Cascade air conditioner system
11781788 ยท 2023-10-10
Assignee
Inventors
Cpc classification
F24F11/65
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F13/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2600/2515
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B43/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25B5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F11/65
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F13/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Disclosed is a cascade air conditioner system. The cascade air conditioner system includes a compressor (1) having a first gas outlet (11), a second gas outlet (12) and a gas inlet (13); a flash tank (2) having a first flash evaporation port (21), a second flash evaporation port (22), a third flash evaporation port (23), and a fourth flash evaporation port (24); and a condenser evaporator (3) having a first port (31), a second port (32), a third port (33), and a fourth port (34), wherein a first heat exchanger (41) is connected in series between the first gas outlet (11) and the first flash evaporation port (21), the second flash evaporation port (22) is connected via a pipe with the first port (31), the second gas outlet (12) is connected via a pipe with the fourth flash evaporation port (24), the third flash evaporation port (23) is connected via a pipe with an inlet of a first throttle element (51), an outlet of the first throttle element (51) is connected via a pipe with a second heat exchanger (42) and is connected via a pipe with the third port (33), the second heat exchanger (42) is also connected via a pipe with the second port (32) through a second throttle element (52), and the fourth port (34) is connected via a pipe with the gas inlet (13). In the cascade air conditioner system, a gas-phase refrigerant in the compressor (1) is introduced to the flash tank (2), such that the degree of dryness in the flash tank (2) can be controlled conveniently, thereby enhancing performances of the system.
Claims
1. A cascade air conditioner system for regulating a temperature, comprising a compressor, a flash tank, and a condenser evaporator, wherein the compressor has a first gas outlet, a second gas outlet and a gas inlet, the flash tank has a first flash evaporation port, a second flash evaporation port, a third flash evaporation port, and a fourth flash evaporation port, the condenser evaporator has a first port, a second port, a third port, and a fourth port, a first heat exchanger is connected in series between the first gas outlet and the first flash evaporation port, the second flash evaporation port is connected via a pipe with the first port, the second gas outlet is connected via a pipe with the fourth flash evaporation port, the third flash evaporation port is connected via a pipe with an inlet of a first throttle element, an outlet of the first throttle element is connected via a pipe with a second heat exchanger and is connected via a pipe with the third port, the second heat exchanger is connected via a pipe with the second port through a second throttle element, and the fourth port is connected via a pipe with the gas inlet.
2. The air conditioner system according to claim 1, further comprising a third throttle element, wherein the third throttle element is connected in series between the first flash evaporation port and the first heat exchanger.
3. The air conditioner system according to claim 1, further comprising a third heat exchanger, wherein the third heat exchanger is connected in series on a pipe between the first throttle element and the first flash evaporation port, or the third heat exchanger is connected in series on a pipe between the first throttle element and the second heat exchanger.
4. The air conditioner system according to claim 1, wherein the fourth flash evaporation port is located in a liquid-phase refrigerant accumulation area of the flash tank.
5. The air conditioner system according to claim 1, wherein the compressor is one of a single-cylinder double-exhaust compressor with an advanced exhaust function or a single-suction double-exhaust double-cylinder compressor.
6. The air conditioner system according to claim 1, wherein the refrigerant is a non-azeotropic mixed refrigerant.
7. The air conditioner system according to claim 1, wherein the second flash evaporation port is provided with a flow regulating valve, and/or the third flash evaporation port is provided with a flow regulating valve.
8. A cascade air conditioner system for dehumidifying, comprising a compressor, a flash tank, and a fourth heat exchanger, wherein the compressor has a first gas outlet, a second gas outlet, and a gas inlet, the flash tank has a first flash evaporation port, a second flash evaporation port, a third flash evaporation port, and a fourth flash evaporation port, the first gas outlet is connected via a pipe with an inlet of a first heat exchanger, an outlet of the first heat exchanger is connected via a pipe with the first flash evaporation port, the second gas outlet is connected via a pipe with the fourth flash evaporation port, the second flash evaporation port passes through the fourth heat exchanger and a second throttle element in sequence to be connected via a pipe with an inlet of a second heat exchanger, an outlet of the second heat exchanger is connected in parallel with an inlet of a third heat exchanger and is connected via a pipe with the third flash evaporation port through a first throttle element, an outlet of the third heat exchanger is connected via a pipe with the gas inlet, and the third heat exchanger, the second heat exchanger, the fourth heat exchanger, and the first heat exchanger are arranged along a gas flow direction in sequence.
9. The air conditioner system according to claim 8, further comprising a third throttle element, wherein the third throttle element is connected in series between the first flash evaporation port and the first heat exchanger.
10. The air conditioner system according to claim 8, wherein the third heat exchanger, the second heat exchanger, the fourth heat exchanger, and the first heat exchanger are respectively located in different gas channels.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
REFERENCE NUMERALS ARE REPRESENTED AS FOLLOWS
(5) 1 refers to compressor; 11 refers to first gas outlet; 12 refers to second gas outlet; 13 refers to gas inlet; 2 refers to flash tank; 21 refers to first flash evaporation port; 22 refers to second flash evaporation port; 23 refers to third flash evaporation port; 24 refers to fourth flash evaporation port; 3 refers to condenser evaporator; 31 refers to first port; 32 refers to second port; 33 refers to third mouth; 34 refers to fourth mouth; 41 refers to first heat exchanger; 42 refers to second heat exchanger; 43 refers to third heat exchanger; 44 refers to fourth heat exchanger; 51 refers to first throttle element; 52 refers to second throttle element; and 53 refers to third throttle element.
DETAILED DESCRIPTION
(6) With reference to
(7) It can be seen from the foregoing that a pressure at the second gas outlet 12 and a pressure in the flash tank 2 are kept consistent according to a principle of a connector formed by pipe connection. In order to ensure smooth circulation of a refrigerant in a corresponding branch and prevent the refrigerant in the flash tank 2 from flowing backwards into the compressor 1, optionally, the air conditioner system further includes a third throttle element 53, and the third throttle element 53 is connected in series between the first flash evaporation port 21 and the first heat exchanger 41. At the moment, although the third throttle element 53 will partially vaporize a liquid-phase refrigerant flowing out of the first heat exchanger 41, a pressure of the refrigerant in the flash tank 2 can be effectively reduced.
(8) Further, the cascade air conditioner system further includes a third heat exchanger 43, wherein the third heat exchanger 43 is connected in series on a pipe between the first throttle element 51 and the first flash evaporation port 21, or the third heat exchanger 43 is connected in series on a pip between the first throttle element 51 and the second heat exchanger 42.
(9) Preferably, the fourth flash evaporation port 24 is located in a liquid-phase refrigerant accumulation area of the flash tank 2. At the moment, the gas-phase refrigerant introduced through the second gas outlet 12 will be subjected to reciprocal contact heat and mass exchange with the liquid-phase refrigerant in the liquid-phase refrigerant accumulation area, and this heat exchange mode has higher exchange efficiency.
(10) Optionally, the refrigerant is a non-azeotropic mixed refrigerant.
(11) In theory, the compressor 1 may adopt any compressor with two or more gas outlets. Optionally, the compressor 1 is one of a double-exhaust compressor with an advanced exhaust function or a single-suction double-exhaust compressor.
(12) In order to more accurately regulate a flow ratio of the refrigerant flowing into the first flash evaporation port 21 and the fourth flash evaporation port 24, optionally, the second flash evaporation port 22 is provided with a flow regulating valve, and/or the third flash evaporation port is provided with a flow regulating valve. This application further provides a cascade air conditioner system for dehumidifying, which includes a compressor 1, a flash tank 2, and a fourth heat exchanger 44. The compressor has a first gas outlet 11, a second gas outlet 12, and a gas inlet 13. The flash tank 2 has a first flash evaporation port 21, a second flash evaporation port 22, a third flash evaporation port 23, and a fourth flash evaporation port 24. The first gas outlet 11 is connected via a pipe with an inlet of a first heat exchanger 41, an outlet of the first heat exchanger 41 is connected via a pipe with the first flash evaporation port 21, the second gas outlet 12 is connected via a pipe with the fourth flash evaporation port 24, the second flash evaporation port 22 passes through the fourth heat exchanger 44 and a second throttle element 52 in sequence to be connected via a pipe with an inlet of the second heat exchanger 42, an outlet of the second heat exchanger 42 is connected in parallel with an inlet of the third heat exchanger 43 and is connected via a pipe with the third flash evaporation port 23 through a first throttle element 51, and an outlet of the third heat exchanger 43 is connected via a pipe with the gas inlet 13. The third heat exchanger 43, the second heat exchanger 42, the fourth heat exchanger 44, and the first heat exchanger 41 are arranged along a gas flow direction in sequence.
(13) Certainly, when the third heat exchanger 43, the second heat exchanger 42, the fourth heat exchanger 44, and the first heat exchanger 41 are respectively located in different gas channels, requirements of various working conditions such as dehumidification, refrigeration, and heating can be met. Similar to the above air conditioner system for regulating the temperature, the cascade air conditioner system further includes a third throttle element 53, wherein the third throttle element 53 is connected in series between the first flash evaporation port 21 and the first heat exchanger 41.
(14) It is easily understood by those skilled in the art that the above advantageous modes can be freely combined and superimposed on the premise of no conflict.
(15) Those described above are merely preferred embodiments of this application, but are not intended to limit this application. Any modifications, equivalent substitutions and improvements made without departing from the spirit and principle of this application shall all fall in the scope of protection of this application. Those described above are merely preferred implementations of this application. It should be noted that those of ordinary skills in the art may further make a plurality of improvements and decorations without departing from the technical principle of this application, and these improvements and decorations shall also fall within the scope of protection of this application.