Spherical tantalum powder, products containing the same, and methods of making the same
Tantalum powder that is highly spherical is described. The tantalum powder can be useful in additive manufacturing and other uses. Methods to make the tantalum powder are further described as well as methods to utilize the tantalum powder in additive manufacturing processes. Resulting products and articles using the tantalum powder are further described.
1. Tantalum powder comprising
a. a spherical shape wherein the powder has an average aspect ratio of from 1.0 to 1.25;
b. a purity of tantalum of at least 99.99 wt % Ta based on total weight of said tantalum powder, excluding gas impurities;
c. an average particle size of from about 0.5 micron to about 250 microns;
d. an apparent density from about 4 g/cc to about 12.3 g/cc;
e. a true density of from 16 g/cc to 16.6 g/cc; and
f. a Hall flow rate of 20 sec or less.
2. The tantalum powder of claim 1 , wherein said tantalum powder is plasma heat-treated.
3. The tantalum powder of claim 1 , wherein said tantalum powder has an oxygen level of less than 400 ppm.
4. The tantalum powder of claim 1 , wherein said tantalum powder has an oxygen level of from 20 ppm to 250 ppm.
5. The tantalum powder of claim 1 , wherein said tantalum powder wherein said average aspect ratio is from 1.0 to 1.1.
6. The tantalum powder of claim 1 , wherein said tantalum powder wherein said average aspect ratio is from 1.0 to 1.05.
7. The tantalum powder of claim 1 , wherein said purity is at least 99.995 wt % Ta.
8. The tantalum powder of claim 1 , wherein said average particle size is from about 0.5 micron to about 10 microns.
9. The tantalum powder of claim 1 , wherein said average particle size is from about 5 microns to about 25 microns.
10. The tantalum powder of claim 1 , wherein said average particle size is from about 15 microns to about 45 microns.
11. The tantalum powder of claim 1 , wherein said average particle size is from about 35 microns to about 75 microns.
12. The tantalum powder of claim 1 , wherein said average particle size is from about 55 microns to about 150 microns.
13. The tantalum powder of claim 1 , wherein said average particle size is from about 105 microns to about 250 microns.
14. The tantalum powder of claim 1 , wherein said tantalum powder has at least one of the following properties:
a. a D10 size of from about 5 microns to 25 microns;
b. a D90 size of from about 20 microns to 80 microns; or
c. oxygen between 100 ppm to 1000 ppm.
15. A method for forming an article, said method comprising additive manufacturing said article by utilizing the tantalum powder of claim 1 to form the shape of said article or part thereof.
16. The method of claim 15 , wherein said additive manufacturing comprises laser powder bed fusion.
17. The method of claim 15 , wherein said additive manufacturing comprises electron beam powder bed fusion.
18. The method of claim 15 , wherein said additive manufacturing comprises directed energy deposition.
19. The method of claim 15 , wherein said additive manufacturing comprises laser cladding via a powder or wire.
20. The method of claim 15 , wherein said additive manufacturing comprises material jetting.
21. The method of claim 15 , wherein said additive manufacturing comprises sheet lamination.
22. The method of claim 15 , wherein said additive manufacturing comprises vat photopolymerization.
23. A method to make the tantalum powder of claim 1 , said method comprising:
a. plasma heat-treating a starting tantalum powder to at least partially melt at least an outer surface of said starting tantalum powder in an inert atmosphere to obtain a heat-treated tantalum powder, and
b. cooling said heat-treated tantalum powder in an inert atmosphere to obtain said tantalum powder.
24. The method of claim 23 , wherein said starting tantalum powder is sodium-reduced tantalum powder.
25. The method of claim 23 , wherein said starting tantalum powder is a basic lot tantalum powder.
26. The method of claim 23 , wherein said starting tantalum powder has a first particle size distribution, and said tantalum powder has a second particle size distribution, and said first particle size distribution and said second particle size distribution are within 10% of each other.
27. The method of claim 23 , wherein prior to step a, the starting tantalum powder is formed by sintering a first tantalum powder to obtain a sintered powder, and then e-beam melting of said sintered powder to obtain an ingot, and then reducing said ingot to said starting tantalum powder.
28. The method of claim 15 , wherein said article is a boss for a coil set for a physical vapor deposition process.
29. The method of claim 28 , wherein said boss comprises open cellular structures and solid structures.
30. The method of claim 15 , wherein said article is a coil set or part thereof for a physical vapor deposition process.
31. The method of claim 15 , wherein said article is an orthopedic implant or part thereof.
32. The method of claim 31 , wherein said orthopedic implant comprises open cellular structures and solid structures.
33. The method of claim 15 , wherein said article is a dental implant.
34. The method of claim 33 , wherein said dental implant comprises open cellular structures and solid structures.