IP Library Patent Application 14822731
Patent Application
App. No. 14/822,731

PARTICULATES FOR ADDITIVE MANUFACTURING TECHNIQUES

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Patent No.
US None
App. No.
14/822,731
Abstract

A particulate for an additive manufacturing technique includes a particulate body formed from a particulate material and a coating disposed over particulate body. The coating includes a carbonaceous material that has a reflectivity that is lower than a reflectivity of the particulate material to reduce an energy input requirement of the particulate such that less energy is necessary to fuse the particulate into a layer of an article fabricated using the additive manufacturing technique. A method of making particulate is also disclosed.

Claims (22)

1 . A particulate, comprising:

a particulate body formed from a particulate material; and

a coating disposed over at least a portion of the particulate body and formed from a carbonaceous material, wherein the coating has a reflectivity that is lower than a reflectivity of the underlying particulate body to reduce an energy input requirement of the particulate to fuse the particulate into a layer of an article using an additive manufacturing technique.

2 . A particulate as recited in claim 1 , wherein the particulate body includes a metallic material.

3 . A particulate as recited in claim 1 , wherein the particulate body includes at least one of aluminum, copper, nickel, iron, titanium, molybdenum, alloys thereof, and ceramic.

4 . A particulate as recited in claim 1 , wherein the carbonaceous material includes graphene and/or carbon nanotubes.

5 . A particulate as recited in claim 1 , wherein the coating material has an electrical resistivity that is lower than an electrical resistivity of the particulate body.

6 . A particulate as recited in claim 1 , wherein the coating material has a thermal conductivity that is greater than a thermal conductivity of the particulate body.

7 . A particulate as recited in claim 1 , wherein the particulate body includes a particulate first material and a particulate second material, the particulate first material having an electrical resistivity that is lower that an electrical resistivity of the particulate second material, wherein the coating material has an electrical resistivity that is lower than the electrical resistivity of the particulate second material.

8 . A particulate as recited in claim 7 , wherein the electrical resistivity of the coating material is lower than the electrical resistivity of both the first and particulate second materials.

9 . A particulate as recited in claim 1 , wherein the particulate body includes a particulate first material and a particulate second material, the particulate first material having a thermal conductivity that is greater than a thermal conductivity of the particulate second material, wherein the coating material has a thermal conductivity that is greater than the thermal conductivity of the particulate second material.

10 . A particulate as recited in claim 9 , wherein the thermal conductivity of the particulate first material is greater than the thermal conductivity of the particulate second material.

11 . A particulate as recited in claim 1 , wherein the particulate material includes copper and phosphorus.

12 . A metallic-carbon composite conductor including particulate as recited in claim 1 fused using an additive manufacturing technique.

13 . An article including a metal-carbon composite formed using particulate as recited in claim 1 , wherein at least one of resistivity, thermal conductivity, and mechanical strength of the metal-carbon composite are superior to that of article formed of the metal forming the metal-carbon composite.

14 . A method of making a particulate for an additive manufacturing technique, the method comprising:

receiving particulate at a chemical vapor deposition (CVD) reactor;

flowing a hydrocarbon gas into the CVD reactor;

decomposing the hydrocarbon gas in the CVD reactor; and

depositing a carbonaceous coating on the particulate using a product of the decomposed hydrocarbon gas, wherein the coating has a reflectivity that is lower than a reflectivity the underlying particulate body to reduce an energy input requirement of the particulate to fuse the particulate into a layer of an article using an additive manufacturing technique.

15 . A method as recited in claim 14 , further including receiving coated particulate at an additive manufacturing apparatus, and fusing the coated particulate into a layer of an article using a high density energy source.

16 . A method as recited in claim 14 , wherein depositing the carbonaceous coating on the particulate includes depositing a carbonaceous layer including graphene and/or carbon nanotubes on a surface of the particulate in the CVD reactor.

Assignments (2)
CONFIRMATORY LICENSE Recorded Sep 10, 2018
From: UTC AEROSPACE SYSTEMS
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 047040/0918 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 19, 2015
From: SHARON, JOHN A., MR.; SHE, YING; EL-WARDANY, TAHANY I., MS.; SCHMIDT, WAYDE R., MR.
To: DELAVAN INC
Reel/Frame 036364/0420 →