Claims
- 1. A process for producing a polycrystalline composite consisting essentially of from about 60% by volume to about 98% by volume of a continuous silicon nitride body and an infiltrant member which consists essentially of providing a continuous polycrystalline body of silicon nitride having a closed porosity of less than about 10% by volume and an open porosity ranging from about 2% by volume to about 40% by volume of said body, contacting said silicon nitride body with a member selected from the group consisting of barium fluoride, calcium fluoride, magnesium fluoride, strontium fluoride, cerium fluoride, dysprosium fluoride, gadolinium fluoride, lanthanum fluoride, samarium fluoride, yttrium fluoride, a mixture thereof and a mixture of at least about 10% by volume of said fluoride and a metal oxide, wherein said mixture of said fluoride and metal oxide has a liquidus temperature ranging from above 1000.degree. C. to below about 1500.degree. C., heating the resulting structure to an infiltration temperature ranging from the liquidus temperature of said member to below the temperature at which there is significant vaporization of said member, infiltrating the resulting liquid member into the open porosity of said silicon nitride body, said infiltration temperature having no significant deleterious effect on said silicon nitride body, and allowing the resulting infiltrated body to solidify producing said composite, said member in said composite being in the form of a network open to the surface of said composite and none of said member being completely enveloped by said silicon nitride, said composite having a total porosity of less than about 10% by volume and an open porosity of less than about 5% by volume of said composite.
- 2. The process according to claim 1 wherein said member is calcium fluoride.
- 3. The process according to claim 1 wherein said member is magnesium fluoride.
- 4. The process according to claim 1 wherein said metal oxide is selected from the group consisting of magnesium oxide, calcium oxide and alumina.
- 5. The process according to claim 1 wherein the resulting structure is heated to a temperature ranging from about 800.degree. C. to below the melting point of said member for a time sufficient to degas any desorbable material from said silicon nitride body before being heated to said infiltration temperature.
- 6. A process for producing a polycrystalline composite consisting essentially of from about 60% by volume to about 98% by volume of a continuous silicon nitride body and an infiltrant member which consists essentially of providing a continuous polycrystalline body of silicon nitride having a closed porosity of less than about 10% by volume and an open porosity ranging from about 2% by volume to about 40% by volume of said body, contacting said silicon nitride body with a member selected from the group consisting of calcium fluoride, magnesium fluoride and a mixture thereof, heating the resulting structure to an infiltration temperature ranging from the liquidus temperature of said member to below the temperature at which there is significant vaporization of said member, infiltrating the resulting liquid member into the open porosity of said silicon nitride body, said infiltration temperature having no significant deleterious effect on said silicon nitride body, and allowing the resulting infiltrated body to solidify producing said composite, said member in said composite being in the form of a network open to the surface of said composite and none of said member being completely enveloped by said silicon nitride, said composite having a total porosity of less than about 10% by volume and an open porosity of less than about 5% by volume of said composite.
- 7. The process according to claim 6 wherein the resulting structure is heated to a temperature ranging from about 800.degree. C. to below the melting point of said member for a time sufficient to degas any desorbable material from said silicon nitride body before being heated to said infiltration temperature.
- 8. A process for producing a polycrystalline composite consisting essentially of from about 60% by volume to about 98% by volume of a continuous silicon nitride body and an infiltrant member which consists essentially of providing a continuous polycrystalline body of silicon nitride having a closed porosity of less than about 10% by volume and an open porosity ranging from about 2% by volume to about 40% by volume of said body, contacting said silicon nitride body with a member selected from the group consisting of barium fluoride, calcium fluoride, magnesium fluoride, strontium fluoride, cerium fluoride, dysprosium fluoride, gadolinium fluoride, lanthanum fluoride, samarium fluoride, yttrium fluoride, and a mixture thereof, heating the resulting structure to an infiltration temperature ranging from the liquidus temperature of said member to below the temperature at which there is significant vaporization of said member, infiltrating the resulting liquid member into the open porosity of said silicon nitride body, said infiltration temperature having no significant deleterious effect on said silicon nitride body, and allowing the resulting infiltrated body to solidify producing said composite, said member in said composite being in the form of a network open to the surface of said composite and none of said member being completely enveloped by said silicon nitride, said composite having a total porosity of less than about 10% by volume and an open porosity of less than about 5% by volume of said composite.
- 9. The process according to claim 8 wherein the resulting structure is heated to a temperature ranging from about 800.degree. C. to below the melting point of said member for a time sufficient to degas any desorbable material from said silicon nitride body before being heated to said infiltration temperature.
Parent Case Info
This application is a division of application Ser. No. 740,444, filed June 3, 1985, now U.S. Pat. No. 4,661,461.
US Referenced Citations (7)
Foreign Referenced Citations (1)
Number |
Date |
Country |
571497 |
Oct 1977 |
SUX |
Non-Patent Literature Citations (1)
Entry |
Ceramics Bulletin, vol. 63, Dec. 1984, p. 1476. |
Divisions (1)
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Number |
Date |
Country |
Parent |
740444 |
Jun 1985 |
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