Claims
- 1. A grafted blend composition comprising,
(A) one or more homopolymers or interpolymers with peak crystalline melting temperature (Tm) and/or or glass transition temperature (Tg by DSC) of 90° C. or more; (B) one or more homopolymers or interpolymers with peak crystalline melting temperature (Tm) and/or glass transition temperature (Tg by DSC) of 80° C. or less; and (C) at least one coupling agent; and wherein
1) the upper service temperature of said grafted blend is greater than about 80° C.; 2) the gel content of said grafted blend is 50 percent or less (as determined by insolubility of the gels in boiling xylene when tested according to ASTM D-2765A-84); 3) said grafted blend composition exhibits at least one of the following improvements relative to the same blend in the absence of Component C;
(a) the melt strength is increased by 5% or more; and/or (b) the upper service temperature is increased by 0.5° C. or more.
- 2. The grafted blend composition of claim 1 wherein
A) Component A is present in an amount of from about 0.5 to about 99.5 percent by weight (based on the combined weights of Components A, B and C); B) Component B is present in an amount of from about 0.5 to about 99.5 percent by weight (based on the combined weights of Components A, B and C) and C) Component C is one or more of poly (sulfonyl) azides and/or peroxides; and wherein
1) Components A and B are selected from the group consisting of the substantially random interpolymers, the olefinic polymers; the alkenyl aromatic polymers, or any combination therof; 2) the upper service temperature of said grafted blend is greater than about 85° C.; 3) the gel content of said grafted blend is 40 percent or less (as determined by insolubility of the gels in boiling xylene when tested according to ASTM D-2765A-84); and 4) said grafted blend composition exhibits at least one of the following improvements relative to the same blend in the absence of Component C;
(a) the melt strength is increased by 10% or more; and/or (b) the upper service temperature is increased by 1.0° C. or more.
- 3. The grafted blend composition of claim 1 wherein
A) Component A is present in an amount of from about 5 to about 95 percent by weight (based on the combined weights of Components A, B and C); B) Component B is present in an amount of from about 5 to about 95 percent by weight (based on the combined weights of Components A, B and C) and C) Component C is one or more of poly (sulfonyl) azides and/or peroxides; and wherein
1) Components A and B are selected from the group consisting of an ethylene homopolymer or copolymer, a propylene homopolymer or copolymer, a styrene homopolymer or copolymer, a substantially random ethylene/styrene or ethylene/α-olefin/styrene interpolymer or a combination thereof; 2) the upper service temperature of said grafted blend is greater than about 90° C.; 3) the gel content of said grafted blend is 30 percent or less (as determined by insolubility of the gels in boiling xylene when tested according to ASTM D-2765A-84); and 4) said grafted blend composition exhibits at least one of the following improvements relative to the same blend in the absence of Component C;
(a) the melt strength is increased by 10% or more; and/or (b) the upper service temperature is increased by 1.5° C. or more.
- 4. The grafted blend composition of claim 1 wherein
A) Component A is present in an amount of from about 10 to about 90 percent by weight (based on the combined weights of Components A, B and C); B) Component B is present in an amount of from about 10 to about 90 percent by weight (based on the combined weights of Components A, B and C) and C) Component C is one or more of poly (sulfonyl) azides and/or peroxides; and wherein
1) Components A and B are selected from the group consisting of an ethylene homopolymer or copolymer, a propylene homopolymer or copolymer, a styrene homopolymer or copolymer, a substantially random ethylene/styrene or ethylene/α-olefin/styrene interpolymer or a combination thereof; 2) the upper service temperature of said grafted blend is greater than about 90° C.; 3) the gel content of said grafted blend is 20 percent or less (as determined by insolubility of the gels in boiling xylene when tested according to ASTM D-2765A-84); and said grafted blend composition exhibits at least one of the following improvements relative to the same blend in the absence of Component C; (a) the melt strength is increased by 10% or more; and/or (b) the upper service temperature is increased by 1.5° C. or more relative to the same blend in the absence of Component C.
- 5. The grafted blend composition of claim 4 wherein
A) Component A is present in an amount of from about 10 to about 60 percent by weight (based on the combined weights of Components A, B and C) and B) Component B is present in an amount of from about 40 to about 90 percent by weight (based on the combined weights of Components A, B and C); and and wherein
a) the gel content of said grafted blend is 10 percent or less; and b) the upper service temperature of said grafted blend composition is increased by 5° C. or more relative to the same blend in the absence of Component C.
- 6. A grafted blend composition comprising
(A) a blend of;
1) one or more linear or substantially linear ethylene homopolymers or interpolymers and one or more branched ethylene homopolymers or interpolymers; 2) one or more linear or substantially linear ethylene homopolymers or interpolymers and one or more substantially random interpolymers; or 3) one or more linear or substantially linear ethylene homopolymers or interpolymers, one or more branched ethylene homopolymers or interpolymers and one or more substantially random interpolymers; and (B) one or more coupling agents; and wherein said grafted blend composition has a) a melt strength, greater than about 8 cN; b) a melt elongation of 20 mm/s or greater; c) a flexural modulus of 80,000 psi or greater; and d) a gel content which is 50 percent or less, as determined by insolubility of the gels in boiling xylene when tested according to ASTM D-2765A-84.
- 7. The grafted blend composition of claim 6 wherein said grafted blend composition has
a) a melt strength, greater than about 10 cN, b) a melt elongation of 25 mm/s or greater; c) a flexural modulus of 100,000 psi or greater; and d) a gel content which is 40 percent or less, as determined by insolubility of the gels in boiling xylene when tested according to ASTM D-2765A-84.
- 8. The grafted blend composition of claim 6 wherein said grafted blend composition has
a) a melt strength, greater than about 15 cN, b) a melt elongation of 30 mm/s or greater; c) a flexural modulus of 110,000 psi or greater, and d) a gel content which is 30 percent or less, as determined by insolubility of the gels in boiling xylene when tested according to ASTM D-2765A-84.
- 9. The grafted blend composition of claim 8 wherein;
A) said polymer blend Component (A) comprises a blend of HDPE with LDPE; B) and said coupling agent, Component (B) is on azide or a peroxide or a combination thereof.
- 10. The grafted blend composition of claim 8 wherein;
A) said polymer blend Component (A) comprises a blend of heterogeneous or homogeneous LLDPE with LDPE; and B) said coupling agent, Component (B) is an azide or a peroxide or a combination thereof.
- 11. The grafted blend composition of claim 8; wherein
A) said polymer blend Component (A) comprises a blend of a substantially linear ethylene homopolymer or interpolymer with LDPE and said coupling agent; and B) Component (B) is an azide or a peroxide or a combination thereof.
- 12. A grafted blend composition which has a melt index, I2, of about 0.05 to about 10 g/10 min comprising;
A) from 55 to 90 wt percent (based on the combined weights of component A and B) of a linear or substantially linear ethylene homopolymer or interpolymer, having a density of greater than 0.9450 g/cm3; B) from 10 to 45 wt percent (based on the combined weights of component A and B) of a branched ethylene homopolymer or interpolymer having a melt strength of greater than 5 cN; and C) from 0.005 wt percent to about 0.2 wt % (based on the combined weights of A and B) of a coupling agent; and D) wherein the melt strength of said grafted blend is greater than 5 cN.
- 13. A grafted blend composition comprising,
(A) one or more olefinic polymers other than polypropylene; (B) one or more propylene homopolymers or interpolymers; and (C) at least one coupling agent; and wherein said grafted blend has 1) a gel content which is 50 percent or less, as determined by insolubility of the gels in boiling xylene when tested according to ASTM D-2765A-84; 2) a melt elongation greater than or equal to about 20 mm/s, 3) a melt strength greater than about 5 cN; and 4) a flexural modulus of 50,000 psi or greater.
- 14. The grafted blend composition of claim 13 wherein;
1) said gel content is 40 percent or less, as determined by insolubility of the gels in boiling xylene when tested according to ASTM D-2765A-84; 2) said melt elongation is greater than or equal to about 25 mm/s; 3) said melt strength is greater than about 10.
- 15. The grafted blend composition of claim 13 comprising, wherein
1) said coupling agent is an azide or a peroxide or a combination thereof; 2) said gel content is 30 percent or less as determined by insolubility of the gels in boiling xylene when tested according to ASTM D-2765A-84; and 3) said melt strength is greater than about 15 cN.
- 16. A blend comprising from about 0.1 to about 99.9 wt percent of the grafted blend composition of claims 1, 6, and 13; and further comprising from about 0. 1 to about 99.9 wt percent of a thermoplastic polymer.
- 17. A fabricated article comprising the grafted blend composition of claims 1, 6, and 13 in the form of a film, fiber, blow molded article or extrusion coating.
- 18. A foam comprising the grafted blend composition of claims 1, 6, and 13 and having a crosslinked gel content of 50 percent or less, and a density less than 900 kilograms per cubic meter.
- 19. The foam of claim 18 having a crosslinked gel content of 30 percent or less, and a density less than 850 kilograms per cubic meter.
- 20. The foam of claim 18 having a crosslinked gel content of 10 percent or less, and a density ranging from 5 to 700 kilograms per cubic meter.
- 21. The foam of claim 18 having a crosslinked gel greater than 50 percent, and a density less than 900 kilograms per cubic meter.
- 22. The foam of claim 18 having a crosslinked gel greater than 55 percent, and a density less than 850 kilograms per cubic meter.
- 23. The foam of claim 18 having a crosslinked gel greater than 60 percent, and a density ranging from 5 to 700 kilograms per cubic meter.
- 24. The foam of claims 18 to 23, wherein the foam has an open cell content of 30 volume percent or less.
- 25. The foam of claims 18 to 23, wherein the foam has an open cell content of 20 volume percent or less.
- 26. The foam of claims 18 to 23, wherein the foam has an open cell content of 10 volume percent or less.
- 27. The foam of claims 18 to 23, wherein the foam has an open cell content of greater than 30 volume percent.
- 28. The foam of claims 18 to 23, wherein the foam has an open cell content of greater than 40 volume percent.
- 29. The foam of claim 18 to 23, wherein the foam has an open cell content of greater than 50 volume percent.
- 30. The foam of claim 18, wherein the foam has defined therein a multiplicity of channels, the channels being free of direction with respect to the longitudinal extension of the foam and enhancing or accelerating a gaseous permeation exchange wherein blowing agent exits from the foam and air enters into the foam.
- 31. The foam of claim 18, wherein the foam is in the shape of a sheet or plank with a thickness of at least 0.5 millimeters and width of at least 5 millimeters, or a rod having a diameter of at least 5 millimeters.
- 32. The foam of claim 18, wherein the foam is shaped as thermoplastic foam beads or as expanded and fused thermoplastic foam beads.
- 33. The foam of claim 18, wherein the foam is a unitary foam structure that is a coalesced strand foam.
- 34. A process for making a polymer foam; which comprises;
(i) converting the grafted blend composition of claims 1, 6, and 13 into a polymer melt; (ii) introducing, at an elevated pressure, at least one blowing agent into the polymer melt to form a foamable gel, the blowing agent being present in a total amount of from 0.05 to 5.0 gram-moles per kilogram of polymers contained in the polymer melt; (iii) cooling the foamable gel to an optimum temperature; and (iv) extruding the foamable gel from step iii through a die to a region of lower pressure to form a foam.
- 35. The process of claim 34, wherein said die is a multi-orifice die with orifice spacing sufficient to ensure that contact between surfaces of adjacent streams of extrudate occurs during foaming in the region of lower pressure, the contact being sufficient to ensure that the contacting surfaces adhere to one another with sufficient adhesion to result in a unitary foam structure that is a coalesced strand foam.
- 36. The process of claim 34, wherein steps (iii) and (iv) constitute an intermittent process that employs an accumulating extruder means to first accumulate foamable gel in a holding zone maintained at a temperature and pressure which does not allow the gel to foam and then periodically eject accumulated gel through the die.
- 37. The process of claim 34, wherein the optimum temperature is a temperature at which foaming does not occur and step (iv) is modified such that no foaming occurs and the resulting extrudate is pelletized to form expandable thermoplastic beads.
- 38. A process for making a foam in the form of thermoplastic foam beads, which process comprises sequential steps (i)-(v);
(i) converting the grafted blend composition of claims 1, 6, and 13 into a polymer melt; (ii) cooling and granulating the polymer melt to form discrete resin particles; (iii) creating a suspension by dispersing the resin particles in a liquid medium in which they are substantially insoluble; (iv) introducing, at an elevated temperature and pressure, at least one blowing agent (and optionally a cross-linking agent) into the suspension to form resin particles having a blowing agent incorporated therein; and (v) rapidly discharging product formed in step iv into an atmosphere that promotes converting the product into foam beads.
- 39. A process for preparing grafted blend compositions comprising a coupling agent in solid form and a polymer or polymer blend composition, said process comprising;
1) mixing said polymer or polymer blend with a tackifier; 2) tumble blending the mixture from step 1 with said coupling agent; and 3) extruding the resulting mixture at a temperature at which the coupling agent is activated
- 40. A process for preparing grafted blend composition comprising a coupling agent in liquid form and a polymer or polymer blend composition, said process comprising;
1) mixing said coupling agent with a tackifier, and 2) tumble blending the mixture from step 1 with said polymer or polymer blend composition; and 3) extruding the resulting mixture at a temperature at which the coupling agent is activated.
- 41. The process of claims 39 and 40, wherein said tackifier is a mineral oil and is present in an amount of from about 0.2 to about 2 percent by weight (based on the weight of the final grafted blend composition).
- 42. A process for preparing grafted blend composition comprising a coupling agent and resin comprising a polymer blend composition, said process comprising;
1) preparing a mixture of the coupling agent; and a resin comprising one of the components of said polymer blend, and extruding the resulting mixture at a temperature at which the coupling agent is not activated; 2) adding the remaining component(s) of said polymer blend composition, other than that used in step (1), to the mixture from step (1), in an amount required to give the final desired concentration of coupling agent (based on the weight of the final grafted blend composition); and 3) extruding the mixture from step 3 at a temperature at which the coupling agent is activated.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation in part of U.S. Provisional Application No. 601168,702 filed on Dec. 3, 1999 in the name of Bharat I Chaudhary et al; the entire contents of which are herein incorporated by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60168702 |
Dec 1999 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
09728245 |
Dec 2000 |
US |
Child |
10090536 |
Mar 2002 |
US |