Constant-temperature energy storage cabinet shell structure and constant-temperature energy storage cabinet

By combining phase change blocks and temperature adjustment components in the energy storage cabinet, the problem of poor heat dissipation of outdoor energy storage cabinets is solved, dynamic temperature balance is achieved, and the service life of energy storage batteries is extended.

CN223142283UActive Publication Date: 2025-07-22SHENZHEN RUIDIAN GREEN ENERGY TECH CO LTD
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Patent Information

Application Number
CN202422205734.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-09
Publication Date
2025-07-22
Estimated Expiration
2034-09-09

AI Technical Summary

Technical Problem

Due to poor heat dissipation effect in outdoor environments, the temperature of the energy storage battery increases rapidly, shortening its service life.

Method used

The phase change block and temperature control component are combined. The phase change block melts and absorbs heat at high temperatures, solidifies and releases heat at low temperatures, and the temperature control component actively adjusts the temperature to form a dynamic temperature balance to ensure the temperature balance in the energy storage cabinet.

Benefits of technology

Effectively maintain the normal working temperature of the energy storage battery and extend the service life of the energy storage battery.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model is suitable for the technical field of energy storage equipment, and provides a constant-temperature energy storage cabinet shell structure and a constant-temperature energy storage cabinet, the constant-temperature energy storage cabinet shell structure comprises a frame body, a phase change block, a first cover plate, a temperature adjusting assembly and a second cover plate, a containing cavity is formed in the frame body, the phase change block is contained in the containing cavity, the first cover plate is arranged at an opening of the containing cavity, and the temperature adjusting assembly is arranged at the opening of the containing cavity; the first cover plate is connected with the frame body, the temperature adjusting assembly is arranged on the side, away from the containing cavity, of the first cover plate, the second cover plate is arranged on the side, away from the first cover plate, of the temperature adjusting assembly, and the second cover plate is connected with the frame body. According to the constant-temperature energy storage cabinet shell structure, the temperature in the constant-temperature energy storage cabinet shell is automatically adjusted through the phase change block, temperature adjustment can be conducted actively through the temperature adjustment assembly, mutual cooperation and complementation are formed with passive temperature adjustment of the phase change block, dynamic balance of the temperature in the constant-temperature energy storage cabinet shell is kept, and the service life of the constant-temperature energy storage cabinet shell is prolonged. The normal working temperature of the energy storage battery in the constant-temperature energy storage cabinet can be ensured, and the service life of the energy storage battery is prolonged.
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Description

Technical Field

[0001] This application belongs to the technical field of energy storage devices, and particularly relates to a constant-temperature energy storage cabinet housing structure and a constant-temperature energy storage cabinet. Background Art

[0002] With the development of technology, outdoor energy storage cabinets are more and more widely used in outdoor environments. It can provide continuous power supply for people during outdoor operations, wilderness explorations, emergency rescues, etc., and meet various usage requirements such as lighting, communication, and equipment operation.

[0003] At present, during the use of outdoor energy storage cabinets, due to long-term exposure to the sun outdoors, the temperature inside the energy storage cabinet rises rapidly. Over time, it will shorten the service life of the energy storage battery inside the energy storage cabinet and affect the normal use of the energy storage cabinet. Summary of the Invention

[0004] In view of this, the embodiments of this application provide a constant-temperature energy storage cabinet housing structure and a constant-temperature energy storage cabinet to solve the problem that the current outdoor energy storage cabinet has poor heat dissipation effect and affects the normal use of the energy storage cabinet.

[0005] The first aspect of the embodiments of this application provides a constant-temperature energy storage cabinet housing structure, including: a frame body, a phase change block, a first cover plate, a temperature adjustment component, and a second cover plate. An accommodation cavity is provided inside the frame body, the phase change block is received in the accommodation cavity, the first cover plate is provided at the opening of the accommodation cavity, and the first cover plate is connected to the frame body. The temperature adjustment component is provided on the side of the first cover plate facing away from the accommodation cavity, the second cover plate is provided on the side of the temperature adjustment component facing away from the first cover plate, and the second cover plate is connected to the frame body.

[0006] For the above-mentioned constant-temperature energy storage cabinet housing, by setting a phase change block in the accommodation cavity of the frame body, the characteristics of the phase change block melting and absorbing heat at high temperatures and solidifying and releasing heat at low temperatures can be utilized to automatically adjust the temperature inside the constant-temperature energy storage cabinet housing, so that the temperature remains relatively balanced. At the same time, a temperature adjustment component is also provided on the side of the first cover plate facing away from the accommodation cavity. The temperature adjustment component can be used to actively adjust the temperature, forming mutual cooperation and complement with the passive temperature adjustment of the phase change block, maintaining the dynamic balance of the temperature inside the constant-temperature energy storage cabinet housing, and ensuring that the energy storage battery inside the constant-temperature energy storage cabinet is at a normal working temperature, thereby extending the service life of the energy storage battery.

[0007] In one embodiment, the housing structure of the constant-temperature energy storage cabinet further includes a partition beam, which is arranged in the accommodation cavity and is connected to the inner side walls of the opposite sides of the frame body to divide the accommodation cavity into at least two sub-accommodation cavities; the housing structure of the constant-temperature energy storage cabinet includes a plurality of the phase change blocks, and each of the phase change blocks is respectively received in each of the sub-accommodation cavities. By arranging a partition beam in the accommodation cavity to divide it into a plurality of sub-accommodation cavities and arranging phase change blocks in each sub-accommodation cavity respectively, it is possible to separately and individually adjust the temperature of the sub-accommodation cavities at different positions inside the housing structure of the constant-temperature energy storage cabinet, that is, to achieve precise control of the temperature zoning in different sub-accommodation cavities. Moreover, since the volume of each sub-accommodation cavity is relatively small, the temperature adjustment of it can be faster and more uniform, without leaving temperature control dead corners.

[0008] In one embodiment, the partition beam includes at least one cross beam and at least one longitudinal beam. The cross beam extends along a first direction, and the longitudinal beam extends along a second direction, and the first direction intersects with the second direction. By arranging a cross beam extending along the first direction and a longitudinal beam extending along the second direction, not only can the shape of the sub-accommodation cavity be divided more uniformly and regularly, but also the cross beam and the longitudinal beam can play a supporting role for the frame body in the first direction and the second direction, improving the structural strength and stiffness of the housing structure of the constant-temperature energy storage cabinet.

[0009] In one embodiment, the housing structure of the constant-temperature energy storage cabinet further includes a sealing strip. At least one side of the first cover plate is connected to the inner side wall of the frame body, and the sealing strip is sealingly arranged at the connection between the first cover plate and the frame body. By arranging a sealing strip to seal the first cover plate, the phase change block can be sealed inside the accommodation cavity, improving the temperature adjustment efficiency of the phase change block and ensuring the normal use of the phase change block.

[0010] In one embodiment, the temperature adjustment component includes a semiconductor device and a power supply module, and the semiconductor device is electrically connected to the power supply module. With such an arrangement, by using the temperature adjustment component including a semiconductor device for active temperature adjustment, it does not require any refrigerant, has a relatively high refrigeration and heating efficiency, can work continuously, and has a long service life.

[0011] In one embodiment, the temperature adjustment component further includes a temperature measuring element for measuring temperature. By arranging a temperature measuring element in the temperature adjustment component, the user can use the temperature measuring component to monitor the temperature inside the housing structure of the constant-temperature energy storage cabinet in real time and flexibly adjust the temperature adjustment strategy of the temperature adjustment component according to the monitoring results, making it more flexible and convenient to use.

[0012] In one embodiment, the housing structure of the constant-temperature energy storage cabinet includes a plurality of the temperature adjustment components, and each of the temperature adjustment components is arranged on the first cover plate at intervals and evenly. By arranging a plurality of temperature adjustment components on the first cover plate at intervals and evenly, each temperature adjustment component can specifically adjust the temperature of the area where it is located, and the efficiency of temperature adjustment is higher.

[0013] In one embodiment, a plurality of ribs are protruding on the side of the second cover plate facing away from the temperature adjustment components, and the ribs are arranged at intervals from each other. By protruding a plurality of ribs arranged at intervals on the side of the second cover plate facing away from the temperature adjustment components, the heat dissipation capacity of the second cover plate itself can be improved, which is beneficial to improving the temperature adjustment efficiency when the temperature adjustment components are working.

[0014] In one embodiment, a reflective layer is provided on the surface of the frame body facing away from the accommodation cavity. By providing a reflective layer on the outer surface of the frame body, the light reflectivity of the outer surface of the frame body can be enhanced, and its absorption of solar radiation can be reduced, so as to avoid the rapid temperature rise of the housing of the constant-temperature energy storage cabinet due to being exposed to the sun to a certain extent.

[0015] The second aspect of the embodiments of the present application provides a constant-temperature energy storage cabinet, including: at least one constant-temperature energy storage cabinet housing structure according to the above.

[0016] For the constant-temperature energy storage cabinet provided by the embodiments of the present application, due to adopting the above constant-temperature energy storage cabinet housing structure, by arranging a phase change block in the accommodation cavity of the frame body, the characteristics of the phase change block melting and absorbing heat at high temperature and solidifying and releasing heat at low temperature can be utilized to automatically adjust the temperature inside the housing of the constant-temperature energy storage cabinet, so that the temperature remains relatively balanced. At the same time, a temperature adjustment component is also provided on the side of the first cover plate facing away from the accommodation cavity, and the temperature adjustment component can be used to actively adjust the temperature, which forms mutual cooperation and complement with the passive temperature adjustment of the phase change block, maintains the dynamic balance of the temperature inside the housing of the constant-temperature energy storage cabinet, can ensure that the energy storage battery inside the constant-temperature energy storage cabinet is at a normal working temperature, and prolongs the service life of the energy storage battery. Description of the Drawings

[0017] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following will briefly introduce the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings in the following description are only some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0018] Figure 1 It is the overall structural schematic diagram of the constant-temperature energy storage cabinet housing structure provided by the embodiments of the present application;

[0019] Figure 2It is a schematic cross-sectional structure diagram of the housing structure of the constant-temperature energy storage cabinet provided by an embodiment of the present application;

[0020] Figure 3 It is a schematic exploded structure diagram of the housing structure of the constant-temperature energy storage cabinet provided by an embodiment of the present application;

[0021] Figure 4 It is a schematic simplified structure diagram of the temperature control component in the housing structure of the constant-temperature energy storage cabinet provided by an embodiment of the present application;

[0022] Figure 5 It is a schematic overall structure diagram of the constant-temperature energy storage cabinet provided by an embodiment of the present application.

[0023] Reference numerals in the drawings:

[0024] 10. Housing structure;

[0025] 100. Frame body, 110. Accommodation cavity, 111. Sub-accommodation cavity;

[0026] 200. Phase change block;

[0027] 300. First cover plate;

[0028] 400. Temperature control component, 410. Semiconductor device, 420. Power supply module;

[0029] 500. Second cover plate, 510. Rib;

[0030] 600. Partition beam, 610. Cross beam, 620. Longitudinal beam;

[0031] 700. Sealing strip;

[0032] 20. Air cooling component;

[0033] x. First direction, y. Second direction. Detailed implementation manners

[0034] In the following description, specific details such as specific system structures and technologies are presented for the purpose of illustration rather than limitation, so as to thoroughly understand the embodiments of the present application. However, those skilled in the art should clearly understand that the present application can also be implemented in other embodiments without these specific details. In other cases, detailed descriptions of well-known systems, devices, circuits, and methods are omitted to avoid unnecessary details from interfering with the description of the present application.

[0035] It should also be understood that the term "and / or" used in the specification and appended claims of the present application refers to any combination and all possible combinations of one or more of the associated listed items, and includes these combinations.

[0036] It should be noted that when an element is referred to as being "fixed to" or "disposed on" another element, it can be directly on the other element or indirectly on the other element. When an element is referred to as being "connected to" another element, it can be directly connected to the other element or indirectly connected to the other element.

[0037] It should be understood that the orientation or positional relationship indicated by terms such as "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present application.

[0038] In addition, in the description of the specification and the appended claims of the present application, terms such as "first", "second", "third", etc. are only used for distinguishing descriptions and should not be construed as indicating or implying relative importance.

[0039] The reference to "one embodiment" or "some embodiments" etc. in the description of the present application means that a specific feature, structure or characteristic described in connection with the embodiment is included in one or more embodiments of the present application. Thus, statements such as "in one embodiment", "in some embodiments", "in other some embodiments", "in still other embodiments", etc. that appear in different places in this specification do not necessarily refer to the same embodiment, but mean "one or more but not all embodiments", unless otherwise specifically emphasized in other ways. Terms such as "comprising", "including", "having" and their variants all mean "including but not limited to", unless otherwise specifically emphasized in other ways. "Plurality" means two or more.

[0040] To at least partially solve the problems existing in the related art, please refer to Figures 1 to 3 An embodiment of the present application provides a constant-temperature energy storage cabinet housing structure 10, which includes: a frame body 100, a phase change block 200, a first cover plate 300, a temperature control component 400, and a second cover plate 500.

[0041] Among them, an accommodation cavity 110 is provided in the frame body 100, the phase change block 200 is received in the accommodation cavity 110, the first cover plate 300 is disposed at the opening of the accommodation cavity 110, and the first cover plate 300 is connected to the frame body 100. The temperature control component 400 is disposed on the side of the first cover plate 300 facing away from the accommodation cavity 110, the second cover plate 500 is disposed on the side of the temperature control component 400 facing away from the first cover plate 300, and the second cover plate 500 is connected to the frame body 100.

[0042] Specifically, the shape and size of the accommodating cavity 110 are determined according to the shape and size of the frame 100, and are not limited here. The accommodating cavity 110 is used to accommodate the phase change block 200. The phase change block 200 is a block made of phase change material. The phase change material has the ability to change its physical state within a certain temperature range. Taking the solid-liquid phase change as an example, when heated to the melting temperature, the phase change material undergoes a phase change from solid to liquid. During the melting process, the phase change material absorbs and stores a large amount of latent heat; when the phase change material cools, the stored heat must be dissipated to the environment within a certain temperature range to undergo a reverse phase change from liquid to solid. In these two phase change processes, the energy stored or released is called the latent heat of phase change. Therefore, when the temperature in the accommodating cavity 110 is high or low, the phase change block 200 will undergo a phase change to absorb or release heat to adjust the temperature in the accommodating cavity 110. In this process, the first cover plate 300 is arranged at the opening of the accommodating cavity 110 to seal the accommodating cavity 110.

[0043] The constant temperature energy storage cabinet shell structure 10 of the embodiment of the present application further includes a temperature control component 400 , which may be an evaporative coil or the like, which may actively cool or heat to adjust the temperature inside the constant temperature energy storage cabinet shell structure 10 .

[0044] The constant temperature energy storage cabinet housing structure 10 of the embodiment of the present application arranges the phase change block 200 in the accommodating cavity 110 of the frame 100, and can utilize the characteristics of the phase change block 200 melting and absorbing heat at high temperature, and solidifying and releasing heat at low temperature to automatically adjust the temperature in the constant temperature energy storage cabinet housing, so that the temperature remains relatively balanced. At the same time, a temperature adjustment component 400 is further provided on the side of the first cover plate 300 away from the accommodating cavity 110. The temperature adjustment component 400 can be used to actively adjust the temperature, which forms a mutual cooperation and complement with the passive temperature adjustment of the phase change block 200, so as to maintain the dynamic balance of the temperature inside the constant temperature energy storage cabinet housing, and ensure that the energy storage battery inside the constant temperature energy storage cabinet is at a normal operating temperature, thereby extending the service life of the energy storage battery.

[0045] like Figure 3 As shown, in some embodiments, optionally, the constant temperature energy storage cabinet shell structure 10 also includes a partition beam 600, which is disposed in the accommodating cavity 110, and the partition beam 600 is connected to the inner side walls on opposite sides of the frame 100 to divide the accommodating cavity 110 into at least two sub-accommodating cavities 111; the constant temperature energy storage cabinet shell structure 10 includes a plurality of phase change blocks 200, and each phase change block 200 is respectively accommodated in each sub-accommodating cavity 111.

[0046] The specific quantity and arrangement of the sub-accommodation cavities 111 are wired. By arranging the partition beams 600 in the accommodation cavity 110 to divide the accommodation cavity 110 into multiple sub-accommodation cavities 111, and phase change blocks 200 are respectively arranged in each sub-accommodation cavity 111, the sub-accommodation cavities 111 located at different positions inside the constant temperature energy storage cabinet housing structure 10 can be temperature-controlled separately and individually, that is, precise temperature zoning control of different sub-accommodation cavities 111 is achieved. Moreover, since the volume of each sub-accommodation cavity 111 is relatively small, the temperature adjustment of it can be faster and more uniform, without leaving temperature control dead corners.

[0047] Please continue to refer to Figure 3 In some embodiments, optionally, the partition beam 600 includes at least one cross beam 610 and at least one longitudinal beam 620. The cross beam 610 extends along the first direction x, and the longitudinal beam 620 extends along the second direction y, and the first direction x intersects with the second direction y. By arranging the cross beam 610 extending along the first direction x and the longitudinal beam 620 extending along the second direction y, not only can the shape of the sub-accommodation cavity 111 be divided more uniformly and regularly, but also the cross beam 610 and the longitudinal beam 620 can play a supporting role for the frame body 100 in the first direction x and the second direction y, improving the structural strength and stiffness of the constant temperature energy storage cabinet housing structure 10.

[0048] As described above, the first cover plate 300 is arranged at the opening of the accommodation cavity 110 to seal the accommodation cavity 110. In order to improve the sealing effect of the accommodation cavity 110, in some embodiments, optionally, the constant temperature energy storage cabinet housing structure 10 further includes a sealing strip 700. At least one side of the first cover plate 300 is connected to the inner side wall of the frame body 100, and the sealing strip 700 is hermetically arranged at the connection between the first cover plate 300 and the frame body 100. By arranging the sealing strip 700 to seal the first cover plate 300, the phase change block 200 can be sealed inside the accommodation cavity 110, improving the temperature adjustment efficiency of the phase change block 200 and ensuring the normal use of the phase change block 200.

[0049] Please combine Figure 2 and Figure 3 and refer to Figure 4 In some embodiments, optionally, the temperature adjustment component 400 includes a semiconductor device 410 and a power supply module 420, and the semiconductor device 410 is electrically connected to the power supply module 420.

[0050] The semiconductor device 410 can perform semiconductor refrigeration or heating. Semiconductor refrigeration, also known as electronic refrigeration or thermoelectric refrigeration, utilizes a P-N junction formed by special semiconductor materials to form a thermocouple pair, generating the Peltier effect, that is, refrigeration through direct current. The specific working principle is as follows: When an N-type semiconductor material and a P-type semiconductor material are connected to form a thermocouple pair, after connecting a direct current in this circuit, energy transfer can occur. The joint where the current flows from the N-type element to the P-type element absorbs heat and becomes the cold end, and the joint where the current flows from the P-type element to the N-type element releases heat and becomes the hot end. The magnitude of heat absorption and heat release is determined by the magnitude of the current and the number of pairs of N and P semiconductor material elements. With such a setting, active temperature regulation is carried out by using the temperature regulation component 400 including the semiconductor device 410. It does not require any refrigerant, has a relatively high refrigeration and heating efficiency, can work continuously, and has a long service life.

[0051] In some embodiments, optionally, the temperature regulation component 400 further includes a temperature measurement element for measuring temperature. By setting a temperature measurement element in the temperature regulation component 400, the user can monitor the temperature inside the housing structure 10 of the constant temperature energy storage cabinet in real time with the help of the temperature measurement component, and flexibly adjust the temperature regulation strategy of the temperature regulation component 400 according to the monitoring results, making it more flexible and convenient to use. The temperature measurement element can be a temperature sensor or a thermocouple, etc.

[0052] As Figure 3 shown, in some embodiments, optionally, the housing structure 10 of the constant temperature energy storage cabinet includes a plurality of temperature regulation components 400, and each temperature regulation component 400 is arranged at intervals and evenly on the first cover plate 300. By arranging a plurality of temperature regulation components 400 at intervals and evenly on the first cover plate 300, each temperature regulation component 400 can specifically regulate the temperature of the area where it is located, and the efficiency of temperature adjustment is higher.

[0053] In some embodiments, optionally, a plurality of ribs 510 protrude from the side of the second cover plate 500 facing away from the temperature regulation component 400, and the ribs 510 are arranged at intervals. As Figure 5 shown, the ribs 510 can be arranged to extend along the width direction of the second cover plate 500, and the plurality of ribs 510 are spaced from each other along the length direction of the second cover plate 500. By protruding a plurality of ribs 510 arranged at intervals from the side of the second cover plate 500 facing away from the temperature regulation component 400, the heat dissipation capacity of the second cover plate 500 itself can be improved, which is beneficial to improving the temperature regulation efficiency when the temperature regulation component 400 is working.

[0054] In some embodiments, optionally, a reflective layer is provided on the surface of the housing 100 facing away from the accommodating cavity 110. The reflective layer can be made of a reflective material. In some embodiments, the light-emitting layer can also be a white coating applied on the surface of the housing 100. By providing a reflective layer on the outer surface of the housing 100, the light reflectivity of the outer surface of the housing 100 can be enhanced, and its absorption of solar radiation can be reduced, thereby to a certain extent avoiding the rapid temperature rise of the constant temperature energy storage cabinet housing due to being exposed to the sun.

[0055] Exemplarily, during the use of the constant temperature energy storage cabinet housing structure 10, when the external environment is cloudy and the solar radiation is not strong, when irradiated by the sun, a part of the solar radiation is reflected by the reflective layer on the outer surface of the housing 100, and after the remaining part of the light is absorbed by the housing 100, the phase change block 200 inside the housing 100 changes from solid to liquid, so that the temperature of the housing 100 will not rise too high. When this state is maintained until evening and there is no longer weak solar radiation intake, at this time the phase change block 200 begins to change from liquid to solid and releases heat energy. At this time, a temperature difference appears inside and outside the housing 100, and the semiconductor device 410 in the temperature control assembly 400 generates a thermoelectric power generation effect, and the generated electric energy can be stored through the power supply module 420 in the temperature control assembly 400, such as a storage battery.

[0056] On a sunny day, when irradiated by the sun, a part of the solar radiation is reflected by the reflective layer on the outer surface of the housing 100, and after the remaining part of the light is absorbed by the housing 100, the phase change block 200 inside the housing 100 changes from solid to liquid. After absorbing a large amount of heat energy, it is found through a temperature measuring element, such as a thermocouple, that the temperature still continues to rise. At this time, through the power supply module 420 in the temperature control assembly 400, such as a storage battery, reverse power is supplied to the semiconductor device 410, and then the semiconductor device 410 cools the phase change block 200 and the housing 100. After detecting that the temperature of the phase change block 200 drops to the freezing point, the power supply module 420 in the temperature control assembly 400 automatically shuts off the power supply and stops refrigeration. Then the above state circulates repeatedly to maintain the dynamic stability of the constant temperature energy storage cabinet housing structure 10. And during the last phase change heat release, the semiconductor device 410 in the temperature control assembly 400 does not play a refrigeration role, but generates electricity through the temperature difference, dissipates heat energy while generating electricity, and replenishes the electric energy of the power supply module 420 in the temperature control assembly 400, such as a storage battery.

[0057] Please combine Figures 1 to 3 and refer to Figure 5 This application embodiment also provides a constant temperature energy storage cabinet, which includes at least one constant temperature energy storage cabinet housing structure 10 as in any one of the above embodiments.

[0058] In practical applications, such as Figure 5As shown, a part of the outer shell of the constant-temperature energy storage cabinet may adopt the constant-temperature energy storage cabinet housing structure 10 in any of the above embodiments, such as the left and right housings, upper and lower housings, etc. in the outer shell, or the entire outer shell of the constant-temperature energy storage cabinet may adopt the constant-temperature energy storage cabinet housing structure 10 in any of the above embodiments. Moreover, in some embodiments, the constant-temperature energy storage cabinet may further include an air-cooling component 20 provided on the outer shell. The air-cooling component 20 can enhance the cooling of the energy storage battery pack inside the constant-temperature energy storage cabinet. At the same time, the air-cooling component 20 also speeds up the air flow rate inside the constant-temperature energy storage cabinet, making the heat exchange efficiency inside the constant-temperature energy storage cabinet higher and improving the temperature regulation efficiency of the constant-temperature energy storage cabinet housing structure 10.

[0059] For the constant-temperature energy storage cabinet provided by the embodiment of the present application, due to the adoption of the above constant-temperature energy storage cabinet housing structure 10, by arranging the phase change block 200 in the accommodation cavity 110 of the frame body 100, the characteristics of the phase change block 200 melting and absorbing heat at high temperature and solidifying and releasing heat at low temperature can be utilized to automatically adjust the temperature inside the housing of the constant-temperature energy storage cabinet, so that the temperature remains relatively balanced. At the same time, a temperature regulation component 400 is also provided on the side of the first cover plate 300 facing away from the accommodation cavity 110. The temperature regulation component 400 can be used to actively regulate the temperature, forming mutual cooperation and complement with the passive temperature regulation of the phase change block 200, maintaining the dynamic balance of the temperature inside the housing of the constant-temperature energy storage cabinet, and ensuring that the energy storage battery inside the constant-temperature energy storage cabinet is at a normal working temperature, thereby prolonging the service life of the energy storage battery.

[0060] In the above embodiments, the descriptions of each embodiment have their own emphases. For the parts not detailed or recorded in a certain embodiment, reference can be made to the relevant descriptions of other embodiments.

[0061] The above embodiments are only used to illustrate the technical solutions of the present application, rather than to limit them; although the present application has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements on some of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present application, and should all be included in the protection scope of the present application.

Claims

1. A constant-temperature energy storage cabinet housing structure, characterized in that, Comprising: A housing (100), a phase change block (200), a first cover plate (300), a temperature regulating component (400), and a second cover plate (500). An accommodation cavity (110) is provided inside the housing (100). The phase change block (200) is received inside the accommodation cavity (110). The first cover plate (300) is provided at the opening of the accommodation cavity (110), and the first cover plate (300) is connected to the housing (100). The temperature regulating component (400) is provided on the side of the first cover plate (300) facing away from the accommodation cavity (110). The second cover plate (500) is provided on the side of the temperature regulating component (400) facing away from the first cover plate (300), and the second cover plate (500) is connected to the housing (100).

2. The housing structure of the constant-temperature energy storage cabinet according to claim 1, characterized in that The constant temperature energy storage cabinet housing structure further includes a partition beam (600). The partition beam (600) is provided inside the accommodation cavity (110), and the partition beam (600) is connected to the inner side walls of the opposite two sides of the housing (100) to divide the accommodation cavity (110) into at least two sub-accommodation cavities (111). The constant temperature energy storage cabinet housing structure includes a plurality of the phase change blocks (200), and each of the phase change blocks (200) is respectively received inside each of the sub-accommodation cavities (111).

3. The housing structure of the constant-temperature energy storage cabinet according to claim 2, characterized in that, The partition beam (600) includes at least one cross beam (610) and at least one longitudinal beam (620). The cross beam (610) extends along a first direction, and the longitudinal beam (620) extends along a second direction. The first direction intersects with the second direction.

4. The housing structure of the constant-temperature energy storage cabinet according to claim 1, wherein, The constant temperature energy storage cabinet housing structure further includes a sealing strip (700). At least one side of the first cover plate (300) is connected to the inner side wall of the housing (100). The sealing strip (700) is sealingly provided at the connection between the first cover plate (300) and the housing (100).

5. The housing structure of the constant-temperature energy storage cabinet according to claim 1, characterized in that, The temperature regulating component (400) includes a semiconductor device (410) and a power module (420). The semiconductor device (410) is electrically connected to the power module (420).

6. The housing structure of the constant-temperature energy storage cabinet according to claim 5, characterized in that, The temperature regulating component (400) further includes a temperature measuring element for measuring temperature.

7. The housing structure of the constant-temperature energy storage cabinet according to claim 1, characterized in that, The constant temperature energy storage cabinet housing structure includes a plurality of the temperature regulating components (400), and each of the temperature regulating components (400) is arranged on the first cover plate (300) at intervals and evenly.

8. The housing structure of the constant-temperature energy storage cabinet according to claim 1, characterized in that, A plurality of ribs (510) protrude from the side of the second cover plate (500) facing away from the temperature regulating component (400), and the ribs (510) are arranged at intervals from each other.

9. The housing structure of the constant-temperature energy storage cabinet according to claim 1, wherein A reflective layer is provided on the surface of the side of the housing (100) facing away from the accommodation cavity (110).

10. A constant-temperature energy storage cabinet, characterized in that, Comprising: At least one constant temperature energy storage cabinet housing structure (10) according to any one of claims 1 to 9.