Claims
- 1. A burner system comprising a tubular coolant jacket assembly including an inner surface and an outer surface, said coolant jacket assembly having inlet means and outlet means for flowing liquid coolant through said coolant jacket assembly,
- a tubular combustion chamber unit disposed within said coolant jacket assembly, said combustion chamber unit having an outer surface that is spaced less than one millimeter from the inner surface of said coolant jacket assembly in standby condition,
- said combustion chamber unit including a monolithic tube of refractory material having an inner surface that defines a combustion zone, and a reinforcing sleeve having an inner surface and an outer surface, said reinforcing sleeve surrounding and extending the length of said tube of refractory material, and
- ignition zone structure at one end of said combustion chamber unit for flowing an ignited fuel-oxidant mixture into said combustion chamber unit and said combustion chamber unit providing residence time sufficient to complete combustion of the fuel-oxidant mixture within said combustion chamber unit such that the stream of combustion products discharged from the end of said combustion chamber unit remote from said ignition zone structure is essentially particulate free,
- the outer surface of said combustion chamber unit being spaced from the inner surface of said coolant jacket assembly such that an air gap is provided in standby condition between said inner surface of said coolant jacket assembly and said outer surface of said combustion chamber unit and the thermal expansion of said monolithic tube during burner system operation causing the outer surface of said combustion chamber unit to engage the inner surface of said coolant jacket assembly during burner system operation such that said reinforcing sleeve and the containing action of said coolant jacket assembly maintain said refractory material in compression during burner system operation.
- 2. The system of claim 1 wherein the material and dimension parameters of said combustion chamber unit are such that said refractory material is in compression throughout system operation including both start up and cool down sequences.
- 3. The system of claim 1 wherein said reinforcing sleeve is of high temperature metal alloy, said combustion chamber unit includes material bonding said sleeve to said refractory tube, and said bonding material has a thermal gradient substantially greater than the thermal gradient of either said refractory material or said reinforcing sleeve.
- 4. The system of claim 1 wherein the material of said refractory tube is a silicon compound.
- 5. The system of claim 1 wherein said reinforcing sleeve has a thermally insulating coating on its outer surface, said coating having a thermal gradient substantially greater than the thermal gradient of either said refractory material or said reinforcing sleeve.
- 6. The system of claim 2 wherein said coolant jacket assembly is an elongated cylindrical structure that extends the length of said combustion chamber unit and said tube of refractory material defines a combustion chamber that has a length at least five times its diameter.
- 7. The system of claim 3 wherein, said monolithic tube of refractory material is of cast silicon carbide, and said bonding material includes aluminum oxide.
- 8. The system of claim 7 and further including a zirconia coating on the outer surface of said reinforcing sleeve.
- 9. The system of claim 7 wherein said coolant jacket assembly is an elongated cylindrical structure that extends the length of said combustion chamber unit and said tube of refractory material defines a combustion chamber that has a length at least five times its diameter, the material and dimension parameters of said combustion chamber unit are such that said refractory material is in compression throughout system operation including both start up and cool down sequences.
- 10. In a burner system, a tubular combustion chamber unit disposed within a tubular coolant jacket assembly including an inner surface and an outer surface, said coolant jacket assembly having inlet means and outlet means for flowing liquid coolant through said coolant jacket assembly, said tubular combustion chamber unit comprising
- a monolithic tube of refractory material including an inner surface and an outer surface wherein said monolithic tube inner surface defines a combustion zone, and
- a reinforcing sleeve having an inner surface and an outer surface, said reinforcing sleeve surrounding and extending the length of said tube of refractory material, the outer surface of said combustion chamber unit being spaced from the inner surface of said coolant jacket assembly such that an air gap is provided in standby condition between said inner surface of said coolant jacket assembly and said outer surface of said combustion chamber unit and the thermal expansion of said monolithic tube during burner system operation causing the outer surface of said combustion chamber unit to engage the inner surface of said coolant jacket assembly during burner system operation such that said reinforcing sleeve and the containing action of said coolant jacket assembly maintain said refractory material in compression during burner system operation.
- 11. The system of claim 10 wherein said coolant jacket assembly is an elongated tubular structure that extends the length of said combustion chamber unit and said tube of refractory material defines a combustion chamber that has a length at least five times its width dimension, the material and dimension parameters of said combustion chamber unit being such that said refractory material is in compression throughout system operation including both start up and cool down sequences.
- 12. The system of claim 11 wherein said air gap has a dimension of about one millimeter.
- 13. The system of claim 12 wherein said combustion chamber unit including material bonding said reinforcing sleeve to said refractory tube and a thermally insulating coating on the outer surface of said reinforcing sleeve, said bonding material and said thermally insulating coating each having a thermal gradient substantially greater than the thermal gradient of either said refractory material or said reinforcing sleeve.
- 14. The system of claim 11 wherein said reinforcing sleeve is of high temperature metal alloy, said tube of refractory material is of cast silicon carbide, and said bonding material has a thermal gradient substantially greater than the thermal gradient of either said refractory material or said reinforcing sleeve.
- 15. The system of claim 14 and further including a zirconia coating on the outer surface of said reinforcing sleeve that has a thermal gradient substantially greater than the thermal gradient of either said refractory material or said reinforcing sleeve.
Government Interests
The Government has rights in this invention pursuant to Contract No. Sandia 13-0246A awarded by the U.S. Department of Energy.
US Referenced Citations (20)