Claims
- 1. A coordinating catalyst system capable of polymerizing olefins comprising:
(I) a pre-catalyst comprising at least one non-metallocene, non-constrained geometry compound selected from bidentate ligand containing transition metal compound, tridentate ligand containing transition metal compound or mixtures thereof, wherein the transition metal is at least one member selected from Groups 3 to 10 of the Periodic table; in intimate contact with (II) chromium immobilized support-agglomerate comprising a composite of
(A) at least one inorganic oxide component; and (B) at least one ion containing layered material; wherein chromium atoms are immobilized to Component (A), Component (B) or both; wherein the amount of the pre-catalyst (I) and support-agglomerate (II) provides a ratio of micromoles of pre-catalyst to grams of support-agglomerate of from about 5:1 to about 500:1.
- 2. The catalyst of claim 1 wherein said support-agglomerate comprises a composite of (A) at least one inorganic oxide component selected from SiO2, Al2O3, MgO, AlPO4, TiO2, ZrO2, Cr2O3, SiO2.Al2O3, MgO.SiO2.Al2O3, SiO2.TiO2 SiO2.TiO2.Al2O3, SiO2.Cr2O3.Al2O3, and SiO2.Cr2O3.TiO2, and mixtures thereof; and (B) at least one ion containing layered material having interspaces between the layers, said layered material having a cationic component and an anionic component, wherein said a cationic component is present within the interspace of the layered material, said layered material being intimately dispersed with said inorganic oxide component of the support-agglomerate and said support-agglomerate has from 0.1 to 10 weight percent chromium immobilized thereto.
- 3. The catalyst system of claim 2 which additionally comprises at least one organometallic compound represented by the structural formula:
- 4. The catalyst system of claim 2 wherein the pre-catalyst is a bidentate ligand containing transition metal compound represented by the formula:
- 5. The catalyst system of claim 2 wherein the transition metal compound is a tridentate ligand containing transition metal compound represented by the formula:
- 6. The catalyst system of any one of claims 4 and 5 wherein each A represents a nitrogen atom, each L and L′ is independently selected from halogen, hydrocarbyl or mixtures thereof, or two L groups together represent hydrocarbylene which together with Z constitute a 3 to 7 member heterocyclic ring structure.
- 7. The catalyst system of any one of claims 4 and 5 wherein at least one L of the pre-catalyst is selected from hydrocarbyl.
- 8. The catalyst system of claim 64 or 5 wherein Z is selected from Ni, Pd, Fe or Co.
- 9. The catalyst system of claim 4 or 5 wherein Z is selected from Ni or Pd and each L is independently selected from chlorine, bromine, iodine, or C1-C8 alkyl.
- 10. The catalyst system of claim 4 or 5 wherein Z is selected from iron or cobalt and each L is independently selected from chlorine, bromine, iodine, or C1-C8 alkyl.
- 11. The catalyst system of claim 2 wherein the layered material of the support-agglomerate is at least one of clay or clay minerals having a negative charge of below 0.
- 12. The catalyst system of claim 11 wherein the layered material is a smectite clay, the weight ratio of inorganic oxide to clay in the support-agglomerate is from about 0.25:1 to about 99:1, and the ratio of micromoles of pre-catalyst to grams of support-agglomerate is from about 10:1 to about 250:1.
- 13. The catalyst system of claim 12 wherein the smectite clay is selected from montmorillonite and hectorite, the weight ratio of inorganic oxide to clay in the support-agglomerate agglomerate is from about 0.5:1 to about 20:1, and the ratio of micromoles of pre-catalyst to grams of support-agglomerate is from about 30:1 to about 100:1.
- 14. The catalyst system of claim 2 wherein the component (A) comprises SiO2, the weight ratio of SiO2 to layered material (B) in the support-agglomerate is from about 0.1:1 to about 10:1, the ratio of micromoles of pre-catalyst to grams of support-agglomerate is from about 30:1 to about 100:1 and the chromium containing support-agglomerate is subjected to oxidation at 425 to 550° C.
- 15. The catalyst system of any one of claim 1, 2, 3, 6, 10, 11, 12, 13 or 14 wherein the support-agglomerate comprises spray dried agglomerate particles comprising constituent particles of at least one of said inorganic oxides and at least one of said layered materials wherein:
(I) at least 80% of the volume of the agglomerated particles smaller than D90 of the entire agglomerate particle size distribution possesses a microspheroidal morphology; (II) the support-agglomerate particles possess:
(A) an average particle size of from about 4 to about 250 microns, and (B) a surface area of from 20 to about 800 m2/gm; and (III) the inorganic oxide particles forming the agglomerate particles have an average particle size, prior to spray drying of from about 0.2 to about 10 microns, and the constituent layered material particles have an average particle size, prior to spray drying of from about 0.01 to about 50 microns.
- 16. The catalyst system of claim 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13 or 14 wherein component (B) of the chromium immobilized support-agglomerate is present in an effective amount to provide sufficient Lewis acidity, when present in the catalyst composition, to activate the precatalyst and provide a coordination catalyst system for polymerizing ethylene monomer, said activation, expressed in Kg of polyethylene per gram of catalyst system per hour.
- 17. The catalyst system of claim 4 or 5 wherein the supported pre-catalyst is in particulate form and the system further comprises particulates of a second supported catalyst.
- 18. The catalyst system of claim 4 or 5 wherein the system comprises particles, each of said particles comprising at least one bidentate or tridentate precatalyst and at least one second supported catalyst or the precursors therefore.
- 19. A coordinating catalyst system formed by the process comprising:
a) contacting, in a liquid medium, a chromium compound having solubility in the media with a support-agglomerate precursor comprising (A) at least one inorganic oxide, (B) at least one ion-containing layered clay or mixtures of (A) and (B); b) agglomerating a mixture of (A) and (B) wherein said (A) and (B) are present in a weight ratio of from 0.25:1 to 99:1; c) subjecting the resultant agglomerated product to oxidation conditions to cause the chromium atoms to have a higher valence state than said atoms in the chromium compound and causing the chromium atoms to be immobilized to Component (A) or Component (B) or both to provide a chromium immobilized support-agglomerate; d) contacting in a liquid hydrocarbon, the chromium immobilized support-agglomerate with a precatalyst comprising a pre-catalyst comprising a pre-catalyst selected from at least one non-metallocene, non-constrained geometry compound selected from bidentate transition metal compound, tridentate transition metal compound or mixtures thereof, wherein the transition metal is at least one member selected from Groups 3 to 10 of the Periodic Table to cause said pre-catalyst to be bound to said chromium support-agglomerate.
- 20. The catalyst prepared according to claim 19 wherein support-agglomerate comprising a composite of (A) at least one inorganic oxide component selected from SiO2, Al2O3, MgO, AlPO4, TiO2, ZrO2, Cr2O3, SiO2.Al2O3, MgO.SiO2, MgO.SiO2.Al2O3, SiO2.TiO2SiO2.TiO2.Al2O3, SiO2.Cr2O3.Al2O3 and SiO2.Cr2O3.TiO2, and mixtures thereof and (B) at one ion containing layered material having interspaces between the layers, said layered material having a cationic component and an anionic component,
- 21. The catalyst system of claim 20 prepared by the additional step of including at least one organometallic compound in the liquid hydrocarbon of step d), said organometallic compound being represented by the structure formula:
- 22. The catalyst system of claim 20 wherein the transition metal compound is a bidentate ligand containing transition metal compound represented by the formula:
- 23. The catalyst system of claim 20 wherein the transition metal compound is a tridentate ligand containing transition metal compound represented by the formula:
- 24. The catalyst system of claim 22 or 23 wherein each A represents nitrogen, each L and L′ is independently halogen, hydrocarbyl, or mixtures thereof, or two L groups together represent a hydrocarbylene group which, together with Z, constitute a 3 to 7 member heterocyclic ring structure.
- 25. The catalyst system of claim 21 wherein M is aluminum, “s” is 3, and R is C1 to C24 alkyl, and each L of the pre-catalyst is selected from halogen.
- 26. The catalyst composition of claim 22 or 23 wherein at least one L of the pre-catalyst is hydrocarbyl.
- 27. The catalyst system of claim 22 or 23 wherein Z is selected from at least one of Ni, Pd, Fe, or Co.
- 28. The catalyst system of claim 22 or 23 wherein Z is selected from Ni or Pd and each L is independently selected from chlorine, bromine, iodine, and C1-C8 alkyl.
- 29. The catalyst system of claim 22 or 23 wherein Z is selected from iron and cobalt and each L is independently selected from chlorine, bromine, iodine, and C1-C8 alkyl.
- 30. The catalyst system of claim 21 wherein M is aluminum, R is alkyl or alkoxy, “x” is 3, Z is selected from at least one of Ni and Pd, and L is halogen.
- 31. The catalyst system of claim 21 wherein M is aluminum, R is alkyl or alkoxy, “x” is 3, Z is selected from at least one of Fe or Co, and L is halogen.
- 32. The catalyst system of claim 20 wherein the layered material is a smectite clay, the weight ratio of inorganic oxide to clay in the support-agglomerate is from about 0.25:1 to about 99:1, and the ratio of micromoles of pre-catalyst to grams of support-agglomerate is from about 10:1 to about 250:1.
- 33. The catalyst system of claim 32 wherein the smectite clay is selected from montmorillonite or hectorite or mixtures thereof, the weight ratio of inorganic oxide to clay in the support-agglomerate agglomerate is from about 0.5:1 to about 20:1, and the ratio of micromoles of pre-catalyst to grams of support-agglomerate is from about 30:1 to about 100:1.
- 34. The catalyst system of claim 20 wherein the inorganic oxide component comprises SiO2, the weight ration of SiO2 to layered material in the support-agglomerate is from about 0.1:1 to about 10:1, and the ratio of micromoles of pre-catalyst to grams of support-agglomerate is from about 80:1 to about 100:1.
- 35. The catalyst system of claim 22 or 23 wherein the support-agglomerate comprises spray dried agglomerate particles comprising constituent particles of at least one of said inorganic oxides and at least one of said layered materials wherein:
(VI) at least 80% of the volume of the agglomerated particles smaller than D90 of the entire agglomerate particle size distribution possesses a microspheroidal morphology; (VII) the support-agglomerate particles possess:
(A) an average particle size of from about 4 to about 250 microns, and (B) a surface area of from 20 to about 800 m2/gm; (VIII) the constituent inorganic oxide particles from which the agglomerate particles are derived have an average particle size, prior to spray drying, of from about 2 to about 10 microns, and the constituent layered material particles have an average particle size, prior to spray drying, of from about 0.01 to about 50 microns.
- 36. A process for preparing an olefin polymerization catalyst system comprising:
a) contacting, in a liquid media, a chromium compound having solubility in the media with a support-agglomerate precursor comprising (A) at least one inorganic oxide, (B) at least one ion containing layered clay or mixtures of (A) and (B); b) agglomerating a mixture of (A) and (B) wherein said (A) and (B) are present in a weight ratio of from 0.25:1 to 99:1; c) subjecting the resultant agglomerate product to oxidation conditions to cause the chromium atoms to have a higher valence state causing the chromium atoms to be immobilized to Component (A) or Component (B) or both to provide a chromium immobilized support-agglomerate; d) contacting in a liquid hydrocarbon, the chromium immobilized support-agglomerate with a pre-catalyst selected from at least one non-metallocene, non-constrained geometry compound selected from bidentate transition metal compound, tridentate transition metal compound or mixtures thereof, wherein the transition metal is at least one member selected from Groups 3 to 10 of the Periodic Table to cause said pre-catalyst to be bound to said chromium support-agglomerate.
- 37. The process of claim 36 wherein said Component (A) is at least one inorganic oxide component selected from SiO2, Al2O3, MgO, AlPO4, TiO2, ZrO2, Cr2O3, SiO2.Al2O3, MgO.SiO2, MgO.SiO2.Al2O3, SiO2.TiO2 SiO2.TiO2.Al2O3, SiO2.Cr2O3.Al2O3 and SiO2.Cr2O3.TiO2, and mixtures thereof; said component (B) at least one ion containing layered material having interspaces between the layers and sufficient Lewis acidity, when present within the support-agglomerate, to activate the pre-catalyst compound when the pre-catalyst is in contact with the support-agglomerate, said layered material having a cationic component and an anionic component, wherein said cationic component is present within the interspace of the layered material; contacting the chromium immobilized support-agglomerate with the pre-catalyst capable of being activated upon contact with the support-agglomerate in a ratio of micromoles of pre-catalyst grams of support-agglomerate of from about 5:1 or to about 500:1 and wherein oxidation of said chromium is conducted at 425 to 550° C.
- 38. The process of claim 37 further comprising including at least one organometallic compound in the inert liquid hydrocarbon of step III represented by the structure formula:
- 39. The process of claim 37 wherein the transition metal compound is a bidentate transition metal compound represented by the formula:
- 40. The process of claim 37 wherein the transition metal compound is a tridentate transition metal compound represented by the formula:
- 41. The process of claim 39 or 40 wherein the chromium compound is selected from chromium dichloride, chromium chloride hexahydrate, chromium dibromide, chromium bromide hexahydrate, chromium tribromide, chromium difluoride, chromium nitrate; chromic anhydride, chromium phosphate; chromium(II) sulfate, chromium sulfate pentadecalhydrate and octadecal hydrate, chromium orthophosphate, chromium acetate, chromium acetate hydrate, chromium acetylacetonate, chromium proprionate, chromium oxalate hydrate, chromium oxalate hexahydrate, hexamine chromium III chloride, chloropentamine chromium chloride, hexaurea chromium III fluorosilicate, chromocene and the like and mixtures thereof.
- 42. The process of claim 39 or 40 wherein each A represents nitrogen, each L and L′ is independently selected from halogen, hydrocarbyl or mixtures thereof, or two L groups together represent a hydrocarbylene group which, together with Z, constitute a 3 to 7 member heterocyclic ring structure.
- 43. The process of claim 41 wherein at least one L of the pre-catalyst is hydrocarbyl.
- 44. The process of claim 41 wherein Z is selected from at least one of Ni, Pd, Fe, or Co.
- 45. The process of claim 39 or 40 wherein Z is selected from Ni or Pd and each L is independently selected from chlorine, bromine, iodine, and C1-C8 alkyl.
- 46. The process of claim 39 or 40 wherein Z is selected from iron or cobalt and each L is independently selected from chlorine, bromine, iodine, and C1-C8 alkyl.
- 47. The process of claim 38 wherein M is aluminum, R is alkyl or alkoxy, “s” is 3, Z is selected from at least one of Ni, Pd, and L is halogen.
- 48. The process of claim 38 wherein M is aluminum, R is alkyl or alkoxy, “s” is 3, Z is selected from at least one of Fe or Co, and L is halogen.
- 49. The process of claim 37 wherein the support-agglomerate is at least one of clay or clay mineral having a negative charge below 0.
- 50. The process of claim 49 wherein the layered material is a smectite clay, the weight ratio of inorganic oxide to clay in the support-agglomerate is from about 0.25:1 to about 99:1, and the ratio of micromoles of pre-catalyst to grams of support-agglomerate is from about 10:1 to about 250:1.
- 51. The process of claim 50 wherein the smectite clay is selected from montmorillonite, hectorite or mixtures thereof the weight ratio of inorganic oxide to clay in the support-agglomerate agglomerate is from about 0.5:1 to about 20:1, and the ratio of micromoles of transition metal in the pre-catalyst to grams of support-agglomerate is from about 30:1 to about 100:1.
- 52. The process of claim 39 or 40 wherein the inorganic oxide comprises SiO2, the weight ratio of SiO2 to layered material in the support-agglomerate agglomerate is from about 1:1 to about 10:1, and the ratio of micromoles of pre-catalyst to grams of support-agglomerate is from about 30:1 to about 100:1.
- 53. The process of claim 39 and or 40 wherein the support-agglomerate comprises spray dried agglomerate particles comprising constituent particles of at least one of said inorganic oxides and at least one of said layered materials wherein:
(I) at least 80% of the volume of the agglomerated particles smaller than D90 of the entire agglomerate particle size distribution possesses a microspheroidal morphology; (II) the support-agglomerate agglomerate particles possess
(A) an average particle size of from about 5 to about 250 microns, and (B) a surface area of from 20 to about 800 m2/gm; (III) the constituent inorganic oxide particles from which the agglomerate particles are derived have an average particle size, prior to spray drying, of from about 2 to about 10 microns and the constituent layered material particles have an average particle size, prior to spray drying, of from about 0.01 to about 50 microns.
- 54. The process of claim 36 wherein Components (A) and (B) are first agglomerated followed by impregnation of chromium salt.
- 55. The process of claim 36 wherein the chromium compound is contacted with Component (A) followed by contact and agglomeration with Component (B).
- 56. A process for the polymerization of olefins comprising contacting in a polymerization zone at least one olefinic compound with the catalyst composition of claim 1, 2, 3, 4, 5, 11, 12, 13 or 14.
- 57. A process for the polymerization of olefins comprising contacting in a polymerization zone at least one olefinic compound with the catalyst composition of claim 16.
- 58. The process of claim 56 wherein the polymerization zone further contains a compound represented by the structure formula:
- 59. The process of claim 56 wherein the polymerization zone further contains at least one second supported catalyst comprising:
i) a supported pre-catalyst component selected from a bidentate ligand transition metal complex or tridentate transition metal complex, a metallocene transition metal complex or constrained geometry transition metal complex or precursors of said complexes, or mixtures thereof; and ii) the support of said pre-catalyst composed of a support-agglomerate comprising (A) at least one inorganic oxide component, and (B) at least one ion-containing layered component.
- 60. The process of claim 55 wherein the polymerization zone further contains at least one particulate supported catalyst comprising a mixture of the catalyst composition and at least one second supported catalyst comprising:
i) at least one pre-catalyst component selected from a supported bidentate transition metal complex, a tridentate transition metal complex, a metallocene transition metal complex or a constrained geometry transition metal complex or precursors of said complexes, or mixtures thereof; and ii) a support of said pre-catalyst composed of a support-agglomerate comprising (A) at least one inorganic oxide component, and (B) at least one ion-containing layered component.
- 61. The process of claim 59 wherein the support-agglomerate of said at least one second supported catalyst has chromium atoms immobilized thereto.
- 62. The process of claim 60 wherein the support-agglomerate of said at least one second supported catalyst has chromium atoms immobilized thereto.
Parent Case Info
[0001] The present invention is made with respect to co-pending U.S. provisional application Serial No. 60/287,600, filed on Apr. 30, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60287600 |
Apr 2001 |
US |