Claims
- 1. A method for fabricating a substantially metal part, comprising the steps of:
a. providing a skeleton of nickel alloy powder. material with voids throughout; b. providing an infiltrant having a composition that comprises: said nickel alloy and a second material, said second material selected such that said infiltrant has a melting point temperature that is below the melting point temperature of said nickel alloy alone; c. infiltrating said voids of said skeleton with said infiltrant in liquid form; d. subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into said nickel alloy powder material; and e. subjecting said infiltrated skeleton to temperature conditions such that infiltrant that has infiltrated into said voids, solidifies.
- 2. The method of claim 1, said step of subjecting said infiltrated skeleton to temperature conditions such that infiltrant solidifies, comprising maintaining said skeleton at a temperature that exceeds said melting temperature of said infiltrant.
- 3. The method of claim 2, said step of maintaining said infiltrated skeleton at a temperature that exceeds said melting point temperature of said infiltrant, comprising maintaining said infiltrated skeleton at substantially constant temperature, such that solidification occurs substantially isothermally.
- 4. The method of claim 1 said second material selected from the group consisting of silicon, phosphorous, tin and boron and combinations thereof.
- 5. The method of claim 1, said second material comprising silicon.
- 6. The method of claim 1, said step of providing a skeleton of nickel alloy powder comprising providing a skeleton of powder material having a particle size of between approximately 50 μm and approximately 150 μm.
- 7. The method of claim 1, said step of providing an infiltrant comprising providing a solution of silicon saturated with said nickel alloy.
- 8. The method of claim 7, said step of providing a solution of silicon saturated with said nickel alloy comprising providing a volume of liquid infiltrant, saturated with said nickel alloy, and further adding powder of said nickel alloy to said volume.
- 9. The method of claim 7, said step of infiltrating comprising infiltrating said skeleton at a temperature equal to or below a maximum expected infiltration temperature, and said step of providing an infiltrant comprising, providing a solution of silicon with said nickel alloy, having a bulk composition that is approximately equal to a bulk composition that corresponds with intersection, on an equilibrium phase diagram for said nickel alloy and silicon, of the liquidus line that includes zero percent silicon and a line at said maximum expected infiltration temperature.
- 10. The method of claim 1, said step of providing a skeleton comprising providing a skeleton having voids that form pores having a characteristic radius of less than approximately 80 μm.
- 11. The method of claim 1, said step of providing a skeleton comprising providing a skeleton having voids that form pores having a characteristic length of between approximately 0.08 m and approximately 0.5 m.
- 12. The method of claim 1, said step of providing a skeleton comprising providing a skeleton having voids that form pores having a characteristic length of between approximately 0.08 m and approximately 0.5 m and a characteristic radius of less than approximately 80 μm.
- 13. The method of claim 1, said step of infiltrating said voids of said skeleton with said infiltrant in liquid form comprising providing conditions such that said infiltrant substantially fully fills substantially all of said voids.
- 14. The method of claim 13, said step of providing conditions such that said infiltrant substantially fully fills substantially all of said voids comprising providing conditions such that said infiltrant substantially fully fills substantially all of said voids before said second material has diffused from said infiltrant to a degree sufficient to block additional infiltration.
- 15. The method of claim 1, said step of subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses comprising subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into and substantially throughout said nickel alloy powder material.
- 16. The method of claim 1, said step of providing an infiltrant comprising providing an infiltrant of which said second material has a diffusivity, relative to said nickel alloy powder material, that is high enough that said second material diffuses throughout said nickel alloy powder material.
- 17. A method for fabricating a substantially metal part, comprising the steps of:
a. providing a skeleton of nickel powder material with voids throughout; b. providing an infiltrant having a composition that comprises: nickel and a second material, said second material selected such that said infiltrant has a melting point temperature that is below the melting point temperature of nickel alone; c. infiltrating said voids of said skeleton with said infiltrant in liquid form; d. subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into said nickel powder material; and e. subjecting said infiltrated skeleton to temperature conditions such that infiltrant that has infiltrated into said voids, solidifies.
- 18. The method of claim 17, said step of subjecting said infiltrated skeleton to temperature conditions such that infiltrant solidifies, comprising maintaining said skeleton at a temperature that exceeds said melting temperature of said initial composition of said infiltrant.
- 19. The method of claim 18, said step of maintaining said infiltrated skeleton at a temperature that exceeds said melting point temperature of said infiltrant, comprising the step of maintaining said infiltrated skeleton at substantially constant temperature, such that solidification occurs substantially isothermally.
- 20. The method of claim 17 said second material selected from the group consisting of silicon, phosphorous, tin and boron and combinations thereof.
- 21. The method of claim 17, said infiltrant comprising silicon in an amount less than approximately 13% by weight and Nickel in an amount more than approximately 87% by weight, said percentages relating to only the Nickel and Silicon present, without regard to any other elements present in said infiltrant.
- 22. The method of claim 17, said second material comprising silicon, said step of subjecting said infiltrated skeleton to temperature conditions such that infiltrant that has infiltrated into said voids, solidifies, comprising the step of maintaining said skeleton at a temperature of between approximately 1150° C. and approximately 1400° C.
- 23. The method of claim 17, said step of infiltrating comprising infiltrating said skeleton at a temperature equal to or below a maximum expected infiltration temperature, and said step of providing an infiltrant comprising, providing a solution of silicon with nickel, having a bulk composition approximately equal to that which corresponds with intersection, on a nickel and silicon equilibrium phase diagram, of the liquidus line that includes zero percent silicon and a line at said maximum expected infiltration temperature.
- 24. The method of claim 17, said step of subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses, comprising subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into and substantially throughout said Nickel powder material.
- 25. A method for fabricating a substantially metal part, comprising the steps of:
a. providing a skeleton of nickel chromium powder material with voids throughout,; b. providing an infiltrant having a composition that comprises a nickel chromium silicon alloy, said infiltrant having a melting point temperature that is below the melting point temperature of nickel chromium alone; c. infiltrating said voids of said skeleton with said infiltrant; d. subjecting said infiltrated skeleton to temperature conditions such that silicon diffuses from said infiltrated voids into said nickel chromium powder material; and e. subjecting said infiltrated skeleton to temperature conditions such that infiltrant that has infiltrated into said voids, solidifies.
- 26. The method of claim 25, said second material selected from the group consisting of silicon, phosphorous, tin and boron and combinations thereof.
- 27. The method of claim 25, said step of providing a skeleton comprising providing a skeleton having voids that form pores having a characteristic radius of less than approximately 80 μm.
- 28. The method of claim 25, said step of providing a skeleton comprising providing a skeleton having voids that form pores having a characteristic length of between approximately 0.08 m and approximately 0.5 m.
- 29. The method of claim 25, said step of infiltrating said voids of said skeleton with said infiltrant in liquid form comprising providing conditions such that said infiltrant substantially fully fills substantially all of said voids.
- 30. The method of claim 29, said step of providing conditions such that said infiltrant substantially fully fills substantially all of said voids comprising providing conditions such that said infiltrant substantially fully fills substantially all of said voids before said second material has diffused from said infiltrant to a degree sufficient to block additional infiltration.
- 31. A method for fabricating a substantially metal part, comprising the steps of:
a. providing a skeleton of high temperature inconel alloy powder with voids throughout; b. providing an infiltrant having a composition that comprises an alloy of said high temperature inconel alloy and a second material selected from the group consisting of boron, phosphorous, silicon, tin and a combination thereof, said infiltrant having a melting point temperature that is significantly below the melting point temperature of said high temperature inconel alloy alone; c. infiltrating said voids of said skeleton with said infiltrant; d. subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into said inconel powder; and e. subjecting said infiltrated skeleton to temperature conditions such that infiltrant that has infiltrated into said voids, solidifies.
- 32. A method for fabricating a substantially metal part, comprising the steps of:
a. providing a skeleton of aluminum alloy powder material with voids throughout; b. providing an infiltrant having a composition that comprises an alloy of said aluminum alloy and a second material selected from the group consisting of silicon and lithium and a combination thereof, said infiltrant having a melting point temperature that is below the melting point temperature of said aluminum alloy of said powder, alone; c. infiltrating said voids of said skeleton with said infiltrant; d. subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into said aluminum alloy powder; e. subjecting said infiltrated skeleton to temperature conditions such that infiltrant that has infiltrated into said voids, solidifies.
- 33. The method of claim 32, said step of subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses comprising subjecting said infiltrated skeleton to temperature conditions such that. said second material diffuses from said infiltrated voids into and substantially throughout said aluminum alloy powder material.
- 34. The method of claim 32, said step of infiltrating said voids of said skeleton with said infiltrant in liquid form comprising providing conditions such that said infiltratant substantially fully fills substantially all of said voids.
- 35. A method for fabricating a substantially metal part, comprising the steps of:
a. providing a skeleton of aluminum powder material with voids throughout; b. providing an infiltrant having a composition that comprises an alloy of aluminum and a second material selected from the group consisting of silicon and lithium and a combination thereof, said infiltrant having a melting point temperature that is below the melting point temperature of aluminum alone; c. infiltrating said voids of said skeleton with said infiltrant; d. subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into said aluminum powder; and e. subjecting said infiltrated skeleton to temperature conditions such that infiltrant that has infiltrated into said voids, solidifies.
- 36. A method for fabricating a substantially metal part, comprising the steps of:
a. providing a skeleton of copper alloy powder material with voids throughout; b. providing an infiltrant having a composition that comprises an alloy of said copper alloy and a second material selected from the group consisting of silver and titanium, said infiltrant having a melting point temperature that is below the melting point temperature of said copper alloy of said powder, alone; c. infiltrating said voids of said skeleton with said infiltrant; d. subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into said copper alloy powder; and e. subjecting said infiltrated skeleton to temperature conditions such that infiltrant that has infiltrated into said voids, solidifies.
- 37. The method of claim 36, said step of subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses comprising subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into and substantially throughout said copper alloy powder material.
- 38. The method of claim 36, said step of infiltrating said voids of said skeleton with said infiltrant in liquid form comprising providing conditions such that said infiltrant substantially fully fills substantially all of said voids.
- 39. A method for fabricating a substantially metal part, comprising the steps of:
a. providing a skeleton of copper powder with voids throughout; b. providing an infiltrant having a composition that comprises an alloy of copper and a second material selected from the group consisting of silver and titanium, said infiltrant having a melting point temperature that is below the melting point temperature of copper alone; c. infiltrating said voids of said skeleton with said infiltrant; d. subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into said copper powder; and e. subjecting said infiltrated skeleton to temperature conditions such that infiltrant that has infiltrated into said voids, solidifies.
- 40. A method for fabricating a substantially metal part, comprising the steps of:
a. providing a skeleton of metal powder material with voids throughout; b. providing an infiltrant having a composition that comprises: said metal powder and a second material, said second material selected such that said infiltrant has a melting point temperature that is below the melting point temperature of said metal alone; c. infiltrating said skeleton with said infiltrant by the steps of:
i. providing a vessel having a gate mechanism that divides said vessel into at least two regions, ii. placing said infiltrant in one of said regions; iii. subjecting said infiltrant to a temperature that is greater than said melting point temperature of said infiltrant, for a time sufficient to melt said infiltrant; iv. placing said skeleton in another of said regions; and v. activating said gate to allow said skeleton and said liquid infiltrant to contact each other at a location of said skeleton such that infiltrant is drawn into said voids of said skeleton, at least in part by capillary action; d. subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into said metal powder material; and e. subjecting said infiltrated skeleton to temperature conditions such that infiltrant that has infiltrated into said voids, solidifies.
- 41. The method of claim 40, further wherein said step of subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into said metal powder material comprises subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into and substantially throughout said metal powder material.
- 42. The method of claim 40, said gate mechanism comprising a movable divider between said first and second of said regions, said step of activating said gate comprising moving said gate sufficiently to allow said liquid infiltrant to contact said skeleton.
- 43. The method of claim 41, said gate mechanism comprising a movable tube having an end that is shaped to fit against a surface of said crucible, to close said tube, thereby dividing said vessel into one region within said tube, and another region outside said tube, said step of activating said gate comprising moving said tube away from said vessel wall sufficiently to allow said liquid infiltrant to flow out of said tube and to contact said skeleton.
- 44. The method of claim 40, said step of infiltrating said voids of said skeleton with said infiltrant in liquid form comprising providing conditions such that said infiltrant substantially fully fills substantially all of said voids.
- 45. A method for fabricating a substantially metal part, comprising the steps of:
a. providing a skeleton of metal powder material with voids throughout; b. providing an infiltrant having a composition that comprises: said metal powder and a second material, said second material selected such that said infiltrant has a melting point temperature that is significantly below the melting point temperature of said metal alone; c. infiltrating said skeleton with said infiltrant by the steps of:
i. providing a quantity of said infiltrant in liquid form; ii. interposing a stilt between said skeleton and said liquid infiltrant, ii. contacting said stilt to said liquid infiltrant such that infiltrant is drawn into said voids of said skeleton, at least in part by capillary action, passing first through said stilt and then into said skeleton; d. subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into said metal powder material; and e. subjecting said infiltrated skeleton to temperature conditions such that infiltrant that has infiltrated into said voids, solidifies.
- 46. The method of claim 45, said step of subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses comprising subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into and substantially throughout said metal powder material.
- 47. The method of claim 45, said step of infiltrating said voids of said skeleton with said infiltrant in liquid form comprising providing conditions such that said infiltrant substantially fully fills substantially all of said voids.
- 48. A method for fabricating a substantially metal part, comprising the steps of:
a. providing a skeleton of metal powder material with voids throughout; b. providing an infiltrant having a composition that comprises: said metal powder and a second material, said second material selected such that said infiltrant has a melting point temperature that is below the melting point temperature of said metal alone; c. infiltrating said skeleton with said infiltrant by the steps of:
i. providing a quantity of infiltrant; ii. subjecting said infiltrant to a temperature that is greater than said melting point temperature of said infiltrant, for a time sufficient to melt said quantity of infiltrant; iii. suspending said skeleton above said quantity of said liquid infiltrant; and iv. bringing said skeleton and said infiltrant into contact so that said skeleton contacts said liquid infiltrant at a location of said skeleton such that infiltrant is drawn into said voids of said skeleton, at least in part by capillary action; d. subjecting said skeleton to temperature conditions such that said second element diffuses from said infiltrated voids into said metal powder material; and e. subjecting said infiltrated skeleton to temperature conditions such that infiltrant that has infiltrated into said voids, solidifies.
- 49. The method of claim 48, said step of subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses comprising subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into and substantially throughout said metal powder material.
- 50. The method of claim 49, said step of infiltrating said voids of said skeleton with said infiltrant in liquid form comprising providing conditions such that said infiltrant substantially fully fills substantially all of said voids.
- 51. A method for fabricating a substantially metal part, comprising the steps of:
a. providing a skeleton of metal powder material with voids throughout; b. filling a ceramic powder around said skeleton to a degree that will support said skeleton against slumping during subsequent steps at elevated temperature; c. providing an infiltrant having a composition that comprises: said metal powder and a second material, said second material selected such that said infiltrant has a melting point temperature that is below the melting point temperature of said metal alone; d. infiltrating said skeleton with said infiltrant by the steps of:
i. providing a quantity of infiltrant; ii. arranging said infiltrant and said skeleton spaced apart from each other; iii. subjecting said infiltrant to a temperature that is greater than said melting point temperature of said infiltrant, for a time sufficient to melt said quantity of infiltrant; and iv. contacting said skeleton to said melted infiltrant at a location of said skeleton such that infiltrant is drawn into said voids of said skeleton, at least in part by capillary action; e. subjecting said infiltrated skeleton to temperature conditions such that said second element diffuses from said infiltrated voids into said metal powder material; and f. subjecting said infiltrated skeleton to temperature conditions such that infiltrant that has infiltrated into said void, solidifies.
- 52. The method of claim 51, said step of subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses comprising subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into and substantially throughout said metal powder material.
- 53. The method of claim 51, said step of infiltrating said voids of said skeleton with said infiltrant in liquid form comprising providing conditions such that said infiltrant substantially fully fills substantially all of said voids.
- 54. A method for fabricating a substantially metal part, comprising the steps of:
a. providing a skeleton of metal powder with voids throughout, said voids forming pores having a characteristic length of between approximately 0.08 m and approximately 0.5 m; b. providing an infiltrant having a composition that comprises: said metal and a second material, said second material selected such that said infiltrant has a melting point temperature that is below the melting point temperature of said metal alone; c. infiltrating substantially all of said voids of said skeleton substantially fully, with said infiltrant in liquid form; d. subjecting said infiltrated skeleton to temperature. conditions such that said second material diffuses from said infiltrated voids into said metal powder material; and e. subjecting said infiltrated skeleton to temperature conditions such that infiltrant that has infiltrated into said voids, solidifies.
- 55. The method of claim 54, said step of subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses comprising subjecting said infiltrated skeleton to temperature conditions such that said second material diffuses from said infiltrated voids into and substantially throughout said metal powder material.
- 56. The method of claim 54, further comprising the step of selecting:
a. powder material having a granule representative size; b. infiltrant having a viscosity; c. infiltrant having a diffusivity in said powder material; and d. a finished part geometry having a maximum height; such that said infiltrant infiltrates to a sufficient rate, to said maximum geometry height, before said second element has diffused out from said infiltrant that has infiltrated said voids to a degree that would result in said infiltrant solidifying and blocking off further infiltration.
- 57. The method of claim 56, said step of selecting comprising the step of adjusting at least one of the following factors as indicated:
a. decreasing said representative size of said powder material to achieve relatively greater maximum capillary driving rise height in said geometry; b. increasing said representative size of said powder material to achieve a relatively faster rate of infiltration; and c. increasing said representative pore size of said skeleton to achieve a relatively longer period of time before solidification that blocks off further infiltration.
PRIORITY CLAIM
[0001] This claims priority to U.S. Provisional application No. 60/206,066, filed on May 22, 2000, the full disclosure of which is fully incorporated by reference herein.
GOVERNMENT RIGHTS
[0002] The United States Government has certain rights in this invention pursuant to the Office of Naval Research Award # N0014-99-1-1090, Research in Manufacturing and Affordability, awarded on Sep. 30, 1999.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US01/16427 |
5/21/2001 |
WO |
|