Energy storage temperature control air conditioner

By setting spaced chambers in the housing of the air conditioner, the device layout is optimized, and the problem of devices being susceptible to environmental influences in the prior art is solved, and the effect of reducing power consumption and improving reliability is achieved.

CN120101243APending Publication Date: 2025-06-06CHONGQING MIDEA GENERAL REFRIGERATING EQUIP CO LTD
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Patent Information

Application Number
CN202510376899.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-24
Publication Date
2025-06-06

AI Technical Summary

Technical Problem

The system and electrical components of the existing integrated liquid-cooled energy storage air conditioner are distributed in the air duct of the whole machine, which is susceptible to harsh environmental conditions, resulting in reduced reliability and service life, and at the same time increases the power consumption of the air conditioner unit.

Method used

An energy storage temperature controlled air conditioner is designed, by providing a spaced first chamber and a second chamber in the housing, respectively, a fan and a first heat exchanger, as well as a cooling assembly, a compressor, an electronic expansion valve and a second heat exchanger. This layout reduces the number of components in the first chamber, reduces the air duct resistance, and avoids adverse effects of components in the second chamber from the air duct environment.

Benefits of technology

By reducing air duct resistance in the first chamber, the power consumption of the energy storage temperature-controlled air conditioner is reduced, and the reliability and service life of cooling components and other components is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an energy storage temperature control air conditioner. The energy-storage temperature-control air conditioner comprises a shell, a temperature control device and a control device, wherein the shell is provided with a first cavity and a second cavity which are spaced; the refrigeration assembly comprises a compressor, a first heat exchanger, an electronic expansion valve and a second heat exchanger; the compressor, the first heat exchanger, the electronic expansion valve and the second heat exchanger are sequentially connected. The fan is used for cooling the first heat exchanger, and the fan and the first heat exchanger are arranged in the first cavity; the cooling assembly is connected with the second heat exchanger, the cooling assembly is used for exchanging heat with the refrigeration assembly through the second heat exchanger so as to adjust the temperature of the load, and the cooling assembly, the compressor, the electronic expansion valve and the second heat exchanger are arranged in the second cavity. According to the energy-storage temperature-control air conditioner, wind resistance can be reduced, power consumption of the energy-storage temperature-control air conditioner is reduced, the cooling assembly, the compressor, the electronic expansion valve and the second heat exchanger can be prevented from being adversely affected by the air duct environment, and therefore the protection level of the parts can be reduced to a certain degree.
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Description

Technical Field

[0001] The present invention relates to the technical field of air conditioning, and in particular to an energy storage temperature controlled air conditioner. Background Art

[0002] In the related art, the system components and electrical components of the integrated liquid-cooled energy storage air conditioner are generally distributed in the air duct of the whole machine. When the outside air quality is poor, the harsh environmental conditions will affect the reliability and service life of the system components and electrical components, and the protection level of the system components and electrical components is very high; in addition, the components distributed in the air duct will also increase the wind resistance of the air duct of the air-conditioning unit and increase the overall power consumption of the air-conditioning unit. Summary of the invention

[0003] The embodiment of the present invention provides an energy storage temperature controlled air conditioner to solve at least one of the above-mentioned technical problems.

[0004] An embodiment of the present invention provides an energy storage temperature controlled air conditioner, the energy storage temperature controlled air conditioner comprising:

[0005] a housing, the housing being provided with a first chamber and a second chamber separated from each other;

[0006] A refrigeration assembly, the refrigeration assembly comprising a compressor, a first heat exchanger, an electronic expansion valve, and a second heat exchanger; the compressor, the first heat exchanger, the electronic expansion valve, and the second heat exchanger are connected in sequence;

[0007] a fan, the fan being used to cool the first heat exchanger, the fan and the first heat exchanger being arranged in the first chamber;

[0008] A cooling component is connected to the second heat exchanger, and is used to exchange heat with the refrigeration component through the second heat exchanger to adjust the temperature of the load. The cooling component, the compressor, the electronic expansion valve and the second heat exchanger are arranged in the second chamber.

[0009] In the above-mentioned energy storage temperature-controlled air conditioner, the first chamber and the second chamber are separated, the fan and the first heat exchanger are arranged in the first chamber, and the cooling component, the compressor, the electronic expansion valve and the second heat exchanger are arranged in the second chamber, so that there are fewer components in the first chamber, which is beneficial to reducing the wind resistance of the air duct in the first chamber and reducing the overall power consumption of the energy storage temperature-controlled air conditioner to a certain extent. The cooling component, the compressor, the electronic expansion valve and the second heat exchanger located in the second chamber can also avoid being adversely affected by the air duct environment, thereby reducing the protection level of these components to a certain extent.

[0010] In some embodiments, the shell includes a body and a door body, the body is provided with the first chamber and the second chamber, the door body is rotatably connected to the body, a second opening is provided on one side of the second chamber, and the door body is used to open and close the second opening.

[0011] In certain embodiments, the energy storage temperature-controlled air conditioner includes a partition plate, the shell includes a main body and a cover plate, the main body includes a first part and a second part, the partition plate and the first part form the first chamber, the partition plate and the second part form the second chamber, a first opening is provided on one side of the first chamber, the cover plate covers the first opening, the first part and the partition plate, a seal is provided on the side of the first part and the partition plate facing the cover plate, and the seal seals the first part, the partition plate and the cover plate.

[0012] In certain embodiments, the first portion includes a first side plate that encloses the first chamber and is opposite to the cover plate, and an air outlet is formed on the first side plate at a position corresponding to the first heat exchanger.

[0013] In some embodiments, the shell is provided with a drainage hole, the drainage hole is located at the bottom of the first chamber and close to the first side plate, and the drainage hole is communicated with the first chamber.

[0014] In certain embodiments, the energy storage temperature-controlled air conditioner includes an electronic control component and a radiator, the electronic control component is connected to the radiator, and the fan is used to cool the radiator.

[0015] In certain embodiments, the electronic control assembly and the radiator are located in the upper portion of the first chamber, the first heat exchanger is located in the upper middle portion of the first chamber, and the fan is located in the lower portion of the first chamber.

[0016] In certain embodiments, the energy storage temperature-controlled air conditioner further comprises a junction box, wherein the junction box is disposed on an outer side of the shell, and the junction box is electrically connected to the electronic control component.

[0017] In certain embodiments, the refrigeration assembly includes at least one partition and a plurality of the fans, wherein the partition is located in the first chamber, and one partition separates two of the fans.

[0018] In certain embodiments, the energy storage temperature-controlled air conditioner includes a support and a fastener, the second heat exchanger is connected to the support, and the fastener passes through the support and is connected to the shell to connect the second heat exchanger to the shell.

[0019] In some embodiments, the cooling component is provided with a medium interface, which is arranged near the bottom of the second chamber, and the medium interface is used for allowing cooling medium to be discharged from the cooling component and injected into the cooling component through the medium interface.

[0020] In certain embodiments, the energy storage temperature-controlled air conditioner includes an inlet joint and an outlet joint located outside the shell, the inlet joint and the outlet joint are connected to the cooling assembly, and the inlet joint and the outlet joint are quick-connect joints.

[0021] In some embodiments, the cooling assembly includes a pump, which is located in the second chamber and is arranged near the inlet joint and the outlet joint, and the pump is connected to the inlet joint and the outlet joint.

[0022] Additional aspects and advantages of the present invention will be given in part in the following description and in part will be obvious from the following description, or will be learned through practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] The above and / or additional aspects and advantages of the present invention will become apparent and easily understood from the description of the embodiments in conjunction with the following drawings, in which:

[0024] Figure 1 is a structural schematic diagram of an energy storage temperature-controlled air conditioner according to an embodiment of the present invention;

[0025] Figure 2 It is a partial structural schematic diagram and a side view of an energy storage temperature control air conditioner according to an embodiment of the present invention;

[0026] Figure 3 is a schematic diagram of a module of an energy storage temperature-controlled air conditioner according to an embodiment of the present invention;

[0027] Figure 4 is another partial structural schematic diagram of the energy storage temperature control air conditioner according to the embodiment of the present invention;

[0028] Figure 5 is a schematic structural diagram of a junction box according to an embodiment of the present invention;

[0029] Figure 6 is a schematic diagram of the connection between the electric control component and the radiator according to an embodiment of the present invention;

[0030] Figure 7 is a schematic structural diagram of a cooling assembly according to an embodiment of the present invention;

[0031] Figure 8 It is a schematic structural diagram of a refrigeration assembly according to an embodiment of the present invention.

[0032] Description of main component reference numerals:

[0033] Energy storage temperature control air conditioner 4000, housing 100, refrigeration assembly 200, cooling assembly 300, partition plate 400, junction box 500, electric control assembly 600, radiator 700, support member 800, fastener 900, seal 1001, connecting pipe assembly 1002, first chamber 101, second chamber 102, body 103, door body 104, cover plate 105, first side plate 106, compressor 201, first heat exchanger 202, electronic expansion valve 203, second heat exchanger 204, fan 205, partition plate 206, refrigerant filling port 2 07, first pressure sensor 208, first temperature sensor 209, high pressure switch 210, needle valve 211, process pipe 212, filter 213, pump 301, medium interface 302, inlet connector 303, outlet connector 304, second pressure sensor 305, second temperature sensor 306, expansion tank 307, electric heater 308, exhaust valve 309, first ball valve 310, second ball valve 311, housing 501, electrical interface 502, first opening 1011, second opening 1021, first part 1031, second part 1032. DETAILED DESCRIPTION

[0034] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the specific embodiments of the present invention are described in detail below in conjunction with the accompanying drawings. In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention can be implemented in many other ways different from those described herein, and those skilled in the art can make similar improvements without violating the connotation of the present invention, so the present invention is not limited by the specific embodiments disclosed below.

[0035] In the description of the present invention, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise", "axial", "radial", "circumferential" and the like indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the referred device or element must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as limiting the present invention.

[0036] In addition, the terms "first" and "second" are used for descriptive purposes only and should not be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first" and "second" may explicitly or implicitly include at least one of the features. In the description of the present invention, the meaning of "plurality" is at least two, such as two, three, etc., unless otherwise clearly and specifically defined.

[0037] In the present invention, unless otherwise clearly specified and limited, the terms "installed", "connected", "connected", "fixed" and the like should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, it can be the internal connection of two elements or the interaction relationship between two elements, unless otherwise clearly defined. For ordinary technicians in this field, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

[0038] In the present invention, unless otherwise clearly specified and limited, a first feature being "above" or "below" a second feature may mean that the first and second features are in direct contact, or the first and second features are in indirect contact through an intermediate medium. Moreover, a first feature being "above", "above" or "above" a second feature may mean that the first feature is directly above or obliquely above the second feature, or simply means that the first feature is higher in level than the second feature. A first feature being "below", "below" or "below" a second feature may mean that the first feature is directly below or obliquely below the second feature, or simply means that the first feature is lower in level than the second feature.

[0039] It should be noted that when an element is referred to as being "fixed to" or "disposed on" another element, it may be directly on the other element or there may be a central element. When an element is considered to be "connected to" another element, it may be directly connected to the other element or there may be a central element at the same time. The terms "vertical", "horizontal", "upper", "lower", "left", "right" and similar expressions used herein are for illustrative purposes only and are not intended to be the only implementation method.

[0040] The embodiments of the present invention are described in detail below, and examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals represent the same or similar elements or elements having the same or similar functions from beginning to end. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the embodiments of the present invention, and cannot be understood as limiting the embodiments of the present invention.

[0041] See also Figures 1 to 3, an embodiment of the present invention provides an energy storage temperature controlled air conditioner 4000. The energy storage temperature controlled air conditioner 4000 includes a housing 100, a refrigeration assembly 200, a cooling assembly 300 and a fan 205. The housing 100 is provided with a first chamber 101 and a second chamber 102 separated by a gap. The refrigeration assembly 200 includes a compressor 201, a first heat exchanger 202, an electronic expansion valve 203 and a second heat exchanger 204. The compressor 201, the first heat exchanger 202, the electronic expansion valve 203 and the second heat exchanger 204 are connected in sequence, and the fan 205 is used to cool the first heat exchanger 202. The fan 205 and the first heat exchanger 202 are arranged in the first chamber 101. The cooling assembly 300 is connected to the second heat exchanger 204, and the cooling assembly 300 is used to exchange heat with the refrigeration assembly 200 through the second heat exchanger 204 to adjust the temperature of the load. The cooling assembly 300 , the compressor 201 , the electronic expansion valve 203 and the second heat exchanger 204 are disposed in the second chamber 102 .

[0042] In the above-mentioned energy storage temperature-controlled air conditioner 4000, the first chamber 101 and the second chamber 102 are separated, the fan 205 and the first heat exchanger 202 are arranged in the first chamber 101, and the cooling component 300, the compressor 201, the electronic expansion valve 203 and the second heat exchanger 204 are arranged in the second chamber 102, so that there are fewer components in the first chamber 101, which is beneficial to reducing the wind resistance of the air duct in the first chamber 101, and reducing the overall power consumption of the energy storage temperature-controlled air conditioner 4000 to a certain extent. The cooling component 300, the compressor 201, the electronic expansion valve 203 and the second heat exchanger 204 located in the second chamber 102 can also avoid being adversely affected by the air duct environment, thereby reducing the protection level of these components to a certain extent.

[0043] Optionally, in one embodiment, the energy storage temperature controlled air conditioner 4000 can be applied to an energy storage system, which is a device system for storing and regulating energy, which is designed to store excess energy and release electricity when needed. The energy storage system may include a battery device, a battery management system, and a heat dissipation system. The battery device and the heat dissipation system are electrically connected to the battery management system, respectively. Among them, the battery device is the main component for storing electrical energy, and the battery management system can monitor and manage the working status of the battery cells in the battery device to ensure the safety and efficiency of the battery cells. During the operation of the energy storage system, that is, during the charging and discharging process of the battery cells of the battery device, the battery cells will generate a certain amount of heat due to chemical reactions and current flow. If this heat cannot be dissipated in a timely and effective manner, the temperature of the battery cells may continue to rise, thereby affecting the performance of the energy storage system and even causing safety problems. Therefore, in order to ensure the reliability and safety of the energy storage system, the heat dissipation system can take away the heat generated by the battery cells in a timely manner through a cooling medium, thereby effectively preventing heat accumulation. In one embodiment, the energy storage system is a liquid-cooled energy storage system, and the heat dissipation system may include an energy storage temperature-controlled air conditioner 4000, that is, the energy storage temperature-controlled air conditioner 4000 can promptly remove the heat generated by the battery cells through a cooling medium (such as coolant), thereby effectively preventing heat accumulation. In one embodiment, the energy storage system includes an energy storage temperature-controlled air conditioner 4000, and the energy storage temperature-controlled air conditioner 4000 can be connected to the outside of the energy storage system and the inside of the energy storage system.

[0044] The energy storage temperature controlled air conditioner 4000 may include a housing 100, a refrigeration assembly 200 and a cooling assembly 300. The refrigeration assembly 200 and the cooling assembly 300 are located in the housing 100, and the housing 100 can be used to protect the components located therein. A refrigerant may circulate in the refrigeration assembly 200, and a cooling medium may circulate in the cooling assembly 300. The cooling medium may exchange heat with the battery cells in the energy storage system to take away the heat of the battery cells, and the refrigerant may exchange heat with the cooling medium through the second heat exchanger 204 to take away the heat of the cooling medium. The refrigeration assembly 200 may dissipate heat to the external air of the energy storage system through the fan 205, thereby dissipating the heat of the battery cells to the external air of the energy storage system.

[0045] The refrigeration assembly 200 includes a compressor 201, a first heat exchanger 202, an electronic expansion valve 203, and a second heat exchanger 204 connected in sequence through pipelines, and a fan 205 for cooling the first heat exchanger 202. The refrigerant can flow between the components of the refrigeration assembly 200 through the pipelines. The compressor 201 compresses the gaseous low-pressure and low-temperature refrigerant into a gaseous high-pressure and high-temperature refrigerant. The compressed refrigerant can flow to the first heat exchanger 202. The gaseous high-pressure and high-temperature refrigerant can release heat and condense and liquefy into a liquid high-pressure and high-temperature refrigerant in the first heat exchanger 202 (that is, the first heat exchanger 202 is a condenser). The liquefied refrigerant can flow to the second heat exchanger 204 through the electronic expansion valve 203. Under the action of the electronic expansion valve 203, the liquid high-pressure and high-temperature refrigerant becomes a liquid low-pressure and low-temperature refrigerant and flows into the second heat exchanger 204. The refrigerant can absorb heat and evaporate and vaporize into a gaseous low-temperature and low-pressure refrigerant in the second heat exchanger 204. The gaseous low-temperature and low-pressure refrigerant can be sucked into the compressor 201 again to be compressed again for repeated recycling. It can be understood that a cooling medium circulates in the cooling component 300 connected to the second heat exchanger 204. When the refrigerant absorbs heat in the second heat exchanger 204, it can absorb and take away the heat of the cooling medium. When the refrigerant circulates next time, the refrigerant carrying heat can release heat in the first heat exchanger 202. At this time, the fan 205 used to cool the first heat exchanger 202 can inhale cold air from the outside of the energy storage system to exchange heat with the first heat exchanger 202, and blow the hot air after absorbing heat out of the outside of the energy storage system.

[0046] It should be noted that the second heat exchanger 204 can be used to evaporate the refrigerant in the refrigeration assembly 200. At the same time, when the refrigerant takes away the heat of the cooling medium, the second heat exchanger 204 can be used for heat exchange between the refrigerant and the cooling medium. Optionally, the second heat exchanger 204 can be a plate heat exchanger.

[0047] The housing 100 is provided with a first chamber 101 and a second chamber 102 separated by a gap. The fan 205 and the first heat exchanger 202 are arranged in the first chamber 101. The cooling assembly 300, the compressor 201, the electronic expansion valve 203 and the second heat exchanger 204 are arranged in the second chamber 102. It can be understood that in the process of cooling the first heat exchanger 202 by the fan 205, the airflow formed will circulate in the first chamber 101, and will not flow into the separated second chamber 102. On the one hand, there are fewer components in the air duct in the first chamber 101, which can optimize the patency of the air duct, so that the resistance to the airflow becomes smaller and the flow can be smoother. In addition, since there are no excessive components blocking the air duct, the fan 205 can provide sufficient air volume at a lower speed, thereby reducing the overall power consumption of the energy storage temperature control air conditioner 4000. On the other hand, components such as the cooling assembly 300, the compressor 201, the electronic expansion valve 203 and the second heat exchanger 204 located in the second chamber 102 will not be adversely affected by the wind generated by the fan 205. These components can operate in a relatively stable environment with higher overall reliability and service life. Therefore, the need for protection is lower, and the protection level of these components can be reduced to a certain extent.

[0048] Alternatively, if Figure 7 As shown, the energy storage temperature controlled air conditioner 4000 includes a connecting pipe assembly 1002 , and the cooling assembly 300 can be connected to the second heat exchanger 204 via the connecting pipe assembly 1002 .

[0049] It should be noted that the refrigerant may undergo phase change when flowing between the refrigeration components 200, thereby absorbing and releasing heat. The refrigerant includes but is not limited to alkanes, tetrafluoroethane, freon, propane (R290), isobutane, etc., and the present invention is not limited thereto.

[0050] It should be noted that when the cooling medium flows between the cooling components 300, basically no phase change occurs. When heat exchange is performed, the temperature of the cooling medium changes (increases or decreases), but basically no phase change occurs. The cooling medium includes but is not limited to water, ethylene glycol and mixtures thereof (such as ethylene glycol-water mixtures), etc.

[0051] In some embodiments, please combine Figure 1 The housing 100 includes a body 103 and a door 104. The body 103 is provided with a first chamber 101 and a second chamber 102. The door 104 is rotatably connected to the body 103. A second opening 1021 is provided on one side of the second chamber 102, and the door 104 is used to open and close the second opening 1021.

[0052] In the above embodiment, the door body 104 is rotatably connected to the main body 103, and the second opening 1021 can be opened when inspection and maintenance are required, and closed when inspection and maintenance are not required, so that the components can be easily cleaned or replaced. At the same time, in the non-maintenance state, external debris is prevented from entering the second chamber 102, protecting the internal components from contamination or damage, thereby improving the safety and long-term stability of the energy storage temperature-controlled air conditioner 4000.

[0053] Specifically, the body 103 is provided with a first chamber 101 and a second chamber 102, and the door body 104 is rotatably connected to the body 103, so that the door body 104 can rotate within a certain angle range. A second opening 1021 is provided on one side of the second chamber 102, and the door body 104 can be used to open and close the second opening 1021. The second chamber 102 is provided with components that need regular inspection or maintenance, such as a cooling assembly 300, a compressor 201, an electronic expansion valve 203, and a second heat exchanger 204. When inspection or maintenance is performed, the door body 104 can open the second opening 1021 so that the components located in the second chamber 102 can be cleaned or replaced. When inspection or maintenance is not required, the door body 104 can close the second opening 1021 so that a relatively closed space can be formed, which prevents external debris from entering the second chamber 102 to a certain extent, thereby protecting the components located in the second chamber 102 from contamination or damage.

[0054] In one embodiment, the body 103 and the door 104 may be rotatably connected via a hinge.

[0055] In one embodiment, the energy storage temperature controlled air conditioner 4000 may include a safety device such as a lock. The safety device can prevent the door body 104 from opening the second opening 1021 without authorization, thereby ensuring that the second chamber 102 remains closed in a non-maintenance state to a certain extent to prevent unauthorized operation.

[0056] In some embodiments, please combine Figure 1 and Figure 2 The energy storage temperature controlled air conditioner 4000 includes a partition plate 400. The housing 100 includes a body 103 and a cover plate 105. The body 103 includes a first portion 1031 and a second portion 1032. The partition plate 400 and the first portion 1031 enclose a first chamber 101, and the partition plate 400 and the second portion 1032 enclose a second chamber 102. A first opening 1011 is provided on one side of the first chamber 101, and the cover plate 105 covers the first opening 1011, the first portion 1031 and the partition plate 400. A sealing member 1001 is provided on one side of the first portion 1031 and the partition plate 400 facing the cover plate 105, and the sealing member 1001 seals and connects the first portion 1031, the partition plate 400 and the cover plate 105.

[0057] In the above embodiment, the seal 1001 can seal the gap between the cover plate 105 and the first portion 1031 and the partition plate 400 , thereby preventing the airflow from escaping and affecting the cooling effect of the first heat exchanger 202 .

[0058] Specifically, the partition plate 400 separates the first chamber 101 from the second chamber 102. The partition plate 400 and the first portion 1031 enclose the first chamber 101. The first chamber 101 is provided with a first opening 1011 on one side facing the cover plate 105. The cover plate 105 can cover the first opening 1011, the partition plate 400 and the first portion 1031 to make the first chamber 101 a relatively closed space. The first heat exchanger 202 and the fan 205 are located in the first chamber 101. When the fan 205 cools the first heat exchanger 202, the wind generated by the fan 205 circulates in the air duct in the first chamber 101 to achieve the purpose of cooling the first heat exchanger 202. In order to better control the flow path of the airflow, a seal 1001 is provided on the side of the first part 1031 and the partition plate 400 facing the cover plate 105. The seal 1001 can seal and connect the first part 1031, the partition plate 400 and the cover plate 105, thereby preventing the airflow from escaping from the gap between the cover plate 105 and the first part 1031 and the partition plate 400, thereby affecting the cooling effect of the first heat exchanger 202.

[0059] In some embodiments, please combine Figure 1 , Figure 2 and Figure 4 The first part 1031 includes a first side plate 106 that encloses the first chamber 101 and is opposite to the cover plate 105. The first side plate 106 is provided with an air outlet at a position corresponding to the first heat exchanger 202.

[0060] In the above embodiment, the first side panel 106 is provided with an air outlet corresponding to the position of the first heat exchanger 202, so that the air outlet is directly opposite to the first heat exchanger 202, which can facilitate the wind generated by the fan 205 to be directly blown out of the shell 100 after passing through the first heat exchanger 202, and the first heat exchanger 202 can be directly cleaned through the air outlet, thereby ensuring the long-term stable operation of the first heat exchanger 202 to a certain extent, while simplifying the maintenance work and reducing the complexity and time cost of the cleaning process.

[0061] Specifically, the air outlet is connected to the outside of the energy storage system. After the fan 205 inhales cold air from the outside of the energy storage system, it accelerates the cold air through the impeller to form an airflow, and blows the airflow toward the first heat exchanger 202. After the low-temperature airflow absorbs the heat of the first heat exchanger 202, it can flow from the air outlet at the first side plate 106 to the outside of the energy storage temperature-controlled air conditioner 4000 and thus to the outside of the energy storage system.

[0062] Optionally, the number, size and shape of the air outlet holes can be selected according to factors such as demand, air volume, airflow distribution, etc., and the present invention does not make specific limitations.

[0063] The air outlet is provided at the position of the first side plate 106 corresponding to the first heat exchanger 202, which can ensure to a certain extent that the air outlet is directly facing the first heat exchanger 202, so that the wind generated by the fan 205 can be directly blown out of the housing 100 after passing through the first heat exchanger 202, and the first heat exchanger 202 can be directly cleaned through the air outlet. In one embodiment, water can be sprayed toward the air outlet through a high-pressure water gun, and the water can directly contact the surface of the first heat exchanger 202 through the air outlet, thereby cleaning the stains on the surface of the first heat exchanger 202.

[0064] In some embodiments, please combine Figure 1 , Figure 2 and Figure 4 The housing 100 is provided with a drainage hole. The drainage hole is located at the bottom of the first chamber 101 and is close to the first side plate 106. The drainage hole is connected to the first chamber 101.

[0065] In the above embodiment, the drainage hole arranged near the first side panel 106 can discharge the water in the first chamber 101 to the outside of the energy storage temperature-controlled air conditioner 4000 and / or the energy storage system, thereby keeping the first chamber 101 dry and optimizing the layout of the various components of the energy storage system and / or the energy storage temperature-controlled air conditioner 4000.

[0066] Specifically, the first side plate 106 is opposite to the cover plate 105. The drain hole is located at the bottom of the first chamber 101, that is, at the lowest point of the first chamber 101 in the vertical direction. The drain hole is connected to the first chamber 101 and the outside of the energy storage temperature controlled air conditioner 4000. When there is water inside the first chamber 101, the water can flow to the drain hole under the action of gravity and then be discharged from the energy storage temperature controlled air conditioner 4000.

[0067] In one embodiment, the energy storage temperature controlled air conditioner 4000 is used for an energy storage system. The air outlet and the drain hole can be connected to the outside of the energy storage system. In one embodiment, the energy storage system includes an installation window, and the installation window can connect the inside and the outside of the energy storage system. The energy storage temperature controlled air conditioner 4000 includes a mounting flange, and the first side panel 106 and the drain hole are located on one side of the mounting flange. The energy storage temperature controlled air conditioner 4000 can be installed on the mounting window, and the side provided with the first side panel 106 and the exhaust hole can be connected to the outside of the energy storage system through the mounting window. In one embodiment, the air outlet and the drain hole can be connected to the outside of the energy storage system by means of pipes, ventilation ducts, hoses or connectors.

[0068] In one embodiment, after cleaning the first heat exchanger 202 through the installation window and the air outlet, water can flow to the drain hole under the action of gravity to be discharged from the energy storage temperature-controlled air conditioner 4000 and the energy storage system to the outside.

[0069] In one embodiment, when rainwater flows into the first chamber 101 from the installation window and the air outlet, the rainwater can flow to the drainage hole under the action of gravity and be discharged from the energy storage temperature-controlled air conditioner 4000 and the energy storage system to the outside.

[0070] It should be understood that the first side panel 106 is provided with an air outlet hole connected to the outside of the energy storage temperature-controlled air conditioner 4000 and / or the outside of the energy storage system, and the drainage hole required to discharge water from the outside of the energy storage temperature-controlled air conditioner 4000 and / or the outside of the energy storage system is arranged close to the first side panel 106, so that the air outlet holes and the drainage holes that need to be connected to the outside of the energy storage temperature-controlled air conditioner 4000 and / or the outside of the energy storage system are close to each other, which can help optimize the layout of the various components of the energy storage system and / or the air conditioning system, thereby reducing unnecessary connections and pipelines to a certain extent and improving space utilization.

[0071] In some embodiments, please combine Figure 2 and Figure 6 The energy storage temperature control air conditioner 4000 includes an electric control component 600 and a radiator 700. The electric control component 600 is connected to the radiator 700, and the fan 205 is used to cool the radiator 700.

[0072] In the above embodiment, the radiator 700 can be cooled by the fan 205 to control the temperature of the electronic control component 600 so that it works in a normal state, which is beneficial to the stable operation of the energy storage temperature control air conditioner 4000.

[0073] Specifically, the electric control component 600 is a component used to control the normal operation of various components of the energy storage temperature controlled air conditioner 4000. The electric control component 600 may include multiple electronic components, such as inverters, microcontrollers (MCUs), power regulators, sensors, relays, etc. During the operation of the electric control component 600, these electronic components will generate heat due to the flow of current. If the heat cannot be dissipated in time, the temperature of the electric control component 600 may be too high, thereby failing to work normally and affecting the normal operation of the energy storage temperature controlled air conditioner 4000. Therefore, the radiator 700 connected to the electric control component 600 can absorb the heat generated by the electric control component 600 in time, and take the heat away through the fan 205 and transfer it to the outside of the energy storage system.

[0074] In one embodiment, the heat sink 700 includes a finned heat sink. The finned heat sink includes a plurality of fins parallel to the airflow direction. After the fan 205 inhales cold air from the outside of the energy storage system and blows it toward the first chamber 101, the airflow flowing in the air duct of the first chamber 101 can pass through the fins of the finned heat sink, thereby exchanging heat with the fins to absorb the heat of the finned heat sink. After absorbing the heat, the airflow can flow out of the energy storage system from the air outlet.

[0075] It should be understood that the airflow can cool the first heat exchanger 202 and the electronic control component 600 simultaneously when circulating in the first chamber 101 .

[0076] In some embodiments, please combine Figure 2 The electronic control component 600 and the radiator 700 are located in the upper part of the first chamber 101, the first heat exchanger 202 is located in the middle and upper part of the first chamber, and the fan 205 is located in the lower part of the first chamber.

[0077] In the above embodiment, the electronic control component 600 and the radiator 700 are located in the upper part of the first chamber 101, the first heat exchanger 202 is located in the middle and upper part of the first chamber, and the fan 205 is located in the lower part of the first chamber, which is beneficial to optimize the structure and layout of the energy storage temperature control air conditioner 4000 while improving the cooling efficiency of the fan 205.

[0078] Specifically, the upper part of the first chamber 101 refers to the upper area in the first chamber 101 in the vertical direction, the upper middle part of the first chamber 101 refers to the upper area and middle area in the first chamber 101 in the vertical direction, and the lower part of the first chamber 101 refers to the lower area in the first chamber 101 in the vertical direction.

[0079] It should be noted that a portion of the first heat exchanger 202 is located at the upper portion of the first chamber 101 , and a portion of the first heat exchanger 202 is located at the middle portion of the first chamber 101 .

[0080] In one embodiment, the compressor 201 is located at the upper part of the second chamber 102, and the first heat exchanger 202 is located at the middle and upper part of the first chamber 101, which is conducive to connecting the first heat exchanger 202 to the compressor 201 through a pipeline, thereby simplifying the pipeline connection structure to a certain extent.

[0081] In one embodiment, the fan 205 is located in the lower part of the first chamber 101, and the first heat exchanger 202 is located in the middle and upper part of the first chamber 101, which is conducive to forming a vertical layout, thereby reducing the mutual interference between the first heat exchanger 202 and the fan 205 to a certain extent, thereby improving the cooling efficiency of the fan 205 and the first heat exchanger 202.

[0082] In one embodiment, the fan 205 is located at the lower part of the first chamber 101, and the electronic control component 600 is located at the upper part of the first chamber 101, which is conducive to forming a vertical layout, thereby reducing the mutual interference between the electronic control component 600 and the fan 205 to a certain extent, thereby improving the cooling efficiency of the fan 205 and the electronic control component 600.

[0083] In some embodiments, please combine Figure 2 and Figure 5 The energy storage temperature controlled air conditioner 4000 further includes a junction box 500 . The junction box 500 is disposed on the outer side of the housing 100 , and the junction box 500 is electrically connected to the electric control component 600 .

[0084] In the above embodiment, the junction box 500 is arranged on the outer side of the shell 100, and the junction box 500 is electrically connected to the electronic control component 600, so that the user can directly connect to the electronic control component 600 in the energy storage temperature control air conditioner 4000 through the junction box 500, which improves the wiring efficiency and user experience to a certain extent.

[0085] Specifically, the junction box 500 is an interface component for electrically connecting the energy storage temperature control air conditioner 4000 with external devices. The junction box 500 is arranged on the outer side of the housing 100, so that the user can directly connect the electrical control component 600 in the energy storage temperature control air conditioner 4000 through the junction box 500.

[0086] In one embodiment, please combine Figure 5 The junction box 500 may include a housing 501 and a plurality of electrical interfaces 502. The plurality of electrical interfaces 502 are located in the housing 501, and the housing 501 may protect the electrical interfaces 502 to prevent them from being directly affected by the outside world. The plurality of electrical interfaces 502 are electrically connected to the electric control component 600. The electrical interface 502 may include, but is not limited to, a reserved debugging communication interface, a power interface, a host computer communication interface, and the like.

[0087] In some embodiments, please combine Figure 2 The refrigeration assembly 200 includes at least one partition 206 and a plurality of fans 205 . The partition 206 is located in the first chamber 101 , and one partition 206 separates two fans 205 .

[0088] In the above embodiment, the partition 206 can effectively separate the airflows of the two fans 205 , thereby avoiding the intersection and interference between the airflows to a certain extent, which is beneficial to improving the cooling effect of the fans 205 .

[0089] Specifically, in order to ensure that the air volume of the fan 205 is large enough to effectively cool the first heat exchanger 202, the refrigeration assembly 200 may include multiple fans 205, and the multiple fans 205 can cool the first heat exchanger 202 together. When multiple fans 205 work at the same time, the airflow direction and the air duct may be disturbed, thereby affecting the cooling efficiency. Therefore, a partition 206 may be provided between the two fans 205, and the partition 206 can effectively separate the airflows of the two fans 205, thereby avoiding the intersection and interference between the airflows to a certain extent, which is beneficial to improving the cooling effect of the fan 205.

[0090] In one embodiment, the refrigeration assembly 200 includes two fans 205 and a partition 206 . The partition 206 is located between the two fans 205 to separate the two fans 205 .

[0091] In one embodiment, the refrigeration assembly 200 includes three fans 205 and a partition 206, wherein a partition 206 is located between any two adjacent fans 205 to separate the two fans 205. In one embodiment, the refrigeration assembly 200 includes three fans 205 and two partitions 206, wherein a partition 206 is located between any two adjacent fans 205 to separate the two fans 205.

[0092] In some embodiments, please combine Figure 2 The energy storage temperature control air conditioner 4000 includes a support member 800 and a fastener 900 . The second heat exchanger 204 is connected to the support member 800 , and the fastener 900 passes through the support member 800 and is connected to the housing 100 so as to connect the second heat exchanger 204 to the housing 100 .

[0093] In the above embodiment, the second heat exchanger 204 is connected to the support member 800, which is conducive to connecting the second heat exchanger 204 to the shell 100 through the support member 800, thereby facilitating the second heat exchanger 204 to be fixed to the shell 100, simplifying the installation process and improving assembly efficiency.

[0094] Specifically, the support member 800 is provided with at least one through hole, and correspondingly, the housing 100 is provided with at least one corresponding mounting hole. The fastener 900 can penetrate the through hole and the mounting hole in sequence so that the fastener 900 is connected to the housing 100, which is conducive to improving the positioning accuracy of installing the second heat exchanger 204 on the housing 100. When installing the second heat exchanger 204, the second heat exchanger 204 may be tilted due to external force (such as gravity). By connecting the housing 100 with the support member 800, the second heat exchanger 204 can be installed in the correct position to a certain extent, thereby reducing the difficulty of installation.

[0095] In addition, the support member 800 can be used to support and fix the second heat exchanger 204. The second heat exchanger 204 is arranged on the housing 100 through the support member 800, and the support member 800 can effectively disperse the gravity of the second heat exchanger 204, and to a certain extent prevent the second heat exchanger 204 from being displaced or even falling off due to external force or long-term use, thereby enhancing the stability and service life of the second heat exchanger 204.

[0096] The fastener 900 may pass through the support member 800 and be fastened to the housing 100 by threads, so that the second heat exchanger 204 may be more firmly arranged on the housing 100. Optionally, the fastener 900 may include a bolt, a screw, or a self-locking bolt.

[0097] In one embodiment, the second heat exchanger 204 and the support member 800 may be connected by welding, which helps to simplify the installation steps.

[0098] In other embodiments, the second heat exchanger 204 and the support member 800 may be connected by means of bolts, buckles, slots, spring clips, or the like.

[0099] In some embodiments, please combine Figure 2 and Figure 7 The cooling assembly 300 is provided with a medium interface 302. The medium interface 302 is arranged near the bottom of the second chamber 102, and the medium interface 302 is used for the cooling medium to be discharged from the cooling assembly 300 and injected into the cooling assembly 300 through the medium interface 302.

[0100] In the above embodiment, the medium interface 302 disposed near the bottom of the second chamber 102 can make the flow of the cooling medium smoother and more efficient.

[0101] Specifically, the medium interface 302 can be used to allow the cooling medium to be discharged from the cooling assembly 300 or injected into the cooling assembly 300 through the medium interface 302 when the cooling medium needs to be replaced or supplemented, thereby facilitating the normal operation of the cooling assembly 300. The medium interface 302 is arranged close to the bottom of the second chamber 102, so that when the cooling medium is discharged, it can rely on natural gravity flow, which can ensure that the cooling medium is discharged smoothly to a certain extent.

[0102] In some embodiments, please combine Figure 2 The energy storage temperature controlled air conditioner 4000 includes an inlet connector 303 and an outlet connector 304 located outside the shell 100, the inlet connector 303 and the outlet connector 304 are connected to the cooling assembly 300, and the inlet connector 303 and the outlet connector 304 are both quick-connect connectors.

[0103] In the above implementation, the quick-connect connector can quickly connect and disconnect the pipe, which can improve installation efficiency and user experience to a certain extent.

[0104] Specifically, the cooling medium after absorbing the heat of the battery cells of the energy storage system can flow into the cooling component 300 through the inlet joint 303 and then flow into the energy storage temperature-controlled air conditioner 4000, and then flow into the second heat exchanger 204 connected to the cooling component 300. In the second heat exchanger 204, the refrigerant can absorb and take away the heat of the cooling medium to reduce the temperature of the cooling medium. The cooling medium after the temperature is reduced can flow out of the cooling component 300 from the outlet joint 304 and then flow out of the energy storage temperature-controlled air conditioner 4000, so that it can be recycled again to absorb the heat of the battery cells of the energy storage system.

[0105] In one embodiment, the energy storage system includes a heat exchange device (such as a cooling plate or a cooling pipe), and the heat exchange device can absorb the heat generated by the battery cell in time. The inlet connector 303 and the outlet connector 304 can be connected to the heat exchange device through pipes respectively, and the cooling medium can flow in the pipes between the inlet connector 303 and the outlet connector 304 and the heat exchange device, thereby exchanging heat with the heat exchange device to absorb and take away the heat of the battery cell to the energy storage temperature control air conditioner 4000, so that the fan 205 of the energy storage temperature control air conditioner 4000 dissipates the heat to the outside of the energy storage system, thereby achieving heat dissipation of the energy storage system.

[0106] A quick-connect connector is a connector for quickly connecting and disconnecting a pipe. Optionally, the quick-connect connector may include a plug-in connector, a snap-on structure, or a threaded connector.

[0107] In one embodiment, the inlet connector 303 is one of a male head and a female head, and one end of the pipe connected to the inlet connector 303 is the other of the male head and the female head. The outlet connector 304 is one of the male head and the female head, and one end of the pipe connected to the outlet connector 304 is the other of the male head and the female head. Among them, there is a hollow channel between the male head and the female head, allowing the cooling medium to flow. In one embodiment, the male head includes a first section and a second section, and the first section is located at the outermost side. The maximum diameter of the first section is smaller than the maximum diameter of the second section. The female head is provided with a through hole, and the diameter of the through hole is slightly smaller than the maximum diameter of the first section. When connecting the male head and the female head, the first section can be inserted into the through hole to achieve an interference connection until the surface of the second section abuts against the surface of the female head.

[0108] In one embodiment, at least one slot is provided circumferentially on the outer surface of the male head. At least one slot of the same size is provided at the corresponding position of the female head. When connecting the male head and the female head, the male head can be inserted into the female head and the slots of the two can be aligned, and then the same card piece can be simultaneously inserted into the two slots at the aligned position to define the relative position between the male head and the female head. In addition, multiple card pieces can be simultaneously inserted into the two slots at multiple aligned positions to enhance the connection stability between the male head and the female head. In addition, when the male head has more slots than the female head, the redundant slots can be accommodated with sealing rings so that the sealing rings can seal the gap between the male head and the female head to avoid leakage of the cooling medium to a certain extent.

[0109] In some embodiments, please combine Figure 2 The cooling assembly 300 includes a pump 301. The pump 301 is located in the second chamber 102 and is disposed near an inlet joint 303 and an outlet joint 304, and the pump 301 is connected to the inlet joint 303 and the outlet joint 304.

[0110] In the above embodiment, the pump 301 is located in the second chamber 102 and is arranged close to the inlet connector 303 and the outlet connector 304, which can avoid unnecessary pipelines to a certain extent, thereby reducing the space occupied by the cooling component 300 and reducing costs.

[0111] Specifically, the cooling medium can flow in the cooling assembly 300 under the drive of the pump 301 to achieve the normal operation of the energy storage temperature control air conditioner 4000. The inlet joint 303, the pump 301, the second heat exchanger 204 and the outlet joint 304 can be connected in sequence through pipelines, and the cooling medium can flow into the pump 301 from the inlet joint 303, and after being driven by the pump 301, flow to the second heat exchanger 204 to exchange heat with the refrigerant, and then flow to the outlet joint 304. The pump 301 is located in the second chamber 102 and is arranged close to the inlet joint 303 and the outlet joint 304 to reduce the space occupied by the cooling assembly 300.

[0112] It can be understood that the cooling medium needs to circulate through pipes in the cooling component 300. The arrangement of the pump 301 close to the inlet connector 303 and the outlet connector 304 can avoid unnecessary pipes to a certain extent, thereby reducing the space occupied by the cooling component 300 and reducing costs.

[0113] In an optional embodiment, the refrigeration assembly 200 further includes a refrigerant filling port 207 , two first pressure sensors 208 , two first temperature sensors 209 , a high pressure switch 210 , a needle valve 211 , a process pipe 212 and a filter 213 .

[0114] Specifically, the refrigerant filling port 207 refers to a reserved interface for allowing refrigerant to be injected into the refrigeration assembly 200. When the refrigerant is insufficient, refrigerant can be injected into the refrigeration assembly 200 through the refrigerant filling port 207. Optionally, a valve is provided between the refrigerant filling port 207 and the connecting pipe of the refrigeration assembly 200, and the valve can close the pipe when the refrigerant does not need to be supplemented.

[0115] Two first pressure sensors 208 and two first temperature sensors 209 can be connected to the electronic control component 600 for communication. The two first pressure sensors 208 are respectively arranged at the inlet of the first heat exchanger 202 and the outlet of the second heat exchanger 204 so as to measure the condensing pressure and the evaporating pressure respectively. The two first temperature sensors 209 are respectively arranged at the inlet of the compressor 201 and the outlet of the compressor 201 so as to measure the suction temperature and the exhaust temperature respectively. The measured condensing pressure, evaporating pressure, suction temperature and exhaust temperature can be sent to the electronic control component 600 so that the electronic control component 600 can better control the operation of the energy storage temperature control air conditioner 4000.

[0116] The high-voltage switch 210 is a device for monitoring the high-voltage side. The high-voltage switch 210 can be set at the outlet of the compressor 201. After the compressor 201 compresses the refrigerant, if the pressure of the refrigerant is too high and exceeds the safety range, the high-voltage switch 210 can automatically disconnect the power supply of the energy storage temperature control air conditioner 4000 or trigger an alarm to prevent the energy storage temperature control air conditioner 4000 from malfunctioning or being damaged due to the high voltage.

[0117] The needle valve 211 is a fine-tuning valve used to adjust the flow of the refrigerant. Compared with the electronic expansion valve 203, it has a more precise control capability and can accurately control the flow of the refrigerant.

[0118] The process pipe 212 refers to a pipe used for charging refrigerant during the production process of the energy storage temperature-controlled air conditioner 4000. After the charging of the refrigerant is completed, the pipe mouth can be sealed by welding to prevent refrigerant leakage.

[0119] The filter 213 is a component for filtering impurities in the refrigerant. When the refrigerant circulates in the refrigeration assembly 200, the refrigerant flows through the filter 213 so that the purity of the refrigerant can be ensured to a certain extent.

[0120] In an optional embodiment, the cooling assembly 300 further includes two second pressure sensors 305 , two second temperature sensors 306 , an expansion tank 307 , an electric heater 308 , an exhaust valve 309 , a first ball valve 310 , and a second ball valve 311 .

[0121] The two second pressure sensors 305 and the two second temperature sensors 306 can be connected to the electronic control component 600 for communication. The two second pressure sensors 305 are respectively arranged near the inlet joint 303 and the outlet joint 304 so as to respectively measure the pressure of the cooling medium when the liquid is inlet and the pressure of the cooling medium when the liquid is out. The two second temperature sensors 306 are respectively arranged near the inlet joint 303 and the outlet joint 304 so as to respectively measure the temperature of the cooling medium when the liquid is inlet and the temperature of the cooling medium when the liquid is out. The measured inlet pressure, outlet pressure, inlet temperature and outlet temperature can be sent to the electronic control component 600 so that the electronic control component 600 can better control the operation of the energy storage temperature control air conditioner 4000.

[0122] The expansion tank 307 can absorb and alleviate the pressure fluctuation caused by the expansion of the cooling medium due to temperature changes in the cooling assembly 300. When the cooling medium expands due to excessive temperature, part of the cooling medium can enter the expansion tank 307 to reduce the pressure of the cooling medium.

[0123] The electric heater 308 can heat the cooling medium circulating in the cooling assembly 300. In one embodiment, when the temperature of the battery cell of the energy storage system is too low, the electric control assembly 600 can control the compressor 201 to stop running, and turn on the electric heater 308 to heat the cooling medium circulating in the cooling assembly 300. The high-temperature cooling medium can provide heat for the battery cell of the energy storage system, thereby increasing the temperature of the battery cell. Optionally, the electric heater 308 includes a positive temperature coefficient electric heater (PTC, Positive Temperature Coefficient Heater).

[0124] The exhaust valve 309 is a valve for exhausting the gas in the connecting pipe of the cooling assembly 300, so as to prevent the gas from accumulating and affecting the normal operation of the energy storage temperature control air conditioner 4000. Optionally, a first ball valve 310 is provided between the exhaust valve 309 and the connecting pipe of the cooling assembly 300. Since the exhaust valve 309 has a short service life and needs to be replaced regularly, in order not to affect the normal operation of the energy storage temperature control air conditioner 4000 when replacing the exhaust valve 309, the pipeline can be closed by the first ball valve 310.

[0125] The second ball valve 311 is disposed between the medium interface 302 and the connecting pipeline of the cooling assembly 300 . When the cooling medium does not need to be supplemented or replaced, the second ball valve 311 can close the pipeline.

[0126] In the description of this specification, the description with reference to the terms "one embodiment", "some embodiments", "illustrative embodiments", "examples", "specific examples" or "some examples" etc. means that the specific features, structures, materials or characteristics described in conjunction with the embodiments or examples are included in at least one embodiment or example of the present invention. In this specification, the schematic representation of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described may be combined in any one or more embodiments or examples in a suitable manner.

[0127] Any process or method description in a flowchart or otherwise described herein may be understood to represent a module, segment or portion of code that includes one or more executable actions for implementing a specific logical function or process step, and the scope of the preferred embodiments of the present invention includes alternative implementations in which functions may not be performed in the order shown or discussed, including performing functions in a substantially simultaneous manner or in reverse order depending on the functions involved, which should be understood by technicians in the technical field to which the embodiments of the present invention belong.

[0128] Although the embodiments of the present invention have been shown and described above, it is to be understood that the above embodiments are exemplary and are not to be construed as limitations of the present invention. A person skilled in the art may change, combine, modify, replace and vary the above embodiments within the scope of the present invention.

Claims

1. An energy storage temperature controlled air conditioner, characterized in that: include: a housing, the housing being provided with a first chamber and a second chamber separated from each other; A refrigeration assembly, the refrigeration assembly comprising a compressor, a first heat exchanger, an electronic expansion valve and a second heat exchanger; the compressor, the first heat exchanger, the electronic expansion valve and the second heat exchanger are connected in sequence; a fan, the fan being used to cool the first heat exchanger, the fan and the first heat exchanger being arranged in the first chamber; A cooling component is connected to the second heat exchanger, and is used to exchange heat with the refrigeration component through the second heat exchanger to adjust the temperature of the load. The cooling component, the compressor, the electronic expansion valve and the second heat exchanger are arranged in the second chamber.

2. The energy storage temperature controlled air conditioner according to claim 1, characterized in that: The shell includes a body and a door body, the body is provided with the first chamber and the second chamber, the door body is rotatably connected to the body, one side of the second chamber is provided with a second opening, and the door body is used to open and close the second opening.

3. The energy storage temperature controlled air conditioner according to claim 1, characterized in that: The energy storage temperature-controlled air conditioner includes a partition plate, the shell includes a main body and a cover plate, the main body includes a first part and a second part, the partition plate and the first part form the first chamber, the partition plate and the second part form the second chamber, a first opening is provided on one side of the first chamber, the cover plate covers the first opening, the first part and the partition plate, a sealing member is provided on the side of the first part and the partition plate facing the cover plate, and the sealing member seals and connects the first part, the partition plate and the cover plate.

4. The energy storage temperature controlled air conditioner according to claim 3, characterized in that: The first part includes a first side plate that encloses the first chamber and is opposite to the cover plate, and an air outlet is formed on the first side plate at a position corresponding to the first heat exchanger.

5. The energy storage temperature controlled air conditioner according to claim 4, characterized in that: The shell is provided with a drainage hole, the drainage hole is located at the bottom of the first chamber and close to the first side plate, and the drainage hole is communicated with the first chamber.

6. The energy storage temperature controlled air conditioner according to claim 1, characterized in that: The energy storage temperature-controlled air conditioner comprises an electric control component and a radiator, wherein the electric control component is connected to the radiator, and the fan is used for cooling the radiator.

7. The energy storage temperature controlled air conditioner according to claim 6, characterized in that: The electric control component and the radiator are located in the upper part of the first chamber, the first heat exchanger is located in the upper middle part of the first chamber, and the fan is located in the lower part of the first chamber.

8. The energy storage temperature controlled air conditioner according to claim 6, characterized in that: The energy storage temperature-controlled air conditioner further comprises a junction box, which is arranged on the outer side of the shell and is electrically connected to the electric control component.

9. The energy storage temperature controlled air conditioner according to claim 1, characterized in that: The refrigeration assembly includes at least one partition and a plurality of fans. The partition is located in the first chamber, and one partition separates two fans.

10. The energy storage temperature controlled air conditioner according to claim 1, characterized in that: The energy storage temperature-controlled air conditioner includes a support and a fastener, the second heat exchanger is connected to the support, and the fastener passes through the support and is connected to the shell so that the second heat exchanger is connected to the shell.

11. The energy storage temperature controlled air conditioner according to claim 1, characterized in that: The cooling component is provided with a medium interface, which is arranged close to the bottom of the second chamber. The medium interface is used for cooling medium to be discharged from the cooling component and injected into the cooling component through the medium interface.

12. The energy storage temperature controlled air conditioner according to claim 1, characterized in that: The energy storage temperature-controlled air conditioner comprises an inlet joint and an outlet joint located outside the shell, the inlet joint and the outlet joint are connected to the cooling assembly, and the inlet joint and the outlet joint are both quick-connect joints.

13. The energy storage temperature controlled air conditioner according to claim 12, characterized in that: The cooling assembly comprises a pump, which is located in the second chamber and arranged close to the inlet joint and the outlet joint, and is connected to the inlet joint and the outlet joint.