Brazed plate heat exchanger for water-cooled heat rejection in a refrigeration cycle
10401094 ยท 2019-09-03
Assignee
Inventors
- Michael F. Taras (Fayetteville, NY, US)
- Mark J. Perkovich (Fayetteville, NY, US)
- Mel Woldesemayat (Liverpool, NY, US)
Cpc classification
F28F3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/39
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B9/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2400/13
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D9/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B1/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2309/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2275/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0073
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2339/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F21/083
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F21/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B1/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A water-cooled heat rejection heat exchanger is provided and includes a housing having first and second opposing end plates and sidewalls extending between the end plates to form an enclosure, at least the first end plate including first and second inlet/outlet pairs for first and second fluids, respectively, a plurality of plates disposed within the enclosure between the first and second end plates to define a first fluid pathway disposed in fluid communication with the first inlet/outlet pair and a second fluid pathway disposed in fluid communication with the second inlet/outlet pair and a plurality of brazed formations disposed between adjacent ones of the first end plate, the plurality of plates and the second end plate to isolate the first fluid pathway from the second fluid pathway.
Claims
1. A refrigeration unit, comprising: a vapor compression cycle unit including an evaporator, an air-cooled heat rejection heat exchanger and a compressor; and a water-cooled brazed plate heat rejection heat exchanger operably disposed between the compressor and the evaporator receiving high temperature fluid from the compressor and low temperature fluid from an external source, whereby the high temperature fluid is cooled via thermal communication with the low temperature fluid and is flown from the compressor to the evaporator, the water-cooled brazed plate heat rejection heat exchanger being formed to define high and low temperature fluid pathways and including first and second pluralities of brazed joint formations to prevent fluid entering the high temperature fluid pathway at a high temperature side of the water-cooled brazed plate heat rejection heat exchanger from flowing into the low temperature fluid pathway at a low temperature side of the water-cooled brazed plate heat rejection heat exchanger and vice versa, wherein: the compressor comprises at least first and second compression stage compressors, and the air-cooled heat rejection heat exchanger comprises an air-cooled gas cooler/condenser operably disposed downstream from the second stage compressor and an air-cooled intercooler abutting the air-cooled gas cooler/condenser in an airflow and operably disposed downstream from the first stage compressor, the water-cooled brazed plate heat rejection heat exchanger comprises a primary water-cooled braze plate heat rejection heat exchanger positioned downstream from the second stage compressor and directly downstream from the air-cooled gas cooler/condenser and a secondary water-cooled braze plate heat rejection heat exchanger, which is separate from the primary water-cooled brazed plate heat rejection heat exchanger and positioned downstream from the first stage compressor and directly downstream from the air-cooled intercooler.
2. The refrigeration unit according to claim 1, wherein the high and low temperature pathways provide different cross-sectional areas for the high and low temperature fluids.
3. The refrigeration unit according to claim 1, wherein the high temperature fluid comprises carbon dioxide and the low temperature fluid comprises water.
4. The refrigeration unit according to claim 1, further comprising: a flash tank; a high pressure regulating valve operably interposed between the primary water-cooled brazed plate heat rejection heat exchanger and the flash tank; and an evaporator expansion valve operably interposed between the flash tank and the evaporator.
5. The refrigeration unit according to claim 4, wherein the flash tank separates cooled gaseous high temperature fluid from liquid high temperature fluid, delivers the gaseous high temperature fluid to the compressor and delivers the liquid high temperature fluid toward the evaporator via the evaporator expansion valve.
6. The refrigeration unit according to claim 1, wherein the vapor compression cycle unit comprises: a motor to drive the compressor; and a variable frequency drive to actuate the motor to drive the compressor at varying speeds, the variable frequency drive being disposed at one of multiple positions.
7. A refrigeration unit, comprising: a vapor compression cycle unit including an evaporator, an air-cooled heat rejection heat exchanger comprising an air-cooled gas cooler/condenser and an air-cooled intercooler abutting the air cooled gas cooler/condenser in an airflow and a compressor comprising first and second stages; and separate primary and secondary water-cooled brazed plate heat rejection heat exchangers respectively disposed on opposite sides of the air-cooled heat rejection heat exchanger and each comprising: a housing having first and second opposing end plates and sidewalls extending between the end plates to form an enclosure, at least the first end plate including first and second inlet/outlet pairs for first and second fluids, respectively; a plurality of plates disposed within the enclosure between the first and second end plates to define a first fluid pathway disposed in fluid communication with the first inlet/outlet pair and a second fluid pathway disposed in fluid communication with the second inlet/outlet pair; and first and second pluralities of brazed joint formations disposed between adjacent ones of the first end plate, the plurality of plates and the second end plate to isolate the first fluid pathway from the second fluid pathway, the primary water-cooled brazed plate heat rejection heat exchanger being positioned downstream from the second stage of the compressor and directly downstream from the air-cooled gas cooler/condenser, the secondary water-cooled braze plate heat rejection heat exchanger being positioned downstream from the first stage of the compressor and directly downstream from the air-cooled intercooler, the separate primary and secondary water-cooled brazed plate heat rejection heat exchangers receiving high temperature fluid from the compressor and low temperature fluid from an external source, whereby the high temperature fluid is cooled via thermal communication with the low temperature fluid and is flown from the compressor to the evaporator, and the separate primary and secondary water-cooled brazed plate heat rejection heat exchangers being formed to define the first and second fluid pathways as high and low temperature fluid pathways and the first and second pluralities of brazed joint formations to prevent fluid entering the high temperature fluid pathway at a high temperature side of the water-cooled brazed plate heat rejection heat exchanger from flowing into the low temperature fluid pathway at a low temperature side of the water-cooled brazed plate heat rejection heat exchanger and vice versa.
8. The refrigeration unit according to claim 7, wherein the inlet/outlet pairs for the first and second fluids and the pathways provide different cross-sectional areas for the first fluid and the second fluid.
9. The refrigeration unit according to claim 7, wherein the plurality of plates are fabricated from stainless steel.
10. The refrigeration unit according to claim 7, wherein the first fluid and the second fluid thermally communicate.
11. The refrigeration unit according to claim 7, wherein the first fluid comprises water and the second fluid comprises carbon dioxide.
12. The refrigeration unit according to claim 7, wherein the inlet/outlet pair for the first fluid is located on a same end plate as the inlet/outlet pair for the second fluid.
13. The refrigeration unit according to claim 7, wherein the inlet and outlet for at least one of the first fluid and the second fluid are located on opposite ends of the separate primary and secondary water-cooled brazed plate heat rejection heat exchanger.
14. A refrigeration unit, comprising: a vapor compression cycle unit including an evaporator, an air-cooled heat rejection heat exchanger comprising an air-cooled gas cooler/condenser and an air-cooled intercooler abutting the air cooled gas cooler/condenser in an airflow and a compressor operably disposed between the evaporator and the condenser; and separate primary and secondary water-cooled brazed plate heat rejection heat exchangers respectively disposed directly downstream from the air-cooled gas cooler/condenser and the air-cooled intercooler and each comprising: a housing having first and second opposing end plates and sidewalls extending between the end plates to form an enclosure, at least the first end plate including high and low temperature inlet/outlet pairs for high and low temperature fluids, respectively; a plurality of plates disposed within the enclosure between the first and second end plates to define a high temperature fluid pathway disposed in fluid communication with the high temperature inlet/outlet pair and a low temperature fluid pathway disposed in fluid communication with the low temperature inlet/outlet pair; and first and second pluralities of brazed joint formations disposed between adjacent ones of the first end plate, the plurality of plates and the second end plate to prevent fluid entering the high temperature fluid pathway at a high temperature side of the separate primary and secondary water-cooled brazed plate heat rejection heat exchanger from flowing into the low temperature fluid pathway at a low temperature side of the water-cooled brazed plate heat rejection heat exchanger and vice versa.
15. The refrigeration unit according to claim 14, wherein the inlet/outlet pairs for the high and low temperature fluids and the pathways are providing different cross-sectional areas for the first fluid and the second fluid.
16. The refrigeration unit according to claim 14, wherein the plurality of plates are fabricated from stainless steel.
17. The refrigeration unit according to claim 14, wherein the high temperature fluid comprises carbon dioxide and the low temperature fluid comprises water.
18. The refrigeration unit according to claim 14, wherein the inlet/outlet pair for the high temperature fluid is located on a same end plate as the inlet/outlet pair for the low temperature fluid.
19. The refrigeration unit according to claim 14, wherein the inlet and outlet for at least one of the high temperature fluid and the low temperature fluid are located on opposite ends of the water-cooled brazed plate heat rejection heat exchanger.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The subject matter which is regarded as the invention is particularly pointed out and distinctly claimed in the claims at the conclusion of the specification. The foregoing and other features, and advantages of the invention are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
(2)
(3)
(4)
(5) The detailed description explains embodiments of the invention, together with advantages and features, by way of example with reference to the drawings.
DETAILED DESCRIPTION OF THE INVENTION
(6) With reference to
(7) The vapor compression cycle unit 12 may further include a heat rejection heat exchanger 13, such as a water-cooled brazed plate heat rejection heat exchanger 50. The water-cooled brazed plate heat rejection heat exchanger 50 is operably disposed between the compressor 40 and the evaporator 20 and is configured to be in fluid communication with the air-cooled heat rejection heat exchanger 30 and sources of high temperature fluid (e.g. compressor) and low temperature fluid (e.g. water tank), respectively. Within the water-cooled brazed plate heat rejection heat exchanger 50, the high temperature fluid is cooled via thermal communication with the low temperature fluid and the cooled high temperature fluid is then flown from the water-cooled brazed plate heat rejection heat exchanger 50 toward the evaporator 20. As will be described below with reference to
(8) The high temperature fluid is flown from the high temperature fluid source (typically compressor) to the air-cooled heat rejection heat exchanger 30 in thermal communication with ambient air, when an associate fan 140 is operational, through the water-cooled brazed plate heat rejection heat exchanger 50 in thermal communication with the low temperature fluid (when in operation) flown from the low temperature source (such as water tank) and then to the evaporator 20.
(9) In accordance with embodiments, the high temperature fluid may include conventional refrigerants operating below the critical point and condensing during heat transfer interaction in the air-cooled heat rejection heat exchanger 30 and the water-cooled brazed plate heat rejection heat exchanger 50 (while in operation) or refrigerants, such carbon dioxide, operating below the critical point, at least for a portion of the time and above the critical point for another portion of the time, and the low temperature fluid may include water or glycol solutions. While operating above the critical point, refrigerant remains in a single phase. However, it is to be understood that other fluids and/or gases may be used interchangeably within the scope of the description provided herein.
(10) As shown in
(11) The water-cooled brazed plate heat rejection heat exchanger 50 is operably disposed downstream from the condenser/gas cooler 31. Refrigerant leaving the condenser/gas cooler 31 is transmitted to the water-cooled brazed plate heat rejection heat exchanger 50 for further cooling operations therein, when each heat exchanger is actively engaged in the heat transfer interaction, with ambient air and a source of the cold fluid respectively. However, the condenser/gas cooler 31 and the water-cooled brazed plate heat rejection heat exchanger 50 can be used interchangeably depending on availability of the ambient air and cold fluid source. For instance, while onboard a ship, only a cold fluid source may be available, rendering only water-cooled brazed plate heat rejection heat exchanger 50 operational.
(12) A secondary water-cooled brazed plate heat rejection heat exchanger 60 may be operably interposed between the intercooler 32 and the second stage compressor 42. Cooled refrigerant vapor from the intercooler 32 may be flown to the second stage compressor 42 passing through the secondary water-cooled brazed plate heat rejection heat exchanger 60 for further cooling communication therein. Similar to the condenser/gas cooler 31 and the water-cooled brazed plate heat rejection heat exchanger 50, intercooler 32 and secondary water-cooled brazed plate heat rejection heat exchanger 60 may operate simultaneously or alternately with one another depending on the low temperature source availability.
(13) It also has to be understood that the water-cooled brazed plate heat rejection heat exchanger 50 and the secondary water-cooled brazed plate heat rejection heat exchanger 60 may both be disposed upstream of the condenser/gas cooler 31 and the intercooler 32, respectively. Further, the water-cooled brazed plate heat rejection heat exchanger 50 and the secondary water-cooled brazed plate heat rejection heat exchanger 60 may be two separate units, as depicted on
(14) The vapor compression cycle unit 12 may further include a flash tank 70, a high pressure regulating valve 80, which is operably interposed between the water-cooled brazed plate heat rejection heat exchanger 50 and the flash tank 70, and an evaporator expansion valve 90. The evaporator expansion valve 90 is operably interposed between the flash tank 70 and the evaporator 20. The high pressure regulating valve 80 conveys the cooled high temperature fluid in the 2-phase thermodynamic state to the flash tank 70, which is configured to separate the gaseous phase from the liquid phase. Once the separation is complete, the flash tank 70 communicates the gaseous phase to the compressor 40 by way of a shutoff valve and check valve combination 95 and directs the liquid phase to the evaporator 20 via the evaporator expansion valve 90. The evaporator expansion valve 90 communicates the further expanded high temperature fluid in the 2-phase thermodynamic state to the evaporator 20. A probe 100, such as a pressure gage or a thermocouple, may be operably interposed between the high pressure regulating valve 80 and the flash tank 70.
(15) The container refrigeration unit 10 and/or the vapor compression cycle unit 12 may further include a motor 110 to drive the compressor 40 and a variable frequency drive 120. The variable frequency drive 120 serves to actuate the motor 110 to drive the compressor 40 at varying speeds. In accordance with embodiments, the variable frequency drive 120 may be disposed at one or more of multiple positions including, but not limited to, a position #1 proximate to the evaporator 20, a central position #2, a position #3 proximate to the flash tank 70, a position #4 proximate to the secondary water-cooled brazed plate heat rejection heat exchanger 60, a position #5 proximate to the water-cooled brazed plate heat rejection heat exchanger 50 and an external position #6.
(16) As shown in
(17) With reference to
(18) The plurality of plates 52 along with the other components of the water-cooled brazed plate heat rejection heat exchanger 50 are typically formed of stainless steel or another similar material. The plurality of plates 52 is disposed within the enclosure formed between the first and second end plates 511 and 512 to define the high and low temperature fluid pathways 501 and 502 with the high temperature fluid pathway 501 being disposed in fluid communication with the first inlet/outlet pair 53 and the low temperature fluid pathway 502 being disposed in fluid communication with the second inlet/outlet pair 54. The plurality of brazed formations 503 is formed between adjacent ones of the first end plate 511, the plurality of plates 52 and the second end plate 512 to isolate the first fluid pathway 501 from the second fluid pathway 502 and vice versa.
(19) In accordance with embodiments and, as shown in
(20) While the invention has been described in detail in connection with only a limited number of embodiments, it should be readily understood that the invention is not limited to such disclosed embodiments. Rather, the invention can be modified to incorporate any number of variations, alterations, substitutions or equivalent arrangements not heretofore described, but which are commensurate with the spirit and scope of the invention. Additionally, while various embodiments of the invention have been described, it is to be understood that aspects of the invention may include only some of the described embodiments. Accordingly, the invention is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.