Claims
- 1. A method of cooling a surface of a wave rotor comprising:providing the wave rotor having a rotatable rotor with a plurality of fluid passageways for the passage of a working fluid therethrough, the wave rotor having a plurality of outlet ports through an outlet endplate for allowing the discharge of fluid from the wave rotor and a plurality of inlet ports for allowing the entry of fluid to the wave rotor, the outlet ports including a to-turbine port and a to-purge-and-burner port and the plurality of inlet ports including a from-burner port and a purge-inlet port; rotating the rotor so as to sequentially pass the plurality of fluid passageways by the plurality of wave rotor ports; and closing the to-purge-and-burner port prior to arrival at the outlet endplate of a hot-to-cold interface between a hot working fluid entering the wave rotor through the from-burner port and a lower temperature working fluid existing within the wave rotor prior to entry of the fluid through the from-burner port; and opening the purge-inlet port to admit a purge fluid into the wave rotor while the to-purge-and-burner port is closed.
- 2. The method of claim 1, wherein the lower-temperature working fluid passes along a surface of the outlet endplate between the to-purge-and-burner port and the to-turbine port.
- 3. The method of claim 1, wherein the lower temperature working fluid passes along a surface of the to-turbine port.
- 4. The method of claim 3, wherein at least a portion of said surface is defined in a fluid passageway duct.
- 5. A method of cooling a surface of a wave rotor comprising:providing the wave rotor having a rotatable rotor with a plurality of fluid passageways for the passage of a working fluid therethrough, the wave rotor having a plurality of outlet ports through an outlet endplate for allowing the discharge of fluid from the wave rotor and a plurality of inlet ports for allowing the entry of fluid to the wave rotor, the outlet ports including a to-turbine port and a to-purge-and-burner port and the plurality of inlet ports including a from-burner port, a purge-inlet port and a from-compressor port; rotating the rotor so as to sequentially pass the plurality of fluid passageways by the plurality of wave rotor ports; opening the purge-inlet port while the to-turbine port is open; and retarding closing of the to-turbine port until after arrival at the outlet endplate of a cold-to-hot interface between a relatively cooler working fluid entering the wave rotor through the purge-inlet port and a higher temperature working fluid existing within the wave rotor prior to the entry of the fluid through the purge-inlet port.
- 6. The method of claim 5, wherein the relatively cooler working fluid passes along a surface of the to-turbine port.
- 7. The method of claim 6, wherein at least a portion of the surface is defined within a fluid passageway duct.
Parent Case Info
The application is a continuation of commonly owned and allowed U.S. patent application Ser. No. 08/857,529 filed May 16, 1997, now U.S. Pat. No. 5,916,125, which is incorporated herein by reference.
US Referenced Citations (37)
Non-Patent Literature Citations (2)
Entry |
Article entitled “A Modified Through-Flow Wave Rotor Cycle With Combustor Bypass Ducts: Preliminary Report”, Daniel E. Paxson and M. Razi Nalim, NASA Technical Memorandum 107420, Feb. 1997, pp. 1-6. |
Article entitled “Wave Rotor-Enhanced Gas Turbine Engines”, Gerard E. Welch, Scott M. Jones and Daniel E. Paxson, NASA Technical Memorandum 106998, AIAA-95-2799, Army Research Laboratory, pp. 1-13. |
Continuations (1)
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Number |
Date |
Country |
Parent |
08/857529 |
May 1997 |
US |
Child |
09/315003 |
|
US |