Claims
- 1. A pulse combustor comprising:
- an elongated combustion tube having an upstream end and a downstream end;
- an oxidizer intake valve at the upstream end in fluid communication with the tube for supplying an oxidizer to the tube in the form of discrete pulses;
- means for modulating the operating frequency of the oxidizer pulses over a substantial range of frequencies other than the natural operating frequency of the pulse combustor; and
- means for adding fuel to the oxidizer pulses proximate the upstream end of the tube so that the fuel can be combusted to generate hot gas pulses which propagate through and exit from the tube at the downstream end, whereby the frequency of hot gas pulses can be varied with the modulating means over a substantial range of frequencies other than the natural operating frequency of the pulse combustor.
- 2. The pulse combustor as in claim 1 wherein the modulating means includes frequency setting means for setting the operating frequency of the oxidizer pulses to a frequency other than the natural combustion frequency of the pulse combustor.
- 3. A pulse combustor comprising:
- an elongated combustion tube having an upstream end and a downstream end;
- an oxidizer intake valve at the upstream end in fluid communication with the tube for supplying the oxidizer to the tube in the form of discrete pulses, the valve including:
- first and second coaxially mounted valve members in close proximity and adapted to rotate relative to each other, each member having an aperture for the flow of fluid therethrough, the apertures being arranged so that they move into and out of registration during relative rotation of the members;
- means for defining a fluid chamber on a side of one of the members; and
- fluid flow diode means in fluid communication with the chamber and defining a fluid outlet therefrom for promoting the flow of fluid from the chamber through the outlet and into the combustion tube and for inhibiting the flow of fluid from the combustion tube, through the outlet and into the chamber;
- means for adding fuel to the oxidizer pulses proximate the upstream end of the tube so that the fuel can be combusted to generate hot gas pulses which propagate through and exit from the tube at the downstream end, wherein the hot gas pulses are prevented from propagating back into the chamber by the fluid flow diode means for preventing back pressure against the oxidizer intake valve when the apertures in the first and second valve members are out of registration; and
- means for modulating the operating frequency of the oxidizer pulses over a substantial range of frequencies other than the natural operating frequency of the pulse combustor whereby the frequency of hot gas pulses can be varied with the modulating means.
- 4. A pulse combustor as in claim 3 wherein the modulating means comprises means for varying the relative rotational speed of the valve members.
- 5. The pulse combustor as in claim 3 wherein the modulating means comprises means for setting the relative rotational speed of the valve members so that the oxidizer pulses flow into the fluid chamber at a frequency other than the natural combustion frequency of the pulse combustor.
- 6. A method of operating a pulse combustion energy system comprising the steps of:
- coupling an oxidizer intake valve to an upstream end of an elongated combustion tube, the valve comprising first and second coaxially mounted valve members in close proximity and adapted to rotate relative to each other, each member having an aperture for the flow of fluid therethrough, the apertures being arranged so that they move into and out of registration during relative rotation of the members;
- adding fuel to the oxidizer pulses proximate the upstream end of the tube;
- combusting the fuel to generate hot gas pulses which propagate through and exit from the tube at a downstream end thereof; and
- rotating the valve members relative to each other so that an oxidizer flows into the combustion tube at a frequency other than the natural combustion frequency of the combustion tube.
- 7. The method according to claim 6 wherein the rotating step further comprises the step of rotating the valve members relative to each other so that an oxidizer flows into the combustion tube at a frequency substantially lower than the natural combustion frequency of the combustion tube.
- 8. The method according to claim 6 wherein the rotating step further comprises the step of rotating the valve members relative to each other so that an oxidizer flows into the combustion tube at a frequency substantially higher than the natural combustion frequency of the combustion tube.
- 9. The method according to claim 6 further comprising the step of processing a foreign material in the combustion tube with the hot gas pulses.
- 10. The method according to claim 9 wherein the processing step further comprises the step of drying a slurry in the combustion tube with the hot gas pulses.
Parent Case Info
This is a continuation of application Ser. No. 07/113,686, filed Oct. 26, 1987, now abandoned which is a division of application Ser. No. 041,805 filed Apr. 23, 1987, now U.S. Pat. No. 4,767,313 which, in turn is a division of application Ser. No. 852,854, filed Apr. 16, 1986 now U.S. Pat. No. 4,708,159.
US Referenced Citations (27)
Foreign Referenced Citations (4)
Number |
Date |
Country |
1109822 |
Jul 1957 |
DEX |
1110800 |
Jul 1957 |
DEX |
2545270 |
Apr 1976 |
DEX |
238677 |
Jan 1985 |
JPX |
Non-Patent Literature Citations (2)
Entry |
European Patent Appl. (#EP 0099422), Drager, 2/1984. |
Abbott A. Putnam, "A Review of Pulse-Combustor Technology," May, 1980. |
Divisions (2)
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Number |
Date |
Country |
Parent |
41805 |
Apr 1987 |
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Parent |
852854 |
Apr 1986 |
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Continuations (1)
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Number |
Date |
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113686 |
Oct 1987 |
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