Electronic block valve
View Patent ↗An electrically controlled expansion valve package ( 10 ) comprises an expansion valve ( 30 ), sensors ( 32, 33, 36 ) and control electronics ( 35 ) all included in a monolithic package that greatly simplifies installation, while also enabling performance enhancements. The expansion valve is controlled by control electronics that, among other things, determines from pressure and temperature sensors the type or nature of the refrigerant being used in the refrigeration system for adapting control of the expansion valve to the refrigerant.
1. An electronic valve ( 10 ) for controlling the flow of a refrigerant through an evaporator, comprising:
a valve body ( 12 ) having a supply passage ( 14 ) connecting inlet and outlet ports ( 16 , 18 ) and a return passage connecting inlet and outlet ports ( );
an electrically actuated expansion valve ( 30 ) mounted to the valve body for controlling flow of refrigerant through the supply passage;
at least one pressure sensor ( 32 ) mounted to the valve body and positioned to sense fluid pressure in the return passage;
at least one temperature sensor ( 33 ) mounted to the valve body and positioned to sense the temperature of fluid in the return passage;
a temperature sensor ( 36 ) mounted to the valve body and positioned to sense the temperature of fluid in the supply passage; and
onboard electronics ( 25 ) mounted to the valve body for controlling the expansion valve in response to pressure and temperature signals received from the pressure and temperature sensors, the onboard electronics being configured to adjust operating parameters as a function of the sensor outputs so as to adapt the valve to different types of refrigerants.
2. A valve according to claim 1 , wherein expansion valve ( 30 ) is a cartridge expansion valve threaded into a threaded bore in the valve body.
3. A valve according to claim 1 , wherein the electronics 25 include a processor programmed to provide one or more of pressure/temperature superheat control, two temperature superheat control, and subcooling control.
4. A valve according to claim 1 , wherein the electronics provide for fault detection and/or diagnostics.
5. A valve according to claim 1 , wherein the electronics is provided with a communications interface for providing system and/or performance information to an external device.
6. A valve according to claim 1 , wherein the electronics include a memory for storing preset parameters that can be reset in the field.
7. An expansion valve apparatus ( 10 ) comprising an electrically controlled valve ( 30 ) for controlling flow of refrigerant through a supply line;
at least one pressure sensor ( 32 ) for sensing fluid pressure in a suction line, at least one temperature sensor ( 33 ) for sensing fluid temperature in the suction line, a temperature sensor mounted to the valve body and positioned to sense the temperature of fluid in the supply passage, and electronics ( 25 ) for controlling the expansion valve in response to pressure and temperature signals received from the pressure and temperature sensors, the electronics including different control parameters for controlling the expansion valve for respective types of refrigerants, and a learning routine for determining which control parameters to use from an analysis of the pressure and temperature signals received from the pressure and temperature sensors.
8. A valve apparatus according to claim 7 , wherein the electronics 25 include a processor programmed to provide one or more of pressure/-temperature superheat control, two temperature superheat control, and subcooling control.
9. A valve apparatus according to claim 7 , wherein the electronics provide for fault detection and/or diagnostics.
10. A valve apparatus according to claim 7 , wherein the electronics is provided with a communications interface for providing system and/or performance information to an external device.
11. A valve apparatus according to claim 7 , wherein the electronics include a memory for storing preset parameters that can be reset in the field.