The present disclosure relates to the field of electric vehicles, and more particularly to an electric vehicle and a heat pump system thereof.
The Battery, as the most important element in the electric vehicle, provides power and energy for driving of the vehicle. Therefore, the efficient and accurate thermal management of the battery is very important.
When the battery is fast charging, it needs a strong cooling capacity, which can quickly reduce the heat accumulation of the battery caused by the high-current charging, and hence improve the safety of the battery. At present, the battery is cooled with the liquid because the thermal capacity inertia of the liquid refrigerant is relatively large. When cooling the battery, it is necessary to first cool all the liquid in the battery pack and the liquid in the pipe, and then the battery can be cooled by the liquid. As a result, the cooling rate of the battery cannot keep up with the demand, resulting in the rapid heating of the battery and limiting the fast-charging speed of the battery.
An aspect of the present disclosure discloses a heat pump system of an electric vehicle, including: a compressor, a battery cooling passage, an outdoor heat exchange passage, an electric drive system cooling passage and a heat exchange device. The battery cooling passage and the outdoor heat exchange passage are connected in series or in parallel between an inlet pipe of the compressor and an outlet pipe of the compressor. A first heat sink is arranged on the outdoor heat exchange passage, a second heat sink is arranged on the electric drive system cooling passage, and the heat exchange device is connected between the outdoor heat exchange passage and the electric drive system cooling passage to exchange heat.
Another aspect of the present disclosure discloses an electric vehicle, including a heat pump system of an electric vehicle. The heat pump system of the electric vehicle includes: a compressor, a battery cooling passage, an outdoor heat exchange passage, an electric drive system cooling passage and a heat exchange device. The battery cooling passage and the outdoor heat exchange passage are connected in series or in parallel between an inlet pipe of the compressor and an outlet pipe of the compressor. A first heat sink is arranged on the outdoor heat exchange passage, a second heat sink is arranged on the electric drive system cooling passage, and the heat exchange device is connected between the outdoor heat exchange passage and the electric drive system cooling passage to exchange heat.
The drawings herein are incorporated into the specification and form a part of the specification, show embodiments that comply with the present disclosure, and are used to explain the principles of the present disclosure together with the specification.
In order to more clearly explain the technical solutions in embodiments of the present disclosure or in the related art, the drawings required to be used in the description of the embodiments or the related art will be briefly described below, and it is obvious for those skilled in the art that other drawings can be obtained according to these drawings without creative labors.
In the drawings, a solid line indicates that a pipe is conducted, and a dashed line indicates that a pipe is not conducted.
In order to more clearly understand the purposes, features and advantages of the present disclosure, embodiments of the present disclosure will be further described below. It should be noted that the embodiments of the present disclosure and the features in the embodiments can be combined with each other without conflict.
In order to fully understand the present disclosure, many specific details are explained in the following description, but the present disclosure can also be implemented in other ways different from those described here. Obviously, the embodiments in the specification are only a part of the embodiments of the present disclosure, but not all of them.
As shown in
A first heat sink 16 is arranged on the outdoor heat exchange passage 5, a second heat sink 17 is arranged on the electric drive system cooling passage 31, and the heat exchange device 6 is connected between the outdoor heat exchange passage 5 and the electric drive system cooling passage 31 to exchange heat. In this way, when the first heat sink 16 dissipates the heat of the refrigerant in the outdoor heat exchange passage 5, part of the heat of the outdoor heat exchange passage 5 is transferred to the electric drive system cooling passage 31 through the heat exchange device 6, and then is dissipated through the second heat sink 17. Therefore, by utilizing the combined effect of the first heat sink 16 and the second heat sink 17, the temperature of the refrigerant is reduced more greatly, and the refrigerating capacity of the system is improved. Especially during the charging or fast charging of the battery, as an electric drive system 23 does not work to generate heat, the second heat sink 17 can provide a higher heat dissipation efficiency.
In some embodiments, the electric drive system cooling passage 31 is a water circulation passage, on which a pump body 27 is preferably arranged to accelerate the circulation of cooling water and improve the heat dissipation efficiency.
In some embodiments, the heat exchange device 6 is a water-cooled heat exchanger, and the water-cooled heat exchanger has a simple structure, a stable operation, and a low cost.
In some embodiments, a battery heat exchanger 10 is arranged on the battery cooling passage 4, and a first intermediate heat exchanger 25 is connected between an inlet pipe of the battery heat exchanger 10 and an outlet pipe of the battery heat exchanger 10. A temperature difference between the inlet pipe and the outlet pipe of the battery heat exchanger 10 is reduced by the first intermediate heat exchanger 25, so that the refrigerant is pre-cooled in advance before entering the battery heat exchanger 10. A first throttle valve 30 is arranged on the inlet pipe of the battery heat exchanger 10 and between the first intermediate heat exchanger 25 and the battery heat exchanger 10. A pressure regulating valve 26 is arranged on the outlet pipe of the battery heat exchanger 10 and at a downstream end of the first intermediate heat exchanger 25. By the pressure regulating valve 26 adjusting an outlet pressure of the first intermediate heat exchanger 25, combined with the throttling of the first throttle valve 30 upstream of the battery heat exchanger 10, the superheat of the steam inside the first intermediate heat exchanger 25 can be controlled, and the effective control of the cooling efficiency of the battery is achieved.
In some embodiments, an indoor heat sink 11 is arranged on an outlet pipe of the compressor 2, and is configured to dissipate part of the heat of the refrigerant into the vehicle to form heating. Moreover, while heating, the temperature of the refrigerant can also be reduced, facilitating the improvement of the cooling efficiency of the battery. In order to improve the heating speed and heating efficiency, an electric heating device 24 may be arranged beside the indoor heat sink 11 to form auxiliary heating.
In a further embodiment, a second throttle valve 22 is arranged on the outdoor heat exchange passage 5, and the second throttle valve 22 is connected in parallel with a first valve body 21. In a heating mode, the first valve body 21 may be closed, and the refrigerant flows through the second throttle valve 22. At this time, the first heat sink 16 serves as an evaporator, which absorbs external heat, thus improving the heating efficiency of the system.
In some embodiments, the heat pump system further includes an indoor refrigerating passage 7, a throttling component 8 and an indoor evaporator 9 are arranged on the indoor refrigerating passage 7, and the indoor refrigerating passage 7 is connected in parallel with the battery cooling passage 4 to form refrigeration for the indoor.
In a further embodiment, the heat pump system further includes a valve assembly 29, and a short-out passage 18 connected between an inlet pipe of the second heat sink 17 and an outlet pipe of the second heat sink 17. The valve assembly 29 is configured to selectively communicate with the second heat sink 17 or the short-out passage 18. When the short-out passage 18 is communicated with the valve assembly 29, the refrigerant of the outdoor heat exchange passage 5 does not flow through the second heat sink 17, but flows through the short-out passage 18. Since the temperature of the refrigerant in the outdoor heat exchange passage 5 decreases after the refrigerant passes through the first throttle valve 30, when the refrigerant flows through the heat exchange device 6 again subsequently, the cooling energy may be transferred to the electric drive system cooling passage 31 through the heat exchange device 6, thus forming cooling for the electric drive system 23. At this time, choosing not to communicate the second heat sink 17 may avoid an unnecessary loss of the cooling energy, thereby forming a better cooling effect on the electric drive system 23.
In some embodiments, a second intermediate heat exchanger 32 is connected between the inlet pipe 3 of the compressor and the outdoor heat exchange passage 5. The second intermediate heat exchanger 32 is configured to pre-cool the refrigerant entering the battery cooling passage 4 when the outdoor heat exchange passage 5 is connected in series with the battery cooling passage 4, thereby improving the cooling efficiency. Of course, when the outdoor heat exchange passage 5 is connected in parallel with the battery cooling passage 4, the second intermediate heat exchanger 32 may also reduce a temperature difference between the refrigerants in two passages before convergence.
In some embodiments, an upstream end of the outdoor heat exchange passage 5 is communicated with an upstream end of the battery cooling passage 4 through a first connection passage 12, and a second valve body 13 is arranged on the first connection passage 12; a downstream end of the outdoor heat exchange passage 5 is communicated with the upstream end of the battery cooling passage 4 through a second connection passage 14, and a third valve body 19 is arranged on the second connection passage 14; and the downstream end of the outdoor heat exchange passage 5 is communicated with a downstream end of the battery cooling passage 4 through a third connection passage 15, and a fourth valve body 20 is arranged on the third connection passage 15. When the second valve body 13 and the third valve body 19 are opened, and the fourth valve body 20 is closed, the battery cooling passage 4 is connected in parallel with the outdoor heat exchange passage 5; when the second valve body 13 and the third valve body 19 are closed, and the fourth valve body 20 is opened, the battery cooling passage 4 is connected in series with the outdoor heat exchange passage 5, thereby achieving the switching between the connection in series and the connection in parallel of the battery cooling passage 4 and the outdoor heat exchange passage 5.
The third valve body 19 is preferably a one-way valve, which conducts in a direction pointing towards the downstream end of the battery cooling passage 4. The one-way valve does not require to be controlled and has a simple structure.
In some embodiments, a gas-liquid separator 28 is arranged on the inlet pipe 3 of the compressor for separation and reflux of the liquid in the refrigerant of the compressor 1, avoiding the liquid hammer or dry friction of the compressor 1.
Another aspect of the present disclosure discloses an electric vehicle, including the heat pump system of the electric vehicle as described above.
The heat pump system of the electric vehicle may at least achieve the following modes.
As shown in
As shown in
As shown in
It can be seen from the above that the whole heat pump system of the electric vehicle according to the embodiment may be optimized and combined in various modes to achieve the optimal energy efficiency and comprehensive waste heat utilization of the system.
The present disclosure further provides an electric vehicle, including the heat pump system of the electric vehicle as described above. Due to the high battery refrigerating and heating efficiency and the strong indoor heating efficiency of the heat pump system according to the present disclosure, the electric vehicle may be more energy-efficient and more comfortable.
It should be noted that in the present disclosure, relative terms such as “first” and “second” are only used to distinguish an entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms “include”, “comprise” or any other variation thereof are intended to cover non-exclusive inclusions, so that a process, a method, an article, or a device including a series of elements includes not only those elements, but also other elements that are not expressly listed, or also includes elements inherent in such process, method, article, or device. Without further limitation, an element defined by the phrase “including a . . . ” does not exclude the presence of additional identical elements in the process, method, article or device including the element.
The above description is only the specific embodiment of the present disclosure, so that those skilled in the art can understand or implement the present disclosure. Various modifications to these embodiments will be apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present disclosure. Therefore, the present disclosure will not be limited to those embodiments described herein, but conforms to the widest scope consistent with the principles and novel features disclosed herein.
Number | Date | Country | Kind |
---|---|---|---|
202123172710.7 | Dec 2021 | CN | national |
This application is a national phase entry under 35 U.S.C. § 371 of International Application No. PCT/CN2022/138430, filed on Dec. 12, 2022, which claims priority to Chinese Patent Application No. 202123172710.7, filed on Dec. 16, 2021, the entire disclosures of which are incorporated herein by reference.
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/CN2022/138430 | 12/12/2022 | WO |