R-744 system with hot gas defrost by the transcritical compressors
11226144 · 2022-01-18
Assignee
Inventors
Cpc classification
F25B2600/2519
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B1/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2600/2525
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2400/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B9/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B49/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2400/075
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2309/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B47/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B47/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2400/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A transcritical R-744 refrigeration system with a medium temperature section having a plurality of circuits, at least one evaporator receiving an R-744 refrigerant in a medium-pressure liquid state from a receiver and feeding at least one transcritical compressor to compress the R-744 refrigerant from a low-pressure gaseous state into a high-pressure gaseous state to feed a gas cooler and a throttling device to partially condense the R-744 refrigerant into a medium-pressure gaseous-liquid state, the system comprising a pressure reducing valve connected to a discharge conduit of the at least one transcritical compressor and feeding hot gas to a defrost manifold to defrost one of the plurality of circuits of the medium temperature section, wherein the hot gas being fed to the defrost manifold has a pressure value less than or equal to a maximum operating pressure of the at least one evaporator.
Claims
1. A transcritical R-744 refrigeration system (50) with a transcritical medium temperature section (52) having a plurality of circuits, at least one medium temperature evaporator (11) receiving an R-744 refrigerant in a medium-pressure liquid state from a receiver (8) and feeding at least one medium temperature compressor (1) to compress the R-744 refrigerant from a low-pressure gaseous state into a high-pressure gaseous state to feed a gas cooler (5) and a pressure reducing device (7) to partially condense the R-744 refrigerant into a medium-pressure gaseous-liquid state, the system (50) comprising: a pressure reducing valve (41) directly connected to a discharge conduit (2) of the at least one medium temperature compressor (1) and directly feeding a portion of said R-744 refrigerant in hot gas phase to a defrost manifold (19, 18) to defrost one of the plurality of circuits of the transcritical medium temperature section (52) or one of a plurality of circuits of a subcritical low temperature section (54); said pressure reducing valve (41) reducing a pressure of said portion of said R-744 refrigerant in hot gas phase flowing therethrough and being fed to said defrost manifold (19, 18) to a pressure value less than or equal to a maximum operating pressure of the at least one medium temperature evaporator (11) or of at least one low temperature evaporator (12) of the subcritical low temperature section (54), respectively.
2. The transcritical R-744 refrigeration system (50) of claim 1, further comprising a heat exchanger (43) downstream of said pressure reducing valve (41), said heat exchanger (43) transferring heat from the high-pressure gaseous state of said R-744 refrigerant from the at least one medium temperature compressor (1) and fed to the gas cooler (5) to the hot gas phase of said portion of said R-744 refrigerant exiting said pressure reducing valve (41).
3. The transcritical R-744 refrigeration system (50) of claim 1, wherein the receiver (8) is a flash tank.
4. The transcritical R-744 refrigeration system (50) of claim 1, wherein the refrigerant exiting the at least one medium temperature compressor (1) passes through an oil separator (3) before reaching said pressure reducing valve (41).
5. The transcritical R-744 refrigeration system (50) of claim 1, further comprising an additional defrost manifold (27) in the transcritical medium temperature section (52) between said at least one medium temperature evaporator (11) and the receiver (8).
6. The transcritical R-744 refrigeration system (50) of claim 5, further comprising a pressure regulating valve (29) to regulate the pressure of the refrigerant in said additional defrost manifold (27) before entering the receiver (8).
7. The transcritical R-744 refrigeration system (50) of claim 1, further comprising a plurality of check valves (36, 39) to prevent any hot gas phase of said portion of said R-744 refrigerant from entering a liquid line.
8. The transcritical R-744 refrigeration system (50) of claim 1, further comprising a safety valve (46) connected to said defrost manifold (19).
9. The transcritical R-744 refrigeration system (50) of claim 1, wherein said at least one low temperature evaporator (12) receiving the R-744 refrigerant from the receiver (8) and feeding at least one low temperature compressor (20).
10. The transcritical R-744 refrigeration system (50) of claim 9, further comprising an additional defrost manifold (26) in the subcritical low temperature section (54) between said at least one low temperature evaporator (12) and the receiver (8).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
DETAILED DESCRIPTION OF THE ILLUSTRATIVE EMBODIMENTS
(2) Referring to
(3) The refrigeration cycle begins at transcritical (or medium temperature) compressors 1, where refrigerant R-744 vapors are compressed by transcritical compressors 1 and then fed through conduit 2, oil separator 3, conduit 44, optional heat exchanger 43 (useful in applications such as large factories with low temperatures and large coils) and conduit 4 to gas cooler 5 where their temperature is reduced due to heat transfer with the ambient air. Then, the R-744 vapors, whose temperature has been reduced while pressure remains high, are fed through conduit 6 to throttling device 7 (a pressure reducing device such as a throttling/expansion/float valve, or the like), where both their pressure and temperature are reduced, thus provoking partial liquification. After the throttling device 7, the mixture of vapors and liquid are fed to the receiver 8 where separation of the vapors from the liquid occurs. The vapors from receiver 8 are fed through pressure regulating valve 34 to the suction of the transcritical (or medium temperature) compressors 1. In alternate embodiments, receiver 8 is a flash tank and pressure regulating valve 34 is a flash gas bypass valve. The resulting liquid from receiver 8 is fed to the medium temperature section 52 of the system 50 through conduit 9, expansion valves 32 and medium temperature evaporators 11. As a person of ordinary skill in the art would understand, as the liquid refrigerant passes through evaporators 11, it absorbs heat from the ambient air and changes states back to vapor, thus cooling the ambient air. Then, the R-744 vapors returns to transcritical (or medium temperature) compressors 1 to restart the refrigeration cycle.
(4) In the embodiment where system 50 comprises a low temperature section 54, the resulting liquid from receiver 8 is also fed through conduit 10, expansion valves 33 and low temperature evaporators 12. After the evaporation process at evaporators 12 which provides refrigeration to the ambient air, low-pressure R-744 vapors are fed through suction manifold 15 and compressor suction conduit 16 to the suction port of low temperature or subcritical compressors 20. The R-744 vapors compressed by subcritical compressors 20 are fed through conduit 17 directly to the suction manifold 13 and through compressor suction conduits 14 to join the R-744 vapors from the medium temperature section 52 as they enter transcritical (or medium temperature) compressors 1 to restart the refrigeration cycle.
(5) Still referring to
(6) As the vapors exit pressure reducing valve 41, their temperature is reduced due to throttling, which can influence the effectiveness of the defrosting process. Thus, in an alternate embodiment, to recuperate a considerable portion of this temperature loss, the vapors from pressure reducing valve 41 are fed through conduit 42 to heat exchanger 43 where the vapors are reheated by heat transfer with the rest of the hot high-pressure vapors.
(7) Still referring to
(8) Advantageously, transcritical R-744 refrigeration system 50 provides more efficient defrosting than previous R-744 refrigeration systems and is less costly as it requires less valves and no oil separator for the low temperature section 54. Further, system 50 is less complicated than previous R-744 refrigeration systems and can defrost larger circuits, thus requiring less circuits overall. Further, in an alternative embodiment, as defrosting is provided by transcritical compressors 1, system 50 only comprises a medium temperature section 52, negating the use for low temperature section 54. Further, in the embodiment where the system 50 comprises only a medium temperature section 52, the system 50 requires less components as there is no need for a low temperature section 54.
(9) The scope of the claims should not be limited by the preferred embodiments set forth in the examples, but should be given the broadest interpretation consistent with the description as a whole.