EP0559633A2

Catalyst formulation and polymerization processes.

Abstract

The present invention relates to a method for producing a mixture of a Ziegler-type catalyst formulation comprising a transition metal component, an external electron donor component, and a cocatalyst component to be charged to a polymerization reactor.

EP0559633A2, drawing sheet 1
Sheet 1 of 11

Term

Term ended

Projected expiry passed 2 March 2013, 13.6 years ago.

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40 claims: 7 independent, 33 dependent

  1. 1
    In a method for producing a mixture of a Ziegler-type catalyst formulation comprising a transition metal component, an external electron donor component, and a co-catalyst component to be charged to a polymerization reactor, the steps comprising:(a) contacting said co-catalyst component with one of said transition metal catalyst components and said electron donor component for a first contact time within the range of 5-120 seconds;(b) subsequent to step (a), contacting the mixture produced by step (a) with the other of said transition metal catalyst component and said electron donor component for a second contact time of no more than 110 seconds;(c) thereafter contacting the mixture of step (b) with an unsaturated hydrocarbon to effect the polymerization thereof in the presence of said Ziegler-type catalyst formulation.
  2. 2
    The method of Claim 1, wherein said second contact time is less than the first contact time.
  3. 3
    The method of Claim 1, wherein step c) comprises an initial pre-polymerization reaction with an olefin to effect pre-polymerization of said catalyst and thereafter introducing said pre-polymerized catalyst into a polymerization reactor containing an olefin.
  4. 4
    The method of Claim 3, wherein said transition metal component and said co-catalyst component are contacted in step (a).
  5. 5
    The method of Claim 3, wherein said electron donor component and said co-catalyst component are contacted in step (a).
  6. 6
    In a method for producing a mixture of a Ziegler-type catalyst formulation comprising a transition metal catalyst component, an electron donor component, and a co-catalyst component to be charged to an olefin polymerization reactor, the steps comprising (a) contacting said Ziegler transition metal catalyst component and said co-catalyst component for a first contact time within the range of 5-120 seconds;(b) subsequent to step (a) contacting the mixture produced by step a) with an electron donor component for a second contact time of no more than 30 seconds;and (c) thereafter contacting the mixture of step (b) with an olefin to effect polymerization of said olefin in the presence of said Ziegler-type catalyst formulation.
  7. 7
    The method of Claim 6, wherein said olefin contact step of step c) is an initial pre-polymerization reaction to effect pre-polymerization of said catalyst and thereafter introducing said pre-polymerized catalyst into a polymerization reactor containing an olefin.
  8. 8
    In a method for producing a mixture of a Ziegler-type catalyst formulation comprising a transition metal catalyst component, an organosilicon external electron donor component, and an organoaluminum co-catalyst component to be charged to an olefin polymerization reactor, the steps comprising (a) contacting said transition metal catalyst component and said co-catalyst component for a first contact time;(b) subsequent to step (a) contacting the mixture produced by step (a) with an electron donor component for a second contact time having a duration which is shorter than said first contact time;and c) thereafter contacting the mixture of step (b) with an olefin to effect polymerization of said olefin in the presence of said Ziegler-type catalyst.
  9. 9
    The method of Claim 8, wherein the duration of said second contact time is no more than 30 seconds.
  10. 10
    The method of Claim 8, wherein said olefin comprises a C₂-C₄ alpha olefin.
  11. 11
    The method of Claim 10, wherein said organoaluminum co-catalyst component and said transition metal catalyst component are contacted in step (a) in relative amounts to formulate a precursor mixture having a ratio of aluminum to transition metal mole ratio of at least 200 and contacting said mixture with said electron donor component in step (b) to produce a Ziegler-type catalyst formulation of said transition metal catalyst component, electron donor component in relative amounts to provide an aluminum/silicon mole ratio of no more than 50;
  12. 12
    The method of Claim 11, wherein the mole ratio of aluminum to silicon in said mixture is within the range of 20-50.
  13. 13
    The method of Claim 11, wherein the mole ratio of silicon to transition metal is at least 5.
  14. 14
    The method of Claim 11, wherein the ratio of silicon to transition metal is within the range of 5-20.
  15. 15
    The method of Claim 11, wherein the mole ratio of silicon to transition metal is within the range of 10-20.
  16. 16
    The method of Claim 11, wherein step (c) is carried out as a prepolymerization reaction to effect pre-polymerization of said Ziegler catalyst formulation and thereafter introducing said pre-polymerized catalyst into a polymerization reactor containing an olefin.
  17. 17
    The method of Claim 8, wherein said transition metal component is a halide of titanium, zirconium, hafnium or vanadium.
  18. 18
    The method of Claim 17, wherein said transition metal component is a titanium tetrahalide supported on a magnesium or zinc based support.
  19. 19
    The method of Claim 8, wherein said co-catalyst is an aluminum alkyl or an aluminum alkyl halide.
  20. 20
    The method of Claim 19, wherein said co-catalyst is selected from the group consisting of trimethylaluminum and triethylaluminum.
  21. 21
    The method of Claim 8, wherein said electron donor is an organodialkoxysilane.
  22. 22
    The method of Claim 21, wherein said electron donor is cyclohexalmethyldimethoxysilane.
  23. 23
    In a method for producing a mixture of a Ziegler-type catalyst formulation comprising a transition metal catalyst component, an organosilicon external electron donor component, and an organoaluminum co-catalyst component to be charged to an olefin polymerization reactor, the steps comprising (a) contacting said electron donor component with said co-catalyst component for a first contact time within the range of 5-120 seconds;(b) at the conclusion of said first contact time, contacting the mixture produced in step (a) with said transition metal catalyst component for a second contact time of up to 110 seconds;and (c) at the conclusion of said second contact time, contacting the mixture produced in step (b) with an olefin to effect polymerization of said olefin in the presence of said Ziegler-type catalyst mixture.
  24. 24
    The method of Claim 23, wherein the duration of said first contact time is within the range of 5-40 seconds and the duration of said second contact time is no longer than 30 seconds.
  25. 25
    The method of Claim 24, wherein said olefin contact step of step c) is an initial pre-polymerization reaction to effect pre-polymerization of said catalyst and thereafter introducing said pre-polymerized catalyst into a polymerization reactor containing an olefin.
  26. 26
    The method of Claim 23, wherein said organoaluminum co-catalyst and said organosilicon electron donor components and contacted in step (a) in relative amounts to provide a precursor mixture having an aluminum to silicon mole ratio of at least 10 and contacting said precursor mixture with said transition metal catalyst component in step (b) in an amount to provide said Ziegler-type catalyst formulation of said transition metal catalyst component, organosilicon electron donor component and organoaluminum co-catalyst component in relative amounts to provide an aluminum/transition metal mole ratio of at least 200 and silicon to transition metal mole ratio of at least 10.
  27. 27
    The method of Claim 26, wherein said aluminum to silicon mole ratio is within the range of 10-40 and said aluminum to transition metal mole ratio is within the range of 200-400.
  28. 28
    The method of Claim 26, wherein said transition metal component is a halide of titanium, zirconium, hafnium or vanadium and said co-catalyst is an aluminum alkyl or an aluminum alkyl halide.
  29. 29
    The method of Claim 28, wherein said transition metal component is supported on a magnesium or zinc based support.
  30. 30
    The method of Claim 29, wherein said co-catalyst is selected from the group consisting of trimethylaluminum and triethylaluminum.
  31. 31
    In a method for formulating a mixture of a Ziegler-type catalyst comprising a transition metal catalyst component, an external electron donor component and a co-catalyst component to be charged to an olefin polymerization reactor, the steps comprising:(a) contacting said transition metal catalyst component with said external electron donor component for a first contact time of no more than 40 seconds;(b) at the conclusion of said first contact time contacting the mixture produced in step (a) with said co-catalyst component for a second contact time within the range of no more than 20 seconds and which has a duration shorter than said first contact time;and (c) thereafter contacting the mixture produced in step (b) with an olefin to effect polymerization of said olefin in the presence of said Ziegler-type catalyst mixture.
  32. 32
    The method of Claim 31, wherein said organosilicon component and said transition metal catalyst component are contacted in step (a) in relative amounts to provide a precursor mixture having a mole ratio of silicon to transition metal of at least 5 and contacting said precursor mixture with said organoaluminum co-catalyst component in step (b) to produce a Ziegler-type catalyst formulation of said transition metal catalyst component, electron donor component in relative amounts to provide an aluminum/silicon mole ratio of no more than 40.
  33. 33
    The method of Claim 32, wherein said olefin comprises a C₂-C₄ alpha olefin and said electron donor is an organosiloxane.
  34. 34
    In a method for the fornulation of a multi-component catalyst system, the steps comprising:a) providing a plurality of series connected chambers including first and second chambers having a first and second catalyst components, respectively, a third chamber connected to said second chamber by means of a second passageway, and a fourth chamber connected to said third chamber by means of a third passageway and containing a catlayst component;b) discharging the contents of said first chamber from said first chamber via said first passageway into said second chamber and discharging the contents of said second chamber including said first and second components into said third chamber and maintiaining said first and second components in mixture with one another in said third chamber to provide a desired first contact time;c) thereafter, discharging the contents from said third chamber via a third passageway extending from said third chamber to said fourth chamber into said fourth chamber where they are mixed with said third catalyst component for a desired second contact time;and d) discharging the contents of said fourth chamber into a polymerization reactor where they are contacted with an olefinic monomer to effect polymerization of said monomer.
  35. 35
    The method of Claim 34, wherein said first and second catalyst components are respectively an organoaluminum co-catalyst component of a Ziegler-type catalyst system and a transition metal catalyst component of a Ziegler-type catalyst system and said third component is an electron donor component of said Ziegler-type catalyst system.
  36. 36
    The method of Claim 35, further comprising the step of prior to the polymerization of said monomer and at the conclusion of said second contact time, precontacting said catalyst system mixture of said first, second and third catalyst components with an olefinic compound to cause pre-polymerization of said catalyst system and thereafter supplying said pre-polymerized catalyst to said polymerization reactor.
  37. 37
    The method of Claim 36, wherein said catalyst system mixture is contacted in said pre-polymerization step by charging said fourth chamber with liquid propylene for a designated time interval and thereafter discharging the contents of said fourth chamber into said polymerization reactor.
  38. 38
    The method of Claim 37, wherein said precontacting is carried out by charging each of said, first, second, third and fourth chambers with liquid propylene and discharging said liquid propylene serially through said chambers and into said polymerization reactor.
  39. 39
    In a method for the formulation of a multi-component catalyst system, the steps comprising:a) providing a plurality of chambers including first and second chambers in parallel with one another and each connected to a third chamber through first and second passageways, respectively, said first and second chambers containing first and second catalyst components, respectively;b) discharging the contents of said first chamber via said first passageway into said third chamber and discharging the contents of said second chamber via said second passageway into said third chamber to provide a mixture of said first and second components in said third chamber and maintaining said frist and second components in mixture with one another in said third chamber to provide a desired first contact time;c) thereafter, discharging the contents from said third chamber via a third passageway extending from said third chamber to a fourth chamber containing a third catalyst component into said fourth chamber where they are mixed with said third catalyst component for a desired second contact time;and d) thereafter, discharging the contents of said fourth chamber into a polymerization reactor where they are contacted with an olefinic monomer to effect polymerization of said monomer.
  40. 40
    The method of Claim 39, wherein said first catalyst component is an organoaluminum co-catalyst component of a Ziegler-type catalyst system, the second of said components is an electron donor component of said Zeigler-type catalyst system, and said third component in said fourth chamber is a transition metal catalyst component of said Zeigler-type catalyst.
Independent claims40