On-demand micro expansion valve for a refrigeration system
09714780 ยท 2017-07-25
Assignee
Inventors
Cpc classification
F25B41/355
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B49/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2700/1933
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2600/2513
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2400/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2700/21151
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/385
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02B30/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F25B13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B49/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A refrigeration system includes a compressor, a condenser fluidly connected to the compressor, an evaporator fluidly connected to the condenser and the compressor, such that fluid may flow from the compressor through the condenser, through the evaporator, and again through the compressor. An expansion device is fluidly connected between the condenser and the evaporator, and a micro-expansion valve is also connected between the condenser and the evaporator.
Claims
1. A refrigeration system comprising: a compressor; a condenser fluidly connected to the compressor; an evaporator fluidly connected to the condenser and the compressor, such that fluid may flow from the compressor through the condenser, through the evaporator, and again through the compressor; a fixed expansion device fluidly connected between the condenser and the evaporator; and a micro-expansion valve fluidly connected between the condenser and the evaporator; wherein the micro-expansion valve is connected between the condenser and the evaporator in parallel with the fixed expansion device; and wherein the fixed expansion device and the micro-expansion valve are connected to an inlet of the evaporator via a single fluid outlet, the single fluid outlet defining a single fluid flow path from the fixed expansion device and the micro-expansion valve upstream of the evaporator.
2. The refrigeration system according to claim 1, wherein the fixed expansion device and the micro-expansion valve are connected to the condenser via a single fluid inlet.
3. The refrigeration system according to claim 1, wherein the fixed expansion device is configured to provide a fixed rate of fluid flow therethrough.
4. The refrigeration system according to claim 1, wherein the fixed expansion device is a fixed orifice.
5. The refrigeration system according to claim 1, wherein the fixed expansion device is a capillary tube.
6. The refrigeration system according to claim 1, wherein the micro-expansion valve is configured to be selectively opened and closed in response to an increased transient cooling load so as to provide a variable rate of fluid flow therethrough.
7. The refrigeration system according to claim 1, further including a superheat controller fluidly connected between the evaporator and the compressor.
8. The refrigeration system according to claim 1, wherein the superheat controller includes one of a temperature sensor, a pressure sensor, and a combination temperature/pressure sensor.
9. The refrigeration system according to claim 1, wherein the superheat controller is configured to sense a condition of refrigerant gas moving between the evaporator and the compressor.
10. A refrigeration system comprising: a compressor; a condenser fluidly connected to the compressor; an evaporator fluidly connected to the condenser and the compressor, such that fluid may flow from the compressor through the condenser, through the evaporator, and again through the compressor; and a micro-expansion valve fluidly connected between the condenser and the evaporator; wherein the micro-expansion valve includes a normally open first valve port defining a fixed expansion device and a second valve port configured to provide a variable rate of fluid flow therethrough; and wherein the micro-expansion valve is connected to an inlet of the evaporator via a single fluid outlet, the single fluid outlet defining a single fluid flow path from the first and second valve ports upstream of the evaporator.
11. The refrigeration system according to claim 10, wherein the normally open first valve port is configured to provide a fixed rate of fluid flow therethrough.
12. The refrigeration system according to claim 10, wherein the second valve port is configured to be selectively opened and closed in response to an increased transient cooling load.
13. The refrigeration system according to claim 10, further including a superheat controller fluidly connected between the evaporator and the compressor.
14. The refrigeration system according to claim 13, wherein the superheat controller includes one of a temperature sensor, a pressure sensor, and a combination temperature/pressure sensor.
15. The refrigeration system according to claim 13, wherein the superheat controller is configured to sense a condition of refrigerant gas moving between the evaporator and the compressor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(8) Referring now to the drawings, there is illustrated in
(9) The compressor 14 may be conventional in the art and is configured to compress the low pressure gas refrigerant from the evaporator 12 and move the refrigerant through the refrigeration system 10.
(10) Relatively high pressure gas is discharged from an outlet of the compressor 14 to an inlet of a condenser 16. The condenser 16 may be conventional in the art and is configured to remove heat from the relatively high pressure gas as it passes therethrough. As a result, the high pressure gas condenses and becomes a relatively high pressure liquid.
(11) The high pressure liquid then moves from an outlet of the condenser 16 to an expansion device 18, such as a capillary tube. Other expansion devices, such as for example a fixed orifice, may be used in the refrigeration system 10 in lieu of a capillary tube. The expansion device 18 is configured to restrict the flow of fluid therethrough and, as a result, the fluid pressure is lowered as the fluid leaves the expansion device 18. The relatively low pressure fluid is then returned to the inlet of the evaporator 12, and the refrigeration cycle is repeated. The refrigeration system 10 may also include a variety of other well known components to facilitate and optimize the process.
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(14) The cover plate 152 includes electrical ports 158 for passing respective electrical wires therethrough for connection to respective bond pads (not shown) formed on spaced apart portions of the intermediate plate 154, thereby permitting an electric current to pass therebetween upon connection to, and application of, electrical power from a source of electrical power (not shown). The cover plate 152 also includes a common fluid port 160.
(15) The intermediate plate 154 includes an actuator 162 having a plurality of actuator ribs 164 formed in herringbone pattern. A central rib region 166 of the ribs 164 is joined to a moveable central spine 168, and a displaceable actuator arm 170 is operatively coupled to the spine 168. The intermediate plate 154 may also include one or more air flow passages 172 for purging air from an open end rib region 174 of the ribs 164 and out of the micro-expansion valve 22.
(16) The actuator arm 170 includes a pivot anchor or hinge 176 that bends or flexes to accommodate arcuate movement of the actuator arm 170 in a plane that is substantially parallel to the cover plate 152, the intermediate plate 154, and the base plate 156. The actuator arm 170 also includes a valve element 78 having slots 80 and 82 for controlling the flow of fluid through the micro-expansion valve 22 and a plurality of pressure equalization openings 182 for reducing or preventing pressure imbalances of the valve element 78 that would otherwise tend to cause movement of the actuator arm 170 out of the plane of normal arcuate motion during actuation and un-actuation thereof.
(17) As used in the description of the invention and the appended claims, the terms un-actuated and un-actuation are defined as a steady-state condition of the microvalve device prior to application of electrical power to; i.e., prior to the actuation of the microvalve device actuator.
(18) An inner surface 184 of the base plate 156 includes a plurality of fluid ports for permitting passage of fluid through the micro-expansion valve 22, including a normally open fluid port 186, and a normally closed fluid port 188. The inner surface 184 of the base plate 156 also includes an actuator cavity 190.
(19) During actuation of the microvalve device 150, the ribs 164 are heated by passing an electrical current therethrough. The ribs 164 then undergo thermal expansion and elongate, which urges the spine 168 and the attached actuator arm 170 away from the ribs 164 (to the right when viewing
(20) When the electrical current is removed from the ribs 164, the ribs 164 cool and contract, urging the central spine 168 back toward the ribs 164 (to the left when viewing
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(23) In lieu of the valve element 78, the micro-expansion valve 150 includes a valve element 178 formed at a distal end of the actuator arm 170. The valve element 178 includes a slot 80 for controlling the flow of fluid the normally closed fluid port 188. The valve element 178 is also shorter than the valve element 78 and does not cover the normally open fluid port 186.
(24) The micro-expansion valve 150 is configured to operate as the expansion device in the refrigeration system 30, wherein the normally open fluid port 186 functions as a fixed orifice providing a fixed flow path and the normally closed fluid port 188 is configured to operate as a variable flow path in parallel to the fixed flow path when an increase in cooling demand beyond the steady state operating load is detected by the superheat controller 24. Like the expansion device 18, the normally open fluid port 186 always permits a minimum amount of fluid to flow from the common port 160 through the normally open port 186 and through the refrigeration system 30. The normally open fluid port 186 may have any desired size, which will be determined by the anticipated normal operating conditions of the refrigeration system 30. In a steady state, no fluid flows through the normally closed fluid port 188. When an increased load demand condition occurs, the normally closed fluid port 188 may be opened to meet the increased load to allow flow from the common port 160 through the normally closed fluid port 188. Alternatively, the fluid port 188 of the micro-expansion valve 150 may be configured to operate in a modulating mode, wherein the fluid flow can be either (1) zero, i.e., an off mode, (2) a maximum value, i.e., a continuously on mode, or (3) a fluid flow rate greater than zero but less than the flow rate in the continuously on mode. Accordingly, the amount of fluid flowing from the condenser 16 to the evaporator 12 may be adjusted in accordance with varying operating conditions of the refrigeration system 30, including normal operating conditions and when experiencing an increased transient load.
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(27) The principle and mode of operation of this invention have been explained and illustrated in its preferred embodiments. However, it must be understood that this invention may be practiced otherwise than as specifically explained and illustrated without departing from its spirit or scope.