Nova Patents
CA2579754C

Energy efficient polyolefin process

Abstract

A manufacturing process for producing polyolefin, having a feed system, a reactor system including a polymerization reactor, a diluent/monomer recovery system, a fractionation system, and an extrusion/loadout system having an extruder. The manufacturing process is configured to consume less than about 445 kilowatt-hours of electricity per metric ton of polyolefin produced.

CA2579754C, drawing sheet 1
Sheet 1 of 12

Term

Term ended

Expired 26 August 2025, 1.1 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

34 claims: 12 independent, 22 dependent

  1. 1
    48 CLAIMS:1. A manufacturing system for producing polyolefin, comprising: a feed system for a polymerization reactor;a reactor system comprising the polymerization reactor, wherein the polymerization reactor is configured to polymerize olefin monomer in the presence of a catalyst and diluent to form a slurry comprising polyolefin particles and diluent, and wherein the polymerization reactor comprises a continuous take off configured to discharge the slurry from the polymerization reactor;a diluent/monomer recovery system configured to receive the slurry discharged from the polymerization reactor, wherein the diluent/monomer recovery system comprises a high-pressure flash vessel and a purge column configured to receive the polyolefin particles of the slurry directly from the highpressure flash vessel, and wherein the diluent/monomer recovery system does not comprise a separate low-pressure flash vessel or a low-pressure flash compressor;a fractionation system configured to process a portion of diluent discharged from the diluent/monomer recovery system and to provide recovered diluent substantially free of olefin monomer;and an extrusion/loadout system having an extruder/pelletizer configured to extrude and pelletize polyolefin particles recovered from the slurry in the diluent/monomer recovery system, wherein the manufacturing system is configured to consume less than about 445 kilowatt-hours of energy per metric ton of polyolefin produced based on consumption of electricity, steam, and fuel gas.
  2. 2
    The manufacturing system of claim 1, wherein the manufacturing system is configured to produce at least about 600 million pounds of polyolefin per year.
  3. 3
    A manufacturing system for producing polyolefin, comprising:49 a feed system for a polymerization reactor;a polyolefin reactor system having the polymerization reactor, wherein the polymerization reactor comprises a continuous take off configured to discharge a slurry from the polymerization reactor;a diluent/monomer recovery system configured to receive the slurry discharged from the polymerization reactor, wherein the slurry comprises polyolefin particles and diluent, and wherein the diluent/monomer recovery system comprises a high-pressure flash vessel and a purge column configured to receive the polyolefin particles directly from the high-pressure flash vessel, and wherein the diluent/monomer recovery system does not comprise a separate low-pressure flash vessel or a low-pressure flash compressor;a fractionation system configured to process a portion of diluent recovered in the diluent/monomer recovery system;and an extrusion/loadout system having an extruder/pelletizer configured to pelletize polyolefin particles recovered in the diluent/monomer recovery system;wherein the manufacturing system is configured to consume less than 325 kilowatt-hours of electricity per metric ton of polyolefin produced.
  4. 4
    The manufacturing system of claim 3, wherein the feed system has six or fewer feed treaters configured to remove catalysts poisons from feed streams of the polymerization reactor.
  5. 5
    The manufacturing system of claim 3, wherein the polymerization reactor comprises a slurry circulation pump having guide vanes.
  6. 6
    The manufacturing system of claim 3, wherein the polyolefin reactor system comprises a coolant pump configured to circulate water through a jacket of the polymerization reactor, wherein an outlet temperature of the water exiting the jacket is about 15 °F to about 45 °F greater than an inlet temperature of the water entering the jacket. 50
  7. 7
    The manufacturing system of claim 3, wherein the polymerization reactor comprises aluminum.
  8. 8
    The manufacturing system of claim 3, wherein in the extrusion/loadout system is configured to receive the polyolefin particles discharged from a purge column in the diluent/monomer recovery system without intermediate holdup of the polyolefin particles.
  9. 9
    The manufacturing system of claim 3, wherein the extrusion/loadout system comprises a pellet water pump configured to facilitate transport of polyolefin pellets discharged from the extruder/pelletizer to a pellet silo.
  10. 10
    A manufacturing system for producing polyolefin, comprising:a feed system;a polyolefin reactor system having a polymerization reactor comprising a continuous take off configured to discharge an effluent from the polymerization reactor;a diluent/monomer recovery system configured to process the effluent discharged from the polymerization reactor, wherein the effluent comprises polyolefin particles and diluent, wherein the diluent/monomer recovery system comprises a high-pressure flash vessel and a purge column configured to receive the polyolefin particles directly from the high-pressure flash vessel, and wherein the diluent/monomer recovery system does not comprise a separate lowpressure flash vessel or a low-pressure flash compressor;a fractionation system configured to process a portion of diluent recovered in the diluent/monomer recovery system;and an extrusion/loadout system having an extruder/pelletizer configured to pelletize polyolefin particles recovered in the diluent/monomer recovery system;wherein the manufacturing system is configured to consume less than 144 kilograms of steam per metric ton of polyolefin produced. 51
  11. 11
    The manufacturing system of claim 10, wherein the feed system comprises a mass meter configured to measure a flow rate of ethylene fed to the polymerization reactor.
  12. 12
    The manufacturing system of claim 10, wherein the diluent/monomer recovery system is configured to facilitate recycle of at least about 80 weight % of diluent recovered in the diluent/monomer recovery system to the polymerization reactor without fractionation.
  13. 13
    A manufacturing system for producing polyolefin, comprising:a feed system;a polyolefin reactor system having a polymerization reactor comprising a continuous take off configured to discharge an effluent from the polymerization reactor;a diluent/monomer recovery system configured to process the effluent discharged from the polymerization reactor, wherein the effluent comprises polyolefin particles and diluent, wherein the diluent/monomer recovery system comprises a high-pressure flash vessel and a purge column configured to receive the polyolefin particles directly from the high-pressure flash vessel, and wherein the diluent/monomer recovery system does not comprise a separate lowpressure flash vessel or a low-pressure flash compressor;a fractionation system configured to process a portion of diluent recovered in the diluent/monomer recovery system;and an extrusion/loadout system having an extruder/pelletizer configured to pelletize polyolefin particles recovered in the diluent/monomer recovery system;wherein the manufacturing system is configured to consume less than 2.8 kilograms of fuel gas per metric ton of polyolefin produced.
  14. 14
    The manufacturing system of claim 13, wherein the feed system comprises a feed treater configured to utilize nitrogen during a regeneration cycle 52 and to discharge substantially-clean nitrogen to the atmosphere during a cooldown portion of the regeneration cycle.
  15. 15
    A manufacturing system for producing polyolefin, comprising:a feed system;a polyolefin reactor system having a polymerization reactor comprising a continuous take off configured to discharge an effluent from the polymerization reactor;a diluent/monomer recovery system configured to process the effluent discharged from the polymerization reactor, wherein the effluent comprises polyolefin particles and diluent, wherein the diluent/monomer recovery system comprises a high-pressure flash vessel and a purge column configured to receive the polyolefin particles directly from the high-pressure flash vessel, and wherein the diluent/monomer recovery system does not comprise a separate lowpressure flash vessel or a low-pressure flash compressor;a fractionation system configured to process a portion of diluent recovered in the diluent/monomer recovery system;and an extrusion/loadout system having an extruder/pelletizer configured to pelletize polyolefin particles recovered in the diluent/monomer recovery system;wherein the manufacturing system is configured to maintain losses of nitrogen at less than 26 normal cubic meters of nitrogen per metric ton of polyolefin produced.
  16. 16
    A manufacturing system for producing polyolefin, comprising:a feed system;a reactor system having a polymerization reactor configured to employ isobutane as a diluent, wherein the polymerization reactor comprises a continuous take off configured to discharge an effluent from the polymerization reactor;53 a diluent/monomer recovery system configured to process the effluent discharged from the polymerization reactor, wherein the effluent comprises polyolefin particles and diluent, wherein the diluent/monomer recovery system comprises a high-pressure flash vessel and a purge column configured to receive the polyolefin particles directly from the high-pressure flash vessel, and wherein the diluent/monomer recovery system does not comprise a separate lowpressure flash vessel or a low-pressure flash compressor;a fractionation system configured to process a portion of diluent recovered in the diluent/monomer recovery system;and an extrusion/loadout system having an extruder/pelletizer configured to pelletize polyolefin particles recovered in the diluent/monomer recovery system;wherein the manufacturing system is configured to maintain losses of the isobutane at less than 1.7 kilograms of isobutane per metric ton of polyolefin produced.
  17. 17
    A method for operating a polyolefin manufacturing process, comprising:feeding a monomer, a diluent, and a catalyst to a polymerization reactor;polymerizing the monomer in the polymerization reactor to form polyolefin particles;discharging continuously a slurry from the polymerization reactor, wherein the slurry comprises monomer, diluent, and polyolefin particles;recovering polyolefin particles from the slurry by separating at least a majority of the diluent from the slurry, wherein separating at least a majority of the diluent from the slurry comprises directing the slurry through a high-pressure flash chamber to generate a flash stream comprising diluent and a solids stream comprising polyolefin particles and residual diluent, and directing the solids stream directly from the high-pressure flash chamber to a purge column to remove residual diluent from the polyolefin particles;54 recycling a first portion of the separated diluent to the polymerization reactor without fractionating the first portion;fractionating a second portion of the separated diluent to provide diluent substantially free of monomer;extruding and pelletizing the recovered polyolefin particles to form polyolefin pellets;transporting polyolefin pellets to a load-out area;and consuming less than about 445 kilowatt-hours of energy per metric ton of polyolefin produced based on consumption of electricity, steam, and fuel gas.
  18. 18
    The method of claim 17, comprising producing at least about 600 million pounds of polyolefin pellets per year.
  19. 19
    A method for operating a polyolefin manufacturing process, comprising:feeding a monomer, a diluent, and a catalyst to a polymerization reactor;polymerizing the monomer in the polymerization reactor to form polyolefin particles;discharging continuously a slurry from the polymerization reactor, wherein the slurry comprises monomer, diluent, and polyolefin particles;recovering polyolefin particles from the slurry by separating at least a majority of the diluent from the slurry, wherein separating at least a majority of the diluent from the slurry comprises directing the slurry through a high-pressure flash chamber to generate a flash stream comprising diluent and a solids stream comprising polyolefin particles and residual diluent, and directing the solids stream directly from the high-pressure flash chamber to a purge column to remove residual diluent from the polyolefin particles;55 recycling a first portion of the separated diluent to the polymerization reactor without fractionating the first portion;fractionating a second portion of the separated diluent to provide diluent substantially free of monomer;extruding and pelletizing the recovered polyolefin particles to form polyolefin pellets;transporting polyolefin pellets to a load-out area;and consuming less than 325 kilowatt-hours of electricity per metric ton of polyolefin pellets produced.
  20. 20
    The method of claim 19, comprising operating a feed treater as a spare for both removing catalyst poisons in monomer fed to the polymerization reactor and for removing catalyst poisons in diluent fed to the polymerization reactor.
  21. 21
    The method of claim 19, comprising circulating a coolant through a jacket of the polymerization reactor and maintaining a temperature increase of the coolant through the jacket in the range of about 15 °F to about 45 °F.
  22. 22
    The method of claim 19, wherein separating diluent from the slurry comprises flashing diluent from the slurry and condensing the flashed diluent without compression.
  23. 23
    The method of claim 19, wherein the solids stream is not directed through a low-pressure flash chamber.
  24. 24
    The method of claim 19, comprising transporting the polyolefin particles separated from the slurry to an extruder feed tank without substantial intermediate hold-up of the transported polyolefin particles.
  25. 25
    The method of claim 19, wherein transporting polyolefin pellets to a load-out area comprising transporting the polyolefin pellets to a pellet silo via a pellet water pump disposed at a discharge of an upstream extruder/pelletizer. 56
  26. 26
    A method for operating a polyolefin manufacturing process, comprising:feeding a monomer, a diluent, and a catalyst to a polymerization reactor;polymerizing the monomer in the polymerization reactor to form polyolefin particles;discharging continuously a slurry from the polymerization reactor, wherein the slurry comprises monomer, diluent, and polyolefin particles;recovering polyolefin particles from the slurry by separating at least a majority of the diluent from the slurry, wherein separating at least a majority of the diluent from the slurry comprises directing the slurry through a high-pressure flash chamber to generate a flash stream comprising diluent and a solids stream comprising polyolefin particles and residual diluent, and directing the solids stream directly from the high-pressure flash chamber to a purge column to remove residual diluent from the polyolefin particles;recycling a first portion of the separated diluent to the polymerization reactor without fractionating the first portion;fractionating a second portion of the separated diluent to provide diluent substantially free of monomer;extruding and pelletizing the recovered polyolefin particles to form polyolefin pellets;transporting polyolefin pellets to a load-out area;and consuming less than 144 kilograms of steam per metric ton of polyolefin pellets produced.
  27. 27
    The method of claim 26, comprising measuring a flow rate of ethylene monomer fed to the polymerization reactor with a mass meter. 57
  28. 28
    The method of claim 26, wherein the first portion of separated diluent comprises at least about 80 weight % of the diluent discharge in the slurry from the polymerization reactor.
  29. 29
    A method for operating a polyolefin manufacturing process, comprising:feeding a monomer, a diluent, and a catalyst to a polymerization reactor;polymerizing the monomer in the polymerization reactor to form polyolefin particles;discharging continuously a slurry from the polymerization reactor, wherein the slurry comprises monomer, diluent, and polyolefin particles;recovering polyolefin particles from the slurry by separating at least a majority of the diluent from the slurry, wherein separating at least a majority of the diluent from the slurry comprises directing the slurry through a high-pressure flash chamber to generate a flash stream comprising diluent and a solids stream comprising polyolefin particles and residual diluent, and directing the solids stream directly from the high-pressure flash chamber to a purge column to remove residual diluent from the polyolefin particles;recycling a first portion of the separated diluent to the polymerization reactor without fractionating the first portion;fractionating a second portion of the separated diluent to provide diluent substantially free of monomer;extruding and pelletizing the recovered polyolefin particles to form polyolefin pellets;transporting polyolefin pellets to a load-out area;and consuming less than 2.8 kilograms of fuel gas per metric ton of polyolefin pellets produced. 58
  30. 30
    The method of claim 29, comprising activating the catalyst in a catalyst activator prior to feeding the catalyst to the polymerization reactor, wherein the catalyst activator comprises an inner vessel having a nominal inner diameter in the range of about 48 inches to about 72 inches.
  31. 31
    The manufacturing system of claim 29, wherein feeding diluent to the polymerization reactor comprises removing catalyst poisons from the diluent in a feed treated.
  32. 32
    The method of claim 31, comprising regenerating the feed treated with nitrogen and discharging substantially-clean nitrogen to the atmosphere from the feed treated during the regeneration.
  33. 33
    A method for operating a polyolefin manufacturing process, comprising:feeding a monomer, a diluent, and a catalyst to a polymerization reactor;polymerizing the monomer in the polymerization reactor to form polyolefin particles;discharging continuously a slurry from the polymerization reactor, wherein the slurry comprises monomer, diluent, and polyolefin particles;recovering polyolefin particles from the slurry by separating at least a majority of the diluent from the slurry, wherein separating at least a majority of the diluent from the slurry comprises directing the slurry through a high-pressure flash chamber to generate a flash stream comprising diluent and a solids stream comprising polyolefin particles and residual diluent, and directing the solids stream directly from the high-pressure flash chamber to a purge column to remove residual diluent from the polyolefin particles;recycling a first portion of the separated diluent to the polymerization reactor without fractionating the first portion;59 fractionating a second portion of the separated diluent to provide diluent substantially free of monomer;extruding and pelletizing the recovered polyolefin particles to form polyolefin pellets;transporting polyolefin pellets to a load-out area;and maintaining losses of nitrogen in the polyolefin manufacturing system at less than 26 normal cubic meters of nitrogen per metric ton of polyolefin pellets produced.
  34. 34
    A method for operating a polyolefin manufacturing process, comprising:feeding a monomer, a diluent, and a catalyst to a polymerization reactor, wherein the diluent comprises isobutane;polymerizing the monomer in the polymerization reactor to form polyolefin particles;discharging continuously a slurry from the polymerization reactor, wherein the slurry comprises monomer, diluent, and polyolefin particles;recovering polyolefin particles from the slurry by separating at least a majority of the diluent from the slurry, wherein separating at least a majority of the diluent from the slurry comprises directing the slurry through a high-pressure flash chamber to generate a flash stream comprising diluent and a solids stream comprising polyolefin particles and residual diluent, and directing the solids stream directly from the high-pressure flash chamber to a purge column to remove residual diluent from the polyolefin particles;recycling a first portion of the separated diluent to the polymerization reactor without fractionating the first portion;fractionating a second portion of the separated diluent to provide diluent substantially free of monomer;60 extruding and pelletizing the recovered polyolefin particles to form polyolefin pellets;transporting polyolefin pellets to a load-out area;and maintaining losses of the isobutane in the polyolefin manufacturing system at less than 1.7 kilograms of isobutane per metric ton of polyolefin pellets produced.
Independent claims34