Energy storage device and vehicle

By incorporating grooves and air vents on the side panels of the energy storage device, combined with a filter design, the waterproofing issue of the energy storage device is resolved, protecting the internal electronic components and improving safety and heat dissipation efficiency.

CN223797441UActive Publication Date: 2026-01-13SHENZHEN CARKU TECH CO LTD
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Patent Information

Application Number
CN202423099990.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-13
Publication Date
2026-01-13
Estimated Expiration
2034-12-13

AI Technical Summary

Technical Problem

Existing energy storage devices lack waterproofing, allowing water droplets to enter the device through the vents, damaging electronic components and reducing their lifespan and safety.

Method used

A groove and an air outlet are set on the side panel of the energy storage device. The air outlet is set in the groove to prevent water droplets from entering, and a filter screen is used to prevent dust from entering, thus enhancing the waterproof function.

Benefits of technology

It effectively prevents water droplets from entering the equipment, protects electronic components, extends service life and improves safety, while ensuring the equipment's heat dissipation efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides energy storage equipment and a vehicle. The energy storage equipment comprises a shell, an electronic assembly and an air outlet structure, a containing cavity is formed in the shell, the electronic assembly is located in the containing cavity, the air outlet structure is arranged on the side periphery of the shell, the air outlet structure comprises at least one side plate, and the at least one side plate is arranged on at least partial area of the side periphery of the shell. Each side plate is provided with at least one groove recessed towards the interior of the containing cavity, at least part of the grooves are provided with air outlets, the air outlets are communicated with the containing cavity, and the electronic assembly dissipates heat to the exterior of the containing cavity through the air outlets. The vehicle comprises the energy storage equipment. According to the energy storage device, the air outlet is formed in the groove, water drops can be prevented from entering the containing cavity through the air outlet, the energy storage device has the waterproof function, the electronic assembly in the containing cavity is protected, and the safety of using the energy storage device is further improved.
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Description

Technical Field

[0001] This application relates to the field of energy storage technology, and more particularly to an energy storage device and vehicle. Background Technology

[0002] With the development of technology, energy storage devices are widely used in various scenarios. All energy storage devices are equipped with air outlets to dissipate heat and cool the internal electronic components. However, existing energy storage devices do not have waterproof functions. Therefore, during use, water droplets can enter the energy storage device through the air outlets and come into contact with the electronic components. This fails to protect the internal electronic components, reduces their lifespan, and also reduces the safety of using the energy storage device. Utility Model Content

[0003] This application provides an energy storage device and a vehicle that can solve at least some of the above-mentioned technical problems.

[0004] In a first aspect, this application provides an energy storage device, comprising:

[0005] A housing, the interior of which forms a receiving cavity;

[0006] Electronic components, the electronic components being located within the receiving cavity;

[0007] An air outlet structure is disposed on the side periphery of the housing. The air outlet structure includes at least one side plate, which is disposed in at least a portion of the side periphery of the housing. Each side plate is provided with at least one groove recessed toward the receiving cavity. At least a portion of the groove is provided with an air outlet, which communicates with the receiving cavity. The electronic components dissipate heat to the outside of the receiving cavity through the air outlet.

[0008] Secondly, this application provides a vehicle, including:

[0009] The aforementioned energy storage devices.

[0010] This application provides an energy storage device and a vehicle. The energy storage device includes a housing, electronic components, and an air outlet structure. A receiving cavity is formed inside the housing, and the electronic components are located within the receiving cavity. The air outlet structure is disposed on the side periphery of the housing and includes at least one side plate. The at least one side plate is disposed in at least a portion of the side periphery of the housing, and each side plate has at least one groove recessed towards the receiving cavity. At least a portion of the groove has an air outlet, which communicates with the receiving cavity. The electronic components dissipate heat to the outside of the receiving cavity through the air outlet. The vehicle includes the aforementioned energy storage device. The air outlet in this application is disposed within the groove, thereby preventing water droplets from entering the receiving cavity through the air outlet, giving the energy storage device a waterproof function, protecting the electronic components within the receiving cavity, extending their service life, and further improving the safety of using the energy storage device, allowing users to use it safely. Attached Figure Description

[0011] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0012] Figure 1 This is a three-dimensional structural diagram of the energy storage device in the embodiments of this application.

[0013] Figure 2 for Figure 1 Cross-sectional view at point AA;

[0014] Figure 3 for Figure 2 Enlarged view at point B;

[0015] Figure 4 This is a three-dimensional structural diagram of the side plate in an embodiment of this application;

[0016] Figure 5 for Figure 4 Enlarged view at point C;

[0017] Figure 6 This is a three-dimensional structural diagram of the side plate in another direction in an embodiment of this application;

[0018] Figure 7 for Figure 6 Enlarged view at point D;

[0019] Figure 8This is a three-dimensional structural diagram of the side plate and filter screen in another direction in an embodiment of this application;

[0020] Figure 9 for Figure 1 A three-dimensional structural diagram excluding components such as the panel structure and air outlet structure;

[0021] Figure 10 for Figure 9 A schematic diagram of the three-dimensional structure from another direction;

[0022] Figure 11 for Figure 1 A 3D structural diagram with the socket cover and silicone pad removed;

[0023] Figure 12 for Figure 11 A schematic diagram of the three-dimensional structure from another direction;

[0024] Figure 13 This is a schematic block diagram of the vehicle in the embodiments of this application;

[0025] Icon labels:

[0026] Energy storage equipment-100;

[0027] Housing -1; Receiving cavity -11; First end face -12; Second end face -13; First direction -14; Second direction -15;

[0028] Electronic components-2; Control components-21; Battery pack-22;

[0029] Air outlet structure-3; Side plate-4; Groove-41; Slot-411; Air outlet-412; First inner side surface-413; Second inner side surface-414; Baffle-415; Connecting part-42; Connecting end face-421; First corner surface-422; Second corner surface-423; Vertical plate-43; Side plate body-44; Side plate shell-45;

[0030] Filter screen - 5; Filter plate - 51; Filter body - 52; Fixture - 6; Fan - 7; Panel structure - 8; Display screen - 81; Socket - 82; Socket cover - 83; Button - 84; Handle - 10; Silicone pad - 20; Sensor - 30; Circuit board - 40; Indicator light - 50;

[0031] Vehicle-200. Detailed Implementation

[0032] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.

[0033] In the description of the embodiments of this application, it should be understood that the terms "upper," "lower," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. The term "connection" in this application, unless otherwise specified, primarily refers to a physical structural connection; however, if specified, it may also include direct or indirect connections. The terms "first" and "second" in the specification, claims, and accompanying drawings of this application are used to distinguish different objects, not to describe a specific order. Furthermore, the term "comprising" and any variations thereof are intended to cover non-exclusive inclusion.

[0034] Please see Figure 1 and Figure 2 , Figure 1 This is a three-dimensional structural diagram of the energy storage device 100 in the embodiments of this application. Figure 2 for Figure 1 Cross-sectional view at AA. The energy storage device 100 includes a housing 1, electronic components 2, and an air outlet structure 3. A receiving cavity 11 is formed inside the housing 1, and the electronic components 2 are located within the receiving cavity 11. The air outlet structure 3 is disposed on the side periphery of the housing 1, and the air outlet structure 3 includes at least one side plate 4. The at least one side plate 4 is disposed in at least a portion of the side periphery of the housing 1. Please refer to [reference needed]. Figure 3 , Figure 3 for Figure 2 In the enlarged view at point B, each side plate 4 is provided with at least one recess 41 facing into the receiving cavity 11, wherein at least part of the recess 41 is provided with an air outlet 412, the air outlet 412 is connected to the receiving cavity 11, and the electronic component 2 dissipates heat to the outside of the receiving cavity 11 through the air outlet 412.

[0035] Therefore, the air outlet 412 is located in the groove 41, which can prevent water droplets from entering the receiving cavity 11 through the air outlet 412, so that the energy storage device 100 has a waterproof function, protects the electronic components 2 in the receiving cavity 11, extends their service life, and further improves the safety of using the energy storage device 100, so that users can use the energy storage device 100 safely.

[0036] In some embodiments, each of the grooves 41 providing the air outlet 412 is provided with at least one air outlet 412.

[0037] In some embodiments, such as Figure 2 and Figure 3 As shown, each side plate 4 is provided with a plurality of recesses 41 facing into the receiving cavity 11. The plurality of recesses 41 are spaced apart along the first direction 14. Each side plate 4 also includes a plurality of connecting portions 42, each connecting portion 42 connecting between the slot openings 411 of two adjacent recesses 41. Figure 2 As shown, the housing 1 includes a first end face 12 and a second end face 13. The first end face 12 and the second end face 13 are two opposing end faces connected to the side periphery. The first direction 14 is a direction parallel to the direction from the first end face 12 to the second end face 13.

[0038] Therefore, the connecting part 42 protrudes relative to the groove 41, that is, relative to the air outlet 412, which can prevent water droplets from entering the receiving cavity 11 through the air outlet 412, so that the energy storage device 100 has a waterproof function, protects the electronic components 2 in the receiving cavity 11, extends their service life, and further improves the safety of using the energy storage device 100, so that users can use the energy storage device 100 safely.

[0039] Among them, such as Figure 2 and Figure 3 As shown, the plurality of grooves 41 form recesses, and the plurality of connecting portions 42 form protrusions. The plurality of grooves 41 and the plurality of connecting portions 42 are arranged alternately along the first direction 14, and together they form a structure of recesses and protrusions alternately on the side plate 4.

[0040] In some embodiments, such as Figure 2 and Figure 3 As shown, if the side plate 4 is viewed from inside the receiving cavity 11, it can be seen that the plurality of grooves 41 form protrusions and the plurality of connecting parts 42 form recesses. The plurality of grooves 41 and the plurality of connecting parts 42 are arranged alternately along the first direction 14 to jointly form a structure of alternating recesses and protrusions on the side plate 4.

[0041] When the energy storage device 100 is in the placement state, the second end face 13 is the bottom of the energy storage device 100, and the first end face 12 is the top of the energy storage device 100. Therefore, water droplets fall from the top of the energy storage device 100 to the bottom of the energy storage device 100.

[0042] As mentioned above, among the plurality of grooves 41, the groove 41 closest to the first end face 12 is the first groove, and the groove 41 closest to the second end face 13 is the last groove. The first groove is also provided with a connecting part 42 on the side close to the first end face 12, and the last groove is also provided with a connecting part 42 on the side close to the second end face 13, so as to provide a flow path for water droplets, thereby preventing water droplets from dripping onto the air outlet 412 and preventing water droplets from entering the receiving cavity 11 through the air outlet 412. The connecting part 42 is connected to the remaining protruding parts of the side plate 4 to form the protruding parts on the side plate 4, which can increase the space of the receiving cavity 11.

[0043] Please see Figure 4 and Figure 5 , Figure 4 This is a three-dimensional structural diagram of the side plate 4 in the embodiments of this application. Figure 5 for Figure 4 Enlarged view at point C. In some embodiments, such as... Figure 3 and Figure 5 As shown, each of the grooves 41 includes a first inner side surface 413 and a second inner side surface 414, which are disposed opposite to each other along the first direction 14. The first inner side surface 413 is closer to the first end face 12 than the second inner side surface 414. The connecting portion 42 includes a connecting end face 421. The connecting end face 421 of each of the connecting portions 42 is connected between the first inner side surface 413 of one of the two adjacent grooves 41 and the second inner side surface 414 of the other groove. The connecting end face 421 is farther away from the receiving cavity 11 than the first inner side surface 413 and the second inner side surface 414. The second inner side surface 414 extends from the bottom of the corresponding groove 41 toward the connecting end face 421 and is inclined toward the second end face 13.

[0044] Therefore, the second inner surface 414 extends from the bottom of the corresponding groove 41 toward the connecting end face 421 and extends obliquely toward the second end face 13, so that when water droplets fall onto the second inner surface 414, they flow along the oblique second inner surface 414, thereby preventing the water droplets from entering the receiving cavity 11 through the air outlet 412, making the energy storage device 100 waterproof, protecting the electronic components 2 in the receiving cavity 11, and further improving the safety of using the energy storage device 100.

[0045] In some embodiments, such as Figure 1 and Figure 4As shown, the side plate 4 includes a side plate body 44 and a side plate shell 45. The side plate shell 45 is adapted to be installed on the outer edge of the side plate body 44 to protect the connection between the side plate body 44 and the shell 1 and to strengthen their connection.

[0046] In some embodiments, the connecting portion 42 further includes a first corner surface 422, which connects the second inner side surface 414 and the connecting end surface 421. The first corner surface 422 extends from the second inner side surface 414 toward the connecting end surface 421 and is inclined toward the second end surface 13. The inclination of the first corner surface 422 is greater than that of the second inner side surface 414.

[0047] Therefore, the first corner surface 422 extends from the second inner surface 414 toward the connecting end surface 421 and slopes toward the second end surface 13. The slope of the first corner surface 422 is greater than that of the second inner surface 414, which allows water droplets to flow faster along the first corner surface 422 and move away from the receiving cavity 11. This prevents water droplets from entering the receiving cavity 11 through the air outlet 412, giving the energy storage device 100 a waterproof function, protecting the electronic components 2 inside the receiving cavity 11, and further improving the safety of using the energy storage device 100.

[0048] In some embodiments, the connecting portion 42 further includes a second corner surface 423, which connects the first inner side surface 413 and the connecting end surface 421. The second corner surface 423 extends from the first inner side surface 413 toward the connecting end surface 421 and is inclined toward the first end surface 12.

[0049] Therefore, the second corner surface 423 provides a flow path for water droplets flowing to the connecting end surface 421, allowing the water droplets to flow more quickly along the inclined second corner surface 423 to the first inner surface 413, and also allowing them to drip better onto the second inner surface 414 of the same groove 41. This prevents the water droplets from entering the receiving cavity 11 through the air outlet 412, giving the energy storage device 100 a waterproof function, protecting the electronic components 2 inside the receiving cavity 11, extending their service life, and further improving the safety of using the energy storage device 100.

[0050] In some embodiments, the first inner surface 413 extends from the bottom of the corresponding groove 41 toward the connecting end face 421 and is inclined toward the first end face 12.

[0051] In other embodiments, the first inner surface 413 extends from the bottom of the corresponding groove 41 toward the connecting end face 421, but is not inclined.

[0052] In some embodiments, such as Figure 3 As shown, in each of the grooves 41 provided with the air outlet 412, the air outlet 412 at least partially penetrates a portion of the target groove wall of the groove 41 near the first end face 12, and / or at least partially penetrates a portion of the bottom region of the groove 41, so as to communicate with the receiving cavity 11.

[0053] That is, in some embodiments, the air outlet 412 may be formed by penetrating a portion of the target groove wall near the first end face 12 of the groove 41, or it may be formed by penetrating a portion of the bottom region of the groove 41, or it may be formed by penetrating a portion of the target groove wall near the first end face 12 of the groove 41 and a portion of the bottom region of the groove 41.

[0054] Therefore, the location of the air outlet 412 allows water droplets to flow to the first inner side 413 and drip onto the second inner side 414 of the same groove 41, thereby preventing water droplets from entering the receiving cavity 11 through the air outlet 412. This gives the energy storage device 100 a waterproof function, protects the electronic components 2 inside the receiving cavity 11, extends their service life, and further improves the safety of using the energy storage device 100.

[0055] The target groove wall is the groove wall where the first inner side 413 of each groove 41 is located. By setting the air outlet 412 completely on the target groove wall, water droplets can drip directly onto the second inner side 414, and the water droplets will not enter the receiving cavity 11 through the air outlet 412. Alternatively, if the air outlet 412 is set on part of the bottom area of ​​the groove 41, since the second inner side 414 is inclined, the water droplets can flow along the second inner side 414 and will not enter the receiving cavity 11 through the air outlet 412.

[0056] In some embodiments, the air outlet 412 simultaneously penetrates a portion of the target groove wall and at least a portion of the bottom region of the groove 41 near the target groove wall.

[0057] This increases the area of ​​the air outlet 412, allowing the electronic components 2 inside the housing 11 to dissipate heat better and improving the safety of using the electronic components 2.

[0058] In some embodiments, the groove 41 extends along a second direction 15, which is perpendicular to the first direction 14, the air outlet 412 extends along the second direction 15, and the size of the air outlet 412 in the second direction 15 is less than or equal to the size of the groove 41 in the second direction 15.

[0059] Therefore, the air outlet 412 also extends along the second direction 15, so that the air outlet 412 is arranged in an orderly manner, which can increase the number of air outlets 412 in a limited space, so that the electronic components 2 in the receiving cavity 11 can dissipate heat better and faster, and improve the safety of using the electronic components 2; and the size of the air outlet 412 in the second direction 15 is smaller than the size of the groove 41, which can reduce the probability of water droplets entering the receiving cavity 11 through the air outlet 412, so that the energy storage device 100 has a waterproof function, protects the electronic components 2 in the receiving cavity 11, extends their service life, and further improves the safety of using the energy storage device 100.

[0060] In some embodiments, each of the grooves 41 includes a first inner side surface 413 and a second inner side surface 414, the first inner side surface 413 and the second inner side surface 414 being disposed opposite each other along the first direction 14, the first inner side surface 413 being closer to the first end face 12 than the second inner side surface 414, and a baffle 415 protruding from the first inner side surface 413 of the groove 41 on which the air outlet 412 is disposed protruding in the direction toward the second inner side surface 414.

[0061] Therefore, the baffle 415 is provided on the first inner side 413, which can prevent water droplets from continuing to flow when they flow along the first inner side 413, and cause them to drip onto the second inner side 414 of the same groove 41. This makes the energy storage device 100 waterproof, protects the electronic components 2 in the receiving cavity 11, extends their service life, and further improves the safety of using the energy storage device 100.

[0062] In some embodiments, the air outlet 412 is located at the bottom of the groove 41. With the baffle 415, water droplets can flow along the first inner side surface 413 and drip down the baffle 415 to the second inner side surface 414, thus preventing them from entering the receiving cavity 11 through the air outlet 412.

[0063] In some embodiments, the length of the baffle 415 in the first direction is less than the height of the air outlet 412 in the first direction 14.

[0064] Therefore, this arrangement can prevent the baffle 415 from blocking the air outlet 412, allowing the electronic components 2 in the receiving cavity 11 to dissipate heat better and faster, and improving the safety of using the electronic components 2.

[0065] Specifically, the flow path of the water droplets on the side plate 4 is as follows:

[0066] Water droplets flow from the second inner side 414 of one of the grooves 41 to the first corner surface 422, and then flow along the first corner surface 422, the connecting end surface 421 and the second corner surface 423 to the first inner side 413 of the adjacent groove 41. When the water droplets reach the position of the baffle 415, they can drip down the baffle 415 onto the second inner side 414 of the groove 41, and continue to repeat the above flow process until the water droplets flow to the plane where the second end surface 13 is located.

[0067] Please see Figure 6 and Figure 7 , Figure 6 This is a three-dimensional structural diagram of the side plate 4 in another direction in an embodiment of this application. Figure 7 for Figure 6 Enlarged view at point D. In some embodiments, multiple vertical plates 43 are provided on the side of the side plate 4 near the receiving cavity 11, where the air outlet 412 is located. The vertical plates 43 surround multiple grooves 41 where the air outlet 412 is located on the side near the receiving cavity 11, and multiple vertical plates 43 are provided at intervals between each groove 41, so that each groove 41 is provided with multiple air outlets 412 with the vertical plates 43 as partitions.

[0068] Please see Figure 8 , Figure 8 This is a three-dimensional structural diagram of the side plate 4 and filter 5 in another direction in an embodiment of this application. In some embodiments, the energy storage device 100 further includes a filter 5, which is installed on the side of the side plate 4 located in the receiving cavity 11 and covers the air outlet 412.

[0069] Therefore, the filter 5 can prevent water droplets from entering the receiving cavity 11 through the air outlet 412, and can also prevent external dust from entering the receiving cavity 11, thus avoiding affecting the operation of the electronic component 2.

[0070] In some embodiments, the filter 5 has a pore size of 60-80 mesh.

[0071] As mentioned above, the connecting part 42 is connected to the remaining protruding part of the side plate 4 to form a protruding part on the side plate 4, which can increase the space of the receiving cavity 11 and provide a fixed installation space for the filter screen 5.

[0072] In some embodiments, the energy storage device 100 further includes a fixing member 6, which is fixed to the side of the filter 5 near the air outlet 412, and the filter 5 is fixed to the side of the side plate 4 located in the receiving cavity 11 by the fixing member 6.

[0073] Thus, the filter 5 can be fixed to the side of the side plate 4 located in the receiving cavity 11 by the fixing member 6, which can prevent water droplets from entering the receiving cavity 11 through the air outlet 412, and can also prevent external dust from entering the receiving cavity 11, so as to avoid affecting the operation of the electronic component 2.

[0074] It is understood that the fastener 6 can be, but is not limited to, adhesive, screws, or other fastening elements, as long as it ensures that the filter screen 5 is fixed to the side plate 4. There are no restrictions here.

[0075] The filter 5 includes a filter plate 51 and a filter body 52. ​​The filter plate 51 is a plate-shaped structure with a hollow center and surrounding edges. The edge portion of the filter body 52 is fixed to the filter plate 51 and to the side of the filter plate 51 closest to the air outlet 412, so that the filter 5 has a certain degree of rigidity. The fixing member 6 is provided in the same location to fix the filter 5 to the side plate 4 under the condition of having a certain degree of rigidity. Specifically, the filter 5 is fixed to the vertical plate 43.

[0076] Please see Figure 9 , Figure 9 for Figure 1 A three-dimensional structural diagram with components such as panel structure 8 and air outlet structure 3 removed. In some embodiments, the energy storage device 100 further includes a fan 7, which is disposed inside the receiving cavity 11 and faces the air outlet 412 to blow heat from inside the receiving cavity 11 to the outside of the receiving cavity 11 through the air outlet 412.

[0077] Thus, the operation of the fan 7 causes the air inside the housing 11 to begin to flow, and the heat inside the housing 11 is blown out of the housing 11 through the air outlet 412, thereby achieving heat dissipation and reducing the temperature of the electronic component 2 during operation.

[0078] Please see Figure 10 , Figure 10 for Figure 9 A three-dimensional structural schematic diagram from another direction. In some embodiments, the energy storage device 100 further includes a panel structure 8 disposed on the side periphery of the housing 1 of the energy storage device 100.

[0079] Thus, the panel structure 8 enables the energy storage device 100 to be connected to external devices, thereby allowing the energy storage device 100 to perform its intended function.

[0080] In some embodiments, such as Figure 9 and Figure 10 As shown, the periphery of the housing 1 includes multiple sidewalls, the panel structure 8 serves as one of the sidewalls of the housing 1, and the at least one side plate 4 serves as at least one other sidewall of the housing 1.

[0081] Thus, the panel structure 8 serves as one of the side walls of the housing 1, and the at least one side plate 4 serves as at least one other side wall of the housing 1, which allows the receiving cavity 11 to be in a closed state and improves the stability of the energy storage device 100.

[0082] The two panel structures 8 respectively cooperate with the housing 1 to serve as two opposite side walls of the housing 1, and the two side plates 4 respectively serve as two other opposite side walls of the housing 1.

[0083] In some embodiments, a triangular protruding plate is provided at one of the four corners of the two side plates 4 and at both ends of the housing 1. Each protruding plate has a through hole. When the side plate 4 is installed and connected to the housing 1 via the fixing member 6, the protruding plate is also installed accordingly, and the fixing member 6 is inserted into the through hole to connect the side plate 4 and the housing 1. Furthermore, the energy storage device 100 also includes a handle 10, which is a cylindrical object of a certain length. Both ends of the handle 10 are connected to the protruding plate and fixedly connected to the protruding plate via the fixing member 6, allowing the user to move the energy storage device 100 via the handle 10, thus improving the convenience of using the energy storage device 100.

[0084] Please see Figure 11 and Figure 12 , Figure 11 for Figure 1 A 3D structural diagram showing the structure after removing the socket cover 83 and silicone pad 20. Figure 12 for Figure 11 A three-dimensional structural diagram from another direction. In some embodiments, the panel structure 8 includes a display screen 81 for displaying status information of the energy storage device 100, and the panel structure 8 also includes a socket 82 through which the energy storage device 100 connects to external devices.

[0085] Therefore, the display screen 81 allows users to more clearly understand the status information of the energy storage device 100, improving the user experience of using the energy storage device 100. Furthermore, the energy storage device 100 connects to external devices through the socket 82, thereby enabling the energy storage device 100 to perform its intended function.

[0086] It is understood that the socket 82 can be used for ignition, charging, etc., and its specific function can be set according to actual needs, without any restrictions here.

[0087] In some embodiments, the panel structure 8 further includes a socket cover 83, which is mounted on the socket 82.

[0088] Therefore, the jack cover 83 is installed on the jack 82 to prevent external dust from entering the jack 82, thereby ensuring the stability of the jack 82 and enabling the electronic component 2 to stably connect to external devices through the jack 82.

[0089] In some embodiments, such as Figure 9 and Figure 11 As shown, the sensor 30 and the circuit board 40 are mounted on the first end face 12. The sensor 30 is connected to the circuit board 40, and the circuit board 40 is connected to the electronic component 2 via the wire. The electronic component 2 supplies power to the circuit board 40 and the sensor 30. A silicone pad 20 is also laid on the sensor 30 and the circuit board 40. Users can place external devices on the silicone pad 20 to achieve wireless inductive charging through the sensor 30 and the circuit board 40, or they can directly place external devices on the socket cover 83 to achieve wireless inductive charging. For example... Figure 12 As shown, an insertion hole cover 83 is also provided in the area where the silicone pad 20 is laid to prevent dust and other substances from contaminating the silicone pad 20.

[0090] In some embodiments, the energy storage device 100 also includes an indicator light 50 for nighttime illumination and to indicate the location of the energy storage device 100.

[0091] In some embodiments, the electronic component 2 includes a control component 21 and a battery pack 22, the battery pack 22 supplying power to the control component 21, the control component 21 being connected to the panel structure 8 via wires (not shown) to interact with the panel structure 8.

[0092] Thus, the battery pack 22 supplies power to the control component 21, thereby enabling the control component 21 to interact with the panel structure 8, allowing the energy storage device 100 to perform its intended function.

[0093] In some embodiments, the control component 21 may be fixed together with the battery pack 22.

[0094] The control component 21 and the battery pack 22 are spaced apart to facilitate heat dissipation. The battery pack 22 is provided with a mounting bracket or mounting post, and the control component 21 can be mounted on the mounting post or mounting bracket to fix it together with the battery pack 22, maintaining a certain distance for heat dissipation and allowing the batteries within the battery pack 22 to easily power the control component 21.

[0095] As previously stated, the fan 7 is connected to the control component 21 via the wire to obtain power from the control component 21.

[0096] In some embodiments, the panel structure 8 further includes a button 84, which is used to generate an operation command to the control component 21 in response to an operation, and the control component 21 controls the working state of the panel structure 8 according to the operation command.

[0097] Thus, the control component 21 controls the working state of the panel structure 8 through the button 84, making it easier for the user to operate the energy storage device 100 and improving the convenience of use.

[0098] The button 84 is used to control the on / off state of the corresponding socket 82, and can also control the on / off state of the display screen 81 and the indicator light 50.

[0099] In some embodiments, the control component 21 and the panel structure 8 may also have other interaction methods. For example, the display screen 81 of the panel structure 8 may be a touch display screen. The display screen 81 and / or the button 84 may generate input signals in response to user operations. The control component 21 may control the display screen 81 to display corresponding information in response to the input signals, such as displaying the remaining power of the battery in the battery pack 22, etc.

[0100] Please see Figure 13 , Figure 13 This is a schematic block diagram of the vehicle 200 in an embodiment of this application. The vehicle 200 includes the energy storage device 100 described above.

[0101] Thus, the energy storage device 100 is used to supply power to the vehicle 200 and to ignite the vehicle 200 to start the vehicle 200.

[0102] It is understood that the energy storage device 100 is not only used in the vehicle 200, but can also be used in other devices that need to be charged or used for electricity, which is not limited here.

[0103] In summary, this application possesses the aforementioned superior characteristics, enabling it to achieve unprecedented performance in use and thus become a highly practical product.

[0104] The above description is merely a specific embodiment of this application, but the scope of protection of this application is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this application should be included within the scope of protection of this application. Where there is no conflict, the embodiments and features in the embodiments of this application can be combined with each other. Therefore, the scope of protection of this application should be determined by the scope of the claims.

Claims

1. An energy storage device, characterized in that, include: A housing, the interior of which forms a receiving cavity; Electronic components, the electronic components being located within the receiving cavity; An air outlet structure is disposed on the side periphery of the housing. The air outlet structure includes at least one side plate, which is disposed in at least a portion of the side periphery of the housing. Each side plate is provided with at least one groove recessed toward the receiving cavity. At least a portion of the groove is provided with an air outlet, which communicates with the receiving cavity. The electronic components dissipate heat to the outside of the receiving cavity through the air outlet.

2. The energy storage device according to claim 1, characterized in that, Each side plate is provided with multiple grooves that are recessed into the receiving cavity. The multiple grooves are spaced apart along a first direction. Each side plate also includes multiple connecting parts. Each connecting part is connected between the slot openings of two adjacent grooves. The housing includes a first end face and a second end face. The first end face and the second end face are two opposite end faces connected to the side periphery. The first direction is a direction parallel to the direction from the first end face to the second end face.

3. The energy storage device according to claim 2, characterized in that, Each groove includes a first inner side and a second inner side, which are disposed opposite to each other along the first direction. The first inner side is closer to the first end face than the second inner side. The connecting portion includes a connecting end face. The connecting end face of each connecting portion connects between the first inner side of one of the two adjacent grooves and the second inner side of the other groove. The connecting end face is farther away from the receiving cavity than the first inner side and the second inner side. The second inner side extends from the bottom of the corresponding groove toward the connecting end face and is inclined toward the second end face.

4. The energy storage device according to claim 3, characterized in that, The connecting portion further includes a first corner surface, which connects the second inner side surface and the connecting end surface. The first corner surface extends from the second inner side surface toward the connecting end surface and is inclined toward the second end surface. The inclination of the first corner surface is greater than the inclination of the second inner side surface.

5. The energy storage device according to claim 3, characterized in that, The connecting portion further includes a second corner surface, which connects the first inner side surface and the connecting end surface. The second corner surface extends from the first inner side surface toward the connecting end surface and is inclined toward the first end surface.

6. The energy storage device according to claim 2, characterized in that, In each of the grooves provided with the air outlet, the air outlet at least partially penetrates a portion of the target groove wall near the first end face of the groove, and / or at least partially penetrates a portion of the groove bottom region, to communicate with the receiving cavity.

7. The energy storage device according to claim 6, characterized in that, The air outlet penetrates a portion of the target trough wall and at least a portion of the bottom area of ​​the groove near the target trough wall.

8. The energy storage device according to claim 2, characterized in that, The groove extends along a second direction, which is perpendicular to the first direction. The air outlet extends along the second direction, and the size of the air outlet in the second direction is less than or equal to the size of the groove in the second direction.

9. The energy storage device according to claim 2, characterized in that, Each of the grooves includes a first inner side and a second inner side, the first inner side and the second inner side are arranged opposite to each other along the first direction, the first inner side is closer to the first end face than the second inner side, and a baffle is provided on the first inner side of the groove where the air outlet is provided along the direction toward the second inner side.

10. The energy storage device according to claim 9, characterized in that, The length of the baffle in the first direction is less than the height of the air outlet in the first direction.

11. The energy storage device according to claim 2, characterized in that, The energy storage device also includes a filter screen, which is installed on the side of the side plate located within the receiving cavity and covers the air outlet.

12. The energy storage device according to claim 11, characterized in that, The energy storage device also includes a fixing component, which is fixed to the side of the filter screen near the air outlet, and the filter screen is fixed to the side of the side plate located inside the receiving cavity by the fixing component.

13. The energy storage device according to claim 2, characterized in that, The energy storage device also includes a fan, which is disposed inside the housing cavity and faces the air outlet to blow the heat inside the housing cavity to the outside of the housing cavity through the air outlet.

14. The energy storage device according to claim 2, characterized in that, The energy storage device also includes a panel structure disposed on the side periphery of the housing of the energy storage device.

15. The energy storage device according to claim 14, characterized in that, The periphery of the housing includes multiple sidewalls, the panel structure serves as one of the sidewalls of the housing, and the at least one side plate serves as at least one other sidewall of the housing.

16. The energy storage device according to claim 14, characterized in that, The panel structure includes a display screen for displaying the status information of the energy storage device; the panel structure also includes a socket through which the energy storage device connects to an external device.

17. The energy storage device according to claim 16, characterized in that, The panel structure also includes a socket cover, which is installed over the socket.

18. The energy storage device according to claim 14, characterized in that, The electronic components include a control component and a battery pack, the battery pack powering the control component, and the control component being connected to the panel structure via wires to interact with the panel structure.

19. The energy storage device according to claim 18, characterized in that, The panel structure also includes buttons, which are used to generate operation commands to the control component in response to operations, and the control component controls the working state of the panel structure according to the operation commands.

20. A vehicle, characterized in that, include: The energy storage device as described in any one of claims 1-19.