Claims
- 1. A method to manufacture a metal-ceramic laminate, the method comprising:
Reacting a mixture of polyvinyl alcohol treated boron oxide-silicon dioxide composition with a metal and a filler material; dispersing the reacted metal composition into a non-aqueous solvent to form a reacted metal composition slurry; forming the slurry into tapecast sheets; assembling a pre-fired laminate to a structure; and heating the laminate to fuse it to the structure.
- 2. The method of claim 1, wherein the metal composition includes Al metal, Al alloys, non-Al metals, and non-Aluminum metal alloys and are reacted without igniting.
- 3. The method of claim 2, wherein the metal composition are powders having a size of approximately −100 mesh.
- 4. The method of claim 1, wherein the filler materials are metal-based filler materials, the metal-based filler materials includes Mo, Cr, Mg, Ti, Ta, W, Cr, Hf, Zr, V, Hb, Nb, Fe, Mn, Pd, Zr, and W.
- 5. The method of claim 4, wherein the metal-based filler materials further include:
borides of Al, Cr, Mo, Mg, Hf, Ti, Zr, W, V, Nb, Co, Pd, Yt, La, Ni, and Fe; silicides of Mg, Mo, Ti, W, Cr, Hf. B, Zr, V, Nb, Fe, Mn, Pd, and Ta; and carbides of Ti, Hf. Ta, Zr, Nb, Mo, Cr and W.
- 6. The method of claim 1, wherein filler materials are nonmetal-based, the nonmetal-based filler materials including B and Si.
- 7. The method of claim 6, wherein the nonmetal-based filler materials further include:
silicides of B; and carbides of B.
- 8. The method of claim 1, wherein the filler materials are ternary compositions, the ternary composition including carbides of Ti and Si compounds, carbides of Ti and Al compounds, and carbides of Ti and Ge compounds.
- 9. The method of claim 1, wherein the thermal fugitive includes plasticizers, binders, deflocculants, defoamers, surfactants, and solvents.
- 10. The method of claim 1, wherein boron oxide composition is a composition including B2O3 and SiO2.
- 11. The method of claim 10, wherein the weight percentage of B2O3 is approximately 13%.
- 12. The method of claim 1, wherein the pre-fired laminate includes carbon tapes made from a tape casting slurry comprising carbon particles suspended in a solution comprising xylenes, ethanol, fish oil, polyvinyl butyral, polyethylene glycol, and butyl benzyl phthalate.
- 13. The method of claim 12, wherein the carbon particles are approximately −325 mesh size having a porosity sufficient to exceed an effective surface area greater than 1000 m2/gram and is pretreated with an aqueous solution of polyvinyl alcohol having an approximate 2 to 10 weight % concentration.
- 14. The method of claim 1, wherein fusing occurs in a range of approximately 650 C. to approximately 1200 C.
- 15. The method of claim 14, wherein the metal-ceramic laminate operates above 1400 C. in oxidizing atmospheres at approximately 100 W/cm2.
- 16. The method of claim 1, wherein the carbon tape is a plurality of carbon tapes, the plurality of carbon tapes having sufficient number to stabilize the pre-fired laminate assembly whereby after firing the resulting ceramic laminate does not significantly sag.
- 17. A composition for a metal-ceramic laminate, the composition comprising:
an aluminum based composition; a boron oxide-silicon dioxide composition pre-treated with a polyvinyl alcohol solution; a filler material having at least one carbide, boride, or silicide; and a thermally fugitive carbon-based material.
- 18. The composition of claim 17, wherein the aluminum base composition includes Aluminum metal and Aluminum metal alloys.
- 19. The composition of claim 17, wherein the Al and Al alloys are powders having a size of approximately −100 mesh or less.
- 20. The composition of claim 17, wherein the filler materials are metal-based filler materials, the metal-based filler materials includes Mo, Cr, Mg, Ti, Ta, W, Cr, Hf, Zr, V, Hb, Nb, Fe, Mn, Pd, Zr, and W.
- 21. The composition of claim 20, wherein the metal-based filler materials further include:
borides of Al, Cr, Mo, Mg, Hf, Ti, Zr, W, V, Nb, Co, Pd, Yt, La, Ni, and Fe; silicides of Mg, Mo, Ti, W, Cr, Hf, B, Zr, V, Nb, Fe, Mn, Pd, and Ta; and carbides of Ti, Hf, Ta, Zr, Nb, Mo, Cr and W.
- 22. The composition of claim 17, wherein filler materials are nonmetal-based, the nonmetal-based filler materials including B and Si.
- 23. The composition of claim 22, wherein the nonmetal-based filler materials further include:
silicides of B; and carbides of B.
- 24. The composition of claim 17, wherein the filler materials are ternary compositions, the ternary composition including carbides of Ti and Si compounds, carbides of Ti and Al compounds, and carbides of Ti and Ge compounds.
- 25. The composition of claim 17, wherein the thermal fugitive includes plasticizers, binders, deflocculants, defoamers, surfactants, and solvents.
- 26. The composition of claim 17, wherein boron oxide-silicon dioxide composition is a composition including B2O3 being present at a weight percentage of 13%.
- 27. The composition of claim 17, wherein the composition for the metal-ceramic laminate includes a stochiometric ratio of Aluminum to B2O3 that varies from about 2:1 to about 4:1, and a stochiometric ratio of B2O3 to filler materials that varies from about 0.4:1 to about 9:1.
- 28. A method to manufacture a metal-ceramic laminate device, the method comprising:
applying a first sheet having an metal boro-silicate composition onto a structure; applying at least one carbon tape over the first sheet; applying a second sheet having the metal boro-silicate composition over the carbon tape; fusing the first sheet, the carbon tape, and the second sheet in a temperature range of approximately 650 C. and 1200 C., whereby the resulting fused metal ceramic laminate has at least one channel; and attaching electrical conductors to the metal-ceramic laminate to form the metal-ceramic laminate device.
- 29. The method of claim 28, wherein the carbon tape is a plurality of carbon tapes having a sufficient number, each tape arranged substantially parallel to each other and spaced at regular intervals along the first sheet.
- 30. The method of claim 28, wherein the carbon tape is a carbon tape sheet substantially the same size as the first sheet.
- 31. The method of claim 30, wherein the first and second sheets are perforated with a plurality of aperture shapes, the shapes including circles, squares, and polygons.
- 32. The method of claim 28, wherein the electrical conductors are attached to regions of the laminate having low electrical resistance.
- 33. A method to manufacture a metal-ceramic monolayer assembly, the method comprising:
reacting a mixture of polyvinyl alcohol treated boron oxide-silicon dioxide composition with a metal and a filler material; dispersing the reacted metal composition into a non-aqueous solvent to form a reacted metal composition slurry; forming the slurry into tapecast sheets; assembling the tapecast sheet into a monolayer; heating the monolayer until fused; applying perforations to the fused monolayer; and attaching electrical conductors to the sides of the fused monolayer.
PRIORITY CLAIM
[0001] This invention claims priority to U.S. provisional patent application serial No. 60/379,430, filed May 9, 2002, herein incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60379430 |
May 2002 |
US |