Microchannel suction line heat exchanger
10514189 ยท 2019-12-24
Assignee
Inventors
Cpc classification
F28D7/1653
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B40/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/0202
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2255/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/1684
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25B40/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28B1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A heat exchanger includes a plurality of first refrigerant flow tubes in fluid communication with one of a suction line and a liquid line, and a second refrigerant flow tube in fluid communication with the other of the suction line and the liquid line. Each of the first refrigerant flow tubes and the second refrigerant flow tube have microchannels, the second refrigerant flow tube positioned between and cooperates with the first refrigerant flow tubes to heat vapor refrigerant flowing in the suction line, the refrigerant directed to or exiting the second refrigerant flow tube flows around a portion of at least one of the first refrigerant flow tubes.
Claims
1. A heat exchanger comprising: a refrigerant header including a header section; a plurality of first refrigerant flow tubes in fluid communication with one of a suction line and a liquid line and with the header; and a second refrigerant flow tube in fluid communication with the other of the suction line and the liquid line and with the header, each of the first refrigerant flow tubes and the second refrigerant flow tube having microchannels, the second refrigerant flow tube positioned between and cooperating with the first refrigerant flow tubes to heat vapor refrigerant flowing in the suction line, wherein the second refrigerant flow tube is shorter in length than the first refrigerant flow tubes such that refrigerant directed to or exiting the second refrigerant flow tube is configured to flow through the header around a portion of at least one of the first refrigerant flow tubes within the header section on at least two sides of the at least one of the first refrigerant flow tubes.
2. The heat exchanger of claim 1, wherein the first refrigerant flow tubes are in fluid communication with the suction line to receive vapor refrigerant, and the second refrigerant tube is in fluid communication with the liquid line to receive liquid refrigerant.
3. The heat exchanger of claim 2, wherein the heat exchanger is defined by an elongated body and includes the refrigerant header disposed on one end of the elongated body and another refrigerant header disposed on another end of the elongated body.
4. The heat exchanger of claim 3, wherein each of the headers defines a compartment adjacent ends of the first and second refrigerant flow tubes to separately receive vapor refrigerant and liquid refrigerant from the respective flow tubes.
5. The heat exchanger of claim 3, wherein each header includes a vapor header section in fluid communication with the first refrigerant flow tubes and the suction line.
6. The heat exchanger of claim 5, wherein the header section defines a liquid header section of one of the headers, wherein the other header further includes another liquid header section, and wherein each liquid header section is disposed adjacent the vapor header section in the corresponding header and in fluid communication with the second refrigerant flow tube and the liquid line.
7. The heat exchanger of claim 6, wherein the vapor header section and the liquid header section are aligned axially along the elongated body and separated from each other by a partition.
8. The heat exchanger of claim 3, wherein the header is in fluid communication with the first refrigerant flow tubes and the second refrigerant flow tube.
9. The heat exchanger of claim 8, wherein the header defines a vapor header section configured to receive vapor refrigerant and a liquid header section configured to receive liquid refrigerant such that vapor and liquid refrigerant flow through the heat exchanger in one of a counterflow or a unidirectional flow arrangement, and wherein the first refrigerant flow tubes extend into the header.
10. The heat exchanger of claim 1, further comprising a refrigeration circuit in fluid communication with the heat exchanger, the refrigeration circuit including an evaporator, a compressor, and a condenser fluidly connected and arranged in series with each other, the liquid line fluidly connecting the evaporator to the condenser and the suction line fluidly connecting the compressor to the evaporator.
11. A heat exchanger comprising: a plurality of vapor refrigerant tubes receiving vapor refrigerant; a liquid refrigerant tube sandwiched between the vapor refrigerant tubes and configured to receive a liquid refrigerant, the liquid refrigerant tube elongated in a longitudinal direction; a first header positioned adjacent one end of the vapor refrigerant tubes and the liquid refrigerant tube; and a second header positioned adjacent the other end of the vapor refrigerant tubes and the liquid refrigerant tube, wherein the first header and the second header are configured to receive vapor refrigerant and liquid refrigerant adjacent both ends of the vapor and liquid refrigerant tubes, wherein one or both of the first and second headers includes longitudinally-spaced end walls and a partition that is positioned between the end walls and that separates a vapor header section and a liquid header section.
12. The heat exchanger of claim 11, and wherein each of the first header and the second header includes a partition defining a vapor header section receiving vapor refrigerant and a liquid header section receiving liquid refrigerant.
13. The heat exchanger of claim 12, wherein a portion of the vapor refrigerant tubes are in direct thermal contact with liquid refrigerant in the liquid header section.
14. The heat exchanger of claim 13, wherein liquid refrigerant directed to or exiting the liquid refrigerant tube flows around a portion of at least one of the vapor refrigerant tubes.
15. The heat exchanger of claim 12, wherein the vapor header section and the liquid header section are positioned side-by-side in at least one of the first header and the second header.
16. The heat exchanger of claim 11, wherein the liquid refrigerant tube is in fluid communication with the liquid line to receive liquid refrigerant.
17. The heat exchanger of claim 11, wherein the heat exchanger is defined by an elongated body, and wherein the first header is positioned adjacent a first end of the elongated body and the second header is positioned adjacent a second end of the elongated body.
18. The heat exchanger of claim 11, further comprising a refrigeration circuit including an evaporator, a compressor, and a condenser fluidly connected and arranged in series with each other, a liquid line fluidly connecting the evaporator to the condenser and a suction line fluidly connecting the compressor to the evaporator, the heat exchanger in fluid communication with and receiving vapor refrigerant from the evaporator, and receiving liquid refrigerant from another portion of the refrigerant circuit.
19. The heat exchanger of claim 11, wherein the vapor refrigerant tubes terminate at the partition, and the liquid refrigerant flow tube terminates at one of the end walls.
20. The heat exchanger of claim 11, wherein the vapor header section is at least partially bounded by one of the end walls and the partition, and the liquid header section is at least partially bounded by the other of the end walls and the partition.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(7) Before any embodiments of the invention are explained in detail, it is to be understood that the invention is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The invention is capable of other embodiments and of being practiced or of being carried out in various ways.
DETAILED DESCRIPTION
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(9) The refrigeration circuit 10 also includes a receiver 25 located downstream of the condenser 20 to accumulate and store liquid refrigerant and an expansion valve 30 downstream of the receiver 25. An evaporator 35 receives refrigerant from the receiver 25 via a liquid line 37 and cools a medium (e.g., an airflow through a refrigerated display case) via heat exchange between refrigerant flowing through the evaporator 35 and the medium. The compressor 15 is fluidly connected to the evaporator by a suction line 38. An accumulator 40 may be disposed upstream of the compressor 15 and downstream of the evaporator 35 to store any liquid refrigerant not vaporized in the evaporator 35 and to deliver gaseous refrigerant to the compressor 15. As one of ordinary skill in the art will appreciate, the refrigeration circuit 10 can include other components depending on the desired characteristics of the refrigeration circuit 10 and the conditioning needs for which the refrigeration circuit 10 is being used.
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(11) As illustrated in
(12) Specifically, each illustrated header 60 is defined by a top wall 80, a bottom wall 85, side walls 90 extending between the top and bottom walls 80, 85 (as viewed in
(13) With reference to
(14) The liquid header section 110 is bounded by the top wall 80, the bottom wall 85, the side walls 90, the inner end wall 95, and the partition 115. As shown in
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(16) The liquid port 135 of one header 60 defines an entrance for liquid refrigerant to the heat exchanger 50, and the liquid port 135 of the other header 60 defines an exit for liquid refrigerant from the heat exchanger 50. The top wall 80 includes an aperture 147 to allow refrigerant flow between the liquid header section 110 and the liquid port 135. As shown in
(17) With reference to
(18) Generally, each of the microchannel vapor and liquid tubes 70, 75 has a plurality of relatively small internal channels 160 that transfer heat between the liquid and vapor refrigerant in the respective tubes. As will be understood by one of ordinary skill in the art, the microchannels 160 define multiple internal passageways through the tubes 70, 75 that are smaller in size than the internal passageway of a coil in a conventional fin-and-tube evaporator. As illustrated, the microchannels 160 are defined by a rectangular cross-section, although other cross-sectional shapes are possible and considered herein. For example, each microchannel 160 of the illustrated tubes 70, 75 has a width of approximately 1.5 mm and a height of approximately 6 mm. In other constructions, the microchannels 160 may be smaller or larger depending on desired heat transfer characteristics for the heat exchanger 50. Thus, the quantity of microchannels 160 within each tube 70, 75 will depend on the width of the corresponding tube 70, 75 and the size of each microchannel.
(19) Due to the flattened profile of each tube section 65, the tubes 70, 75 include one row of microchannels 160 spaced laterally across the width the tubes 70, 75, although other constructions of the heat exchanger 50 can include two or more rows of microchannels 160. The vapor and liquid tubes 70, 75 can be sized to accommodate the heat transfer requirements of the application for which the heat exchanger 50 is used. The precise length, width, and quantity of microchannels 160 are a function of the amount of refrigerant needed for the particular application to maximize heat transfer between the tubes 70, 75 while minimizing system refrigerant pressure drop. The microchannels 160 are fluidly coupled to and extend between the vapor and liquid header sections 105, 110.
(20) As shown in
(21) The illustrated heat exchanger 50 provides a longitudinal counterflow arrangement with respect to liquid refrigerant entering the heat exchanger 50 from the condenser 20 and vapor refrigerant entering the heat exchanger 50 from the evaporator 35. Alternatively, vapor refrigerant and liquid refrigerant can flow in the same direction in a parallel flow arrangement through the heat exchanger 50, depending on the desired heat transfer characteristics within the heat exchanger 50. As illustrated, the vapor header 60 and the liquid header 60 of each header 60 provide an efficient use of space, enhanced heat transfer, and system connection flexibility.
(22) Generally, liquid refrigerant entering the liquid header 60 is in a subcooled state and is further subcooled upon exiting the liquid tube 75 by heat exchange with the vapor refrigerant in the adjacent vapor tubes 70. The partition 115 separates the vapor header section 105 from the liquid header section 110 so that vapor and liquid refrigerant do not commingle in the headers 60. The vapor header section 105 is in fluid communication with the vapor tubes 70 and receives vapor refrigerant flowing to or from the vapor tubes 70. The liquid header section 110 is in fluid communication with the liquid tube 75 and receives liquid flowing to or from the liquid tube 75.
(23) In counterflow operation of the heat exchanger 50, condensed liquid refrigerant from the condenser 20 enters the liquid port 135 of one of the headers 60, flows through the adjacent liquid header section 110, and enters the openings 125 of the liquid tube 75. Vapor refrigerant from the evaporator 35 enters the vapor port 130 of the other header 60, flows through the adjacent vapor header section 105, and enters the openings 120 of the vapor tubes 70. As a result, vapor refrigerant in the vapor tubes 70 is heated via heat transfer from the warmer liquid refrigerant flowing within the sandwiched liquid tube 75. Subcooled liquid refrigerant exits the liquid tube 75 at the opposite openings 125, flows through the adjacent liquid header section 110, and out the liquid port 135 to the expansion valve 30. Heated (e.g., superheated) vapor refrigerant exits the vapor tubes 70 at the opposite openings 120, flows through the adjacent vapor header section 110, and out the vapor port 130 to the compressor 15.
(24) Parallel, unidirectional flow operation of the heat exchanger 50 is similar to counterflow operation, except that vapor refrigerant and liquid refrigerant flow through the tube section 65 in the same direction. Specifically, in parallel, unidirectional flow operation of the heat exchanger 50, condensed liquid refrigerant from the condenser 20 enters the liquid port 135 of one of the headers 60, flows through the adjacent liquid header section 110, and enters the openings 125 of the liquid tube 75. Vapor refrigerant from the evaporator 35 enters the vapor port 130 of the same header 60, flows through the adjacent vapor header section 105, and enters the openings 120 of the vapor tubes 70. Like counterflow operation, vapor refrigerant in the vapor tubes 70 is heated by heat exchange with liquid refrigerant flowing within the sandwiched liquid tube 75. Heated vapor and subcooled liquid refrigerant exits the tube section 65 through respective openings 120, 125 in the same header 60. Vapor refrigerant then flows through the vapor header section 105 and out the vapor port 130 to the compressor 15, and liquid refrigerant flows through the adjacent liquid header section 110 and out the liquid port 135 to the expansion valve 30.
(25) The microchannel vapor and liquid tubes 70, 75 of the heat exchanger 50, whether used in a counterflow or parallel unidirectional flow setup, maximize the heat transfer surface between the tubes 70, 75 while minimizing the size of the heat exchanger 50. In this manner, the cooling capacity of the refrigeration circuit 10 is higher relative to conventional circuits while reducing the power needed to operate the circuit.
(26) Various features and advantages of the invention are set forth in the following claims.