IP Library Granted Patent US 11,865,612
Granted Patent B2
US 11,865,612 · App. 17/047,069 · Granted Jan 9, 2024

Metal powder for 3D-printing

Inventors: Markus Weinmann (Goslar, DE); Holger Brumm (Goslar, DE); Christoph Schnitter (Holle, DE); Melanie Stenzel (Schleswig, DE)
Assignee: TANIOBIS GMBH
B22F1/052A61L27/047A61L27/06B22F1/065B22F9/082B22F10/25B22F10/28B22F10/34B33Y70/00C22C14/00B22F2301/205B22F2304/10B33Y10/00B33Y80/00
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Quick Facts
Patent No.
US 11,865,612
App. No.
17/047,069
Granted
Jan 9, 2024
Kind
B2
Abstract

The present invention relates to metal powders which are suitable to be employed in 3D printing processes as well as a process for the production of said powders.

Claims (65)

1. A metal powder suitable for use in a 3D printing process, the metal powder comprising:

a metal selected from an alloy consisting of tantalum, niobium and impurities, an alloy consisting of titanium, niobium and impurities, and an alloy consisting of tantalum, titanium, niobium and impurities,

wherein,

particles of the metal powder have a dendritic microstructure, and

particles of the metal powder comprise an average aspect ratio Ψ A of from 0.7 to 1, where Ψ A =x Feret min /x Feret max .

2. A metal powder suitable for use in a 3D printing process, the metal powder consisting of:

a metal selected from the group consisting of,

tantalum and impurities,

titanium and impurities,

niobium and impurities,

an alloy consisting of tantalum, niobium and impurities,

an alloy consisting of titanium, niobium and impurities, and

an alloy consisting of tantalum, titanium, niobium and impurities,

wherein,

particles of the metal powder have a dendritic microstructure, and

particles of the metal powder comprise an average aspect ratio Ψ A of from 0.7 to 1, where, Ψ A =x Feret min /x Feret max .

3. A metal powder suitable for use in a 3D printing process, the metal powder consisting of:

a metal selected from the group consisting of,

tantalum and impurities,

titanium and impurities,

niobium and impurities,

an alloy consisting of tantalum, niobium and impurities,

an alloy consisting of titanium, niobium and impurities, and

an alloy consisting of tantalum, titanium, niobium and impurities,

wherein,

particles of the metal powder have a dendritic microstructure,

particles of the metal powder comprise an average aspect ratio Ψ A of from 0.7 to 1, where Ψ A =x Feret min /x Feret max , and

the impurities are <3,440 ppm.

4. The metal powder as recited in claim 3 , wherein the metal powder consists of the alloy consisting of titanium, niobium and impurities.

5. The metal powder as recited in claim 3 , wherein the metal powder consists of the alloy consisting of tantalum, niobium ad impurities.

6. The metal powder as recited in claim 3 , wherein the metal powder consists of the alloy consisting of titanium, niobium, tantalum and impurities.

7. The metal powder as recited in claim 3 , wherein the metal powder has a tap density of 40 to 80% of a theoretical density of the metal powder, each determined according to ASTM B527.

8. The metal powder as recited in claim 3 , wherein the metal powder has a flowability of less than 25 s/50 g, determined according to ASTM B213.

9. The metal powder as recited in claim 3 , wherein the metal powder has,

a particle size distribution D10>2 μm,

a particle size distribution D90<80 μm, and

a particle size distribution D50 of 20 to 50 μm,

each determined according to ASTM B822.

10. The metal powder as recited in claim 3 , wherein the metal powder has,

a particle size distribution D10 of >20 μm,

a particle size distribution D90 of <150 μm, and

a particle size distribution D50 of 40 to 90 μm,

each determined according to ASTM B822.

11. The metal powder as recited in claim 3 , wherein the metal powder has,

a powder distribution D10 of >50 μm,

a powder distribution D90 of <240 μm, and

a powder distribution D50 of 60 to 150 μm,

each determined according to ASTM B822.

12. The metal powder as recited in claim 3 , wherein the impurities consist of:

oxygen being ≤3000 ppm,

nitrogen being ≤200 ppm,

lithium being ≤80 ppm

sodium being ≤80 ppm, and

potassium being ≤80 ppm.

13. A process for producing the metal powder as recited in claim 3 , the process comprising:

pressing or pressing and sintering powdery components of the metal powder to obtain a metal body;

atomizing the metal body to obtain a metal powder;

separating out particles of the metal powder having a particle size of <2 μm, determined according to ASTM B822; and

screening so as to classify particle sizes of the metal powder.

14. The process as recited in claim 13 , wherein the separating out of the particles of the metal powder having the particle size of <2 μm is performed by sifting the metal powder.

15. The process as recited in claim 13 , wherein the separating out of the particles of the metal powder having the particle size of <2 μm is performed by de-agglomeration of the metal powder in a water bath using ultra sound and a subsequent decantation.

16. The process as recited in claim 13 , wherein the separating out of the particles of the metal powder having the particle size of <2 μm is performed by stirring the metal powder in a water bath and a subsequent decantation.

17. The process as recited in claim 13 , wherein the process further comprises:

a deoxidation step.

18. The process as recited in claim 13 , wherein the metal powder is further subjected to an acid treatment.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 13, 2020
From: WEINMANN, MARKUS, MR.; BRUMM, HOLGER, MR.; SCHNITTER, CHRISTOPH, MR.; STENZEL, MELANIE, MS.
To: TANIOBIS GMBH
Reel/Frame 054032/0581 →
Priority Claims (1)
EP 18167328 · Apr 13, 2018 · regional
Continuity (1)
Related Publication 20220023941A1 · Jan 27, 2022