Claims
- 1. A process for the preparation of expanded polypropylene resin beads, comprising the steps of:
(a) dispersing substantially non-crosslinked polypropylene resin particles in a dispersing medium containing an organic peroxide to obtain a dispersion; (b) maintaining said dispersion at a temperature lower than the melting point of said polypropylene resin but sufficient to decompose said organic peroxide, thereby obtaining substantially non-crosslinked, surface-modified polypropylene resin particles; and (c) expanding said non-crosslinked, surface-modified polypropylene resin particles using a blowing agent to obtain expanded, substantially non-crosslinked polypropylene resin beads.
- 2. A process as claimed in claim 1, wherein, in step (b), said dispersion is maintained at a temperature not lower than the glass transition point but not higher than the Vicat softening point of said polypropylene resin.
- 3. A process as claimed in claim 1, wherein said blowing agent is a physical blowing agent.
- 4. A process as claimed in claim 3, wherein said physical blowing agent comprises at least one inorganic blowing agent selected from the group consisting of nitrogen, oxygen, carbon dioxide and water.
- 5. A process as claimed in claim 1, wherein step (c) is performed so that the expanded polypropylene resin beads have an apparent density of 10 g/L to 500 g/L and a high temperature endothermic peak, in a DSC curve thereof, in addition to an intrinsic endothermic peak located at a lower temperature side of said high temperature peak.
- 6. A process as claimed in claim 5, wherein said high temperature endothermic peak has such an area corresponding to a calorific value in the range of 2-70 J/g.
- 7. A process as claimed in claim 1, wherein the expanded polypropylene resin beads have an MFR value which is not smaller than that of the non-crosslinked polypropylene resin particles before step (b) and which is in the range of 0.5-150 g/10 min.
- 8. A process as claimed in claim 1, wherein a surface region of the expanded polypropylene resin bead has a melting point lower than that of an inside region thereof.
- 9. A process as claimed in claim 1, wherein each of said expanded polypropylene resin beads has a surface region and an inside region, wherein each of said surface and inside regions shows a high temperature endothermic peak, in a DSC curve thereof, in addition to an intrinsic endothermic peak located at a lower temperature side of said high temperature peak, and wherein said high temperature endothermic peaks of said surface region and said inside region have such areas that correspond to calorific values of Hs and Hi, respectively, and wherein Hs and Hi have the following relationship:
- 10. A process as claimed in claim 1, wherein said organic peroxide generates oxygen radicals when decomposed.
- 11. A process as claimed in claim 1, wherein said organic peroxide is a substance half the amount of which decomposes when maintained for 1 hour at a temperature Th and wherein Th is not lower than the glass transition point but not higher than the Vicat softening point of said polypropylene resin.
- 12. A process as claimed in claim 10, wherein said organic peroxide is a carbonate.
- 13. An expanded, substantially non-crosslinked polypropylene resin bead which meets one of the following conditions (I) and (II):
(I) said bead has a surface region and an inside region which satisfy at least one of the following conditions (a) and (b),
(a) each of said surface and inside regions shows a high temperature endothermic peak, in a DSC curve thereof, in addition to an intrinsic endothermic peak located at a lower temperature side of said high temperature peak, wherein said high temperature endothermic peaks of said surface region and said inside region have such areas that correspond to calorific values of Hs and Hi, respectively, and wherein Hs and Hi have the following relationship:Hs<0.86×Hi;(b) said surface region has a greater oxygen content per unit weight than that of said inside region; (II) said bead shows a high temperature endothermic peak, in a DSC curve thereof, in addition to an intrinsic endothermic peak located at a lower temperature side of said high temperature peak, said bead having a surface having a melt initiation temperature, by micro differential thermoanalysis, not higher than the melting point of the polypropylene resin.
- 14. An expanded bead as claimed in claim 13, and having an apparent density of 10 g/L to 500 g/L.
- 15. An expanded bead as claimed in claim 13, wherein each of said high temperature endothermic peaks has such an area that corresponds to a calorific value in the range of 2-70 J/g.
- 16. An expanded bead as claimed in claim 13, wherein, in the case of (I), the surface region has a melting point lower than that of the inside region.
- 17. An expanded bead as claimed in claim 13, wherein, in the case of (II), said bead has a surface region and an inside region, and wherein the surface region has a melting point lower than that of the inside region.
- 18. A molded article obtained by a method comprising filling the expanded beads according to claim 13 in a mold, heating the beads in said mold to form a molding, and cooling said molding.
- 19. A composite molded article, comprising a molded article according to claim 18, and a surface layer integrally provided on a surface thereof.
- 20. A composite molded article, comprising a molded article according to claim 18, and an insert integrated therewith such that at least part of said insert is embedded therein.
- 21. A process for the preparation of expanded resin beads, comprising the steps of:
(a) dispersing substantially non-crosslinked particles of a base resin including a polypropylene resin in a dispersing medium containing an organic peroxide to obtain a dispersion; (b) maintaining said dispersion at a temperature lower than the melting point of said base resin but sufficient to decompose said organic peroxide, thereby obtaining substantially non-crosslinked, surface-modified resin particles; and (c) expanding said non-crosslinked, surface-modified resin particles using a blowing agent to obtain expanded, substantially non-crosslinked resin beads.
- 22. A process as claimed in claim 21, wherein, in step (b), said dispersion is maintained at a temperature not lower than the glass transition point but not higher than the Vicat softening point of said base resin.
- 23. A process as claimed in claim 21, wherein said blowing agent is a physical blowing agent.
- 24. A process as claimed in claim 23, wherein said physical blowing agent comprises at least one inorganic blowing agent selected from the group consisting of nitrogen, oxygen, carbon dioxide and water.
- 25. A process as claimed in claim 21, wherein step (c) is performed so that the expanded resin beads have an apparent density of 10 g/L to 500 g/L and a high temperature endothermic peak, in a DSC curve thereof, in addition to an intrinsic endothermic peak located at a lower temperature side of said high temperature peak.
- 26. A process as claimed in claim 25, wherein said high temperature endothermic peak has such an area corresponding to a calorific value in the range of 2-70 J/g.
- 27. A process as claimed in claim 21, wherein the expanded resin beads have an MFR value which is not smaller than that of the non-crosslinked resin particles before step (b) and which is in the range of 0.5-150 g/10 min.
- 28. A process as claimed in claim 21, wherein a surface region of the expanded polypropylene resin bead has a melting point lower than that of an inside region thereof.
- 29. A process as claimed in claim 21, wherein each of said expanded resin beads has a surface region and an inside region, wherein each of said surface and inside regions shows a high temperature endothermic peak, in a DSC curve thereof, in addition to an intrinsic endothermic peak located at a lower temperature side of said high temperature peak, and wherein said high temperature endothermic peaks of said surface region and said inside region have such areas that correspond to calorific values of Hs and Hi, respectively, and wherein Hs and Hi have the following relationship:
- 30. A process as claimed in claim 21, wherein said organic peroxide generates oxygen radicals when decomposed.
- 31. A process as claimed in claim 21, wherein said organic peroxide is a substance half the amount of which decomposes when maintained for 1 hour at a temperature Th and wherein Th is not lower than the glass transition point but not higher than the Vicat softening point of said base resin.
- 32. A process as claimed in claim 30, wherein said organic peroxide is a carbonate.
- 33. An expanded, substantially non-crosslinked resin bead of a base resin including a polypropylene resin, said bead meets one of the following conditions (I) through (III):
(I) said bead has a surface region and an inside region which satisfy at least one of the following conditions (a) and (b),
(a) each of said surface and inside regions shows a high temperature endothermic peak, in a DSC curve thereof, in addition to an intrinsic endothermic peak located at a lower temperature side of said high temperature peak, wherein said high temperature endothermic peaks of said surface region and said inside region have such areas that correspond to calorific values of Hs and Hi, respectively, and wherein Hs and Hi have the following relationship:Hs<0.86×Hi;(b) said surface region has a greater oxygen content per unit weight than that of said inside region. (II) said bead shows a high temperature endothermic peak, in a DSC curve thereof, in addition to an intrinsic endothermic peak located at a lower temperature side of said high temperature peak, said bead having a surface having a melt initiation temperature, by micro differential thermoanalysis, not higher than the melting point of the base resin; (III) said bead exhibits a high temperature endothermic peak, in a DSC curve thereof, in addition to an intrinsic endothermic peak located at a lower temperature side of said high temperature peak, said expanded bead having a surface having an extrapolated melt initiation temperature, as measured by micro differential thermoanalysis, not higher than (Tm+4° C.) where Tm is the melting point of the base resin.
- 34. An expanded bead as claimed in claim 33, wherein, in the case of (I) or (II), said bead has an apparent density of 10 g/L to 500 g/L.
- 35. An expanded bead as claimed in claim 33, wherein, in the case of (I) or (II), each of said high temperature endothermic peaks has such an area that corresponds to a calorific value in the range of 2-70 J/g.
- 36. An expanded bead as claimed in claim 33, wherein, in the case of (I), the surface region has a melting point lower than that of the inside region.
- 37. An expanded bead as claimed in claim 33, wherein, in the case of (II), said bead has a surface region and an inside region, wherein the surface region has a melting point lower than that of the inside region.
- 38. An expanded bead as claimed in claim 33, wherein, in the case of (III), said surface region has a melting point lower than that of said inside region.
- 39. An expanded bead as claimed in claim 33, wherein, in the case of (III), said bead has a surface region and an inside region surrounded by said surface region, and wherein said surface region has a melting point lower than that of said inside region.
- 40. An expanded bead as claimed in claim 33, wherein, in the case of (III), said base resin has a melting point of at least 158° C.
- 41. An expanded bead as claimed in claim 33, wherein, in the case of (III), the heat of fusion of said high temperature endothermic peak ranges from 2 to 70 J/g.
- 42. A molded article obtained by a method comprising filling the expanded beads according to claim 33 in a mold, heating the beads in said mold to form a molding, and cooling said molding.
- 43. A composite molded article, comprising a molded article according to claim 42, and a surface layer integrally provided on a surface thereof.
- 44. A composite molded article, comprising a molded article according to claim 42, and an insert integrated therewith such that at least part of said insert is embedded therein.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of copending U.S. patent application Ser. No. 10/312,764, filed Dec. 30, 2002, which is the U.S. national phase of PCT International Application PCT/JP01/08187, filed on Sep. 20, 2001 under 35 U.S.C. section 371. The entire disclosure of each of the above-identified applications is hereby incorporated by reference.
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
10312764 |
Dec 2002 |
US |
Child |
10379569 |
Mar 2003 |
US |