IP Library › Granted Patent US 10,773,340
Granted Patent B2
US 10,773,340 · App. 15/040,039 · Granted Sep 15, 2020

Metal additive manufacturing using gas mixture including oxygen

Inventors: Donnell Eugene Crear (Simpsonville, SC); Chad Joseph Dulkiewicz (Simpsonville, SC); Archie Lee Swanner, Jr. (Easley, SC)
Assignee: General Electric Company
B23K26/1437B22F3/1055B23K26/127B23K26/342B33Y10/00B33Y30/00B22F2003/1056B22F2999/00B23K2103/08B33Y80/00C22C1/0433Y02P10/295
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Quick Facts
Patent No.
US 10,773,340
App. No.
15/040,039
Granted
Sep 15, 2020
Kind
B2
Abstract

A metal powder additive manufacturing system and method are disclosed that use increased trace amounts of oxygen to improve physical attributes of an object. The system may include: a processing chamber; a metal powder bed within the processing chamber; a melting element configured to sequentially melt layers of metal powder on the metal powder bed to generate an object; and a control system configured to control a flow of a gas mixture within the processing chamber from a source of inert gas and a source of an oxygen containing material, the gas mixture including the inert gas and oxygen from the oxygen containing material. The method may result in an object having a surface porosity of no greater than approximately 0.1%, and an effective density of greater than approximately 99.9%.

Claims (32)

1. An object formed by a metal powder additive manufacturing method, the object comprising:

sequential distinct layers of solidified material;

wherein the method includes:

providing a metal powder bed within a processing chamber;

creating a melt pool;

sequentially melting layers of metal powder on the metal powder bed to generate the object;

supplying inert gas to the processing chamber from a source of inert gas in fluid communication with the processing chamber;

supplying oxygen to the processing chamber from a source of oxygen containing material in fluid communication with the processing chamber;

controlling a flow of a gas mixture provided to the processing chamber from the source of inert gas and the source of an oxygen containing material, the gas mixture including the inert gas from the source of inert as and oxygen from the source of oxygen containing material; and

maintaining the amount of the oxygen provided to the processing chamber to change the melt pool characteristics of the object,

wherein the object has a surface porosity of no greater than approximately 0.1%, and

wherein the object has an effective density of greater than approximately 99.9%.

2. The object of claim 1 , wherein the oxygen containing material includes an oxygen containing gas.

3. The object of claim 2 , wherein the oxygen containing gas includes air.

4. The object of claim 2 , wherein the oxygen containing gas includes pure oxygen.

5. The object of claim 1 , wherein the oxygen containing material includes water.

6. The object of claim 1 , wherein a volume percentage of oxygen in the gas mixture is between approximately 0.25% to approximately 1%.

7. The object of claim 1 , wherein the metal powder is selected from the group consisting of: a cobalt chromium molybdenum (CoCrMo) alloy, stainless steel, a nickel-chromium-molybdenum-niobium (NiCrMoNb) alloy, a nickel-chromium-iron-molybdenum (NiCrFeMo) alloy, and a nickel-chromium-cobalt-molybdenum (NiCrCoMo) alloy.

8. The object of claim 1 , wherein the oxygen containing material includes water.

9. The object of claim 1 , wherein the metal powder includes a non-reactive metal powder.

10. The object of claim 1 , wherein the inert gas is chosen from the group consisting of: argon and nitrogen.

11. An object formed by a metal powder additive manufacturing method, the object comprising:

sequential distinct layers of solidified material;

wherein the method includes:

providing a metal powder bed within a processing chamber;

creating a melt pool;

sequentially melting layers of metal powder on the metal powder bed to generate the object;

supplying inert gas to the processing chamber from a source of inert gas in fluid communication with the processing chamber;

supplying oxygen to the processing chamber from a source of oxygen containing material in fluid communication with the processing chamber;

controlling a flow of a gas mixture provided to the processing chamber from the source of inert gas and the source of an oxygen containing material, the gas mixture including the inert gas from the source of inert as and oxygen from the source of oxygen containing material; and

maintaining the amount of the oxygen provided to the processing chamber to change the melt pool characteristics of the object,

wherein the object has an effective density of greater than approximately 99.9%.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 17, 2023
From: GENERAL ELECTRIC COMPANY
To: GE INFRASTRUCTURE TECHNOLOGY LLC
Reel/Frame 065727/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 10, 2016
From: CREAR, DONNELL EUGENE; DULKIEWICZ, CHAD JOSEPH; SWANNER, ARCHIE LEE, JR.
To: GENERAL ELECTRIC COMPANY
Reel/Frame 037697/0327 →
Continuity (2)
Continuation In Part 14981321 · Dec 28, 2015
Related Publication 20170182594A1 · Jun 29, 2017