Claims
- 1. An ethylene copolymer comprising a copolymer of ethylene with at least one comonomer selected from the group consisting of a compound represented by the formula H2C═CHR wherein R is a C1-C20 linear, branched or cyclic alkyl group or a C6-C20 aryl group, and a C4-C20 linear, branched or cyclic diene, prepared by a process, which process comprises copolymerizing said ethylene with said comonomer by slurry polymerization in the presence of a solid catalyst system comprising: a support, a transition metal compound, and an activator capable of converting the transition metal compound into a catalytically active transition metal complex;
- 2. The ethylene copolymer of claim 1; wherein the Mw/Mn ratio satisfies the following inequality;
- 3. The ethylene copolymer of claim 2, wherein, said ethylene copolymer has the following property (5) with the properties (1), (2), (3) and (4);
(5) within a range in molecular weight of said ethylene copolymer which is defined by the formula (II):log (Mt)−log (Mc)≦0.5 (II) wherein:
Mt is a point in molecular weight on a molecular weight distribution profile at which said profile shows a peak having a maximum intensity, and Mc is an arbitrary point in molecular weight on said molecular weight distribution profile, and wherein said molecular weight distribution profile is obtained together with a comonomer content distribution profile by subjecting said ethylene copolymer to gel permeation chromatography/Fourier transformation infrared spectroscopy (GPC/FT-IR), then an approximate straight line obtained from said comonomer content distribution profile by the least squares method has a gradient within the range defined by the formula (III):0.0005≦{C(Mc1)−C(Mc2)}/(logMc1−logMc2)≦0.05 (III)wherein:
Mc1 and Mc2 are two different arbitrary points (Mc) in molecular weight which satisfy the formula (II), and C(Mc1) and C(Mc2) are, respectively, comonomer contents corresponding to Mc1 and Mc2 on said approximate straight line
- 4. The ethylene copolymer of claim 3, wherein the Mw/Mn ratio is of from about 3 to about 7.
- 5. The ethylene copolymer of claim 4, wherein, with respect to property (3), said approximate straight line obtained from said molecular weight distribution profile obtained by CFC of said polymer fraction has a gradient with the range defined by the following formula (IV):
- 6. The ethylene copolymer of claim 5, wherein, with respect to property (5), said approximate straight line obtained from said comonomer content distribution profile obtained by GPC/FT-IR of said ethylene comonomer has a gradient within the range defined by the following formula (V):
- 7. The ethylene copolymer of claim 6, wherein, with respect to property (4), said sum of respective amounts of copolymer fractions extracted at temperatures which are at least 10° C. lower than said first temperature is 5% by weight or less, based on the total amount, excluding purge, of copolymer fractions extracted at temperatures in the overall range of extraction temperatures in CFC.
- 8. A process for preparing the ethylene copolymer of claim 1, which process comprises copolymerizing said ethylene with said comonomer by slurry polymerization in the presence of a solid catalyst system comprising: a support. a transition metal compound, and an activator capable of converting the transition metal compound into a catalytically active transition metal complex.
- 9. The process according to claim 8 wherein said solid catalyst system comprises:
a supported catalyst component comprising;
(a) a support material, an organometal compound wherein the metal is selected form Groups 2-13 of the Periodic Table of the Elements, germanium, tin, and lead; and (b) an activator compound comprising (b-1) a cation which is capable of reacting with a transition metal compound to form a catalytically active transition metal complex, and (c) a compatible anion (b-2) having up to 100 nonhydrogen atoms and containing at least one substituent comprising an active hydrogen moiety; and (d) a transition metal compound.
- 10. The process according to claim 9, wherein the cation (b-1) is selected from the group consisting of Brønsted acidic cations, carbonium cations, silylium cations, and cationic oxidizing agents, and in the anion (b-2) the substituent comprising an active hydrogen moiety corresponds to the following formula (VI):
- 11. The process according to claim 10, wherein the compatible anion portion of the activator compound corresponds to the following formula (VII):
- 12. The process of claim 11, wherein the solid catalyst system is obtained by combining:
(1) a supported catalyst component obtained by
(A) subjecting the support material to a thermal treatment at 100° C. to 1000° C.; combining the thermally treated support material with the organometal compound in a suitable diluent or solvent; and subsequently combining the resulting product with the activator compound; or (B) combining the activator compound with the organometal compound to form an adduct; and combining the adduct with the support material; or (C) combining a water containing support material with the organometal compound; and combining the resulting product with (D) the activator compound; and (E) a transition metal compound.
- 13. The process of claim 8, wherein the solid catalyst system comprises a supported catalyst component which results from admixing;
(a) a support material and an alumoxane which component contains 15 to 40 weight percent of aluminum, based on the total weight of the support material and alumoxane, which is obtained by;
(i) heating said support material and alumoxane under an inert atmosphere for a period and at a temperature sufficient to fix alumoxane to the support material, to provide a supported catalyst component wherein not more than about 10 percent aluminum present in the supported catalyst component is extractable in a one-hour extraction with toluene at 90° C. using about 10 ml toluene per gram of supported catalyst component; and (ii) optionally, subjecting the product produced in step (a) to one or more wash steps to remove alumoxane not fixed to the support material; and (b) a transition metal compound.
- 14. The process of claim 13, wherein the transition metal compound contains at least one cyclic or noncyclic π-bonded anionic ligand group.
- 15. The process of claim 14, wherein said transition metal compound is a bridged monocyclopentadienyl or mono (substituted cyclopentadienyl) transition metal compounds represented by: the following formula (VII):
- 16. The process of claim 15, wherein the support material is selected from the group consisting of silica, alumina, mixed oxides of silica and one or more Group 2 or 13 metal oxides, alumina, magnesia, and titania.
- 17. A fabricated article made from the ethylene copolymer of claim 1.
- 18. A fabricated article of claim 17, which is in the form of a film, fiber, or foam or sheet, or the result of a thermoforming, blow molding, injection molding and rotational molding process.
- 19. A fabricated article of claim 17, comprising pipes, tubing, cable or wire jackets, pipe coatings, geomembranes, thermoformed articles, stackable plastic pallets, blow molded bottles or containers, or environmental pond liners.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of application Ser. No. 555,436 filed on Nov. 9, 1995 (Attorney's Docket No. C-41886A) which is a continuation-in-part of application Ser. No. 340,989 filed on Nov. 17, 1994 (Attorney's Docket No. C-41886) now abandoned. This application is also a continuation-in-part of application Ser. No. 610,647 filed on Mar. 4, 1996 (Attorney's Docket No. C-42173A) which is a continuation-in-part of application Ser. No. 402,437 filed on Mar. 10, 1995 (Attorney's Docket No. C-42173) now abandoned.
Continuation in Parts (4)
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Number |
Date |
Country |
Parent |
08555436 |
Nov 1995 |
US |
Child |
08857816 |
May 1997 |
US |
Parent |
08340989 |
Nov 1994 |
US |
Child |
08555436 |
Nov 1995 |
US |
Parent |
08610647 |
Mar 1996 |
US |
Child |
08555436 |
Nov 1995 |
US |
Parent |
08402437 |
Mar 1995 |
US |
Child |
08610647 |
Mar 1996 |
US |