and outlet pipes for the feed material and the reflux line, and drain them completely. F. Remove all temporary pipes and install the permanent pipes properly. (5) Commissioning 1. Commissioning method: (1) Commission the acid-base tanks, pump system, and water used in the scrubber. (2) The various sections of the steam pipes, as well as the steam blowing system, are cleaned using steam. 2. System for testing: (1) Water testing system: 3. Testing criteria: (1) Each pump should operate continuously for 8 hours. (2) The shaft temperature of the pump must not exceed 60°C. (3) The motor temperature rise shall not exceed 50°C. (4) The gland packing (or mechanical seal) of the pump must not leak. (5) There should be no sound of metal friction or vibration of the motor in the pump. (6) The main bodies of each device should remain leak-free. (7) All pipes and fittings shall be kept leak-free. (8) The instruments are accurate and easy to use. 4. Commissioning operations: (1) Check whether the interiors of all pipes are clean and unobstructed. (2) Check whether the electrical equipment is in good condition and inspect the grounding wires of the equipment. (3) Check whether all instruments are present. (4) Check whether all sampling points are fully equipped. 5. Commissioning steps: (1) Fill the uncleaned tanks in the oil depot with 30 tons of water, and fill the acid, alkali, and underground tanks with water. (2) Start the raw material pump and the pump for transferring concentrated acid. Once there is a sufficient liquid level in the alkali preparation tank, start the pump located beneath that tank; at the same time, add water to the high-level tanks containing the raw material acid and alkali. (3) Once the 3 high-level tanks are full of water, start the acid washing mixing pump to supply water to the mixing tank; from there, the water flows through the reactor water mixer, the acid-oil separator, the alkali addition mixer, and the alkali-oil separator, eventually reaching the washed mixture tank. (4) Adjust the flow rate of each circuit as required. 6. Post-stopping procedures: (1) All water remaining in the equipment and pipelines must be completely drained into the sewer system. (2) The water in the oil tank is pumped out for inspection, and rust and debris are removed. (VI) Commissioning of the finished pumps and products, as well as the by-product tank system. 1. (1) Fill each storage tank with water for trial operation. (2) Piping and steam pipes are purged and washed with steam. 2. Testing system: Product injection system, auxiliary product tank pump. 3. Testing criteria: (1) There should be no friction sounds inside the pump during operation. (2) The storage tank itself must not leak. (3) There are no leaks at the joints of various pipes, nor at the valves, etc. 4. Commissioning operations: (1) Preparatory work before commissioning: A. Inspect and clean all equipment systems. B. Check whether lubricant has been added to each pump. C. Check whether the safety devices in all areas of the oil storage tank area are in good condition, including grounding. (2) Commissioning steps: A. A certain amount of water should be added to each oil storage tank, and the valves of the lower pumping pipes should be opened. B. Start the finished pump to draw water, and then send it back to the large tank for circulation. (3) Handling after parking: A. Drain all the water from the tank, conduct an inspection, and remove rust and debris. B. After all the piping systems have been drained, close the valves. (4) Fire system testing 1. Testing method: A. For steam fire extinguishing, testing is carried out directly using steam. B. Water test of the foam fire extinguishing system. 2. Commissioning criteria: A. No leakage in pipes and accessories. B. The pump is operating correctly with no abnormal noises. C. The steam pipes are unobstructed, and there is no internal leakage of steam from the main valves. Chapter 5: Responsibilities for the Benzene Refining Post 1. Responsibilities of the Workshop Director: 1. Obey superior instructions and organize the production management of the entire workshop. 2. Responsible for organizing the entire workshop to complete various tasks assigned by the company or branch factory. 3. Responsible for implementing the economic responsibility system within the workshop. 4. Responsible for ensuring the implementation of rules and regulations as well as labor discipline within the workshop. 5. Responsible for organizing various labor competitions across the entire workshop. 6. Responsible for safety education, safe production, and civilized production throughout the workshop. 7. Responsible for overall quality management in the entire workshop and organizing equipment maintenance there. 8. Responsible for submitting plans for equipment maintenance, as well as plans for materials and equipment, and for strengthening the control of quotas regarding equipment and spare parts. 9. Responsible for the political, cultural, technical, and ideological work of all employees in the department. II. Responsibilities of the Team Leader 1. Obey superior leadership and organize the team to complete all production tasks assigned by the entire factory or workshop. 2. Be responsible for ensuring safe and civilized production in the own shift. 3. Responsible for organizing various labor competitions within the class. 4. Be responsible for the quality management of the team, reducing consumption and increasing yield. 5. Responsible for carefully filling out the shift handover records, briefing the incoming crew on the production situation of the current shift, and organizing the timely handover of duties. III. Responsibilities of the washing pump operator. 1. Carry out work under the leadership of the team leader. 2. Master the washing procedures, and be responsible for starting up and shutting down the operation as well as carrying out normal operations. 3. Responsible for the proper operation and maintenance of the equipment, pipes, and valves associated with this position, as well as eliminating any leaks or losses at that location; during the morning shift, responsible for applying lubricant to all pumps. 4. Monitor parameters such as the oil temperature in the vinegar washing tank, the temperature in the dilute alkali tank, pump head pressure, and flow rate; strengthen routine inspections and adjust the operating parameters to remain within the specified ranges. 5. Keep track of the inventory in each tank, and be responsible for the supply of raw materials used for washing, as well as acids and alkalis. 6. Responsible for the management of raw material pumps, washing pumps, regenerated acid pumps, submersible pumps, acid sump tanks, alkali sump tanks, raw material sump tanks, steam stripping condensation coolers, acid tar sedimentation tanks, steam stripping reactors, alkali preparation tanks, acid underground tanks, alkali underground tanks, acid storage tanks, alkali storage tanks, regenerated acid tanks, tanks No. 2, 3, 4, 5, and 6, acid tar underground tanks, waste alkali steam stripping reactors, and waste alkali steam stripping condensation coolers. 7. Responsible for the measurement and recording tasks related to this position. IV. Responsibilities of the Washing Worker 1. Carry out work under the supervision of the team leader. 2. Master the washing operation procedures, be responsible for starting and stopping the washing process, and ensure safe production. 3. Responsible for the maintenance and proper operation of the equipment, pipes, and valves associated with this position. 4. Master the operational parameters for this position, strengthen routine inspections, and adjust any unreasonable parameters. 5. Responsible for the management of acid-oil separators, alkali-oil separators, acid addition mixers, reactors, water addition mixers, alkali addition mixers, steam-blowing oil-water separation units, and various flow meters. 6. Be responsible for the material balance related to washing; before intermittently discharging acid tar, waste acid, and waste alkali, it is necessary to contact the wash pump operator. 7. Be responsible for ensuring safe washing operations and eliminating leaks, spills, and drips. In the event of an accident, follow the instructions of the team leader. 8. Keep the work area clean and fill in the operation records carefully. V. Distillation Water Pump Operator: 1. Be familiar with the operating procedures for shutting down the distillation system, work together with the distillation operators to carry out tasks such as starting up and shutting down the system as well as temporary shutdowns; be responsible for pressurizing the oil separator. 2. Responsible for the sampling and testing of various products and intermediate products in the distillation system. 3. Responsible for the maintenance and upkeep of the equipment, valves, and pipelines under his/her responsibility. 4. Responsible for the maintenance, upkeep, and proper operation of the equipment, pipelines, and valves associated with this position, as well as eliminating any issues such as leaks or spills. 5. Responsible for adjusting the water temperature at the outlets of various cooling equipment. 6. Keep the work area clean and fill in the operation records carefully. 7. Keep track of the inventory levels in each system during startup and shutdown processes, work together with the distillation operator to maintain material balance, ensure that the work area remains clean as well as that pumps and motors are kept clean; the person on duty in the early shift is responsible for applying lubricant to the pumps. 8. Responsible for the management of the pumps, all coolers, oil-water separators, and underground storage tanks in the diphenyl system, primary distillation system, benzene blowing system, pure benzene system, methyl system, and dimethyl system. 9. Master safety knowledge, avoid illegal operations, and ensure safe production. VI. Responsibilities of the Distillation Operator 1. Work under the supervision of the shift leader. 2. Master the operating procedures for starting up and shutting down the distillation system, and be responsible for ensuring its normal operation during these processes, as well as addressing issues such as leaks, spills, and other accidents. 3. Responsible for the maintenance of all equipment and valves related to this position. 4. Responsible for operating the circulating alkaline oil separator and regularly measuring and replacing the alkaline solution. 5. Be responsible for the operational metrics of this system; conduct thorough checks through calls and carry out precise operations. 6. Keep track of the inventory levels in each system during startup and shutdown, strengthen communication with the distillation pump operators, and maintain material balance in continuous production. 7. Responsible for controlling the quality of products and intermediate products (semi-finished goods). 8. Responsible for transporting the initial distillate; prior to transportation, coordination with the Chemical Production Department is required. Any leaks or spills along the pipelines used for transporting the material outside the Chemical Production Department’s perimeter are the responsibility of the party carrying out the transportation. 9. Responsible for ensuring safe and orderly production at the workstation. 10. Responsible for the management of all towers, instruments, and control valves. 11. Fill in the records carefully and on time, and keep the record sheets clean. VII. Post Responsibility System for Oil Depot Workers 1. Work under the leadership of the team leader. 2. Be familiar with the operating procedures for starting up and shutting down the distillation system, and work together with distillation operators and distillation pump operators to carry out tasks such as startup, shutdown, and temporary stops. 3. Be responsible for the operation of the entire oil depot during the shift. 4. Be responsible for the drainage of each storage tank, monitor the liquid level in each tank; when the upper or lower limit levels are reached, promptly contact the shift leader or distillation operator to replace the storage tank. 5. Responsible for filling in the oil depot operation records and calculating the material balance for the shift (processing volume, production volume, amounts of materials received and sent, etc.). 6. Must possess knowledge of safety regulations, avoid illegal operations, and ensure safe production. 7. Be responsible for tanks No. 1–22, the underground tanks, the control separator, the steam pump, the product transfer pump, as well as the management of all drainage oil seals during shift. VIII. Responsibilities of the Finished Pump Operator 1. Carry out work under the supervision of the workshop supervisor. 2. Responsible for the maintenance, upkeep, and proper operation of the equipment, pipelines, and valves associated with this position, in order to eliminate any leaks or losses of fluid. 3. Use steam pumps such as centrifuges correctly to transport pure benzene, toluene, xylene, residual gases, dimethyl residues, and heavy benzene. Before transportation, contact the oil depot; the sender is responsible for any leaks, spills, or losses that occur outside the oil depot’s walls during the transfer of materials. 4. Be responsible for tanks No. 1–22, the underground tanks, the control separators, the product transfer pumps, and the management of all drainage oil seals during shift duty. 5. Keep the work area clean and fill in the operation records carefully. IX. Post Responsibilities for Duty Personnel: During periods of shutdown, the duty personnel assigned to each shift must carry out handovers on time, remain at their posts, adhere strictly to discipline, take responsibility for their work, conduct regular inspections, and ensure the safety of refined benzene; they must also prevent any accidents or incidents from occurring. The specific responsibilities are as follows: (a) Assist the security staff in enforcing the rules regarding access to refined benzene, and strictly prohibit the bringing of open flames into the area. (b) Be responsible for campus safety and handle various matters on campus on an ad hoc basis. (c) Responsible for the management of items and tools throughout the workshop. (d) Responsible for making routine inspections of the liquid level changes in various storage tanks as well as the condition of other equipment. (e) Detailed account of the incidents that occurred in this shift and the methods taken to handle them shall be provided upon leaving work. (f) Be responsible for carefully filling out various records and shift handover records. X. Post Responsibility System for Security Personnel at the Benzene Processing Area: 1. All personnel from the benzene processing workshop are prohibited from entering the area without the approval of both the company and the workshop. 2. Unauthorized personnel not approved by the company and the workshop are strictly prohibited from learning on-site, visiting, or taking photographs. 3. Responsible for registering visitors. 4. Smoking is strictly prohibited for all those entering, as is bringing any kind of ignition source. 5. During the production shutdown, assist the on-duty staff in conducting on-site inspections, with a particular emphasis on inspections during night shifts. 6. Under the unified leadership of the class monitor, participate in all activities within the class.