Claims
- 1. An ethylene polymer extrusion composition comprising from about 75 to 95 percent, by weight of the total composition, of at least one substantially linear ethylene/.alpha.-olefin polymer, wherein the substantially linear ethylene/.alpha.-olefin polymer is characterized as having a density in the range of 0.85 g/cc to 0.940 g/cc and is further characterized as having:
- (a) a melt flow ratio, I.sub.10 /I.sub.2 .gtoreq.5.63,
- (b) a molecular weight distribution, M.sub.w /M.sub.n, as determined by gel permeation chromatography and defined by the equation:
- (M.sub.w /M.sub.n).ltoreq.(I.sub.10 /I.sub.2)-4.63,
- (c) a gas extrusion rheology such that the critical shear rate at onset of surface melt fracture for the substantially linear ethylene polymer is at least 50 percent greater than the critical shear rate at the onset of surface melt fracture for a linear ethylene polymer, wherein the substantially linear ethylene/.alpha.-olefin polymer and the linear ethylene polymer comprise the same comonomer or comonomers, the linear ethylene polymer has an I.sub.2, M.sub.w /M.sub.n and density within ten percent of the substantially linear ethylene polymer and wherein the respective critical shear rates of the substantially linear ethylene/.alpha.-olefin polymer and the linear ethylene polymer are measured at the same melt temperature using a gas extrusion rheometer, and
- (d) a single differential scanning calorimetry, DSC, melting peak between-30 and 150.degree. C., and
- from about 5 to 25 percent, by weight of the total composition, of at least one high pressure ethylene polymer characterized as having a melt index, I.sub.2, less than 6.0 g/10 minutes, a density of at least 0.916 g/cc, a melt strength of at least 9 cN as determined using a Gottfert Rheotens unit at 190.degree. C., a M.sub.w /M.sub.n ratio of at least 7.0 and a bimodal molecular weight distribution as determined by gel permeation chromatography, wherein the ethylene polymer extrusion composition has a melt index, I.sub.2, of at least 1.0 g/10 minutes.
- 2. The composition of claim 1, wherein the substantially linear ethylene polymer has about 0.01 to about 3 long chain branches/1000 carbons.
- 3. The composition of claim 2, wherein the substantially linear ethylene polymer has at least about 0.1 long chain branch/1000 carbons.
- 4. The composition of claim 3, wherein the substantially linear ethylene polymer has at least about 0.3 long chain branch/1000 carbons.
- 5. The composition of claim 1, wherein the .alpha.-olefin is at least one C.sub.3 -C.sub.20 .alpha.-olefin.
- 6. The composition of claim 5, wherein the .alpha.-olefin is selected from the group consisting of 1-propylene, 1-butene, 1-isobutylene, 1-hexene, 4-methyl-1-pentene, 1-pentene, 1-heptene and 1-octene.
- 7. The composition of claim, 1 wherein the ethylene .alpha.-olefin interpolymer is a copolymer of ethylene and 1-octene and the high pressure ethylene polymer is an ethylene homopolymer.
- 8. The composition of claim 1, wherein the at least one high pressure ethylene polymer composition is an ethylene homopolymer.
- 9. The composition of claim 1, wherein the at least one high pressure ethylene polymer composition is an interpolymer of ethylene and at least one unsaturated comonomer.
- 10. A process for making an ethylene polymer extrusion composition comprising:
- (a) combining 5 to 25 percent, by weight of the extrusion composition, of the at least one high pressure ethylene polymer composition with 75 to 95 percent, by weight of the extrusion composition, of at least one substantially linear ethylene/.alpha.-olefin polymer which is characterized as having
- i. a melt flow ratio, I.sub.10 /I.sub.2 .gtoreq.5.63,
- ii. a molecular weight distribution, M.sub.w /M.sub.n, as determined by gel permeation chromatography and defined by the equation:
- (M.sub.w /M.sub.n).ltoreq.(I.sub.10 /I.sub.2)-4.63
- iii. a gas extrusion rheology such that the critical shear rate at onset of surface melt fracture for the substantially linear ethylene polymer is at least 50 percent greater than the critical shear rate at the onset of surface melt fracture for a linear ethylene polymer, wherein the substantially linear ethylene/.alpha.-olefin polymer and the linear ethylene polymer comprise the same comonomer or comonomers, the linear ethylene polymer has an I.sub.2, M.sub.w /M.sub.n and density within ten percent of the substantially linear ethylene polymer and wherein the respective critical shear rates of the substantially linear ethylene/.alpha.-olefin polymer and the linear ethylene polymer are measured at the same melt temperature using a gas extrusion rheometer, and
- iv. a single differential scanning calorimetry, DSC, melting peak between-30 and 150.degree. C., wherein the at least one high pressure ethylene polymer composition is combined using addition equipment that is part of the polymerization process used to prepare the at least one substantially linear ethylene/.alpha.-olefin polymer, to prepare an ethylene polymer extrusion composition having a melt index, I.sub.2, of at least 1.0 g/10 minutes and a neck-in at a 1 mil monolayer extrusion coating weight of at least 12 percent lower than the expected neck-in value for the composition, and
- (b) collecting or conveying the extrusion composition in a form suitable for subsequent use.
- 11. A process for using an ethylene polymer extrusion composition to make an extrusion coated substrate, an extrusion profile or an extrusion cast film comprising:
- (i) feeding an ethylene polymer composition into at least one extruder of an extrusion line, wherein the ethylene polymer composition comprises from about 75 to 95 percent, by weight of the total composition, of at least one substantially linear ethylene/.alpha.-olefin polymer, wherein the substantially linear ethylene/.alpha.-olefin polymer composition is characterized as having a density in the range of 0.85 g/cc to 0.940 g/cc and a melt index, I.sub.2, in the range of 0.1 to 50 g/10 minutes, and is further characterized as having:
- (a) a melt flow ratio, I.sub.10 /I.sub.2 .gtoreq.5.63
- (b) a molecular weight distribution, M.sub.w /M.sub.n, as determined by gel permeation chromatography and defined by the equation:
- (M.sub.w /M.sub.n).ltoreq.(I.sub.10 /I.sub.2)-4.63
- (c) a gas extrusion rheology such that the critical shear rate at onset of surface melt fracture for the substantially linear ethylene polymer is at least 50 percent greater than the critical shear rate at the onset of surface melt fracture for a linear ethylene polymer, wherein the substantially linear ethylene/.alpha.-olefin polymer and the linear ethylene polymer comprise the same comonomer or comonomers, the linear ethylene polymer has an I.sub.2, M.sub.w /M.sub.n and density within ten percent of the substantially linear ethylene polymer and wherein the respective critical shear rates of the substantially linear ethylene/.alpha.-olefin polymer and the linear ethylene polymer are measured at the same melt temperature using a gas extrusion rheometer, and
- (d) a single differential scanning calorimetry DSC, melting peak between<30 and 150.degree. C. and from about 5 to 25 percent, by weight of the total composition, of at least high pressure ethylene polymer composition characterized as having a melt index, I.sub.2, less than 1.0 g/10 minutes, a density of at least 0.916 g/cc, a melt strength of at least 9 cN as determined using a Gottfert Rheotens unit at 190.degree. C., a M.sub.w /M.sub.n ratio of at least 7.0 and a bimodal molecular weight distribution as determined by gel permeation chromatography, and wherein the ethylene polymer extrusion composition has a melt index, I.sub.2, of at least 1.0 g/10 minutes,
- (ii) melting and mixing the ethylene polymer composition to form at least one uniform molten polymer stream,
- (iii) operating the extrusion line at line speeds greater than 152 meters/minute,
- (iii) extruding the molten polymer stream through a die to form a primary extrudate, and either
- (a) drawing down and cooling the extrudate to prepare the extruded profile of at least one layer of the ethylene polymer extrusion composition, or
- (b) drawing down the extrudate onto the substrate to thereby extrusion coat the substrate with at least one layer of the ethylene polymer extrusion composition, or
- (c) drawing down and cooling the extrudate onto a take-off device to make the cast film with at least one layer of the ethylene polymer extrusion composition, and
- (vi) conveying or collecting the profile, the extrusion coated substrate or the cast film for subsequent use.
- 12. The process of claim 11, wherein the at least one layer of step (iii)(a), (iii)(b) or (iii)(c) is a sealant layer, adhesive layer or abuse resistance layer.
- 13. The process of claim 11, wherein the at least one layer of step (iii)(b) is an sealant layer.
- 14. An article comprising at least one layer of an ethylene polymer extrusion composition, wherein the extrusion composition comprises from about 75 to 95 percent, by weight of the total composition, of at least one substantially linear ethylene/.alpha.-olefin polymer, wherein the substantially linear ethylene/.alpha.-olefin polymer is characterized as having a density in the range of 0.85 g/cc to 0.940 g/cc and is further characterized as having
- (a) a melt flow ratio, I.sub.10 /.sub.2 .gtoreq.5.63
- (b) a molecular weight distribution, M.sub.w /M.sub.n, as determined by gel permeation chromatography and defined by the equation:
- (M.sub.w /M.sub.n).ltoreq.(I.sub.10 /I.sub.2)-4.63,
- (c) a gas extrusion rheology such that the critical shear rate at onset of surface melt fracture for the substantially linear ethylene polymer is at least 50 percent greater than the critical shear rate at the onset of surface melt fracture for a linear ethylene polymer, wherein the substantially linear ethylene/.alpha.-olefin polymer and the linear ethylene polymer comprise the same comonomer or comonomers, the linear ethylene polymer has an I.sub.2, M.sub.w /M.sub.n and density within ten percent of the substantially linear ethylene polymer and wherein the respective critical shear rates of the substantially linear ethylene/.alpha.-olefin polymer and the linear ethylene polymer are measured at the same melt temperature using a gas extrusion rheometer, and
- (d) a single differential scanning calorimetry. DSC, melting peak between-30 and 150.degree. C., and
- from about 5 to 25 percent, by weight of the total composition, of at least one high pressure ethylene polymer characterized as having a melt index, I.sub.2, less than 6.0 g/10 minutes, a density of at least 0.916 g/cc, a melt strength of at least 9 cN as determined using a Gottfert Rheotens unit at 190.degree. C., a M.sub.w /M.sub.n ratio of at least 7.0 and a bimodal molecular weight distribution as determined by gel permeation chromatography, and wherein the ethylene polymer extrusion composition has a melt index, I.sub.2, of at least 1.0 g/10 minutes.
- 15. The article of claim 14, wherein the ethylene polymer composition is in the form of an extrusion profile, an extrusion coating into a substrate or an extrusion cast film.
- 16. The article of claim 14, wherein the at least one layer of an ethylene polymer composition is an sealant layer, adhesive layer or abuse resistance layer.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a Rule 1.60 divisional of application Ser. No. 08/344,262, filed Nov. 23, 1994, now U.S. Pat. No. 5,582,923, which is a continuation-in-part application of application Ser. No. 08/327,156, filed Oct. 21, 1994, now abandoned, and a continuation-in-part application of application Ser. No. 08/084,054, filed Jun. 29, 1993, now U.S. Pat. No. 5,395,471, which is a continuation-in-part application of patent application Ser. No. 07/776,130, filed Oct. 15, 1991, issued as U.S. Pat. No. 5,272,236; a continuation-in-part of patent application Ser. No. 07/939,281, filed Sep. 2, 1992, issued as U.S. Pat. No. 5,278,272; a continuation-in-part of application Ser. No. 08/055,063 filed Apr. 28, 1993 now U.S. Pat. No. 5,562,958; and is related to application Ser. No. 07/961,269, filed Oct. 14, 1992, now abandoned.
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Related Publications (3)
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84054 |
Jun 1993 |
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939281 |
Sep 1992 |
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Divisions (1)
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344262 |
Nov 1994 |
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Continuation in Parts (2)
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327156 |
Oct 1994 |
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Parent |
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Oct 1991 |
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