IP Library Granted Patent US 10,807,168
Granted Patent B2
US 10,807,168 · App. 15/835,519 · Granted Oct 20, 2020

Tungsten heavy metal alloy powders and methods of forming them

Inventors: Michael T. Stawovy (Cleveland Heights, OH); Scott D. Ohm (Coldwater, MI); Fahrron C. Fill (Bronson, MI)
Assignee: H.C. STARCK INC.
B22F9/04B22F1/0059B22F1/0096B22F3/1055B22F9/026B22F9/082B33Y70/00C22C27/04B22F3/008B22F3/10B22F3/1021B22F2001/0066B22F2009/041B22F2201/013B22F2202/13B22F2207/13B22F2207/17B22F2301/10B22F2301/15B22F2301/20B22F2301/35B22F2999/00B33Y10/00C22C1/045
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Quick Facts
Patent No.
US 10,807,168
App. No.
15/835,519
Granted
Oct 20, 2020
Kind
B2
Abstract

In various embodiments, metallic alloy powders are formed at least in part by spray drying to form agglomerate particles and/or plasma densification to form composite particles.

Claims (37)

1. A method of forming a powder comprising a tungsten heavy alloy, wherein the tungsten heavy alloy (i) comprises 90% or more tungsten and 10% or less of one or more additional elements selected from the group consisting of nickel, iron, copper, cobalt, and manganese, and (ii) has a theoretical density corresponding to a weighted average of the densities of tungsten and the one or more additional elements, the method comprising:

forming a powder blend by blending together powders of tungsten and the one or more additional elements;

forming a slurry by mixing the powder blend with a liquid, the liquid comprising water and/or one or more organic binders;

spraying the slurry and a heated gas into a drying chamber to form a plurality of agglomerate particles each comprising a mixture of tungsten and the one or more additional elements; and

to form the powder, densifying at least a portion of the plurality of agglomerate particles by passing the at least a portion of the plurality of agglomerate particles through a plasma to thereby heat the at least a portion of the plurality of agglomerate particles to a temperature greater than a melting point of at least one of the additional elements and less than a melting point of tungsten,

wherein the powder comprises a plurality of substantially spherical composite particles, each composite particle comprising a plurality of tungsten grains surrounded by a matrix comprising the one or more additional elements.

2. The method of claim 1 , wherein a Hall flow rate of the powder ranges from approximately 1 s/50 g to approximately 15 s/50 g.

3. The method of claim 1 , wherein the powder has a particle-size distribution d10 between 2 microns and 8 microns, d50 between 15 microns and 25 microns, and d90 between 50 microns and 70 microns, wherein a particle-size distribution dX of Y denotes that X % of particles have a size less than Y.

4. The method of claim 1 , wherein the bulk density of the powder is approximately 45% or more of the theoretical density.

5. The method of claim 1 , wherein the bulk density of the powder is approximately 50% or more of the theoretical density.

6. The method of claim 1 , wherein the bulk density of the powder is approximately 65% or less of the theoretical density.

7. The method of claim 1 , further comprising:

providing a powder bed containing the composite particles;

forming a first layer of a shaped part by (i) dispersing a binder into the powder bed, and (ii) curing the binder, the first layer of the shaped part comprising composite particles bound together by cured binder;

disposing a layer of the composite particles over the first layer of the shaped part; and

forming subsequent layers of the shaped part by (i) dispersing binder over the composite particles, and (ii) curing the binder, additional composite particles being disposed over the shaped part between layers.

8. The method of claim 7 , further comprising sintering the shaped part.

9. The method of claim 8 , wherein the shaped part is sintered in a hydrogen-containing atmosphere.

10. The method of claim 8 , wherein the shaped part is sintered at a temperature ranging between approximately 1400° C. and approximately 1500° C.

11. The method of claim 7 , wherein, during formation of each layer of the shaped part, the binder is cured via application of at least one of light or heat.

12. The method of claim 1 , further comprising fabricating a wire from the powder.

13. The method of claim 12 , wherein fabricating the wire comprises:

placing the powder in a tube or a mold to form a wire preform; and

reducing a diameter of the wire preform to form the wire.

14. The method of claim 13 , further comprising annealing the wire preform and/or the wire during and/or after diameter reduction.

15. The method of claim 13 , wherein reducing the diameter of the wire preform comprises drawing, pilgering, rolling, swaging, or extrusion.

16. The method of claim 13 , wherein the tube comprises one of the elements present in the powder, and the tube forms a portion of the wire after the diameter of the wire preform is reduced.

17. The method of claim 13 , wherein the tube comprises an element not present in the powder, and the tube forms a portion of the wire after the diameter of the wire preform is reduced.

18. The method of claim 13 , wherein the tube comprises a sacrificial tube, and further comprising removing the sacrificial tube after the wire is formed.

19. The method of claim 13 , further comprising densifying the wire preform before reducing the diameter of the wire preform.

20. A method of forming a wire comprising a tungsten heavy alloy, wherein the tungsten heavy alloy (i) comprises 90% or more tungsten and 10% or less of one or more first elements and one or more second elements each selected from the group consisting of nickel, iron, copper, cobalt, and manganese, and (ii) has a theoretical density corresponding to a weighted average of the densities of tungsten, the one or more first elements, and the one or more second elements, the method comprising:

forming a powder blend by blending together powders of tungsten and the one or more first elements, the powder blend not including powders of the one or more second elements;

forming a slurry by mixing the powder blend with a liquid, the liquid comprising water and/or one or more organic binders;

spraying the slurry and a heated gas into a drying chamber to form a plurality of agglomerate particles each comprising a mixture of tungsten and the one or more first elements;

forming a powder by densifying at least a portion of the plurality of agglomerate particles by passing the at least a portion of the plurality of agglomerate particles through a plasma to thereby heat the at least a portion of the plurality of agglomerate particles to a temperature greater than a melting point of at least one of the first elements and less than a melting point of tungsten, wherein the powder comprises a plurality of substantially spherical composite particles, each composite particle comprising a plurality of tungsten grains surrounded by a matrix comprising the one or more first elements;

placing the powder in a tube to form a wire preform, the tube comprising the one or more second elements; and

reducing a diameter of the wire preform to form the wire comprising the tungsten heavy alloy, the tube forming a portion of the wire.

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 3, 2026
From: H.C. STARCK SOLUTIONS EUCLID, LLC
To: ELMET TECHNOLOGIES, LLC
Reel/Frame 073679/0340 →
SECURITY INTEREST Recorded Nov 6, 2023
From: H.C. STARCK SOLUTIONS COLDWATER, LLC; H.C. STARCK SOLUTIONS EUCLID, LLC
To: WELLS FARGO BANK, NATIONAL ASSOCIATION
Reel/Frame 065472/0843 →
CHANGE OF NAME Recorded Nov 1, 2023
From: EUCLID FACILITY HOLDINGS, LLC
To: H.C. STARCK SOLUTIONS EUCLID, LLC
Reel/Frame 065415/0762 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 31, 2023
From: H.C. STARCK INC.
To: EUCLID FACILITY HOLDINGS, LLC
Reel/Frame 065402/0594 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 21, 2020
From: STAWOVY, MICHAEL T.; OHM, SCOTT D.; FILL, FAHRRON C.
To: H.C. STARCK INC.
Reel/Frame 053558/0814 →