IP Library Granted Patent US 7,556,763
Granted Patent B2
US 7,556,763 · App. 10/927,961 · Granted Jul 7, 2009

Method of making components for prosthetic joints

Assignee: Diamicron, Inc.
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Quick Facts
Patent No.
US 7,556,763
App. No.
10/927,961
Granted
Jul 7, 2009
Kind
B2
Abstract

Carbides as substrates in prosthetic joints, particularly in sintered polycrystalline diamond compacts and sintered cubic boron nitride compacts.

Claims (72)

1. A method for making a component for a prosthetic joint comprising the steps of:

mixing a carbide selected from the group consisting of Ti and Nb with TiC,

mixing at least one metal selected from the group consisting of Ti and Nb with said TiC;

enclosing said mixture of metal and carbide in a niobium can,

placing said can in a press,

using said press to form said mixture of metal and carbide into a spherical component by hot isostatic pressing,

said spherical component being a biocompatible unit for use in a prosthetic joint, said spherical component including a material selected from the group consisting of Ti cemented TiC and Nb cemented TiC.

2. A method as recited in claim 1 further comprising the steps of:

placing a superhard material from the group consisting of diamond and cubic boron nitride adjacent said spherical component,

applying heat and pressure to said superhard material and said spherical component in order to sinter said superhard material and said spherical component into a compact, said compact including a substrate and a table of superhard material,

said table of superhard material having an articulation surface that is useful to provide articulation in a prosthetic joint.

3. A method for making a component for a prosthetic joint comprising the steps of:

mixing a carbide selected from the group consisting of Ti and Nb with TiC to create a feedstock,

mixing a metal selected from the group consisting of Ti and Nb with said feedstock,

said mixing being carried out in an attritor mill,

enclosing said feedstock comprising said carbide and said metal in a niobium can and forming said feedstock into a substantially solid spherical component by pressing,

said spherical component being a biocompatible unit for use in a prosthetic joint, said spherical component including a material selected from the group consisting of Ti cemented TiC and Nb cemented TiC.

4. A method as recited in claim 3 wherein said attritor mill uses carbide balls.

5. A method as recited in claim 3 wherein said mixing step utilizes a binder and a solvent.

6. A method as recited in claim 5 wherein said binder is wax.

7. A method as recited in claim 5 wherein said solvent is acetone.

8. A method as recited in claim 1 wherein the method further comprises using an attritor mill to reduce said carbide and said TiC to a target grain size.

9. A method as recited in claim 1 wherein said mixing step utilizes a binder and a solvent, and further comprising the step of evaporating said solvent off.

10. A method as recited in claim 9 further comprising the step of forming said mixed carbide and TiC into a desired shape to create a shaped feedstock.

11. A method as recited in claim 10 wherein said forming step includes pressing.

12. A method as recited in claim 10 wherein said forming step includes compaction.

13. A method as recited in claim 10 further comprising the step of heating said shaped feedstock.

14. A method as recited in claim 13 wherein said heating step substantially removes said binder from said shaped feedstock.

15. A method as recited in claim 14 wherein said pressing step includes hipping.

16. A method as recited in claim 14 wherein said pressing step includes sintering.

17. A method as recited in claim 15 wherein said hipping includes pressurizing said shaped feedstock in a hipping furnace at a pressure of at least about 30,000 p.s.i.

18. A method as recited in claim 15 wherein said hipping includes rapid omnidirectional compaction (ROC).

19. A method as recited in claim 18 wherein said shaped feedstock is wrapped in at least one of the group consisting of grafoil or graphite paper.

20. A method as recited in claim 18 wherein said shaped feedstock is pressed in an ROC furnace to at least about 125,000 p.s.i. in order to substantially eliminate porosity of said shaped feedstock.

21. A method as recited in claim 15 wherein porosity of said feedstock is substantially eliminated.

22. A method as recited in claim 3 wherein said carbide has a metal content of not less than 13%.

23. A method as recited in claim 3 wherein said carbide has a metal content of not less than 20%.

24. A method as recited in claim 3 wherein said carbide has a metal content of not more than 13%.

25. A method as recited in claim 14 further comprising the steps of:

placing a superhard material from the group consisting of diamond and cubic boron nitride adjacent said feedstock,

applying heat and pressure to said superhard material and said feedstock in order to sinter said superhard material and said feedstock into a compact, said compact including a substrate and a table of superhard material,

said table of superhard material having an articulation surface that is useful to provide articulation in a prosthetic joint.

26. A method for making a component for a prosthetic joint comprising the steps of:

selecting at least one carbide from the group consisting of TiC and NbC,

selecting at least one metal from the group consisting of Ti and Nb,

mixing the at least one carbide and the at least one metal to create a feedstock,

enclosing said feedstock in a niobium can and forming said feedstock into a substantially solid prosthetic joint component by pressing,

said prosthetic joint component being a biocompatible unit for use in a prosthetic joint.

27. A method as recited in claim 26 , wherein said feedstock is a material selected from the group consisting of Ti cemented carbide and Nb cemented carbide.

28. A method as recited in claim 26 further comprising the steps of:

placing a superhard material from the group consisting of diamond and cubic boron nitride adjacent said feedstock,

applying heat and pressure to said feedstock and said superhard material in order to sinter said superhard material and said feedstock into a prosthetic joint component comprising a compact, said compact including a substrate formed from said feedstock and a table of superhard material,

said table of superhard material having an articulation surface that is useful to provide articulation in a prosthetic joint.

29. A method as recited in claim 26 , wherein said mixing being carried out in an attritor mill.

30. A method as recited in claim 29 wherein said attritor mill uses carbide balls.

31. A method as recited in claim 26 further comprising the step of forming said mixed metal and TiC into a desired shape to create a shaped feedstock.

32. A method as recited in claim 26 , wherein the step of forming said feedstock into a substantially solid prosthetic joint component by pressing comprises forming said feedstock into a substantially solid prosthetic joint component by hot isostatic pressing.

33. A method as recited in claim 31 wherein the process comprises pressurizing said shaped feedstock in a hipping furnace at a pressure of at least about 30,000 p.s.i.

34. A method for making a component for a prosthetic joint comprising the steps of:

selecting at least one carbide from the group consisting of TiC and NbC,

selecting at least one metal from the group consisting Ti and Nb,

mixing the at least one carbide and the at least one metal to create a feedstock,

enclosing said feedstock in a niobium can and forming said feedstock into a substantially solid prosthetic joint component by hot isostatic pressing,

said prosthetic joint component being a biocompatible unit for use in a prosthetic joint.

35. A method as recited in claim 34 further comprising the steps of:

placing a superhard material from the group consisting of diamond and cubic boron nitride adjacent said feedstock,

applying heat and pressure to said superhard material and said feedstock in order to sinter said superhard material and said feedstock into a prosthetic joint component comprising a compact, said compact including a substrate of said feedstock and a table of superhard material,

said table of superhard material having an articulation surface that is useful to provide articulation in a prosthetic joint.

36. A method as recited in claim 34 , further comprising the step of forming said feedstock into a desired shape to form a shaped feedstock.

37. A method as recited in claim 34 , further comprising the steps of selecting at least one superhard material selected from the group consisting of diamond and boron nitride and mixing said at least one superhard material with said at least one carbide and said at least one metal to form said feedstock.

38. A method as recited in claim 34 , wherein the feedstock comprises a carbide cemented with Ti or Nb metal.

39. A method as recited in claim 34 , wherein the feedstock comprises at least two different carbides.

Assignments (5)
SECURITY AGREEMENT Recorded Aug 17, 2012
From: DIMICRON, INC.
To: DIAMICRON LENDERS, LLC
Reel/Frame 028802/0383 →
CHANGE OF NAME Recorded May 25, 2012
From: DIAMICRON, INC.
To: DIMICRON, INC.
Reel/Frame 028276/0158 →
SECURITY AGREEMENT Recorded Jan 8, 2009
From: DIAMICRON, INC.
To: POPE, BILL J.
Reel/Frame 022078/0282 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 17, 2005
From: POPE, BILL J.; DIXON, RICHARD H.; TAYLOR, JEFFERY K.; GARDINIER, CLAYTON F.; MEDFORD, TROY; BLACKBURN, DEAN C.; CARVAJAL, VICTORIANO
To: DIAMICRON, INC.
Reel/Frame 016372/0062 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 3, 2005
From: POPE, BILL J.; DIXON, RICHARD H.; TAYLOR, JEFFERY K.; GARDINER, CLAYTON F.; MEDFORD, TROY; BACKBURN, DEAN C.; CARVAJAL, VICTORIANO
To: DIAMICRON, INC.
Reel/Frame 016119/0713 →
Continuity (11)
Continuation In Part 1025918700 · Sep 28, 2002
Continuation In Part 1022990700 · Aug 28, 2002
Continuation In Part 0949427600 · Jan 30, 2000
Provisional Application 6032583200 · Sep 28, 2001
Provisional Application 6049902600 · Aug 29, 2003
Provisional Application 6049876800 · Aug 29, 2003
Provisional Application 6049896800 · Aug 29, 2003
Provisional Application 6049870900 · Aug 28, 2003
Provisional Application 6049889600 · Aug 29, 2003
Provisional Application 6049870800 · Aug 28, 2003
Related Publication 20050087915A1 · Apr 28, 2005