IP Library Granted Patent US 10,456,143
Granted Patent B2
US 10,456,143 · App. 15/625,802 · Granted Oct 29, 2019

Composite joint arthroplasty systems and methods

Inventors: Daniel F. Justin (Orlando, FL); Vuong binh nguyen (Windermere, FL); Dana J. Medlin (Omaha, NE)
Assignee: Titanium Fusion Technologies, LLC
A61B17/154A61B17/142A61B17/155A61B17/157A61B17/1675A61B17/1764A61F2/30767A61F2/30771A61F2/38A61F2/389A61F2/3859A61F2/461A61F2/30744A61F2002/305A61F2002/30011A61F2002/3038A61F2002/3084A61F2002/3092A61F2002/3093A61F2002/3097A61F2002/30332A61F2002/30448A61F2002/30451A61F2002/30604A61F2002/30818A61F2002/30841A61F2002/30845A61F2002/30878A61F2002/30884A61F2002/30968A61F2002/30985A61F2310/00023A61F2310/00029A61F2310/00059A61F2310/00383B22F3/1055B22F3/11B22F7/062B22F7/08B22F2207/17B22F2998/10B22F2999/00B33Y10/00B33Y80/00Y02P10/295
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Quick Facts
Patent No.
US 10,456,143
App. No.
15/625,802
Filed
Jun 16, 2017
Granted
Oct 29, 2019
Kind
B2
Art Unit
3774
USPC
623/23.5
Abstract

A prosthesis may have an articulating component formed via casting and a 3D printed bone anchoring component with a joint-facing side and a bone-facing side. The bone-facing side may have a bone engagement surface with a porous structure with pores selected to facilitate in-growth of the bone into the pores. The bone facing side may further have a surface layer of Titanium Dioxide nanotubes. The joint-facing side may be secured to the articulating component by melting Titanium nanoparticles at a temperature below the melting temperatures of the major constituents of the articulating component and/or the bone anchoring component, such as Cobalt, Chromium, and/or Titanium, so as to avoid significantly modifying the crystalline structures of the articulating component and/or the bone anchoring component. The melting temperature of the Titanium nanoparticles may be about 500° C.

Claims (41)

1. A method for manufacturing a prosthesis for replacing an articular surface on a bone, the method comprising:

casting an articulating component comprising:

an articulating component joint-facing side comprising an articular surface; and

an articulating component bone-facing side comprising a bone-facing shape; and

fabricating a bone anchoring component with a porous structure, comprising:

a bone anchoring component joint-facing side comprising a joint-facing shape that is complementary to the bone-facing shape; and

a bone anchoring component bone-facing side comprising a bone engagement surface having a porous structure with pores selected to facilitate in-growth of the bone into the pores; and

securing the bone anchoring component joint-facing side to the articulating component bone-facing side by:

applying Titanium-based nanoparticles between the articulating component bone-facing side and the bone anchoring component joint-facing side; and

heating the Titanium-based nanoparticles to a temperature sufficient to melt the Titanium-based nanoparticles, but insufficient to melt the articulating component or bone anchoring component.

2. The method of claim 1 , wherein fabricating the bone anchoring component comprises direct metal laser sintering Titanium to form a porous structure.

3. The method of claim 1 , further comprising anodizing the bone anchoring component to form a surface layer of Titanium Dioxide nanotubes on the bone anchoring component joint-facing side.

4. The method of claim 3 , further comprising heating the bone anchoring component to a temperature sufficient to change at least a portion of the surface layer of Titanium Dioxide nanotubes to anatase.

5. The method of claim 1 , wherein:

casting the articulating component comprises casting the articulating component from an alloy of Cobalt Chromium to establish one or more crystalline structures of the alloy of Cobalt Chromium; and

heating the Titanium-based nanoparticles to the temperature comprises heating at least part of the bone anchoring component and at least part of the articulating component to a bonding temperature below melting temperatures of Cobalt and Chromium, so as to leave the crystalline structures intact.

6. The method of claim 5 , wherein heating the Titanium-based nanoparticles comprises:

placing the articulating component, the bone anchoring component, and the Titanium-based nanoparticles in a furnace; and

in the furnace, heating the articulating component, the bone anchoring component, and the Titanium-based nanoparticles to the temperature.

7. The method of claim 5 , wherein heating at least part of the bone anchoring component and part of the articulating component to the bonding temperature comprises laser welding a perimeter and/or seams of the bone anchoring component joint-facing side and the articulating component bone-facing side together.

8. The method of claim 5 , further comprising, prior to heating at least part of the bone anchoring component and part of the articulating component to the bonding temperature, applying a paste to one or both of the bone anchoring component joint-facing side and the articulating component bone-facing side, the paste comprising the Titanium-based nanoparticles and a gelatin and/or a glycerin.

9. The method of claim 8 , further comprising, after applying the paste on one or both of the bone anchoring component joint-facing side and the articulating component bone-facing side, and prior to heating at least the bone anchoring component joint-facing side and the articulating component bone-facing side to the bonding temperature:

assembling the articulating component and the bone anchoring component such that the paste is sandwiched between the bone anchoring component joint-facing side and the articulating component bone-facing side; and

pressing the bone anchoring component joint-facing side and the articulating component bone-facing side together.

10. The method of claim 9 , wherein heating at least the bone anchoring component joint-facing side and the articulating component bone-facing side to the bonding temperature comprises, with the bone anchoring component joint-facing side and the articulating component bone-facing side pressed together, heating at least the bone anchoring component joint-facing side and the articulating component bone-facing side to 500° C. to debind the gelatin and/or glycerin and melt the Titanium-based nanoparticles.

11. A method for manufacturing a prosthesis for replacing an articular surface on a bone, the method comprising:

casting metals comprising at least Cobalt and Chromium to form an articulating component comprising:

an articulating component joint-facing side comprising an articular surface; and

an articulating component bone-facing side comprising a bone-facing shape; and

direct metal laser sintering Titanium to form a bone anchoring component comprising:

a bone anchoring component joint-facing side comprising a joint-facing shape that is complementary to the bone-facing shape; and

a bone anchoring component bone-facing side comprising a bone engagement surface having a porous structure with pores selected to facilitate in-growth of the bone into the pores;

applying a paste containing flake-shaped Titanium-based nanoparticles produced via ball milling to at least one of the bone anchoring component joint-facing side and the articulating component bone-facing side;

assembling the articulating component and the bone anchoring component such that the paste is sandwiched between the bone anchoring component joint-facing side and the articulating component bone-facing side; and

heating the paste to a bonding temperature sufficient to commence melting of the Titanium-based nanoparticles to secure the bone anchoring component joint-facing side to the articulating component bone-facing side.

12. The method of claim 11 , further comprising:

anodizing the bone anchoring component to form a surface layer of Titanium Dioxide nanotubes on the bone anchoring component joint-facing side; and

after assembling the articulating component and the bone anchoring component, pressing the articulating component and the bone anchoring component together;

wherein:

the paste further comprises a gelatin and/or a glycerin; and

heating the paste to the bonding temperature comprises, with the articulating component and the bone anchoring component pressed together, heating at least the bone anchoring component joint-facing side and the articulating component to a temperature sufficient to debind the gelatin and/or glycerin, melt the Titanium-based nanoparticles, and changing at least a portion of the surface layer of Titanium Dioxide nanotubes to anatase.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 24, 2026
From: OPTIMOTION IMPLANTS LLC
To: OPTIMOTION ACQUISITION I, LLC
Reel/Frame 075073/0765 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 30, 2023
From: TITANIUM FUSION TECHNOLOGIES, LLC
To: OPTIMOTION IMPLANTS LLC
Reel/Frame 063487/0939 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 16, 2017
From: JUSTIN, DANIEL F.; NGUYEN, VUONG BINH; MEDLIN, DANA J.
To: TITANIUM FUSION TECHNOLOGIES, LLC
Reel/Frame 042739/0045 →
Continuity (2)
Provisional Application 62466249 · Mar 2, 2017
Related Publication 20180250134A1 · Sep 6, 2018
Cited By (2)
US 12,653,686 US 12,702,562