Claims
- 1. A furnace configured to process refractory composites and a cooling system, comprising:a furnace shell that defines a furnace volume, said furnace shell having a center portion; a reactant gas inlet connected to said furnace shell in fluid communication with said furnace volume; a susceptor disposed within said furnace shell; an induction coil disposed within said furnace shell adjacent said susceptor, said induction coil comprising a cooling element; an inlet conduit connected to said furnace shell at said center portion and through said reactant gas inlet, said inlet conduit being in fluid communication with said furnace volume; an outlet conduit connected to said furnace shell in fluid communication with said furnace volume; a cooling gas supply configured to selectively introduce a cooling gas into said furnace volume; a blower connected to said inlet conduit and said outlet conduit in fluid communication therewith, wherein activation of said blower causes cooling gas introduced into said furnace volume to flow through said blower, through said inlet conduit, over said cooling element, through said outlet conduit, and back to said blower in a closed circuit, and a blower control which controls the activation of said blower, wherein time, temperature, and cooling rate data are fed back into said blower control, and said blower control adjusts the activation of said blower to maintain a prescribed rate of cooling.
- 2. A furnace configured to process refractory composites and a cooling system therefore, comprising:a furnace shell that defines a furnace volume; a heater disposed within said furnace shell; a cooling element disposed within said furnace shell; an inlet conduit connected to said furnace shell in fluid communication with said furnace volume; an outlet conduit connected to said furnace shell in fluid communication with said furnace volume; a cooling gas supply configured to selectively introduce a cooling gas into said furnace volume; a blower connected to said inlet conduit and said outlet conduit in fluid communication therewith, wherein activation of said blower causes cooling gas introduced into said furnace volume to flow through said blower, through said inlet conduit, over said cooling element, through said outlet conduit, and back to said blower in a closed circuit, wherein said blower comprises a housing and a drive shaft extending therefrom, and an inert gas purged dynamic seal between said housing and said drive shaft, and a blower control which controls the activation of said blower, wherein time, temperature, and cooling rate data are fed back into said blower control, and said blower control adjusts the activation of said blower to maintain a prescribed rate of cooling.
- 3. A furnace configured to process refractory composites and a cooling system, comprising:a furnace shell that defines a furnace volume, said furnace shell having a center portion; a reactant gas inlet connected to said furnace shell in fluid communication with said furnace volume; a susceptor disposed within said furnace shell; an induction coil disposed within said furnace shell adjacent said susceptor, said induction coil comprising a cooling element; an inlet conduit connected to said furnace shell at said center portion and through said reactant gas inlet, said inlet conduit being in fluid communication with said furnace volume; an outlet conduit connected to said furnace shell in fluid communication with said furnace volume; a cooling gas supply configured to selectively introduce a cooling gas into said furnace volume, a blower connected to said inlet conduit and said outlet conduit in fluid communication therewith, wherein activation of said blower causes cooling gas introduced into said furnace volume to flow through said blower, through said inlet conduit, over said cooling element, through said outlet conduit, and back to said blower in a closed circuit, wherein said blower comprises a housing and a drive shaft extending therefrom, and an inert gas purged dynamic seal between said housing and said drive shaft, and a blower control which controls the activation of said blower, wherein time, temperature, and cooling rate data are fed back into said blower control, and said blower control adjusts the activation of said blower to maintain a prescribed rate of cooling.
- 4. A furnace configured to process refractory composites and a cooling system therefore, comprising:a furnace shell that defines a furnace volume; a heater disposed within said furnace shell; a cooling element disposed within said furnace shell; an inlet conduit connected to said furnace shell in fluid communication with said furnace volume; an outlet conduit connected to said furnace shell in fluid communication with said furnace volume; a cooling gas supply configured to selectively introduce a cooling gas into said furnace volume; a blower connected to said inlet conduit and said outlet conduit in fluid communication therewith, wherein activation of said blower causes cooling gas introduced into said furnace volume to flow through said blower, through said inlet conduit, over said cooling element, through said outlet conduit, and back to said blower in a closed circuit, and a blower control which controls the activation of said blower, wherein time, temperature, and cooling rate data are fed back into said blower control, and said blower control adjusts the activation of said blower to maintain a prescribed rate of cooling, wherein said furnace shell has a center portion, said inlet conduit being connected to said furnace at said center portion.
- 5. A furnace configured to process refractory composites and a cooling system therefore, comprising:a furnace shell that defines a furnace volume; a heater disposed within said furnace shell; a cooling element disposed within said furnace shell; an inlet conduit connected to said furnace shell in fluid communication with said furnace volume; an outlet conduit connected to said furnace shell in fluid communication with said furnace volume; a cooling gas supply configured to selectively introduce a cooling gas into said furnace volume; a blower connected to said inlet conduit and said outlet conduit in fluid communication therewith, wherein activation of said blower causes cooling gas introduced into said furnace volume to flow through said blower, through said inlet conduit, over said cooling element, through said outlet conduit, and back to said blower in a closed circuit, and a blower control which controls the activation of said blower, wherein time, temperature, and cooling rate data are fed back into said blower control, and said blower control adjusts the activation of said blower to maintain a prescribed rate of cooling, wherein said furnace shell has a center portion disposed between two end portions, said inlet conduit being connected to said center portion and one of said end portions, said outlet conduit being connected to the other of said end portions.
RELATED APPLICATIONS
This non-provisional application claims the benefit of and incorporates by reference, in its entirety, U.S. provisional application serial No. 60/137,590, filed on Jun. 4, 1999. This application is related to U.S. Pat. No. 6,352,430 and application Ser. No. 09/780,170.
US Referenced Citations (32)
Foreign Referenced Citations (4)
| Number |
Date |
Country |
| 0 410 442 |
Jan 1991 |
EP |
| 0 832 863 |
Jan 1998 |
EP |
| 0 846 787 |
Jun 1998 |
EP |
| 0 995 960 |
Apr 2000 |
EP |
Non-Patent Literature Citations (4)
| Entry |
| W.V. Kotlensky, Deposition of Pyrolytic Carbon in Porous Solids, 8 Chemistry and Physics of Carbon, 173, 190-203 (1973). |
| W.J. Lackey, Review, Status, and Future of the Chemical Vapor Infiltration Proces for Fabrication of Fiber-Reinforced Ceramic Composites, Ceram. Eng. Sci. Proc. 10[7-8] 577-81 (1989). |
| J. Linke et al., Behavior of Boron Doped Graphites, Plasma Sprayed B4C, and a —C/B:H as Plasma Facing Material, Fus. Tech. 20, 228-231, (9/91). |
| Ponnekanti et al., Failure mechanisms of anodized aluminum parts used in CVD chambers, J. Vac. Sci. Tech. A14(3), (5/96). |
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/137590 |
Jun 1999 |
US |