Claims
- 1. A liquid supply control for a heat transfer system for transporting heat by liquid-vapor phase change of a working fluid in a monogoove heat pipe assembly, comprising:
- (a) a monogroove heat pipe assembly formed of a plurality of monogroove heat pipe legs joined to one another, said heat pipe assembly including liquid and vapor headers coupled respectively to the liquid and vapor channels of said monogroove heat pipe legs in said assembly,
- (b) a liquid reservoir connected to said liquid header,
- (c) a vapor line for the working fluid vapor phase, said vapor line being operatively connected to a condenser and to said vapor header for supplying and receiving vapor according to the demands of said header,
- (d) liquid supply and condensate return lines for the liquid phase of the working fluid,
- (e) a fill valve operatively connecting said liquid supply line from a liquid source to said liquid reservoir,
- (f) a condensate return valve operatively connecting said condensate return line from a system pump to said liquid reservoir, and
- (g) valve control means responsive at least to liquid in said reservoir and connected to said fill and return valves for controlling said valves to admit liquid to said reservoir when said reservoir is becoming depleted and to drain liquid from said reservoir when said reservoir is becoming filled, to cause liquid to enter said reservoir when said heat pipe assembly is evaporating the working fluid, and to cause liquid to exit said reservoir during operation of said heat pipe assembly as a condenser for the working fluid.
- 2. The system of claim 1 wherein said heat pipe legs further comprise grooved capillary plate heat exchangers.
- 3. The system of claim 1 further comprising liquid presence sensing means located on said liquid reservoir and connected to said valve control means for indicating the presence of liquid in said reservoir.
- 4. The system of claim 3 wherein said liquid presence sensing means further comprises at least two ultrasonic liquid presence sensors located to detect low and high liquid levels in said reservoir.
- 5. The system of claim 1 further comprising liquid heat exchanger means attached to said heat pipe assembly for cooling and/or heating liquid.
- 6. The system of claim 5 further comprising temperature sensing means connected to said valve control means and located for sensing the vapor temperature and the temperature of said heat exchanger.
- 7. The system of claim 6 wherein said temperature sensing means further comprises at least two thermocouples, one located on said heat exchanger, and the other on said vapor line.
- 8. The system of claim 5 further comprising:
- (a) liquid sensing means connected to said valve control means and located on said liquid reservoir for indicating the amount of liquid in said reservoir, and
- (b) temperature sensing means connected to said valve control means and located for sensing the vapor temperature and the temperature of said heat exchanger.
- 9. The system of claim 8 wherein said valve control means further comprises means for:
- (a) opening said condensate return valve and closing said fill valve when said liquid sensing means indicates that said reservoir is substantially full and said temperature sensing means indicates that said vapor temperature is greater than said heat exchanger temperature by a predetermined amount,
- (b) closing said condensate return and said fill valves when said liquid sensing means indicates that said reservoir is substantially empty and said temperature sensing means indicates that said vapor temperature is greater than said heat exchanger temperature by a predetermined amount,
- (c) closing said condensate return valve and opening said fill valve when said liquid sensing means indicates that said reservoir is substantially empty and said temperature sensing means indicates that said vapor temperature is less than said heat exchanger temperature, and
- (d) closing said condensate return and said fill valves when said liquid sensing means indicates that said reservoir is substantially full and said temperature sensing means indicates that said vapor temperature is less than said heat exchanger temperature.
- 10. A liquid supply control for a heat transfer system for transporting heat by liquid-vapor phase change of a working fluid in a monogroove heat pipe assembly, comprising:
- (a) a monogroove heat pipe assembly formed of a plurality of flanged monogroove capillary plate heat pipe legs joined to one another at their flanges to form a flat surface, said heat pipe assembly including liquid and vapor headers coupled respectively to the liquid and vapor channels of each said monogroove heat pipe leg in said assembly,
- (b) liquid heat exchanger means attached to said heat pipe assembly for cooling and/or heating liquid, said heat exchanger means having liquid inlet and outlet lines,
- (c) a liquid reservoir connected to said liquid header for passively supplying liquid to and receiving liquid from said heat pipe legs upon demand,
- (d) a vapor line for working fluid vapor phase, said vapor line being operatively connected to a condenser and to said vapor header for supplying and receiving vapor according to the demands of said header,
- (e) liquid supply and condensate return lines for the liquid phase of the working fluid,
- (f) a fill valve operatively connecting said liquid supply line from a liquid source to said liquid reservoir,
- (g) a condensate return valve operatively connecting said condensate return line from said liquid reservoir to a system pump,
- (h) liquid presence sensing means connected to said valve control means and located on said liquid reservoir for indicating the presence of liquid in said reservoir, said liquid presence sensing means including at least two ultrasonic liquid presence sensors located to detect low and high liquid levels in said reservoir,
- (i) temperature sensing means connected to said valve control means and located for sensing the vapor temperature of said heat pipe assembly and for sensing the temperature of said heat exchanger, said temperature sensing means including at least two thermocouples, one located on said heat exchanger liquid inlet line and the other on said vapor line, and
- (j) valve control means responsive to said assembly and exchanger temperatures and said reservoir liquid presence sensors and connected to said fill and return valves for controlling said valves by:
- (i) opening said condensate return valve and closing said fill valve when said ultrasonic sensors indicate that said reservoir is substantially full and said thermocouples indicate that said vapor temperature is greater than said liquid inlet temperature by a predetermined amount,
- (ii) closing said condensate return and said fill valves when said ultrasonic sensors indicate that said reservoir is substantially empty and said thermocouples indicate that said vapor temperature is greater than said liquid inlet temperature by a predetermined amount,
- (iii) closing said condensate return valve and opening said fill valve when said ultrasonic sensors indicate that said reservoir is substantially empty and said thermocouples indicate that said vapor temperature is less than said liquid inlet temperature, and
- (iv) closing said condensate return and said fill valves when said ultrasonic sensors indicate that said reservoir is substantially full and said thermocouples indicate that said vapor temperature is less than said liquid inlet temperature,
- to admit liquid to said reservoir when said reservoir is becoming depleted and to drain liquid from said reservoir when said reservoir is becoming filled, to cause liquid to enter said reservoir through said fill valve when said heat pipe assembly is evaporating the working fluid, and to cause liquid to exit said reservoir through said condensate return valve during operation of said heat pipe assembly as a condenser for the working fluid.
- 11. A liquid supply control method for a heat transfer system for transporting heat by liquid-vapor phase change of a working fluid in a monogroove heat pipe assembly, comprising:
- by responding at least to liquid in the liquid reservoir for a monogroove heat pipe assembly, wherein the assembly is formed of a plurality of monogroove heat pipe legs joined to one another, the heat pipe assembly includes liquid and vapor headers coupled respectively to the liquid and vapor channels of the monogroove heat pipe legs in the assembly, the liquid reservoir is connected to the liquid header, a vapor line for the working fluid vapor phase is operatively connected to a condenser and to the vapor header for supplying and receiving vapor according to the demand of the header, and liquid supply and condensate return lines are provided for the liquid phase of the working fluid, performing the steps of:
- (a) admitting liquid to the reservoir from a liquid supply via the liquid supply line when the reservoir is becoming depleted to cause liquid to enter the reservoir when the heat pipe assembly is evaporating the working fluid, and
- (b) draining liquid from the reservoir into a system pump via the condensate return line when the reservoir is becoming filled to cause liquid to exit the reservoir during operation of the heat pipe assembly as a condenser for the working fluid.
- 12. The method of claim 11 wherein the heat pipe legs are grooved capillary plate heat exchangers.
- 13. The method of claim 11 further comprising indicating the presence of liquid in the reservoir with a liquid presence sensing means located on the liquid reservoir.
- 14. The method of claim 13 further comprising detecting low and high liquid levels in the reservoir with a liquid presence sensing means which includes at least two ultrasonic liquid presence sensors located to detect such low and high liquid levels in the reservoir.
- 15. The method of claim 11 wherein a liquid heat exchanger means is attached to said heat pipe assembly for cooling and/or heating liquid.
- 16. The method of claim 15 further comprising sensing the vapor temperature and the temperature of the heat pipe assembly with a temperature sensing means located for sensing the vapor temperature and the temperature of the heat exchanger.
- 17. The method of claim 16 further comprising sensing the vapor temperature and the temperature of the heat pipe assembly with at least two thermocouples, one located on the heat exchanger and the other on the vapor line.
- 18. The method of claim 15 further comprising:
- (a) indicating the amount of liquid in the reservoir with a liquid sensing means located on the liquid reservoir, and
- (b) sensing the vapor temperature and the temperature of the heat pipe assembly with a temperature sensing means located for sensing the vapor temperature and the temperature of the heat exchanger.
- 19. The method of claim 18 wherein said admitting and draining steps further comprise:
- (a) opening a condensate return valve in the condensate return line and closing a fill valve in the liquid supply line when the liquid sensing means indicates that the reservoir is substantially full and the temperature sensing means indicates that the vapor temperature is greater than the heat exchanger temperature by a predetermined amount,
- (b) closing the condensate return and the fill valves when the liquid sensing means indicates that the reservoir is substantially empty and the temperature sensing means indicates that the vapor temperature is greater than the heat exchanger temperature by a predetermined amount,
- (c) closing the condensate return valve and opening the fill valve when the liquid sensing means indicates that the reservoir is substantially empty and the temperature sensing means indicates that the vapor temperature is less than the heat exchanger temperature, and
- (d) closing the condensate return and the fill valves when the liquid sensing means indicates that the reservoir is substantially full and the temperature sensing means indicates that the vapor temperature is less than the heat exchanger temperature.
- 20. A liquid supply control method for a heat transfer system for transporting heat by liquid-vapor phase change of a working fluid in a monogroove heat pipe assembly, comprising:
- by responding at least to liquid in the liquid reservoir for a monogroove heat pipe assembly, wherein the assembly is formed of a plurality of flanged monogroove capillary plate heat pipe legs joined to one another at their flanges to form a flat surface, the heat pipe assembly includes liquid and vapor headers coupled respectively to the liquid and vapor channels of each monogroove heat pipe leg in the assembly, a liquid heat exchanger means in attached to the heat pipe assembly for cooling and/or heating liquid, the heat exchanger means has liquid inlet and outlet lines, the liquid reservoir is connected to the liquid header for passively supplying liquid to and receiving liquid from the heat pipe legs upon demand, a vapor line for the working fluid vapor phase is operatively connected to a condenser and to the vapor header for supplying and receiving vapor according to the demands of the header, liquid supply and condensate return lines are provided for the liquid phase of the working fluid, a fill valve operatively connects the liquid supply line from a liquid supply to the liquid reservoir, a condensate return valve operatively connects the condensate return line to the liquid reservoir and to a system pump, a liquid presence sensing means connected to the valve control means and located on the liquid reservoir indicates the presence of liquid in the reservoir, the liquid presence sensing means includes at least two ultrasonic liquid presence sensors located to detect low and high liquid levels in the reservoir, a temperature sensing means connected to the valve control means is located for sensing the vapor temperature of the heat pipe assembly and for sensing the temperature of the heat exchanger, and the temperature sensing means includes at least two thermocouples, one located on the heat exchanger liquid inlet line and the other on the vapor line, performing the steps, responsively to the assembly and exchanger temperatures and the reservoir liquid presence sensors, of:
- (a) opening the condensate return valve and closing the fill valve when the ultrasonic sensor indicate that the reservoir is substantially full and the thermocouples indicate that the vapor temperature is greater than the liquid inlet temperature by a predetermined amount,
- (b) closing the condensate return and the fill valves when the ultrasonic sensors indicate that the reservoir is substantially empty and the thermocouples indicate that the vapor temperature is greater than the liquid inlet temperature by a predetermined amount,
- (c) closing the condensate return valve and opening the fill valve when the ultrasonic sensors indicate that the reservoir is substantially empty and the thermocouples indicate that the vapor temperature is less than the liquid inlet temperature, and
- (d) closing the condensate return and the fill valves when the ultrasonic sensors indicates that the reservoir is substantially full and the thermocouples indicate that the vapor temperature is less than the liquid inlet temperature, to admit liquid to the reservoir when the reservoir is becoming depleted and to drain liquid form the reservoir when the reservoir is becoming filled, to cause liquid to enter the reservoir through the fill valve when the heat pipe assembly is evaporating the working fluid, and to cause liquid to exit the reservoir during operation of the heat pipe assembly as a condenser for the working fluid.
ORIGIN OF THE INVENTION
The invention described herein was made in the performance of work under a NASA contract and is subject to the provisions of Section 305 of the National Aeronautics and Space Act of 1958, Public Law 85-568 (72 Stat. 435; 42 U.S.C. 2457).
US Referenced Citations (8)