HEAT PUMP SYSTEM AND THE CONTROL METHOD THEREOF
20230228468 ยท 2023-07-20
Inventors
Cpc classification
F25B1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2341/0012
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B9/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B1/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2341/0013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B29/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B49/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2500/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/385
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A heat pump system and control method thereof. The heat pump system includes: a main flow path with a compressor, a reversing valve, a first heat exchanger, a first throttling device and a second heat exchanger; the heat pump system further includes an ejector comprising a high-pressure fluid inlet, a fluid suction inlet and a fluid outlet, the high-pressure fluid inlet of the ejector is connected between the second heat exchanger and the first throttling device on the main flow path through a second throttling device, the fluid suction inlet of the ejector is connected to the reversing valve, and the fluid outlet of the ejector is connected to a separator, and a gas phase outlet of the separator is connected to the compressor, and a liquid phase outlet of the separator is connected between the first heat exchanger and the first throttling device on the main flow path.
Claims
1. A heat pump system, comprising: a main flow path provided with a compressor, a reversing valve, a first heat exchanger, a first throttling device and a second heat exchanger; wherein, the heat pump system further comprises an ejector comprising a high-pressure fluid inlet, a fluid suction inlet and a fluid outlet, wherein the high-pressure fluid inlet of the ejector is connected between the second heat exchanger and the first throttling device on the main flow path through a second throttling device, the fluid suction inlet of the ejector is connected to the reversing valve, and the fluid outlet of the ejector is connected to a separator, and wherein a gas phase outlet of the separator is connected to the compressor, and a liquid phase outlet of the separator is connected between the first heat exchanger and the first throttling device on the main flow path.
2. The heat pump system according to claim 1, wherein the liquid phase outlet of the separator is connected between the first heat exchanger and the first throttling device on the main flow path through a check valve.
3. The heat pump system according to claim 2, wherein only the check valve is provided on the flow path between the liquid phase outlet of the separator and the first heat exchanger.
4. The heat pump system according to claim 1, wherein the first throttling device and the second throttling device are both electronic expansion valves.
5. The heat pump system according to claim 1, wherein the heat pump system is capable of operating in a cooling mode, a heating mode, and a heating mode with ejector, wherein in the cooling mode and the heating mode, the second throttling device shuts down and the first throttling device operates, and in the heating mode with ejector, the first throttling device shuts down and the second throttling device operates.
6. The heat pump system according to claim 5, wherein, in the cooling mode, refrigerant flowing out of a compressor outlet is throttled by the first throttling device after passing through the first heat exchanger, and flows in from the fluid suction inlet of the ejector and flows out of the fluid outlet of the ejector to enter the separator after passing through the second heat exchanger, wherein gas phase refrigerant in the separator returns from the gas phase outlet of the separator to the compressor inlet; in the heating mode, the refrigerant flowing out of the compressor outlet is throttled by the first throttling device after passing through the second heat exchanger, and flows in from the fluid suction inlet of the ejector and flows out of the fluid outlet of the ejector to enter the separator after passing through the first heat exchanger, wherein the gas phase refrigerant in the separator returns from the gas phase outlet of the separator to the compressor inlet; and in the heating mode with ejector, the refrigerant flowing out of the compressor outlet, after passing through the second heat exchanger and the second throttling device, flows in from the high-pressure fluid inlet of the ejector to mix in the ejector with refrigerant that leaves from the liquid phase outlet of the separator, passes through the first heat exchanger and flows in from the fluid suction inlet of the ejector to enter the separator, wherein the gas phase refrigerant in the separator returns from the gas phase outlet of the separator to the compressor inlet.
7. The heat pump system according to claim 6, wherein in the heating mode with ejector, the second throttling device is used to control dryness of fluid entering the high-pressure fluid inlet of the ejector.
8. A method of controlling a heat pump system according to claim 1, wherein the method comprises: shutting down the second throttling device and operating the first throttling device in the cooling mode and the heating mode; and shutting down the first throttling device and operating the second throttling device in the heating mode with ejector.
9. The method according to claim 8, wherein the method comprises: in the cooling mode, allowing the refrigerant flowing out of the compressor outlet to be throttled by the first throttling device after passing through the first heat exchanger, and to flow in from the fluid suction inlet of the ejector and flow out of the fluid outlet of the ejector to enter the separator after passing through the second heat exchanger, wherein the gas phase refrigerant in the separator returns from the gas phase outlet of the separator to the compressor inlet; in the heating mode, allowing the refrigerant flowing out of the compressor outlet to be throttled by the first throttling device after passing through the second heat exchanger, and to flow in from the fluid suction inlet of the ejector and flows out of the fluid outlet of the ejector to enter the separator after passing through the first heat exchanger, wherein the gas phase refrigerant in the separator returns from the gas phase outlet of the separator to the compressor inlet; and in the heating mode with ejector, allowing the refrigerant flowing out of the compressor outlet, after passing through the second heat exchanger and the second throttling device, to flow in from the high-pressure fluid inlet of the ejector to mix in the ejector with refrigerant that leaves from the liquid phase outlet of the separator, passes through the first heat exchanger and flows in from the fluid suction inlet of the ejector to enter the separator, wherein the gas phase refrigerant in the separator returns from the gas phase outlet of the separator to the compressor inlet.
10. The method according to claim 8, wherein the method comprises adjusting an opening of the second throttling device to control dryness of the fluid entering the high-pressure fluid inlet of the ejector in the heating mode with ejector.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] With reference to the accompanying drawings, the disclosure of the present application will become easier to understand. Those skilled in the art would easily understand that these drawings are for the purpose of illustration, and are not intended to limit the protection scope of the present application. In addition, in the figures, similar numerals are used to denote similar components, where:
[0017]
[0018]
[0019]
DETAILED DESCRIPTION OF THE INVENTION
[0020] A heat pump system according to an embodiment of the present invention is described with reference to
[0021] The heat pump system according to an embodiment can operate in a cooling mode, a heating mode and a heating mode with ejector. The heating mode with ejector can be applied when, for example, the ambient temperature is low. For example, an ambient temperature sensor can be arranged, and the heating mode with ejector can be activated when the ambient temperature is below a threshold. As shown in
[0022] More specifically, as shown in
[0023] The device according to the embodiments of the present invention, by adding only a throttling device and a check valve, realizes a heating mode with ejector suitable for low ambient temperatures, whose cost is relatively low. In addition, since only one check valve is arranged between the liquid phase fluid outlet of the separator and the first heat exchanger without other components having significant flow resistance, the pressure loss of the fluid is small, which improves the operation stability and performance of the entire ejector system and avoids the situation that the ejector cannot work due to excessive flow resistance.
[0024] According to another aspect, a method of controlling a heat pump system according to an embodiment is provided, which comprises: shutting down the second throttling device and operating the first throttling device in a cooling mode and a heating mode; and shutting down the first throttling device and operating the second throttling device in the heating mode with ejector.
[0025] Optionally, the method comprises: in the cooling mode, allowing the refrigerant flowing out of the compressor outlet to be throttled by the first throttling device after passing through the first heat exchanger, to flow in from the fluid suction inlet of the ejector and flow out of the fluid outlet of the ejector after passing through the second heat exchanger, and to return to the compressor inlet from the gas phase outlet of the separator after passing through the separator; in the heating mode, allowing the refrigerant flowing out of the compressor outlet to be throttled by the first throttling device after passing through the second heat exchanger, to flow in from the fluid suction inlet of the ejector and flow out of the fluid outlet of the ejector after passing through the first heat exchanger, and to return to the compressor inlet from the gas phase outlet of the separator after passing through the separator; and in the heating mode with ejector, allowing the refrigerant flowing out of the compressor outlet, after passing through the second heat exchanger and the second throttling device, to flow in from the high-pressure fluid inlet of the ejector to mix with the refrigerant that leaves from the liquid phase outlet of the separator, passes through the first heat exchanger and flows in from the fluid suction inlet of the ejector in the ejector, and to return to the compressor inlet from the gas phase outlet of the separator after passing through the separator.
[0026] The specific embodiments described above in the present application are merely intended to describe the principle of the present application more clearly, wherein various components are clearly shown or described to facilitate the understanding of the principle of the present invention. Those skilled in the art may, without departing from the scope of the present application, make various modifications or changes to the present application. Therefore, it should be understood that these modifications or changes should be included within the scope of patent protection of the present application.