IP Library Granted Patent US 11,077,497
Granted Patent B2
US 11,077,497 · App. 15/852,211 · Granted Aug 3, 2021

Deoxidation of metal powders

Inventors: Charles A. Motchenbacher (Rochester Hills, MI); Robert L. Swenson (Rochester, MI); Jesse Z. Oliver (White Lake, MI)
Assignee: Global Titanium Inc.
B22F1/0088B22F1/0048B22F9/04B33Y70/00B22F10/20B22F2201/20B22F2301/205B22F2304/10B22F2998/10B22F2999/00
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Quick Facts
Patent No.
US 11,077,497
App. No.
15/852,211
Granted
Aug 3, 2021
Kind
B2
Abstract

Systems, methods, and compositions disclosed herein provide for low-oxygen metal powders. These metal powders, such as very-fine powders and spherical powders of titanium and titanium alloys, can be effectively deoxidized through use of vapor deoxidation without requiring the powder to undergo re-sizing or re-shaping subsequent to the deoxidation. Systems, methods, and compositions in accordance with the present disclosure can produce low-cost, low-oxygen, metal powders, such as very-fine powders and spherical powders of, for example, titanium and titanium alloys. Moreover, systems, methods, and compositions in accordance with the present disclosure can provide for reducing the number of processes or cost of processes required to produce these low-oxygen metal powders.

Claims (45)

1. A method comprising:

obtaining a high-oxygen very-fine powder including titanium;

adding an amount of deoxidant to the high-oxygen very-fine powder to thereby produce a powder blend;

applying a vacuum to the powder blend;

heating the powder blend to a predetermined temperature sufficient to at least partially vaporize the deoxidant at a pressure of the vacuum to produce a vaporized deoxidant;

vapor deoxidizing the high-oxygen very-fine powder using the vaporized deoxidant to produce a low-oxygen very-fine powder and an oxidized deoxidant;

wherein the low-oxygen very-fine powder has an oxygen content less than the high-oxygen very-fine powder;

maintaining the powder blend at the predetermined temperature for a predetermined time to produce a very-fine-powder cake, the very-fine-powder cake including the low-oxygen very-fine powder and the oxidized deoxidant, the low-oxygen very-fine powder including the titanium, the predetermined time being sufficient to convert the high-oxygen very-fine powder to the low-oxygen very-fine powder;

milling the very-fine-powder cake to produce a low-oxygen very-fine-powder blend; and

removing the oxidized deoxidant from the low-oxygen very-fine-powder blend to thereby produce the low-oxygen very-fine powder.

2. The method of claim 1 , wherein the low-oxygen very-fine powder has an oxygen content of less than about 2000 parts-per-million.

3. The method of claim 1 , wherein the low-oxygen very-fine powder has an oxygen content of less than about 1300 parts-per-million.

4. A method comprising:

obtaining a high-oxygen spherical powder including titanium, the high-oxygen spherical powder defining a first particle-size distribution;

adding an amount of deoxidant to the high-oxygen spherical powder to thereby produce a powder blend;

applying a vacuum to the powder blend;

heating the powder blend to a predetermined temperature sufficient to at least partially vaporize the deoxidant at a pressure of the vacuum to produce a vaporized deoxidant;

vapor deoxidizing the high-oxygen spherical powder using the vaporized deoxidant to produce a low-oxygen spherical powder and an oxidized deoxidant;

wherein the low-oxygen spherical powder has an oxygen content less than the high-oxygen spherical powder; and

maintaining the powder blend at the predetermined temperature for a predetermined time to produce a spherical-powder cake, the spherical-powder cake including the low-oxygen spherical powder and the oxidized deoxidant, the low-oxygen spherical powder including the titanium, the low-oxygen spherical powder defining a second particle-size distribution that is substantially equal to the first particle-size distribution, the predetermined time being sufficient to convert the high-oxygen spherical powder to the low-oxygen spherical powder;

milling the spherical-powder cake to produce a low-oxygen spherical-powder blend; and

removing the oxidized deoxidant from the low-oxygen spherical-powder blend to thereby produce the low-oxygen spherical powder.

5. The method of claim 4 , wherein the low-oxygen spherical powder has an oxygen content of less than about 1300 parts-per-million.

6. The method of claim 4 , wherein the low-oxygen spherical powder has an oxygen content of less than about 1100 parts-per-million.

7. The method of claim 4 , wherein the low-oxygen spherical powder has an oxygen content of less than about 800 parts-per-million.

8. The method of claim 4 , wherein the low-oxygen spherical powder has an oxygen content of less than about 500 parts-per-million.

9. The method of claim 4 , wherein the predetermined temperature is less than about 1700° F.

10. The method of claim 4 , wherein the predetermined temperature is less than about 1500° F.

11. The method of claim 4 , wherein the low-oxygen spherical powder has an oxygen content of less than about 2,000 parts-per-million such that the low-oxygen spherical powder is configured for use in additive manufacturing processes without further alteration to physical properties of the low-oxygen spherical powder.

12. The method of claim 4 , wherein the high-oxygen spherical powder defines an average particle size of less than about 105 μm.

13. The method of claim 4 , wherein the high-oxygen spherical powder defines an average particle size of less than about 63 μm.

14. The method of claim 4 , wherein the high-oxygen spherical powder defines an average particle size of less than about 45 μm.

15. The method of claim 4 , wherein the high-oxygen spherical powder defines an average particle size of less than about 25 μm.

16. A method comprising:

obtaining a high-oxygen spherical powder including titanium;

wherein the high-oxygen spherical powder includes spent powder from an additive manufacturing process;

adding an amount of deoxidant to the high-oxygen spherical powder to thereby produce a powder blend;

applying a vacuum to the powder blend;

heating the powder blend to a predetermined temperature sufficient to at least partially vaporize the deoxidant at a pressure of the vacuum to produce a vaporized deoxidant;

vapor deoxidizing the high-oxygen spherical powder using the vaporized deoxidant to produce a low-oxygen spherical powder and an oxidized deoxidant;

wherein the low-oxygen spherical powder has an oxygen content less than the high-oxygen spherical powder;

maintaining the powder blend at the predetermined temperature for a predetermined time to produce a spherical-powder cake, the spherical-powder cake including the low-oxygen spherical powder and the oxidized deoxidant, the low-oxygen spherical powder including the titanium, the predetermined time being sufficient to convert the high-oxygen spherical powder to the low-oxygen spherical powder;

milling the spherical-powder cake to produce a low-oxygen spherical-powder blend; and

removing the oxidized deoxidant from the low-oxygen spherical-powder blend to thereby produce the low-oxygen spherical powder.

17. The method of claim 16 , wherein the low-oxygen spherical powder has an oxygen content of less than about 2000 parts-per-million.

Assignments (11)
SECURITY INTEREST Recorded Mar 19, 2026
From: AMERITI MANUFACTURING, LLC; SCM METAL PRODUCTS, LLC
To: JPMORGAN CHASE BANK, N.A.
Reel/Frame 074129/0526 →
RELEASE OF SECURITY INTEREST IN U.S. PATENTS Recorded Mar 12, 2026
From: KEYBANK NATIONAL ASSOCIATION
To: SCM METAL PRODUCTS, INC.; AMERITI MANUFACTURING, LLC
Reel/Frame 075065/0005 →
NOTICE OF GRANT OF SECURITY INTEREST IN U.S. PATENTS Recorded Aug 15, 2024
From: AMERITI MANUFACTURING, LLC; SCM METAL PRODUCTS, INC.
To: HPS INVESTMENT PARTNERS, LLC, AS ADMINISTRATIVE AGENT AND COLLATERAL AGENT
Reel/Frame 068630/0223 →
NOTICE OF GRANT OF SECURITY INTEREST IN U.S. PATENTS Recorded Jul 31, 2024
From: SCM METAL PRODUCTS, INC.; AMERITI MANUFACTURING, LLC
To: KEYBANK NATIONAL ASSOCIATION
Reel/Frame 068223/0020 →
RELEASE OF SECURITY INTEREST IN U.S. PATENTS Recorded Jul 31, 2024
From: KEYBANK NATIONAL ASSOCIATION
To: SCM METAL PRODUCTS, INC.; AMERITI MANUFACTURING, LLC
Reel/Frame 068204/0272 →
RELEASE OF SECURITY INTEREST Recorded Jul 31, 2024
From: WILMINGTON TRUST, NATIONAL ASSOCIATION, AS ADMINISTRATIVE AGENT AND COLLATERAL AGENT
To: AMERITI MANUFACTURING, LLC
Reel/Frame 068143/0232 →
ASSIGNMENT OF ABL INTELLECTUAL PROPERTY SECURITY AGREEMENT-RELEASE OF REEL 059619 FRAME 0664 Recorded May 17, 2022
From: GOLDMAN SACHS BANK USA, AS RESIGNING ADMINISTRATIVE AGENT
To: KEYBANK, NATIONAL ASSOCIATION, AS THE SUCCESSOR ADMINISTRATIVE AGENT
Reel/Frame 060083/0847 →
ABL SUPPLEMENTAL NOTICE OF GRANT OF SECURITY INTEREST IN U.S. PATENTS Recorded Apr 6, 2022
From: AMERITI MANUFACTURING, LLC
To: GOLDMAN SACHS BANK USA, AS ADMINISTRATIVE AGENT
Reel/Frame 059619/0664 →
TERM SUPPLEMENTAL NOTICE OF GRANT OF SECURITY INTEREST IN U.S. PATENTS Recorded Apr 6, 2022
From: AMERITI MANUFACTURING, LLC
To: WILMINGTON TRUST, NATIONAL ASSOCIATION, AS ADMINISTRATIVE AGENT
Reel/Frame 059619/0671 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 5, 2022
From: GLOBAL TITANIUM INC.
To: AMERITI MANUFACTURING, LLC
Reel/Frame 059500/0550 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 8, 2018
From: MOTCHENBACHER, CHARLES A.; SWENSON, ROBERT L.; OLIVER, JESSE Z.
To: GLOBAL TITANIUM, INC.
Reel/Frame 044869/0886 →
Continuity (2)
Provisional Application 62516623 · Jun 7, 2017
Related Publication 20180354032A1 · Dec 13, 2018
Cited By (3)
US 12,195,338 US 12,261,023 US 12,406,829