Claims
- 42. A polymer blend composition comprising;
(A) an ethylene homopolymer in an amount of from about 1 to about 99% by weight based on the combined weight of Components (A) and (B), having an Mw/Mn ratio (as measured by GPC) greater than about 2.5, a density which satisfies the following inequality;density (g/cm3)>0.9611+0.0058 log (I2)−0.00128 log2 (I2); and wherein said homopolymer contains less than about 1 ppm catalyst chloride residues and less than about 1 ppm catalyst chromium residues. (B) an ethylene/α-olefin copolymer or an ethylene homopolymer other than one of Component A having the identical properties, wherein said copolymer or homopolymer are present in an amount of from about 1 to about 99% by weight based on the combined weight of Components (A) and (B).
- 43. A polymer blend composition comprising;
(A) an ethylene homopolymer in an amount of from about 1 to about 99% by weight based on the combined weight of Components (A) and (B), having an Mw/Mn ratio (as measured by GPC) greater than about 2.5, a density which satisfies the following inequality;density (g/cm3)>0.9611+0 0058 log (I2)−0.00128 log2 (I2); and an Mw/Mn which satisfies the following inequality;Mw/Mn≦11.67 log Mw−43.67; and(B) an ethylene/α-olefin copolymer or an ethylene homopolymer other than one of Component A having the identical properties, wherein said copolymer or homopolymer are present in an amount of from about 1 to about 99% by weight based on the combined weight of Components (A) and (B).
- 44. The polymer blend composition of claim 43 wherein Component (B) comprises;
(1) a homogeneous narrow composition distribution ethylene/α-olefin interpolymer; or (2) a heterogeneous broad composition distribution ethylene/α-olefin interpolymer; or (3) a polyolefin composition having a molecular weight maximum occurring in the fraction having the highest comonomer content prepared with the same catalyst as used to make said homopolymer of claim 1 to 6; or (4) an ethylene homopolymer having a different I2, or density or Mw or Mw/Mn than Component (A); or (5) a combination of any two or more of (B)(1), (B)(2), (B)(3), or (B)(4).
- 45. The polymer blend composition of claim 44 having
a) a density of from about 0.87 to about 0.98 g/cm3, b) a melt index (I2) of from about 0.0001 to about 10000, c) an I21/I2 of from about 20 to about 200, or an I10/I2 of from about 5 to about 100, and d) an Mw/Mn ratio of from about 2.5 to about 50; and wherein (I) Component A is present in an amount of from about 10 to about 90% by weight based on the combined weight of Components (A) and (B); and has a) a density of from about 0.915 to about 0.985 g/cm3, b) a melt index (I2) of from about 0.0001 to about 10,000 g/10 min, c) an I21/I2 of from about 15 to about 65, or an I10/I2 of from about 5 to about 30, and d) an Mw/Mn ratio of from about 2.5 to about 10; and e) an Mw/Mn ratio which satisfies the following inequality;Mw/Mn≦5.15 log Mw−11.59; and(II) Component B is present in an amount of from about 10 to about 90% by weight based on the combined weight of Components (A) and (B), and has; a) a density of from about 0.87 to about 0.98 g/cm3, b) a melt index (I2) of from about 0.0001 to about 10000 g/10 min; and wherein
i) Component B(1) has an I21/I2 of from about 10 to about 50 or an I10/I2 of from about 5 to about 25; and ii) Component B(2) has a) an I21/I2 of from about 15 to about 80 or an I10/I2 of from about 5 to about 40, and; b) an Mw/Mn of from about 3 to about 12; and
iii) Component B(3) has a) an I21/I2 of from about 15 to about 65, or an I10/I2 of from about 5 to about 30, and b) an Mw/Mn of from about 2 5 to about 10, and c) when, in cross fractionation chromatography (CFC) of said ethylene copolymer, with respect to extraction at an arbitrary temperature T(° C.) falling within the range of between a first temperature at which a maximum amount of extraction is exhibited and a second temperature which is the lower temperature of either the temperature of 10° C. higher than said first temperature or 96° C., the relationship between said arbitrary temperature T(° C.) and a point in molecular weight on a molecular weight distribution profile of a copolymer fraction extracted at said arbitrary temperature T(° C.) at which point in molecular weight said molecular weight distribution profile of the copolymer fraction shows a peak having a maximum intensity is treated by the least squares method to obtain an approximate straight line within the range of between said first temperature and said second temperature; if there is the copolymer fraction the amount of which is less than 1% by weight on the total amount, excluding purge, of copolymer fractions extracted at temperatures in the overall range of extraction temperatures in CFC, the copolymer fraction can be excluded from the calculation for the approximate straight line; the approximate straight line has a gradient within the range defined by the formula (I):−1≦{log Mp(T1)−log Mp(T2)}/(T1−T2)≦−0.005 (I) wherein:
T1 and T2 are two different arbitrary extraction temperatures T(° C.) within the range of between said first temperature and said second temperature, and Mp(T1) and Mp(T2) are, respectively, molecular weights corresponding to T1 and T2 on said approximate straight line; and d) the measurement of said ethylene copolymer by CFC shows characteristics such that the sum of respective amounts of copolymer fractions extracted at temperatures which are at least 10° C. lower than said first temperature as defined above is 8% 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; and
iv) Component B(4) has; a) an I21/I2 of from about 18 to about 70 or an I10/I2 of from about 5 to about 40; and b) an Mw/Mn of from about 2.5 to about 12.
- 46. The polymer blend composition of claim 45 having;
a) a density of from about 0.915 to about 0.975 g/cm3; and b) a melt index (I2) of from about 0.001 to about 5000; and c) an I21/I2 of from about 30 to about 180, or an I10/I2 of from about 5 to about 90, and d) an Mw/Mn ratio of from about 3 to about 45; and wherein (I) Component A is present in an amount of from about 25 to about 75% by weight based on the combined weight of Components (A) and (B), and has; a) a density of from about 0.935 to about 0.983 g/cm3; and b) a melt index (I2) of from about 0.001 to about 5,000 g/10 min, and c) an I21/I2 of from about 18 to about 55, or an I10/I2 of from about 5 to about 28; and d) an Mw/Mn ratio of from about 2.8 to about 8; and e) and an Mw /Mn ratio which satisfies the following inequality;Mw/Mn≦3.50 log Mw−11.00; and(II) Component B is present in an amount of from about 25 to about 75% by weight based on the combined weight of Components (A) and (B), and has; a) a density of from about 0.89 to about 0.965 g/cm3; and b) a melt index (I2) of from about 0.001 to about 5000 g/10 min; and wherein
i) Component B(1) has an I21/I2 of from about 12 to about 45, or an I10/I2 of from about 5.3 to about 25; and ii) Component B(2) has; a) an I21/I2 of from about 20 to about 70, or an I10/I2 of from about 5.3 to about 35; and b) an Mw/Mn of from about 3.5 to about 10; and
iii) Component B(3) has; a) an I21/I2 of from about 18 to about 55, or an I10/I2 of from about 5 to about 28, and b) an Mw/Mn of from about 32.8 to about 8; and c) with respect to property (iii)(c) for Component (B)(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 (II):−0.5≦{log Mp(T1)−log Mp(T2)}/(T1−T2)≦−0.007 (II) wherein T1, T2, Mp(T1) and Mp(T2) are as defined in claim 45; and wherein d) with respect to property (iii)(d) for Component (B)(3), 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; and e) within a range in molecular weight for Component (B)(3), which is defined by the formula (III):log (Mt)−log (Mc)≦0.5 (III) 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, said molecular weight distribution profile being 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 (IV):0.0005≦{C(Mc1)−C(Mc2)}/(log Mc1−log Mc2)≦0.05 (IV) wherein: Mc1 and Mc2 are two different arbitrary points (Mc) in molecular weight which satisfy the formula (III), and C(Mc1) and C(Mc2) are, respectively, comonomer contents corresponding to Mc1 and Mc2 on said approximate straight line; and
iv) Component B(4) has; a) an I21/I2 of from about 20 to about 60 or an I10/I2 of from about 5.3 to about 35; and b) an Mw/Mn of from about 2.8 to about 10
- 47. The polymer blend composition according to claim 46 having;
a) a density of from about 0.935 to about 0.970 g/cm3; b) a melt index (I2) of from about 0.01 to about 3000; and c) an I21/I2 of from about 40 to about 150, or an I10/I2 of from about 5 to about 80; and d) an Mw/Mn ratio of from about 5 to about 40; and wherein (I) Component A is present in an amount of from about 35 to about 65% by weight based on the combined weight of Components (A) and (B), and has; a) a density of from about 0 945 to about 0.980 g/cm3; and b) a melt index (I2) of from about 0.01 to about 3,000 g/10 min; and c) an I21/I2 of from about 20 to about 50, or an I10/I2 of from about 5.5 to about 25; and d) an Mw/Mn ratio of from about 3 to about 6; and e) an Mw/Mn ratio which satisfies the following inequality;1.25 log Mw−2.5 ≦Mw/Mw≦3.50 log Mw−11.0; and(II) Component B is present in an amount of from about 35 to about 65% by weight based on the combined weight of Components (A) and (B), and has; a) a density of from about 0.915 to about 0.955 g/cm3, and b) a melt index (I2) of from about 0.01 to about 3000 g/10 min; and wherein;
i) Component B(1) has; a) an I21/I2 of from about 15 to about 40, or an I10/I2 of from about 5.5 to about 20; and b) an Mw/Mn less than about 3; and
ii) Component B(2) has; a) an I21/I2 of from about 25 to about 60, or an I10/I2 of from about 5.5 to about 30; and b) an Mw/Mn of from about 4 to about 9; and
iii) Component B(3) has; a) an I21/I2 of from about 20 to about 50, or an I10/I2 of from about 5.5 to about 25; and b) an Mw/Mw of from about 3 to about 7 and wherein; c), with respect to property (iii)(c) for Component (B)(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 (V):−0.1≦{log Mp(T1)−log Mp(T2)}/(T1−T2)≦−0.01 (V) wherein T1, T2, Mp(T1) and Mp(T2) are as defined in claim 45; and wherein d) with respect to property (iii)(d) for Component (B)(3), said sum of respective amounts of copolymer fractions extracted at temperatures which are at least 10° C. lower than said first temperature is 3.5% 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; and e) wherein, with respect to property (iii)(e) for Component (B)(3), 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 (VI):0.001≦{C(Mc1)−C(Mc2)}/(log Mc1−log Mc2)≦0.02 (VI) wherein Mc1, Mc2, C(Mc1) and C(Mc2) are as defined in claim 46; and
iv) Component B(4) has; a) an I21/I2 of from about 10 to about 50 or an I10/I2 of from about 5.5 to about 30; and b) an Mw/Mn of from about 3 to about 9.
- 48. The polymer blend composition according to claim 45, wherein, with respect to property (iii)(c) for Component (B)(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 (VII):
- 49. The polymer blend composition of claim 44, wherein Component (B1) contains long chain branches
- 50. The polymer blend composition of claim 44, wherein Component (B1) contains long chain branches in the range of 0.01 to 3 per 1000 carbon atoms.
- 51. The polymer blend composition of claim 44, wherein Component (B1) contains long chain branches in the range of 0.1 to 3 per 1000 carbon atoms, and has a molecular weight distribution, Mw/Mn, defined by the equation:
- 52. The polymer blend composition of claim 44 wherein Component B is Component (B)(3) which comprises 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
- 53. A process for forming a polymer blend composition, which process comprises:
- 54. The process of claim 53 wherein steps (I) and (II) are performed in different reactors.
- 55. The process of claim 54 wherein the reactors are operated in series and step (I) is performed in the first reactor(s) and step (II) is performed in the second reactor(s); or, optionally, step (11) is performed in the first reactor(s) and step (I) is performed in the second reactor(s).
- 56. The process of claim 53 wherein;
(a) step (II) is performed under slurry phase polymerization conditions, or solution phase polymerization conditions, or gas phase polymerization conditions; and (b) the ethylene polymerization catalyst used in step (II) is a Ziegler catalyst, or an unsupported single site catalyst, or a supported single site catalyst, or a mixture of any two or more of said ethylene polymerization catalysts.
- 57. The process of claim 56 wherein;
(c) said supported single site catalyst comprises a supported constrained geometry catalyst.
- 58. The process of claim 53 wherein the ethylene polymerization catalyst of step (II) is:
- 59. The process of claim 53 wherein the ethylene polymerization catalyst of step (II) is a Ziegler ethylene polymerization catalyst comprising;
(a) a solid support component is a magnesium halide or silica, and (b) a transition metal component represented by the formulas:TrX′4-q(OR1)q, TrX′4-qR2q, VOX′3 and VO (OR1)3, wherein:Tr is a Group IVB, VB, or VIB metal, q is 0 or a number equal to or less than 4, X′ is a halogen, and R1 is an alkyl group, aryl group or cycloalkyl group having from 1 to 20 carbon atoms, and R2 is an alkyl group, aryl group, aralkyl group, or substituted aralkyl group.
- 60. The process of claim 54 wherein the reactors are operated in parallel.
- 61. The process of claim 53 wherein the α-olefin interpolymer of step (II) has a lower density and a higher molecular weight than the homopolymer produced in step (I).
- 62. The process of claim 53 wherein the comonomer of step (II) is a C3-C20 α-olefin.
- 63. The process of claim 53 wherein the comonomer of step (II) is propylene, 1-butene, 1-pentene, 4-methyl-1-pentene, 1-hexene or 1-octene.
- 64. The polymer blend composition prepared by the process of claim 53.
- 65. A fabricated article made from the polymer blend composition of claim 43.
- 66. A fabricated article of claim 65 which is in the form of a film, fiber, or sheet, or the result of a thermoforming, blow molding, injection molding and rotational molding process.
- 67. A fabricated article of claim 65 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 (5)
|
Number |
Date |
Country |
Parent |
08857817 |
May 1997 |
US |
Child |
10173256 |
Jun 2002 |
US |
Parent |
08555436 |
Nov 1995 |
US |
Child |
08857817 |
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 |