Engine component test system with cryogenic cooling system
A test system is provided for a component of an engine. This test system includes a combustor test section and an air system. The combustor test section includes a fuel injector, an ignitor and a combustion chamber. The fuel injector is configured to direct fuel into the combustion chamber for mixing with cooled air. The ignitor is configured to ignite a mixture of the fuel and the cooled air within the combustion chamber. The air system is configured to deliver the cooled air to the combustor test section. The air system includes a compressed air source, a cryogenic cooling system and an air circuit. The cryogenic cooling system includes a cryogenic heat exchanger. The air circuit extends through the cryogenic heat exchanger and fluidly couples the compressed air source to the combustor test section.
1 . A test system for a component of an engine, comprising:
a combustor test section including a fuel injector, an ignitor and a combustion chamber, the fuel injector configured to direct fuel into the combustion chamber for mixing with cooled air, and the ignitor configured to ignite a mixture of the fuel and the cooled air within the combustion chamber; and
an air system configured to deliver the cooled air to the combustor test section, the air system including a compressed air source, a cryogenic cooling system and an air circuit, the cryogenic cooling system comprising a cryogenic heat exchanger, and the air circuit extending through the cryogenic heat exchanger and fluidly coupling the compressed air source to the combustor test section;
the air system further including a refrigeration cooling system with a refrigeration heat exchanger, the air circuit further extending through the refrigeration heat exchanger, and the cryogenic heat exchanger between the refrigeration heat exchanger and the combustor test section along the air circuit.
2 . The test system of claim 1 , wherein
the cryogenic cooling system further comprises a cryogenic liquid source;
the cryogenic heat exchanger includes a cryogenic liquid passage and an air passage;
the cryogenic liquid passage is fluidly coupled with and downstream of the cryogenic liquid source; and
the air circuit comprises the air passage.
3 . The test system of claim 2 , wherein
the cryogenic liquid passage is configured to receive a cryogenic liquid from the cryogenic liquid source;
the air passage is configured to receive compressed air from the compressed air source; and
the cryogenic heat exchanger is configured to transfer heat energy from the compressed air flowing in the air passage into the cryogenic liquid flowing in the cryogenic liquid passage.
4 . The test system of claim 2 , wherein the cryogenic liquid source comprises a reservoir containing liquid nitrogen.
5 . The test system of claim 2 , wherein
the cryogenic cooling system further comprises a heat exchange circuit, a bypass circuit and a pressure relief valve;
the heat exchange circuit comprises the cryogenic liquid passage;
the bypass circuit bypasses the cryogenic heat exchanger; and
the heat exchange circuit and the bypass circuit are downstream of and fluidly coupled to the cryogenic liquid source through the pressure relief valve.
6 . The test system of claim 2 , wherein the cryogenic cooling system further comprises an emergency shutoff valve fluidly coupled with and between the cryogenic liquid source and the cryogenic liquid passage.
7 . The test system of claim 2 , wherein the cryogenic cooling system further comprises a control valve fluidly coupled with and between the cryogenic liquid source and the cryogenic liquid passage.
8 . The test system of claim 7 , wherein
the cryogenic cooling system further comprises a flowmeter and a controller in signal communication with the control valve and the flowmeter; and
the controller is configured to control operation of the control valve based on a signal output from the flowmeter.
9 . The test system of claim 8 , wherein the cryogenic liquid passage is fluidly coupled with and between the control valve and the flowmeter, and the flowmeter is downstream of the cryogenic liquid passage.
10 . The test system of claim 1 , further comprising a quantity of dry ice arranged with the cryogenic heat exchanger.
11 . The test system of claim 1 , wherein
the air system further includes an air dryer;
the air circuit further extends through the air dryer; and
the cryogenic heat exchanger is between the air dryer and the combustor test section along the air circuit.
12 . The test system of claim 11 , wherein the air dryer is configured to lower a dewpoint temperature of compressed air received from the compressed air source to negative fifty degrees Fahrenheit or lower.
13 . A method for testing a component of an engine, comprising:
directing compressed air into an air passage of a cryogenic heat exchanger;
cooling the cryogenic heat exchanger with a quantity of dry ice;
directing a cryogenic liquid into a cryogenic liquid passage of the cryogenic heat exchanger;
transferring heat energy from the compressed air in the air passage, through the cryogenic heat exchanger, into the cryogenic liquid in the cryogenic liquid passage to provide cooled air; and
directing the cooled air into a housing, wherein the component of the engine is disposed within an internal chamber of the housing.
14 . The method of claim 13 , wherein
a combustor test section includes the housing; and
the internal chamber comprises a combustion chamber.
15 . A method for testing a component of an engine, comprising:
directing compressed air into an air passage of a cryogenic heat exchanger;
directing a cryogenic liquid into a cryogenic liquid passage of the cryogenic heat exchanger;
transferring heat energy from the compressed air in the air passage, through the cryogenic heat exchanger, into the cryogenic liquid in the cryogenic liquid passage to provide cooled air;
directing the cooled air into a housing, wherein the component of the engine is disposed within an internal chamber of the housing; and
directing the compressed air through a refrigeration heat exchanger of a refrigeration cooling system to precool the compressed air, wherein the refrigeration heat exchanger is upstream of the cryogenic heat exchanger.
16 . The method of claim 13 , further comprising directing the compressed air through an air dryer to lower a dewpoint temperature of the compressed air to negative fifty degrees Fahrenheit or lower, wherein the air dryer is upstream of the cryogenic heat exchanger.
17 . The method of claim 15 , wherein
a combustor test section includes the housing; and
the internal chamber comprises a combustion chamber.
18 . The method of claim 15 , further comprising directing the compressed air through an air dryer to lower a dewpoint temperature of the compressed air to negative fifty degrees Fahrenheit or lower, wherein the air dryer is upstream of the cryogenic heat exchanger.