Heat exchange filtering device of energy storage container and energy storage container

By designing a heat exchange filter device in an energy storage container, combining louver and filter parts, the problems of heat dissipation and dust prevention of flywheel energy storage equipment under high vacuum conditions are solved, and low-power heat dissipation and high dust prevention effects are achieved, reducing maintenance costs and extending equipment life.

CN223181630UActive Publication Date: 2025-08-01SHENYANG MICROCONTROL NEW ENERGY TECH CO LTD
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Patent Information

Application Number
CN202521205045.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-06-13
Publication Date
2025-08-01
Estimated Expiration
2035-06-13

AI Technical Summary

Technical Problem

Existing flywheel energy storage equipment generates a lot of heat when operating under high vacuum conditions, resulting in high heat dissipation demand and reduced dust protection level of the equipment, affecting service life.

Method used

A heat exchange filter device for an energy storage container is designed, including a heat exchange member, a shell, a first louver and a first filter member. The filter member and louver are arranged through the housing groove of the shell to achieve a combination of heat dissipation and dust prevention, and the stability and installation accuracy of the filter member are improved by using the clamping assembly and the limiting chute.

Benefits of technology

While ensuring heat dissipation performance, it improves dust protection performance, reduces power requirements and maintenance costs, and extends the service life of the equipment.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223181630U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of energy storage, in particular to a heat exchange filtering device of an energy storage container and the energy storage container. A containing groove is formed in the shell, the heat exchange piece is arranged in the containing groove, the shell comprises a first adapter shell and a second adapter shell, the first adapter shell is suitable for being connected with the energy storage container, at least one side of the second adapter shell in the circumferential direction is a protruding side, the protruding side protrudes outwards relative to the first adapter shell, and the protruding side is open; a first ventilation opening communicated with the accommodating groove is formed; a first shutter member; the first filtering piece is arranged in the containing groove, and the first shutter piece is located outside the first filtering piece. Therefore, the first filtering piece is arranged in the containing groove, and the first shutter piece is located outside the first filtering piece, so that the dustproof performance of the heat exchange filtering device of the energy storage container can be improved while the heat dissipation performance of the energy storage container is ensured.
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Description

Technical Field

[0001] The utility model relates to the technical field of energy storage, in particular to a heat exchange and filtration device for an energy storage container and an energy storage container. Background Art

[0002] As a new type of energy storage device, flywheel energy storage has been applied in a wider range of scenarios in recent years. At the same time, as a green energy storage device, flywheel energy storage has gradually become a popular energy storage device with its characteristics of being green, environmentally friendly, and safe.

[0003] In related technologies, a large amount of heat is generated during the operation of flywheel energy storage devices under high-vacuum conditions. Some flywheel energy storage systems are usually equipped with high-power air conditioners to reduce the temperature of the entire energy storage environment. Due to the large power loss of these devices and the high required configuration, the maintenance and operation costs of the air conditioners are relatively high. There are also some flywheel energy storage systems that directly adopt the air-cooled heat dissipation method, and directly exchange heat with the container space by using high-power heat exchange devices, which will cause the dust-proof level of the flywheel energy storage device to decrease and the service life of the device to be reduced. Summary of the Utility Model

[0004] The utility model aims to at least solve one of the technical problems existing in the prior art. For this reason, an object of the utility model is to provide a heat exchange and filtration device for an energy storage container, and the heat exchange and filtration device for the energy storage container has a simple structure, and can improve the dust-proof performance of the heat exchange and filtration device for the energy storage container while ensuring the heat dissipation performance of the energy storage container.

[0005] The utility model further provides an energy storage container.

[0006] According to the heat exchange and filtration device for an energy storage container of the utility model, it includes: a heat exchange member; a housing, an accommodation groove is arranged inside the housing, the heat exchange member is arranged in the accommodation groove, the housing includes a first adapter housing and a second adapter housing, the second adapter housing is arranged above the first adapter housing, the first adapter housing is adapted to be connected to an energy storage box body of the energy storage container, at least one side in the circumferential direction of the second adapter housing is a protruding side, the protruding side protrudes outward relative to the first adapter housing, and the protruding side is open to form a first ventilation opening communicating with the accommodation groove; a first louver member, the first louver member covers the protruding side; a first filter member, the first filter member is arranged in the accommodation groove, and the first louver member is located outside the first filter member.

[0007] Thus, by arranging the first filter member in the accommodation groove and the first louver member outside the first filter member, the dust-proof performance of the heat exchange and filtration device for the energy storage container can be improved while ensuring the heat dissipation performance of the energy storage container.

[0008] In some examples of the present utility model, the upper part of the protruding side of the second adapter housing is an insertion end, the first filter element is inserted into the protruding side through the insertion end, a clamping assembly is arranged at the bottom of the protruding side of the second adapter housing, and the clamping assembly clamps the first filter element.

[0009] In some examples of the present utility model, the clamping assembly includes a first clamping plate, a second clamping plate and an adjusting member. The first clamping plate and the second clamping plate are arranged opposite to each other in the front-rear direction and define a clamping groove. The clamping groove is adapted to clamp the first filter element. The adjusting member is arranged between the first clamping plate and the second clamping plate, and the adjusting member selectively adjusts the distance between the first clamping plate and the second clamping plate to change the clamping width of the clamping groove.

[0010] In some examples of the present utility model, at least one side in the left-right direction of the protruding side of the second adapter housing is provided with a limiting sliding groove which extends in the up-down direction, and at least one side in the left-right direction of the first filter element is slidably arranged in the limiting sliding groove.

[0011] In some examples of the present utility model, at least one side in the left-right direction of the protruding side of the second adapter housing is provided with a limiting block, and the limiting sliding groove is formed in the limiting block.

[0012] In some examples of the present utility model, a first mounting plate is arranged at a part of the second adapter housing corresponding to the protruding side. A first mounting hole is arranged on the first mounting plate, a second mounting hole is arranged on the first louver member, and the first mounting hole and the second mounting hole are arranged opposite to each other and are detachably connected and fixed by a first fastener.

[0013] In some examples of the present utility model, a bottom plate is arranged at the bottom of the second adapter housing, side plates are arranged in the circumferential direction of the second adapter housing, and the bottom plate is respectively connected to the side plates, the first adapter housing and the clamping assembly.

[0014] In some examples of the present utility model, a second mounting plate is arranged at the bottom of the first adapter housing. A third mounting hole is arranged on the second mounting plate, and the third mounting hole is adapted to correspond to a perforation of an energy storage box body of the energy storage container and is detachably connected and fixed by a second fastener.

[0015] The energy storage container according to an embodiment of the present invention includes: the heat exchange and filtration device of the energy storage container described above; an energy storage box body, the first adapter shell of the heat exchange and filtration device of the energy storage container is arranged on the top of the energy storage box body, the accommodating groove is communicated with the inside of the energy storage box body, a second ventilation opening is formed in the energy storage box body, the second ventilation opening is communicated with the inside of the energy storage box body, and one of the first ventilation opening and the second ventilation opening is an air outlet, and the other is an air inlet.

[0016] In some examples of the present invention, a second filter element and a second louver element are further arranged at the second ventilation opening, the second filter element is arranged at the second ventilation opening, and the second louver element covers the outside of the second filter element.

[0017] Additional aspects and advantages of the present invention will be given in part in the following description, become apparent in part from the following description, or be learned through the practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] The above and / or additional aspects and advantages of the present invention will become apparent and be readily understood from the description of the embodiments in conjunction with the following drawings, in which:

[0019] Figure 1 is a partial schematic view of an energy storage container according to an embodiment of the present invention;

[0020] Figure 2 is a partial schematic view of a heat exchange and filtration device according to an embodiment of the present invention;

[0021] Figure 3 is a partial schematic view of a heat exchange and filtration device according to an embodiment of the present invention;

[0022] Figure 4 is a partial schematic view of a heat exchange and filtration device according to an embodiment of the present invention.

[0023] REFERENCE MARKS:

[0024] 1000, energy storage container;

[0025] 100, heat exchange and filtration device;

[0026] 20, housing; 201, first adapter shell; 202, second adapter shell; 2021, protruding side; 2022, insertion end; 2023, clamping assembly; 20231, first clamping plate; 20232, second clamping plate; 20234, clamping groove; 203, limiting sliding groove; 204, limiting block; 206, bottom plate; 207, side plate; 208, second mounting plate; 2081, third mounting hole; 209, accommodating groove;

[0027] 30. First louver member; 40. First filter member; 50. First vent

[0028] 200. Energy storage box; 60. Second vent Specific embodiments

[0029] The embodiments of the present utility model will be described in detail below. The embodiments described with reference to the accompanying drawings are exemplary. The embodiments of the present utility model will be described in detail below.

[0030] Next, refer to Figures 1 - 4 Describe the heat exchange and filtration device 100 of the energy storage container 1000 according to the embodiments of the present utility model. The heat exchange and filtration device 100 of the energy storage container 1000 can be applied to the energy storage container 1000.

[0031] Combined with Figures 1 - 4 As shown, the heat exchange and filtration device 100 of the energy storage container 1000 according to the present utility model may mainly include: a heat exchange member, a housing 20, a first louver member 30, and a first filter member 40. Among them, during the operation of the energy storage container 1000, the temperature of the heat exchange member will increase. The heat exchange member can transfer heat to the cold air in the energy storage container 1000 to reduce the temperature of the heat exchange member, thereby realizing the heat dissipation of the energy storage container 1000.

[0032] Furthermore, a receiving groove 209 is provided inside the housing 20, and the heat exchange member is arranged in the receiving groove 209. In this way, the receiving groove 209 can provide a setting position and a setting space for the heat exchange member to meet the installation requirements of the heat exchange member.

[0033] Further, the outer shell 20 includes a first adapter shell 201 and a second adapter shell 202. The second adapter shell 202 is disposed above the first adapter shell 201. The first adapter shell 201 is adapted to be connected to the energy storage box body 200 of the energy storage container 1000. At least one side in the circumferential direction of the second adapter shell 202 is a protruding side 2021. The protruding side 2021 protrudes outward relative to the first adapter shell 201. The protruding side 2021 is open to form a first ventilation opening 50 communicating with the receiving groove 209. Specifically, the second adapter shell 202 is disposed above the first adapter shell 201. The first adapter shell 201 is located above the energy storage box body 200. The lower part of the first adapter shell 201 is connected to the energy storage box body 200, and the upper part of the first adapter shell 201 is connected to the second adapter shell 202. The energy storage box body 200, the first adapter shell 201 and the second adapter shell 202 together constitute the shell of a complete energy storage container 1000. At least one side in the circumferential direction of the second adapter shell 202 is a protruding side 2021. The protruding side 2021 protrudes outward relative to the first adapter shell 201. The protruding side 2021 is open to form a first ventilation opening 50 communicating with the receiving groove 209, so that the air inside the energy storage container 1000 can flow out or the external air can flow in through the first ventilation opening 50, and the heat exchange between the external air and the heat exchange element inside the energy storage container 1000 can be realized.

[0034] Further, the first louver member 30 covers the protruding side 2021, and the protruding side 2021 is formed with a first ventilation opening 50 communicating with the receiving groove 209. The first louver member 30 is an adjustable device composed of a plurality of strip-shaped blades. The ventilation volume at the first ventilation opening 50 can be controlled by rotating the opening angle of the blades of the first louver member 30. That is, the larger the opening angle of the blades of the first louver member 30, the larger the ventilation volume at the first ventilation opening 50, and the smaller the opening angle of the blades of the first louver member 30, the smaller the ventilation volume at the first ventilation opening 50.

[0035] Further, the first filter element 40 is disposed in the receiving groove 209, and the first louver element 30 is located outside the first filter element 40. Specifically, the provision of the protruding side 2021 can not only provide a partial placement space for the first filter element 40, avoiding the problem of difficult installation of the first filter element 40, but also facilitate the positioning and installation of the first louver element 30. A first ventilation opening 50 communicating with the receiving groove 209 is formed in the protruding side 2021. The first filter element 40 is disposed in the receiving groove 209, and the first louver element 30 is located outside the first filter element 40. That is to say, both the first filter element 40 and the first louver element 30 are installed at the first ventilation opening 50. In this way, the first filter element 40 can prevent foreign matters such as dust, dust, and fluff in the outside air from entering the interior of the energy storage container 1000, improving the dust-proof performance of the energy storage container 1000, enhancing the purity of the internal environment of the energy storage container 1000, and extending the service life of the energy storage container 1000.

[0036] With such a setting, in the embodiment of the present invention, the cold air in the external environment can enter the interior of the energy storage container 1000. When the cold air entering the interior of the energy storage container 1000 reaches or is near the heat exchange element, heat transfer will occur between the cold air and the heat exchange element, thereby reducing the temperature of the heat exchange element and realizing the heat dissipation of the energy storage container 1000. Compared with the method of using a high-power heat exchange device to realize the heat dissipation of the energy storage container 1000, the power requirement and power loss of the heat exchange and filtration device 100 of the energy storage container 1000 in the embodiment of the present invention are both lower, and the volume of the energy storage container 1000 is smaller. The structure of the heat exchange and filtration device 100 of the energy storage container 1000 is also simpler and easier to maintain. While ensuring the heat dissipation performance of the energy storage container 1000, the dust-proof performance of the energy storage container 1000 can be improved through the first filter element 40.

[0037] It should be noted that the first filter element 40 in the receiving groove 209 is adjacent to the protruding side 2021 and corresponds to the protruding side 2021.

[0038] Thus, by disposing the first filter element 40 in the receiving groove 209 and adjacent to the protruding side 2021, and the first louver element 30 is located outside the first filter element 40, the dust-proof performance of the heat exchange and filtration device 100 of the energy storage container 1000 can be improved while not using a high-power heat dissipation device and ensuring the heat dissipation performance of the energy storage container 1000, and the maintenance cost of the heat exchange and filtration device 100 of the energy storage container 1000 can be reduced.

[0039] In some embodiments of the present invention, the first filter element 40 is a rigid outer frame and has the function of single-sided removal and installation, which can reduce the maintenance space and maintenance cost of the first filter element 40.

[0040] In some embodiments of the present utility model, the first filter element 40 can not only block foreign matters such as dust, dust, and fluff from entering the interior of the energy storage container 1000, but also absorb the water vapor in the air flowing through the first filter element, so as to improve the waterproof performance and dustproof performance of the heat exchange and filtration device 100 of the energy storage container 1000 at the same time.

[0041] Combined Figure 1 , Figure 2 and Figure 3 As shown, the upper part of the protruding side 2021 of the second adapter housing 202 is the insertion end 2022. The first filter element 40 is inserted into the protruding side 2021 through the insertion end 2022. A clamping assembly 2023 is arranged at the bottom of the protruding side 2021 of the second adapter housing 202, and the clamping assembly 2023 clamps the first filter element 40. Specifically, the upper part of the protruding side 2021 of the second adapter housing 202 is the insertion end 2022, and the first filter element 40 is inserted into the protruding side 2021 through the insertion end 2022, so as to ensure that the first filter element 40 can be normally installed inside the heat exchange and filtration device 100 of the energy storage container 1000. Further, a clamping assembly 2023 is arranged at the bottom of the protruding side 2021 of the second adapter housing 202, and the clamping assembly 2023 is used to clamp the first filter element 40. In this way, not only can the clamping assembly 2023 provide a fixing effect for the first filter element 40 and improve the installation stability of the first filter element 40, but also the installation accuracy of the first filter element 40 can be improved through the position setting of the clamping assembly 2023.

[0042] Combined Figures 2 - 4As shown, the clamping assembly 2023 includes a first clamping plate 20231, a second clamping plate 20232 and an adjusting member. The first clamping plate 20231 and the second clamping plate 20232 are arranged opposite to each other in the front-rear direction and define a clamping groove 20234. The clamping groove 20234 is adapted to clamp the first filter element 40. The adjusting member is arranged between the first clamping plate 20231 and the second clamping plate 20232. The adjusting member selectively adjusts the distance between the first clamping plate 20231 and the second clamping plate 20232 to change the clamping width of the clamping groove 20234. Specifically, the first clamping plate 20231 and the second clamping plate 20232 are arranged opposite to each other in the front-rear direction and define a clamping groove 20234. The size of the clamping groove 20234 matches the size of the lower end of the first filter element 40. The first filter element 40 is clamped inside the second adapter housing 202 through the clamping groove 20234. This can not only ensure the structural rationality of the clamping assembly 2023, but also ensure the stable installation of the first filter element 40. Further, the adjusting member is arranged between the first clamping plate 20231 and the second clamping plate 20232. The adjusting member selectively adjusts the distance between the first clamping plate 20231 and the second clamping plate 20232 to change the clamping width of the clamping groove 20234. This can make the clamping groove 20234 suitable for clamping first filter elements 40 of different widths. Thus, it can not only improve the versatility of the clamping assembly 2023, but also select a suitable first filter element 40 according to the requirements of the heat exchange and filtration device 100 of the energy storage container 1000, enabling the heat exchange and filtration device 100 of the energy storage container 1000 to meet various filtration requirements and improving the purity of the air inside the heat exchange and filtration device 100 of the energy storage container 1000.

[0043] In some embodiments of the present invention, the width refers to the dimension in the front-rear direction.

[0044] In some embodiments of the present invention, the adjusting member selectively adjusts the distance between the first clamping plate 20231 and the second clamping plate 20232, which can not only change the clamping width of the clamping groove 20234, but also change the position of the clamping groove 20234 to appropriately adjust the position of the first filter element 40 when assembling first filter elements 40 of different widths, making the position of the first filter element 40 more reasonable and reliable.

[0045] Combined Figure 2 and Figure 3As shown, at least one side in the left-right direction of the protruding side 2021 of the second adapter housing 202 is provided with a limit chute 203, and the limit chute 203 extends in the up-down direction. At least one side in the left-right direction of the first filter element 40 is slidably disposed in the limit chute 203. With such a setting, not only can the moving direction of the first filter element 40 in the up-down direction be restricted by the limit chute 203, the first filter element 40 can be prevented from shifting due to external force or vibration, and the stability of the first filter element 40 can be further improved. Also, the movable position and moving trajectory of the first filter element 40 in the up-down direction can be restricted by the limit chute 203, and problems such as the first filter element 40 colliding with other components or being stuck due to excessive movement of the first filter element 40 or the first filter element 40 detaching from the second adapter housing 202 can be avoided. In addition, the setting of the limit chute 203 can also improve the installation accuracy of the first filter element 40 in the left-right direction.

[0046] Combined with Figure 2 As shown, at least one side in the left-right direction of the protruding side 2021 of the second adapter housing 202 is provided with a limit block 204, and the limit chute 203 is formed in the limit block 204. Specifically, at least one side in the left-right direction of the protruding side 2021 of the second adapter housing 202 is provided with a limit block 204, the limit chute 203 is formed in the limit block 204, and the limit chute 203 and the limit block 204 are in limit cooperation to realize the limitation of the first filter element 40. Among them, the limit block 204 is used to limit the maximum movement range of the first filter element 40 and prevent a part of the first filter element 40 in the limit chute 203 from moving out of the limit chute 203, that is, to prevent the first filter element 40 from detaching from the second adapter housing 202. The limit chute 203 can be used to guide the moving direction and moving trajectory of the first filter element 40 during installation, prevent the first filter element 40 from shifting during installation, facilitate the assembly of the first filter element 40, and improve the assembly accuracy of the first filter element 40. In addition, the limit system composed of the limit chute 203 and the limit block 204 not only has a simple structure but also is easy to maintain, and can reduce the maintenance cost of the heat exchange and filtration device 100 of the energy storage container 1000.

[0047] Combined with Figure 1 、 Figure 2 and Figure 3As shown, a first mounting plate is provided on a portion of the second adapter housing 202 corresponding to the protruding side 2021. A first mounting hole is provided on the first mounting plate, and a second mounting hole is provided on the first louver member 30. The first mounting hole and the second mounting hole are oppositely arranged and are detachably connected and fixed by a first fastening member. Specifically, the first mounting hole is provided on the first mounting plate of the second adapter housing 202 corresponding to the protruding side 2021, and the second mounting hole is provided on the first louver member 30. The first mounting hole and the second mounting hole correspond to each other in structure and position. By sequentially passing the first fastening member through the second mounting hole and the first mounting hole, the first mounting plate and the first louver member 30 are detachably connected and fixed, that is, the second adapter housing 202 and the first louver member 30 are detachably connected and fixed. This not only makes the connection and fixation of the first mounting plate and the first louver member 30 simple, direct, stable and reliable, but also facilitates the installation and disassembly between the first mounting plate and the first louver member 30, and facilitates the subsequent maintenance or replacement of the first mounting plate and the first louver member 30.

[0048] In some embodiments of the present invention, the first mounting hole and the second mounting hole may be threaded holes, and the first fastening member may be a screw.

[0049] Combined with Figure 2 and Figure 3 As shown, a bottom plate 206 is provided at the bottom of the second adapter housing 202, and side plates 207 are provided on the circumference of the second adapter housing 202. The bottom plate 206 is connected to the side plates 207, the first adapter housing 201 and the clamping assembly 2023 respectively. Specifically, by connecting the bottom plate 206 to the side plates 207, the first adapter housing 201 and the clamping assembly 2023 respectively, not only can a part of the housing 20 of the heat exchange and filtration device 100 be constituted by the bottom plate 206, the side plates 207 and the first adapter housing 201 to ensure the rationality of the structure setting of the housing 20 of the heat exchange and filtration device 100, but also the stability and rationality of the structure setting of the clamping assembly 2023 can be ensured.

[0050] Combined with Figure 1 、 Figure 2 and Figure 3As shown in the figure, a second mounting plate 208 is provided at the bottom of the first adapter housing 201. A third mounting hole 2081 is provided on the second mounting plate 208. The third mounting hole 2081 is adapted to correspond to the perforation of the energy storage box body 200 of the energy storage container 1000 and is detachably connected and fixed through a second fastener. Specifically, a third mounting hole 2081 is provided on the second mounting plate 208, and a perforation is provided on the energy storage box body 200 of the energy storage container 1000. The third mounting hole 2081 on the second mounting plate 208 corresponds to the perforation on the energy storage box body 200 in terms of structure and position. By sequentially passing the second fastener through the third mounting hole 2081 on the second mounting plate 208 and the perforation on the energy storage box body 200, the second mounting plate 208 and the energy storage box body 200 are detachably connected and fixed, that is, the first adapter housing 201 and the energy storage box body 200 are detachably connected and fixed. This not only makes the connection and fixation between the second mounting plate 208 and the energy storage box body 200 simple, direct, stable and reliable, but also facilitates the installation and disassembly between the second mounting plate 208 and the energy storage box body 200, and facilitates the subsequent maintenance of the second mounting plate 208 and the energy storage box body 200.

[0051] In some embodiments of the present invention, the third mounting hole 2081 on the second mounting plate 208 and the perforation on the energy storage box body 200 may be threaded holes, and the second fastener may be a screw.

[0052] The energy storage container 1000 according to the present invention may mainly include: the heat exchange and filtration device 100 and the energy storage box body 200 of the above-mentioned energy storage container 1000. Among them, the first adapter housing 201 of the heat exchange and filtration device 100 of the energy storage container 1000 is provided on the top of the energy storage box body 200, which can ensure the rationality and effectiveness of the structural arrangement of the heat exchange and filtration device 100 of the energy storage container 1000.

[0053] Furthermore, the receiving groove 209 is communicated with the inside of the energy storage box body 200. A second ventilation opening 60 is provided on the energy storage box body 200, and the second ventilation opening 60 is communicated with the inside of the energy storage box body 200. One of the first ventilation opening 50 and the second ventilation opening 60 is an air outlet, and the other is an air inlet. Specifically, a first ventilation opening 50 is provided on the second adapter housing 202, the first ventilation opening 50 is communicated with the receiving groove 209, a second ventilation opening 60 is provided on the energy storage box body 200, the second ventilation opening 60 is communicated with the inside of the energy storage box body 200, and the receiving groove 209 is communicated with the inside of the energy storage box body 200. In this way, an air flow channel can be formed between the first ventilation opening 50 and the second ventilation opening 60 to realize the circulation of air in the energy storage container 1000.

[0054] Combined Figure 1 、 Figure 2 and Figure 3As shown, the second vent 60 is also provided with a second filter element and a second louver element. The second filter element is disposed at the second vent 60, and the second louver element covers the outside of the second filter element. Specifically, the second filter element is disposed at the second vent 60, which can prevent foreign objects from entering the interior of the energy storage container 1000 from the second vent 60, improve the purity of the internal environment of the energy storage container 1000, and extend the service life of the energy storage container 1000. Further, the second louver element covers the outside of the second filter element, so that the ventilation volume at the second vent 60 can be controlled by rotating the opening angle of the blades of the second louver element.

[0055] In some embodiments of the present invention, the second filter element can not only block foreign objects such as dust, dust, and fluff from entering the interior of the energy storage container 1000, but also absorb the water vapor in the air flowing through the second filter element, so as to improve the waterproof and dustproof performance of the heat exchange and filtration device 100 of the energy storage container 1000 at the same time.

[0056] In some embodiments of the present invention, the heat exchange and filtration process of the energy storage container 1000 is as follows: the cold air in the external environment enters the interior of the energy storage container 1000 through the first louver element 30 and the first filter element 40 or the second louver element and the second filter element. When the cold air entering the interior of the energy storage container 1000 reaches the heat exchange element or near the heat exchange element, heat transfer will occur between the cold air and the heat exchange element, so that the temperature of the heat exchange element decreases. Then, the air that has undergone heat transfer with the heat exchange element flows out through the second louver element and the second filter element or the first louver element 30 and the first filter element, thus completing the entire heat exchange and filtration process of the energy storage container 1000.

[0057] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present invention 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 of the present invention.

[0058] In the description of this specification, the descriptions with reference to the terms "one embodiment", "some embodiments", "illustrative embodiments", "examples", "specific examples", or "some examples", etc. mean that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present utility model. In this specification, the schematic descriptions of the above terms do not necessarily refer to the same embodiment or example.

[0059] Although the embodiments of the present utility model have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present utility model. The scope of the present utility model is defined by the claims and their equivalents.

Claims

1. A heat exchange and filtration device for an energy storage container, characterized in that, Comprising: A heat exchange member; A housing (20) with a receiving groove (209) provided inside. The heat exchange member is disposed in the receiving groove (209). The housing (20) includes a first adapter housing (201) and a second adapter housing (202). The second adapter housing (202) is disposed above the first adapter housing (201). The first adapter housing (201) is adapted to be connected to a storage battery box (200) of a storage container (1000). At least one side in the circumferential direction of the second adapter housing (202) is a protruding side (2021), and the protruding side (2021) protrudes outward relative to the first adapter housing (201). The protruding side (2021) is open to form a first ventilation opening (50) communicating with the receiving groove (209); A first louver member (30) covering the protruding side (2021); A first filter member (40) disposed in the receiving groove (209), and the first louver member (30) is located outside the first filter member (40).

2. The heat exchange and filtration device of the energy storage container according to claim 1, characterized in that, The upper part of the protruding side (2021) of the second adapter housing (202) is an insertion end (2022). The first filter member (40) is inserted into the protruding side (2021) through the insertion end (2022). A clamping assembly (2023) is provided at the bottom of the protruding side (2021) of the second adapter housing (202), and the clamping assembly (2023) clamps the first filter member (40).

3. The heat exchange and filtration device for the energy storage container according to claim 2, wherein The clamping assembly (2023) includes a first clamping plate (20231), a second clamping plate (20232) and an adjusting member. The first clamping plate (20231) and the second clamping plate (20232) are oppositely arranged in the front-rear direction and define a clamping groove (20234). The clamping groove (20234) is adapted to clamp the first filter member (40). The adjusting member is disposed between the first clamping plate (20231) and the second clamping plate (20232), and the adjusting member selectively adjusts the distance between the first clamping plate (20231) and the second clamping plate (20232) to change the clamping width of the clamping groove (20234).

4. The heat exchange and filtration device of the energy storage container according to claim 2, characterized in that, At least one side in the left-right direction of the protruding side (2021) of the second adapter housing (202) is provided with a limiting sliding groove (203) extending in the up-down direction. At least one side in the left-right direction of the first filter member (40) is slidably disposed in the limiting sliding groove (203).

5. The heat exchange and filtration device of the energy storage container according to claim 4, wherein At least one side in the left-right direction of the protruding side (2021) of the second adapter housing (202) is provided with a limiting block (204), and the limiting sliding groove (203) is formed in the limiting block (204).

6. The heat exchange and filtration device for an energy storage container according to claim 1, characterized in that, A first mounting plate is provided on a portion of the second adapter housing (202) corresponding to the protruding side (2021). A first mounting hole is provided on the first mounting plate. A second mounting hole is provided on the first louver member (30). The first mounting hole and the second mounting hole are oppositely arranged and are detachably connected and fixed by a first fastener.

7. The heat exchange and filtration device for the energy storage container according to claim 2, characterized in that, A bottom plate (206) is provided at the bottom of the second adapter housing (202). Side plates (207) are provided in the circumferential direction of the second adapter housing (202). The bottom plate (206) is connected to the side plates (207), the first adapter housing (201), and the clamping assembly (2023) respectively.

8. The heat exchange and filtration device for the energy storage container according to claim 1, characterized in that, A second mounting plate (208) is provided at the bottom of the first adapter housing (201). A third mounting hole (2081) is provided on the second mounting plate (208). The third mounting hole (2081) is adapted to correspond to a perforation of the energy storage box body (200) of the energy storage container (1000) and is detachably connected and fixed by a second fastener.

9. A energy storage container, characterized in that, Comprising: The heat exchange and filtration device (100) of the energy storage container (1000) according to any one of claims 1-8; An energy storage box body (200), wherein the first adapter housing (201) of the heat exchange and filtration device (100) of the energy storage container (1000) is arranged on the top of the energy storage box body (200). The accommodation groove (209) is communicated with the inside of the energy storage box body (200). A second ventilation opening (60) is formed in the energy storage box body (200). The second ventilation opening (60) is communicated with the inside of the energy storage box body (200). One of the first ventilation opening (50) and the second ventilation opening (60) is an air outlet, and the other is an air inlet.

10. The energy storage container according to claim 9, wherein, A second filter element and a second louver member are further provided at the second ventilation opening (60). The second filter element is arranged at the second ventilation opening (60). The second louver member covers the outside of the second filter element.