Claims
- 1. A method for forming matrix metal composite utilizing a transferred-arc-plasma torch assembly which forms a transferred-arc column and plasma jet comprising the steps of
- feeding a metal wire into said transferred-arc column at an angle such that no portion of said metal wire is closer to said transferred-arc-plasma torch assembly than the leading edge of said metal wire during operation as said leading edge of said metal wire intersects a plasma flow:
- creating an electrical potential difference between said metal wire leading edge and said transferred-arc-plasma torch assembly; and
- feeding a powder downstream of said metal wire in the plasma jet path.
- 2. The method of claim 1, wherein said plasma jet has a central axis and further comprising the step of feeding said powder at an angle of substantially 90.degree. with respect to said central axis of said plasma jet.
- 3. The method of claim 1, further comprising the step of feeding said powder at an angle of substantially 180.degree. with respect to said metal wire.
- 4. The method of claim 1, wherein said powder is fed downstream of a central axis of said metal wire a distance at least as great as the radius of said wire.
- 5. The method of claim 1, further comprising the step of forming molten droplets of metal at the tip of said metal wire, conveying said molten droplets in said plasma jet, and embedding said powder into said molten droplets.
- 6. The method of claim 1, further comprising the step of forming a supersonic plasma jet.
- 7. The method of claim 1, wherein said powder feedstock is selected from the group consisting of a refractory material, metal oxides and carbon whiskers.
- 8. The method of claim 1, further comprising the step of forming the metal wire from the group consisting of titanium, aluminum, steel and nickel and copper based alloys.
- 9. A method for forming a matrix metal composite utilizing a transferred-arc-plasma torch assembly which forms a transferred-arc column and plasma jet comprising the steps of
- feeding a metal wire having a central axis into said transferred-arc column at an angle such that no portion of said metal wire is closer to the transferred-arc-plasma torch assembly than the leading edge of said metal wire as said leading edge intersects a plasma flow;
- creating an electrical potential difference between said metal wire leading edge and said transferred-arc-plasma torch assembly; and
- feeding a powder downstream of said metal wire in the plasma jet path;
- feeding said powder at an angle of substantially 90.degree. with respect to said plasma jet downstream of said central axis of said metal wire, a distance at least as great as the radius of said wire;
- forming molten droplets of metal at the tip of said metal wire;
- conveying said molten droplets in said plasma stream; and
- embedding said powder into said molten droplets.
- 10. A method of coating a concave surface utilizing an apparatus including a rotating member having a wire conduit formed therein, said rotating member rotating about said wire conduit, transferred-arc-plasma torch assembly means for forming a transferred-arc column mounted on said rotating member, wire feeding means for feeding a conductive wire of coating material through said wire conduit and into said transferred-arc column at an angle such that no portion of said conductive wire is closer to the transferred-arc-plasma torch assembly means than the leading edge of said conductive wire, power source means coupled to said conductive wire and said transferred-arc-plasma torch assembly means for energizing said transferred-arc-plasma torch assembly means and said conductive wire to create an electrical potential difference therebetween forming said transferred-arc column, comprising tire steps of:
- positioning said rotating member within said concave surface with said wire located generally in tire axis of said concave surface;
- feeding said conductive wire into said transferred-arc column generating a stream of particles of said coating material directed radially toward said concave surface;
- rotating said rotating member about said wire conduit generating said stream of particles radially across said concave surface and forming a generally even coating of said coating material on said concave surface; and
- reciprocally moving said rotating member between a first direction along the axis of said concave surface and a second opposite direction along tile axis of said concave surface coating said concave surface with said coating material.
- 11. A method of coating an internal surface of a generally cylindrical bore utilizing an apparatus including a rotating member having a wire conduit therein, said rotating member rotating about said wire conduit, a transferred-arc plasma torch assembly mounted on said rotating member, wire feed means for feeding a conductive wire of coating material through said wire conduit into said transfer-are column, a power source coupled to said conductive wire and said transferred-arc-plasma torch assembly energizing said transferred-arc-plasma torch assembly and said conductive wire to create an electrical potential difference therebetween forming a transferred column, comprising the following steps:
- positioning said rotating member within said bore with said conductive wire located generally along the axis of said bore;
- feeding said conductive wire into said transferred-arc column generating a stream of particles of said coating material directed radially toward said internal surface of said generally cylindrical bore;
- rotating said rotating member about said wire conduit directing said stream of coating particles radially across said internal surface and forming a generally uniform coating on said internal surface; and
- moving said rotating member generally along the axis of said bore uniformly coating the internal surface of said bore with said coating material.
Parent Case Info
This is a divisional of application Ser. No. 07/576,632 filed on Aug. 31, 1990, now U.S. Pat. No. 5,296,667.
US Referenced Citations (16)
Foreign Referenced Citations (1)
Number |
Date |
Country |
9008203 |
Jul 1990 |
WOX |
Divisions (1)
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Number |
Date |
Country |
Parent |
576632 |
Aug 1990 |
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