Claims
- 1. A coextruded air-quenched multilayer blown film structure comprising:
(A) a non-sealant layer comprised of a propylene-rich polypropylene polymer blended with at least one ethylene-rich ethylene interpolymer, and (B) a sealant layer comprised of at least one second ethylene interpolymer, wherein the ethylene-rich ethylene interpolymer comprises ethylene interpolymerized with at least one other comonomer other than propylene and wherein the structure is characterized as having a maximum hot tack strength in the sealing temperature range of 80° C. to 150° of greater than 5.0 Newton/25 millimeter, when fabricated at a sealant layer thickness of 0.2 mil or greater and tested using a JB Instrument Hot Tack Tester set at a 0.5 second dwell, 0.2 second delay time, 40 psi seal bar pressure and 250 mm/second peel rate.
- 2. The film structure of claim 1 wherein the polypropylene polymer is a homopolymer.
- 3. The film structure of claim 1 wherein the polypropylene polymer is a random copolymer.
- 4. The film structure of claim 1 wherein the polypropylene polymer is an impact copolymer comprising ethylene.
- 5. The film structure of claim 1 wherein the ethylene-rich ethylene interpolymer is a heterogeneously branched ethylene interpolymer.
- 6. The film structure of claim 1 wherein the ethylene-rich ethylene interpolymer is a homogeneously branched ethylene interpolymer.
- 7. The film structure of claim 6 wherein the ethylene-rich ethylene interpolymer is a substantially linear ethylene interpolymer.
- 8. The film structure of claim 6 wherein the ethylene-rich ethylene interpolymer is a homogeneously branched linear ethylene interpolymer.
- 9. The film structure of claim 1 wherein the polypropylene polymer and the ethylene-rich ethylene interpolymer are blended in situ using multiple polymerization reactors.
- 10. The film structure of claim 1 wherein the ethylene-rich ethylene interpolymer is blended with another ethylene polymer.
- 11. The film structure of claim 10 wherein the ethylene-rich ethylene interpolymer is a heterogeneously branched linear ethylene interpolymer and the other ethylene polymer is a low density polyethylene homopolymer.
- 12. The film structure of claim 11 wherein the low density polyethylene homopolymer is characterized as having a melt strength greater than 10 cN as determined using a Gottfert Rheotens unit at 190° C.
- 13. The film structure of claim 1 wherein the structure is a three layer film structure with an non-sealant outer layer, a non-sealant core layer and the polypropylene layer (A) as the non-sealant core layer.
- 14. The film structure of claim 13 wherein the sealant layer and the non-sealant outer comprise the same polymer composition or combination.
- 15. The film structure of claim 1 wherein the sealant comprises a blend of a heterogeneously branched ethylene polymer and homogeneously branched ethylene interpolymer.
- 16. The film structure of claim 15 wherein the heterogeneously branched ethylene polymer is a copolymer of ethylene and a C4-C20 α-olefin.
- 17. The film structure of claim 1 wherein the ethylene-rich ethylene interpolymer is a homogeneously branched ethylene interpolymer and the second ethylene interpolymer is a heterogeneously branched linear ethylene interpolymer or a blend of a heterogeneously branched linear ethylene interpolymer and a low density polyethylene homopolymer.
- 18. The film structure of claim 17 wherein the heterogeneously branched linear ethylene interpolymer is a very low density polyethylene (VLDPE).
- 19. The film structure of claim 17 wherein the heterogeneously branched linear ethylene interpolymer is a linear low density polyethylene (LLDPE).
- 20. The film structure of claim 1 wherein the non-sealant polypropylene layer (A) is adjacent to the sealant layer (B).
- 21. The film structure of claim 1 wherein the sealant layer has a thickness in the range of about 0.15 to about 0.25 mil.
- 22. A process of making a multilayer blown film structure containing a polypropylene layer, comprising
a) obtaining a blown film coextrusion unit having at least two separate extruders which separately feed a multi-channel annular die, b) blending a propylene-rich polypropylene polymer with at least one ethylene-rich ethylene interpolymer and feeding the blend to the first extruder of the coextrusion film unit, b) feeding at least one second ethylene interpolymer to the second extruder of the coextrusion film unit, c) simultaneously extruding the blend and the second ethylene interpolymer through the multi-channel annular die to form a molten tube, and d) thereafter, using air to blow-up the tube into a bubble and quenching the bubble to form the multilayer blown film structure.
- 23. A pouch made from a coextruded air-quenched multilayer blown film structure which in tubular form has transversely heat sealed ends, the multilayer film structure comprising (A) a non-sealant layer comprised of a propylene-rich polypropylene polymer blended with at least one first ethylene-rich ethylene interpolymer and (B) a sealant layer comprised of at least one second ethylene interpolymer, wherein the ethylene-rich ethylene interpolymer comprises ethylene interpolymerized with at least one other comonomer other than propylene and the structure is characterized as having a maximum hot tack strength in the sealing temperature range of 80° C. to 150° of greater than 5.0 Newton/25 millimeter, when fabricated at a sealant layer thickness of 0.2 mil or greater and tested using a JB Instrument Hot Tack Tester set at a 0.5 second dwell, 0.2 second delay time, 40 psi seal bar pressure and 250 mm/second peel rate.
- 24. An overwrap film made from a coextruded air-quenched multilayer blown film structure comprising (A) a non-sealant layer comprised of a propylene-rich polypropylene polymer blended with at least one first ethylene-rich ethylene interpolymer and (B) a sealant layer comprised of at least one second ethylene interpolymer, wherein the ethylene-rich ethylene interpolymer comprises ethylene interpolymerized with at least one other comonomer other than propylene and the structure is characterized as having a maximum hot tack strength in the sealing temperature range of 80° C. to 150° of greater than 5.0 Newton/25 millimeter, when fabricated at a sealant layer thickness of 0.2 mil or greater and tested using a JB Instrument Hot Tack Tester set at a 0.5 second dwell, 0.2 second delay time, 40 psi seal bar pressure and 250 mm/second peel rate.
- 25. A heavy-duty shipping sack made from a coextruded air-quenched multilayer blown film structure comprising (A) a non-sealant layer comprised of a propylene-rich polypropylene polymer blended with at least one first ethylene-rich ethylene interpolymer and (B) a sealant layer comprised of at least one second ethylene interpolymer, wherein the ethylene-rich ethylene interpolymer comprises ethylene interpolymerized with at least one other comonomer other than propylene and the structure is characterized as having a maximum hot tack strength in the sealing temperature range of 80° C. to 150° of greater than 5.0 Newton/25 millimeter, when fabricated at a sealant layer thickness of 0.2 mil or greater and tested using a JB Instrument Hot Tack Tester set at a 0.5 second dwell, 0.2 second delay time, 40 psi seal bar pressure and 250 mm/second peel rate.
- 26. The pouch of claim 23 containing a flowable material.
- 27. The pouch of claim 27 wherein the pouch holds from about 5 mL to about 10,000 mL.
- 28. The pouch of claim 26 wherein the flowable material is milk.
- 29. The film structure of claim 1 wherein the film structure contains a slip agent, antiblock agent and, optionally, a processing aid.
- 30. The film structure of claim 1 wherein the film structure contains a pigment to render the film structure opaque.
- 31. The film structure of claim 1 wherein the film structure contains an ultraviolet light absorbing additive.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the priority benefit of U.S. provisional application No. 60/177,781, filed Jan. 24, 2000; U.S. provisional application No. 60/257,513, filed Dec. 22, 2000; U.S. provisional application No. 60/232,977, filed Sep. 14, 2000; and U.S. provisional application No. 60/211,048, filed Jun. 12, 2000, the disclosures of all of which are incorporated herein by reference, in their entireties.
Provisional Applications (1)
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Number |
Date |
Country |
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60177781 |
Jan 2000 |
US |