EP2536784B2

Elastomeric polymer blends and processes for their production

Abstract

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EP2536784B2, drawing sheet 1
Sheet 1 of 2

Term

4.3 yearsleft in the term

Expires 27 January 2031.

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16 claims: 14 independent, 2 dependent

  1. 1
    An elastomeric polymer composition comprising a polymer blend comprising a first polymer and 5 wt% to 20 wt% of a second polymer, wherein the first polymer comprises from 70 to 90 wt% units derived from propylene and from 10 wt% to 30 wt% units derived from ethylene and/or a C 4 -C 10 alpha-olefin; the second polymer comprises from 88 wt% to 98 wt% units derived from propylene and from 2 wt% to 12 wt% units derived from ethylene and/or a C 4 -C 10 alpha-olefin; and the elastomeric polymer composition is characterized by a melting point (measured with DSC) between 110°C and 145°C, a 1% secant modulus of greater than 2000 psi (13790 kPa), as determined by ASTM D790-A (0.05'/min), as well as one or more of the following properties:(i.) an overall propylene content of between 75 wt% and 90 wt%;(ii.) a Vicat softening point (measured with ASTM D1525) greater than 45°C;(iii.) a tensile stress at 300% strain of less than 500 psi (3447 kPa), as determined by a stress strain test according to ASTM D412;or (iv.) an average maximum force for pellet separation of less than 10 N in an accelerated storage stability test.
  2. 3
    The elastomeric polymer composition of any of claims 1 or 2, wherein the polymer composition has a Vicat softening point greater than 65°C, preferably greater than 70°C.
  3. 4
    The elastomeric polymer composition of any of claims 1-3, wherein the polymer composition has a tension set value of less than 12%.
  4. 5
    The elastomeric polymer composition of any of claims 1-4, wherein the polymer composition has a tensile stress at 300% strain of less than 400 psi (2758 kPa), as determined by a stress strain test according to ASTM D412.
  5. 6
    The elastomeric polymer composition of any of claims 1-5, wherein the polymer composition comprises from 12 wt% to 20 wt% ethylene.
  6. 7
    A process for the production of an elastomeric polymer composition comprising:polymerizing monomers to produce a polymer solution comprising a first polymer in a first reactor;polymerizing monomers to produce a polymer solution comprising a second polymer in a second reactor;combining the first polymer solution with the second polymer solution to produce a polymer blend solution;and processing the polymer blend solution to produce an elastomeric polymer composition;wherein the polymer composition comprises from 5 wt% to 20 wt% of the second polymer, and wherein the first polymer comprises from 70 wt% to 90 wt% units derived from propylene and from 10 wt% to 30 wt% units derived from ethylene and/or a C 4 -C 10 alpha-olefin, and the second polymer comprises from 88 to 98 wt% units derived from propylene and from 2 wt% to 12 wt% units derived from ethylene and/or a C 4 -C 10 alpha-olefin;and wherein the elastomeric polymer composition is characterized by a melting point (measured with DSC) between 110°C and 145°C, a 1% secant modulus of greater than 2000 psi (13790 kPa), as determined by ASTM D790-A (0.05'/min), as well as one or more of the following properties: an overall propylene content of between 75 wt% and 90 wt%, a Vicat softening point greater than 45°C, a tensile stress at 300% strain of less than 500 psi (3447 kPa) (as determined by a stress strain test according to ASTM D412), or an average maximum force for pellet separation of less than 10 N in an accelerated storage stability test.
  7. 9
    The process of any of claims 7-8, wherein the polymer composition has a Vicat softening point greater than 65°C, preferably greater than 70°C.
  8. 10
    The process of any of claims 7-9, wherein the polymer composition has a tension set value of less than 12%.
  9. 11
    The process of any of claims 7-10, wherein the polymer composition has a tensile stress at 300% strain of less than 400 psi (2758 kPa), as determined by a stress strain test according to ASTM D412.
  10. 12
    The process of any of claims 7-11, wherein the first polymer is polymerized in the first reactor using a catalyst system comprising a transition metal compound and an activator, wherein the transition metal compound is a bridged bisindenyl metallocene having the general formula (In 1 )Y(In 2 )MX 2 , where In 1 and In 2 are identical unsubstituted or substituted indenyl groups bound to M and bridged by Y, Y is a bridging group in which the number of atoms in the direct chain connecting In 1 with In 2 is from 1 to 8 and the direct chain comprises C or Si, and M is a Group 3, 4, 5, or 6 transition metal;and where if In 1 and In 2 are substituted by one or more substituents, the substituents are selected from the group consisting of a halogen atom, C 1 -C 10 alkyl, C 5 -C 15 aryl, C 6 -C 25 alkylaryl, and N- or P- containing alkyl or aryl;and the activator is N,N-dimethylanilinium-tetra(perfluorophenyl)borate, N,N-dimethylanilinium-tetra(perfluoronaphthyl)borate, N,N-dimethylanilinium-tetrakis(perfluorobiphenyl)borate, N,N-dimethylanilinium-tetrakis(3,5-bis(trifluoromethyl)phenyl)borate, triphenylcarbenium-tetra(perfluorophenyl)borate, triphenylcarbenium-tetra(perfluoronaphthyl)borate, triphenylcarbenium-tetrakis(perfluorobiphenyl)borate, or triphenylcarbenium-tetrakis(3,5-bis(trifluoromethyl)phenyl)borate.
  11. 13
    The process of any of claims 7-12, wherein the second polymer is polymerized in the second reactor using a catalyst system comprising a transition metal compound and an activator, wherein the transition metal compound is a bridged bisindenyl metallocene having the general formula (In 1 )Y(In 2 )MX 2 , where In 1 and In 2 are identical 2,4-substituted indenyl groups bound to M and bridged by Y, Y is a bridging group in which the number of atoms in the direct chain connecting In 1 with In 2 is from 1 to 8 and the direct chain comprises C or Si, and M is a Group 3, 4, 5, or 6 transition metal;and where In 1 and In 2 are substituted in the 2 position by a methyl group and in the 4 position by a substituent selected from the group consisting of C 5 -C 15 aryl, C 6 -C 25 alkylaryl, and N- or P- containing alkyl or aryl;and the activator is N,N-dimethylanilinium-tetra(perfluorophenyl)borate, N,N-dimethylanilinium-tetra(perfluoronaphthyl)borate, N,N-dimethylanilinium-tetrakis(perfluorobiphenyl)borate, N,N-dimethylanilinium-tetrakis(3,5-bis(trifluoromethyl)phenyl)borate, triphenylcarbenium-tetra(perfluorophenyl)borate, triphenylcarbenium-tetra(perfluoronaphthyl)borate, triphenylcarbenium-tetrakis(perfluorobiphenyl)borate, or triphenylcarbenium-tetrakis(3,5-bis(trifluoromethyl)phenyl)borate.
  12. 14
    The process of any of claims 7-13, wherein the first polymer is polymerized in the first reactor using a catalyst system comprising µ-dimethylsilylbis(indenyl)hafnium dimethyl and either N,N-dimethylanilinium tetra(perfluorophenyl)borate or N,N-dimethylanilinium tetra(perfluoronaphthyl)borate;and the second polymer is polymerized in the second reactor using a catalyst system comprising a transition metal compound selected from (µ-dimethylsilyl)bis(2-methyl-4-(3',5'-di-tert-butylphenyl)indenyl)zirconium dimethyl, (µ-dimethylsilyl)bis(2-methyl-4-(3',5'-di-tert-butylphenyl)indenyl)hafnium dimethyl, (µ-dimethylsilyl)bis(2-methyl-4-naphthylindenyl)zirconium dimethyl, (µ-dimethylsilyl)bis(2-methyl-4-naphthylindenyl)hafnium dimethyl, (µ-dimethylsilyl)bis(2-methyl-4-(N-carbazyl)indenyl)zirconium dimethyl, or (µ-dimethylsilyl)bis(2-methyl-4-(N-carbazyl)indenyl)hafnium dimethyl, and an activator compound selected from N,N-dimethylanilinium tetra(perfluorophenyl)borate or N,N-dimethylanilinium tetra(perfluoronaphthyl) borate.
  13. 15
    The process of any of claims 7-14, further comprising the step of forming the elastomeric polymer composition into pellets, wherein the pellets are free-flowing without being dusted, preferably wherein the pellets exhibit storage stability.
  14. 16
    One or more polymer pellets comprising the elastomeric polymer composition of any of claims 1-6, preferably wherein the pellets are free flowing without being dusted and exhibit storage stability.