Claims
- 1. A method for producing a medical implant from a plastic resin powder, the implant having improved oxidation resistance comprising the steps of:
- placing the resin in a sealed container;
- removing a substantial portion of the oxygen from said sealed container such that the atmosphere therein has no more than 1% oxygen;
- repressurizing the sealed container with a gas selected from the group consisting of nitrogen, argon, helium and neon and a combination thereof;
- then transferring said resin to a forming device which both melts and forms said resin in an oxygen reduced atmosphere to produce a polymeric raw material;
- thereafter annealing the raw material for at least about four hours at a temperature between 25.degree. C. and the melting point of said polymeric raw material;
- forming the implant from the polymeric raw material;
- sealing the formed implant in a package in an atmosphere having no more than 1% oxygen;
- radiation sterilizing said packaged implant; and
- heating said packaged implant for at least about four hours at a temperature of between 25.degree. C. and the melting point of said polymeric raw material.
- 2. The method for producing a raw material as set forth in claim 1 wherein said removal of said oxygen from said container is a method selected from the group consisting of applying a vacuum, flushing with an inert gas and using an oxygen absorbent and a combination thereof.
- 3. The method for producing a raw material as set forth in claim 1 wherein said annealing step takes place at a temperature between about 37.degree. C. and about 135.degree. C. for at least four hours in an atmosphere having no more than 1% oxygen.
- 4. A method for producing a medical implant from a plastic resin powder, the implant having improved oxidation resistance, comprising the steps of:
- placing the resin in a container;
- removing a substantial portion of the oxygen from the container such that the atmosphere therein has no more than 1% oxygen by replacing the air therein with a gas selected from the group consisting of nitrogen, argon, helium and neon and a combination thereof;
- then transferring said resin into a forming device which melts and forms said resin in an atmosphere having no more than 1% oxygen to produce a polymeric raw material; and
- thereafter annealing the raw material for at least about four hours at a temperature of between 25.degree. C. and the melting point of said polymeric ray material in an atmosphere having no more than 1% oxygen.
- 5. The method for producing a medical implant as set forth in claim 4 wherein said annealing step takes place at a temperature between about 37.degree. C. and about 135.degree. C. for at least four hours in said atmosphere.
- 6. A method for producing a medical implant from a plastic resin powder, the implant having improved oxidation resistance comprising the steps of:
- placing the resin in a container;
- removing a substantial portion of the oxygen from the container so that the atmosphere therein has no more than 1% oxygen by replacing the air therein with a gas selected from the group consisting of nitrogen, argon, helium and neon and a combination thereof;
- then transferring said resin to a forming device which both melts and forms said resin in an atmosphere having no more than 1% oxygen to produce a polymeric raw material;
- thereafter annealing the raw material for at least about four hours at a temperature of between 25.degree. C. and the melting point of said polymeric raw material in an atmosphere having no more than 1% oxygen;
- forming the implant from the polymeric raw material;
- sealing the formed implant in a package in an atmosphere having no more than 1% oxygen;
- radiation sterilizing said packaged implant; and
- heating said packaged implant for at least four hours at a temperature between 25.degree. C. and the melting point of said polymeric raw material.
- 7. The method for producing a medical implant as set forth in claim 6 wherein said annealing step takes place at a temperature between about 37.degree. C. and about 135.degree. C. for at least four hours in said atmosphere.
- 8. The method as set forth in claim 6 wherein said heating step is performed at a temperature of between about 37.degree. C. and 135.degree. C. for at least four hours.
Parent Case Info
This is a division of application Ser. No. 08/320,705, filed on Oct. 7, 1994, now U.S. Pat. No. 5,449,795, which is a division of application Ser. No. 08/070,074 filed on Jun. 1, 1993, now U.S. Pat. No. 5,414,049, issued May 9, 1995.
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Divisions (2)
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Number |
Date |
Country |
Parent |
320705 |
Oct 1994 |
|
Parent |
070074 |
Jun 1993 |
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