IP Library Granted Patent US 9,586,262
Granted Patent B2
US 9,586,262 · App. 14/215,191 · Granted Mar 7, 2017

Manufacturing and applications of metal powders and alloys

Inventor: Andrew Matheson (Belmont, MA)
Assignee: Boston Electronic Materials LLC
B22F9/24B22F1/02B22F3/10C23C14/3414H01G9/042
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Quick Facts
Patent No.
US 9,586,262
App. No.
14/215,191
Granted
Mar 7, 2017
Kind
B2
Abstract

The present invention is directed to a method of manufacture of metal or alloy powders that uses liquid phase reduction of a metal halide, or a mixture of metal halides, to produce a metal particle coated in salts produced as a reaction byproduct. The reaction conditions can be chosen to select a range of metal particle sizes, and the salt coating prevents oxidation (or reaction with other atmospheric gases) and permits a range of applications hitherto difficult to achieve using metal powders.

Claims (36)

1. A process for the production of powder metallurgical components comprising the steps of:

(a) reducing a mixture of at least one metal halide by molten metal reduction of the liquid phase of the metal halide in a reductant selected from an alkali or alkaline earth metal, wherein the molten reductant is present as a stoichiometric excess to the metal halide, thereby forming reaction products in a salt coating comprising molten metal, metal halide, and free metallic reductant;

(b) separating the reaction products formed in step (a); and

(c) forming a metal powder from a reaction product in step (b);

wherein the at least one metal halide mixture comprises a mixture of metal chlorides and the reductant is metallic sodium;

wherein the process is conducted as a one-pass operation in which the molten sodium metal is reacted with a liquid metal halide and the solids are recovered with only the molten sodium metal being intentionally recirculated; and

wherein one or more powder metallurgical components are formed from the metal powder using powder metallurgical processing techniques.

2. The process of claim 1 , further comprising the step of sintering the metal powder by one of the following methods:

(1) with the salt coating in place;

(2) after removing the salt coating in such a manner as to avoid exposing the metal powder to deleterious gaseous contamination; or

(3) by removing the salt coating with a suitable solvent and then processing the metal powder to remove any surface contamination brought about by exposure to the solvent.

3. The process of claim 1 , wherein the reductant metallic sodium comprises at least 0.1% free metallic sodium by weight and the metal halide comprises silicon.

4. The process of claim 3 , wherein the metal powder comprises silicon.

5. The process of claim 4 , wherein the metallurgical component includes an anode.

6. The process of claim 3 , wherein the metal powder comprises a silicon alloy.

7. The process of claim 6 , wherein the metallurgical component includes an anode.

8. The process of claim 1 , wherein the reductant metallic sodium comprises at least 1% free metallic sodium by weight and the metal halide comprises silicon.

9. The process of claim 8 , wherein the metal powder comprises silicon.

10. The process of claim 9 , wherein the metallurgical component includes an anode.

11. The process of claim 8 , wherein the metal powder comprises a silicon alloy.

12. The process of claim 11 , wherein the metallurgical component includes an anode.

13. The process of claim 1 , wherein the metal powder comprises a valve metal or a valve metal alloy.

14. The process of claim 13 , wherein the metallurgical component includes an anode.

15. The process of claim 13 , wherein the valve metal or valve metal alloy is selected from the group consisting of tantalum, niobium, aluminum, and alloys thereof, and aluminum-silicon alloys.

16. The process of claim 15 , wherein the powder metallurgical components are porous.

17. The process of claim 15 , wherein the powder metallurgical components are non-porous.

18. A process for the production of metal powder comprising the steps of:

(a) reducing a mixture of at least one metal halide by molten metal reduction of the liquid phase of the metal halide in a reductant selected from an alkali or alkaline earth metal, wherein the molten metal reductant is present as a stoichiometric excess of the metal halide, thereby forming reaction products comprising molten metal, metal halide, and free metallic reductant;

(b) separating the reaction products formed in step (a); and

(c) forming a metal powder from a reaction product in step (b);

wherein the at least one metal halide mixture comprises a mixture of metal chlorides and the reductant is metallic sodium;

wherein the metal powder is encapsulated in a salt; and

further comprising the step of sintering the metal powder by one of the following methods:

(d) with the salt coating in place;

(e) after removing the salt coating in such a manner as to avoid exposing the metal powder to deleterious gaseous contamination; or

(f) by removing the salt coating with a suitable solvent and then processing the metal powder to remove any surface contamination brought about by exposure to the solvent.

Assignments (2)
CHANGE OF NAME Recorded Aug 16, 2017
From: BOSTON ELECTRONIC MATERIALS LLC
To: NANOSCALE POWDERS LLC
Reel/Frame 043304/0595 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 17, 2014
From: MATHESON, ANDREW
To: BOSTON ELECTRONIC MATERIALS, LLC
Reel/Frame 032451/0246 →
Continuity (5)
Continuation 13350854 · Jan 16, 2012
Continuation PCTUS2010042209 · Jul 16, 2010
Provisional Application 61345823 · May 18, 2010
Provisional Application 61226367 · Jul 17, 2009
Related Publication 20140199202A1 · Jul 17, 2014