Ejector-receiver refrigeration circuit with valve
10473370 ยท 2019-11-12
Assignee
Inventors
- Jeffrey A. Bozeman (Rochester, MI, US)
- Dana L. Anderson (Sterling Heights, MI, US)
- James Resutek (Romeo, MI, US)
Cpc classification
F25B2341/0012
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B40/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H2001/3298
PERFORMING OPERATIONS; TRANSPORTING
F25B39/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2500/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25B41/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B39/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An automobile vehicle refrigeration system combined ejector-receiver includes a container. An internal heat exchanger (IHX) is positioned entirely within the container. The IHX includes a canister. A receiver and dryer is located entirely within the container and is positioned at least partially within the canister defining a cavity between the receiver and dryer and the canister to receive a refrigerant. An ejector is positioned within the container. An ejector feed line is in communication with the cavity between the receiver and dryer and the canister, the ejector feed line receiving the refrigerant after discharge from the cavity for flow into the ejector. A refrigerant phase separator is positioned within the container. The refrigerant phase separator receives the refrigerant after discharge from the ejector for separation into each of a refrigerant gas and a refrigerant liquid.
Claims
1. An automobile vehicle refrigeration system combined ejector-receiver, comprising: a container; an internal heat exchanger (IHX) device positioned within the container, the IHX device receiving a low pressure refrigerant; a receiver and dryer located within the container and positioned at least partially within the IHX device defining a cavity between the receiver and dryer and the IHX; an ejector having a chamber and an ejector discharge line positioned within the container; an ejector feed line positioned within the container and extending from the cavity into the ejector; a bypass line positioned within the container, the bypass line in communication with the ejector feed line and the ejector and bypassing flow around the ejector inlet line to enter the chamber of the ejector.
2. The automobile vehicle refrigeration system combined ejector-receiver of claim 1, wherein the IHX further includes an inner wall and wherein the receiver and dryer positioned within the container includes an outer wall having the cavity between the inner wall and the outer wall, the cavity receiving the refrigerant as a low pressure refrigerant gas fed from an evaporator positioned external to the ejector-receiver via a gas inlet line extending into the IHX.
3. The automobile vehicle refrigeration system combined ejector-receiver of claim 2, further including an aspirated feed line of the ejector positioned in the container providing communication for flow of the low pressure refrigerant gas between the IHX and an aspirated inlet post of the ejector.
4. The automobile vehicle refrigeration system combined ejector-receiver of claim 1, further including a refrigerant phase separator positioned within the container in communication with the ejector via the ejector discharge line within the container and receiving the refrigerant discharged from the ejector for separation into each of a refrigerant gas and a low pressure refrigerant liquid.
5. The automobile vehicle refrigeration system combined ejector-receiver of claim 4, wherein the refrigerant phase separator includes: a first connection extending through a wall of the container supporting a gas outlet line in communication with an inlet of a compressor positioned external to the container to transfer the refrigerant gas to the compressor; and a second connection extending through a wall of the container supporting a liquid discharge line transferring the low pressure refrigerant liquid to an evaporator positioned external to the container, the liquid discharge line having a throttling valve positioned within the container.
6. The automobile vehicle refrigeration system combined ejector-receiver of claim 1, further including: a condenser outlet line directing flow of the refrigerant from a phase separation condenser positioned external to the container to flow into the receiver and dryer; and a receiver-dryer line positioned within the container in communication between the receiver-dryer and an ejector post of the ejector.
7. The automobile vehicle refrigeration system combined ejector-receiver of claim 6, further including a refrigerant phase separator positioned within the container, the refrigerant phase separator receiving the refrigerant discharged from the ejector.
8. The automobile vehicle refrigeration system combined ejector-receiver of claim 7, further including: a discharge line in communication with the ejector directing a discharge from the ejector into a container of the IHX device; and a low pressure liquid discharge line in communication with the container directing the refrigerant in liquid phase discharged from the heat exchanger canister into an evaporator positioned external to the container, the liquid discharge line having a throttling valve.
9. The automobile vehicle refrigeration system combined ejector-receiver of claim 8, further including: a gas outlet line extending from the container directing the refrigerant in a gas phase into an inlet of a compressor positioned external to the container; and a condenser return line directing flow of the refrigerant from a phase separation condenser positioned external to the container into the receiver and dryer.
10. An automobile vehicle refrigeration system combined ejector-receiver, comprising: a container; a heat exchanger device positioned within the container; a receiver and dryer located entirely within the container and positioned at least partially within the heat exchanger device defining a cavity between the receiver and dryer and the heat exchanger device to receive a refrigerant; an ejector having a chamber, the ejector positioned within the container in communication with the heat exchanger device, the ejector receiving the refrigerant after discharge from the receiver and dryer; and a refrigerant phase separator positioned within the container separating the refrigerant into each of a gas and a low pressure liquid; an ejector feed line positioned within the container in communication with the cavity and extending from the cavity into the ejector; a bypass line positioned within the container, the bypass line in communication with the ejector feed line and the ejector and bypassing flow around the ejector inlet line to enter the chamber of the ejector; and a throttling valve positioned in the bypass line operated to induce a swirl flow in the chamber of the ejector.
11. The automobile vehicle refrigeration system combined ejector-receiver of claim 10, further including a cold gas inlet line connected to the heat exchanger device, wherein the refrigerant as the gas is fed from an evaporator positioned external to the container into the cold gas inlet line.
12. The automobile vehicle refrigeration system combined ejector-receiver of claim 10, wherein the refrigerant phase separator is in communication with the ejector, the refrigerant phase separator receiving the refrigerant after discharge from the ejector.
13. The automobile vehicle refrigeration system combined ejector-receiver of claim 1, further including: a throttling valve positioned in the bypass line operated to induce a swirl flow in the chamber of the ejector.
14. The automobile vehicle refrigeration system combined ejector-receiver of claim 10, further including a discharge line in communication with the ejector directing a discharge of the refrigerant from the ejector into the heat exchanger device for flow into the refrigerant phase separator.
15. An automobile vehicle refrigeration system combined ejector-receiver, comprising: a container; an internal heat exchanger (IHX) positioned entirely within the container, the IHX including a canister; a receiver and dryer located entirely within the container and positioned at least partially within the canister defining a cavity between the receiver and dryer and the canister of the IHX to receive a refrigerant; an ejector having a chamber, the ejector positioned within the container; an ejector feed line in communication with the cavity between the receiver and dryer and the canister of the IHX, the ejector feed line receiving the refrigerant after discharge from the receiver and dryer for flow into the ejector; and a refrigerant phase separator positioned within the container, the refrigerant phase separator receiving the refrigerant after discharge from the ejector for separation into each of a refrigerant gas and a low pressure refrigerant liquid; a bypass line positioned within the container, the bypass line in communication with the ejector feed line and the ejector and bypassing flow around the ejector inlet line to enter the chamber of the ejector; and a throttling valve positioned in the bypass line operated to induce a swirl flow in the chamber of the ejector.
16. The automobile vehicle refrigeration system combined ejector-receiver of claim 15, further including: a refrigerant gas outlet line in communication with the refrigerant phase separator to transfer the refrigerant gas outside of the container; and a refrigerant liquid discharge line in communication with the refrigerant phase separator to transfer the low pressure refrigerant liquid outside of the container, the refrigerant liquid discharge line having a throttling valve positioned within the container.
17. The automobile vehicle refrigeration system combined ejector-receiver of claim 15, further including a low pressure liquid refrigerant discharge line for transferring the low pressure refrigerant liquid out of the container, the low pressure refrigerant discharge line having an electronically regulated throttling valve positioned within the container.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
(2)
(3)
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DETAILED DESCRIPTION
(6) The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses.
(7) Referring to
(8) Referring to
(9) Referring to
(10) The cold gas within the heat exchanger device 50 flows through the device cavity 61 and is warmed by contact with the outer wall 60. The outer wall 60 isolates hot high pressure refrigerant liquid in the receiver and dryer 52 received from the phase separation condenser 42 described in reference to
(11) An ejector discharge line 72 communicates refrigerant from the ejector 54 to the phase separator 56. The phase separator 56 receives the refrigerant and separates the refrigerant into each of a gas and a liquid phase. Refrigerant as a gas is discharged from the phase separator 56 via a gas outlet line 74 and is returned to an inlet of the compressor 14 shown in
(12) A condenser outlet line 84 directs flow from the phase separation condenser 42 shown in
(13) Referring to
(14) A refrigerant in the form of a cold gas is fed from the evaporator 46 shown in
(15) Refrigerant in a liquid phase is discharged from the heat exchanger device 98 via a liquid refrigerant discharge line 116 into the evaporator 46 shown in
(16) An automobile vehicle refrigeration system combined ejector valve and receiver of the present disclosure offers several advantages. These include the inclusion of each of an ejector, a device defining a heat exchanger, and a receiver and dryer all within a single container. A refrigerant phase separator can also be included within the container to further improve efficiency. This provides a compact package of these components and their piping to integrate the components into an efficient ejector air conditioning circuit for a production vehicle. Inlet and outlet piping connection locations to the container can be maintained between different internal arrangement aspects of the receivers.
(17) The description of the present disclosure is merely exemplary in nature and variations that do not depart from the gist of the present disclosure are intended to be within the scope of the present disclosure. Such variations are not to be regarded as a departure from the spirit and scope of the present disclosure.