AU2005294317C1

Crosslinked polymeric material with enhanced strength and process for manufacturing

Abstract

A radiation crosslinked (50 kGy), pressure-treated UHMWPE material has been developed by applying compressive force on a crosslinked polymer in a direction orthogonal to an axial direction. The deformed material is then cooled while held in a deformed state. The resulting material is anisotropic, with enhanced strength oriented along the axial direction. The directionally engineered material is oxidatively stable even after four weeks of accelerated aging in a pressure vessel containing five atmospheres of oxygen (ASTM F2003). Because of its oxidative stability, the deformation processed material is a suitable candidate for air-permeable packaging and gas sterilization, which has thus far been reserved for remelted highly crosslinked UHMWPEs.

Term

Term ended

Expired 6 October 2025, 1 year ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

50 claims: 4 independent, 46 dependent

  1. 1
    A method for treating a polymeric bulk material comprising heating a cross-linked polymer to a compression deformable temperature, the polymer being in an elongated bulk form characterized by an axial direction;applying force to deform the heated polymer in a direction orthogonal to the axial direction;and cooling the polymer to a solidification temperature while maintaining the polymer in a deformed state. 2, A method according to claim 1, wherein the compression deformable temperature is less than the melting point of the polymer and greater than the melting point minus 50'C.
  2. 7
    8. A method according to claim 7, wherein the compression deformable temperature is less than the melting point and greater than the melting point minus 50 0 C.
  3. 14
    15. A method according to claim 14, wherein stress relieving is carried out at 125 - 135 0 C.
  4. 17
    18. A method for treating crosslinked UHMWPE to make material suitable for use in medical implants comprising heating UIMWPE to a temperature above about 80 0 C and below its melting point, wherein the UIMWPE has been crosslinked with gamma-irradiation and is in the form of an elongated bulk material characterized by an axial direction, a transverse direction orthogonal to the axial direction and an original transverse dimension;applying compressive force to reduce a dimension of the bulk material in the transverse direction;cooling the bulk UHMWPE to a solidification temperature while maintaining compressive force sufficient to prevent the bulk material from returning to its original transverse dimension.
  5. 18
    19. A method according to claim 18, wherein applying compressive force comprises extruding the bulk material through a reducing die.
  6. 23
    24. A method according to claim 23, wherein the extruded cooled bulk UHMWPE is held straight in a mechanical device during the stress relieving. 25, A method according to claim 23, wherein the stress relief heating is at 120'C or higher.
  7. 26
    28. A method for preparing a UHMWPE pre-form suitable for use in medical implants comprising heating a gamma-crosslinked UHMWPE rod characterized by a crystalline melting point and a diameter di to a compression deformable temperature;30 applying compression force on the crosslinked U-HMWPE to reduce the diameter to d 2 , wherein d 2 d 3 .
  8. 28
    30. A method according to claim 28, wherein the compression deformable temperature is from the melting point minus 50'C to the melting point.
  9. 39
    41. A method for making a UHMWPE implant bearing component, comprising machining the component from a pre-form made according to claim 39.
  10. 43
    45. A method of making a bearing component made of UHMWPE, suitable for use in a medical implant, comprising:radiation crosslinking a UHIMWPE;preheating the crosslinked UHMWPE to a temperature above 80 0 C and below its melting point;solid state extruding the UHMWPE at a draw ratio of greater than 1 and less than 3;cooling the extruded UHMWPE to a solidification temperature below 80'C while maintaining diametral compression;annealing the cooled UHMWPE at a temperature below the melting point for a time sufficient for the rod to increase in diameter in response to the annealing;and machining the component from the annealed UHM WPE.
  11. 45
    47. An implant comprising a bearing component made by a process according to claim 45. 33
  12. 46
    48. An implant comprising a bearing component made by a process according to claim 46.
  13. 47
    49. A method for treating a polymeric bulk material substantially as hereinbefore described having reference to the accompanying examples.