Intelligent heat dissipation energy storage cabinet
By installing an automated fan system on both sides of the energy storage cabinet door and cabinet shell, and using the expansion of silicone oil to drive the fan adjustment, the problem of high power consumption for manual heat dissipation in existing energy storage cabinets is solved, achieving automated and energy-saving heat dissipation.
Patent Information
- Application Number
- CN202422065542.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-23
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2034-08-23
AI Technical Summary
The existing energy storage cabinet's heat dissipation system requires manual control, resulting in high power consumption and inconvenience, and it cannot automatically dissipate heat when the temperature is not high.
An intelligent heat dissipation energy storage cabinet was designed, which adopts an automated heat dissipation structure, including multiple fans installed on both sides of the door and cabinet shell, and automatically adjusts the temperature by driving the fans through the expansion of silicone oil to achieve automatic heat dissipation.
It achieves automatic adjustment under different temperature conditions, reduces power consumption, improves heat dissipation efficiency and convenience, and has high economic efficiency and practicality.
Smart Images

Figure CN223665513U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to an energy storage cabinet, more particularly to an intelligent heat dissipation energy storage cabinet. BACKGROUND
[0002] The energy storage cabinet of our company before only sets up the fan of manual control, to control the temperature in the first cavity 101, specifically, that is, at least two fans are arranged on the side of the door body 20 close to the first cavity 101, and the door body 20 also has a plurality of uniformly distributed heat dissipation holes, and the fan is opposite to the heat dissipation hole, so that the hot air in the first cavity 101 is guided to the outside by at least two fans, and it needs to be explained that the bottom wall forming the first cavity 101 is also provided with two fans to face the two fans on the door body 20, and the back of the cabinet shell also has a plurality of uniformly distributed heat dissipation holes, so as to ensure the air flow direction, so as to ensure the heat dissipation effect in the first cavity 101, but the above-mentioned at least four fans need to be manually opened, which is more troublesome, and if the temperature in the first cavity 101 is not high, the power consumption is high, so it is necessary to add intelligent heat dissipation structure.
[0003] Therefore, there is a need to provide an intelligent heat dissipation energy storage cabinet with simple structure, high practicability and automatic heat dissipation. SUMMARY
[0004] The main purpose of the present application is to provide an intelligent heat dissipation energy storage cabinet, wherein the intelligent heat dissipation energy storage cabinet can effectively utilize its own structure configuration to realize the advantages of high practicability and automatic heat dissipation.
[0005] Another purpose of the present application is to provide an intelligent heat dissipation energy storage cabinet, wherein the intelligent heat dissipation energy storage cabinet comprises a cabinet shell, a door body and two heat dissipation assemblies, which comprise an opening and a first cavity, the opening is in communication with the first cavity, the door body is rotatably arranged at the opening, and the door body is arranged to be able to close the first cavity, one of the heat dissipation assemblies is arranged on the side of the door body close to the first cavity, and the other heat dissipation assembly is located on the bottom wall forming the first cavity, and the side of the door plate close to the first cavity has a plurality of first fans for heat dissipation, and the side of the cabinet shell away from the opening also has a plurality of uniformly distributed second fans, and the plurality of first fans and the plurality of second fans correspond one by one, wherein the above-mentioned heat dissipation assembly is arranged to be able to dissipate heat in the first cavity within a predetermined temperature range, so as to limit the temperature in the energy storage cabinet.
[0006] Another purpose of the present application is to provide an intelligent heat dissipation energy storage cabinet, wherein the intelligent heat dissipation energy storage cabinet has simple structure, convenient operation, does not involve complex manufacturing process and expensive materials, has high economic efficiency, and is easy to popularize and use.
[0007] To achieve the above at least one purpose of the application, the application provides a kind of intelligent heat dissipation energy storage cabinet, wherein the intelligent heat dissipation energy storage cabinet includes:
[0008] A cabinet shell includes an opening and a first cavity, and the opening is communicated with the first cavity;
[0009] A door body is rotatably arranged at the opening, and the door body is arranged to be able to close the first cavity;And
[0010] Two heat dissipation components, one of which is arranged on the side of the door body close to the first cavity, and the other is arranged on the bottom wall forming the first cavity, and the side of the door plate close to the first cavity has a plurality of first fans for heat dissipation, and the side of the cabinet shell away from the opening also has a plurality of second fans arranged uniformly, and the plurality of first fans and the plurality of second fans correspond one by one.
[0011] In one or more embodiments of the application, the heat dissipation component includes a second shell, the second shell has a connecting hole and a second cavity, the connecting hole is communicated with the second cavity, and the connecting hole is also communicated with the outside.
[0012] In one or more embodiments of the application, the heat dissipation component further includes a hollow bolt, one end of the hollow bolt is threadedly connected with the connecting hole, and the other end is placed outside.
[0013] In one or more embodiments of the application, the heat dissipation component further includes a first connecting pipe and a second connecting pipe, one end of the first connecting pipe is threadedly connected with the hollow bolt placed outside, the other end extends in the direction away from the hollow bolt by a predetermined distance, and the second connecting pipe is vertical and perpendicular to the second connecting pipe, and the middle segment of the second connecting pipe is connected with the second connecting pipe.
[0014] In one or more embodiments of the application, the heat dissipation component further includes two moving assemblies, two moving assemblies are respectively installed at two ends of the second connecting pipe, and each moving assembly includes a sleeve, the sleeve has a stepped hole, the stepped hole penetrates through the sleeve, and one end of the stepped hole is fixedly connected with the end of the second connecting pipe, so as to limit the position of the sleeve.
[0015] In one or more embodiments of the present application, the moving assembly further comprises a positioning member, the positioning member has a moving part, an insertion part and an abutting part, two ends of the insertion part are connected with the moving part and the abutting part respectively, the moving part, the insertion part and the abutting part are integrally formed, in addition, the abutting part is arranged at the other end of the stepped hole and is arranged to block the stepped hole, the end connected with the abutting part is also arranged in the stepped hole, the moving part is spaced apart from the end of the sleeve by a predetermined distance, and the moving part is movably arranged on the door body.
[0016] In one or more embodiments of the present application, the moving assembly further comprises a limiting ring, the limiting ring is arranged in the stepped hole and is close to the end of the sleeve, and the limiting ring is also spaced apart from the abutting part by a predetermined distance.
[0017] In one or more embodiments of the present application, the moving assembly further comprises a resilient member, the resilient member is sleeved on the insertion part and is located between the abutting part and the limiting ring, and the resilient member is further fixedly connected with the limiting ring.
[0018] In one or more embodiments of the present application, the heat dissipation assembly further comprises two travel switches, the two travel switches are arranged on one side of the door body close to the first cavity or form the bottom wall of the first cavity, the two travel switches are oppositely arranged and are respectively close to the two moving parts, and the two travel switches are further respectively connected with the plurality of first fans or second fans. BRIEF DESCRIPTION OF DRAWINGS
[0019] These and / or other aspects and advantages of the present application will become more apparent and more readily appreciated from the following detailed description of the embodiments of the present application, taken in conjunction with the accompanying drawings in which:
[0020] Figure 1 FIG. 1 shows a structural schematic diagram of an intelligent heat dissipation energy storage cabinet.
[0021] Figure 2 FIG. 2 shows a structural schematic diagram of a heat dissipation assembly.
[0022] Figure 3 FIG. 3 shows a structural schematic diagram of a moving assembly. Figure 1 FIG. 4 shows an enlarged view of A in FIG. 3. DETAILED DESCRIPTION
[0023] The terms and words used in the following description and claims are not limited to the literal meanings but are used only by the inventors to enable a clear and consistent understanding of the present application. Accordingly, it is apparent to those skilled in the art that the following description of various embodiments of the present application is provided only for purposes of illustration and is not intended to limit the present application as defined by the appended claims and their equivalents.
[0024] It is to be understood that the term "one" should be understood as "at least one" or "one or more" i.e. in one embodiment a quantity of one of the elements can be present while in another embodiment a quantity of more than one of the elements can be present, and that no limitation of a particular number of elements is intended.
[0025] Although ordinal numbers such as "first", "second", etc. will be used to describe various components, these ordinal numbers are merely intended to distinguish one component from another. For example, a first component could be termed a second component and, similarly, a second component could be termed a first component without departing from the teachings of the present inventive concept. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0026] The terminology used herein is for the purpose of describing various embodiments only and is not intended to be limiting. As used herein, the singular form "a", "an" and "the" are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms "comprises" and / or "has", when used in this specification, specify the presence of stated features, integers, steps, operations, components, elements, or combinations thereof, but do not preclude the presence or addition of one or more other features, integers, steps, operations, components, elements, or combinations thereof.
[0027] Illustrative intelligent heat-dissipation energy storage cabinet
[0028] Reference Figures 1 to 3 According to the intelligent heat-dissipation energy storage cabinet of a preferred embodiment of the present application, it is to be noted that the structure of the intelligent heat-dissipation energy storage cabinet is as shown in Figure 1 FIG. 1, which comprises a cabinet shell 10 comprising an opening and a first cavity 101, the opening being in communication with the first cavity 101. In addition, it should be understood by those skilled in the art that a plurality of spaced apart partitions are further provided in the first cavity 101, and the partitions are used for placing battery packs.
[0029] Specifically, the intelligent heat dissipation energy storage cabinet also includes a door 20, which is rotatably disposed at the opening and is configured to close the first cavity 101. Specifically, those skilled in the art should understand that when the battery pack placed on the partition is operating, the temperature inside the first cavity 101 will rise, thus requiring a heat dissipation device to control the temperature inside the first cavity 101. However, our previous energy storage cabinets only had manually controlled fans to control the temperature inside the first cavity 101; specifically, at least two fans were positioned on the door 20 near the inside of the first cavity 101. On one side, the door 20 also has multiple evenly distributed heat dissipation holes, and the fans are directly facing the heat dissipation holes. Thus, the hot air in the first cavity 101 is directed to the outside by at least two fans. It should be noted that two fans are also provided on the bottom wall of the first cavity 101, directly facing the two fans on the door 20. The back of the cabinet also has multiple evenly distributed heat dissipation holes to ensure the airflow direction and ensure the heat dissipation effect in the first cavity 101. However, the above-mentioned at least four fans need to be turned on manually, which is quite troublesome. Moreover, if the temperature in the first cavity 101 is not high, the power consumption will be high. Therefore, it is necessary to add an intelligent heat dissipation structure.
[0030] Specifically, the intelligent heat dissipation energy storage cabinet also includes two heat dissipation components 30. Specifically, one of the heat dissipation components 30 is located on the side of the door 20 near the first cavity 101, and the other heat dissipation component (not shown in the figure) is located on the bottom wall forming the first cavity 101. Specifically, the side of the door panel near the first cavity 101 has multiple first fans 40 for heat dissipation, and the side of the cabinet shell 10 away from the opening also has multiple evenly distributed second fans 50, and the multiple first fans 40 correspond one-to-one with the multiple second fans 50.
[0031] It is worth mentioning that the heat dissipation assembly 30 includes a second housing 31, which has a connecting hole and a second cavity. The connecting hole communicates with the second cavity and is also connected to the outside. The heat dissipation assembly 30 further includes a hollow bolt 32, one end of which is threaded into the connecting hole, and the other end is placed externally.
[0032] Furthermore, the heat dissipation assembly 30 also includes a first connecting pipe 33 and a second connecting pipe 34. One end of the first connecting pipe 33 is threadedly connected to the externally placed hollow bolt 32, and the other end extends a predetermined distance away from the hollow bolt 32. Meanwhile, the second connecting pipe 34 is vertical and perpendicular to the first connecting pipe 33, with its middle section connected to the second connecting pipe 34. Those skilled in the art should understand that the first connecting pipe 33 and the second connecting pipe 34 are integrally formed. It should be noted that the aforementioned second cavity is used to fill silicone oil; that is, the silicone oil placed in the second cavity can be guided to both ends of the second connecting pipe 34 through the hollow bolt 32 and the first connecting pipe 33.
[0033] Specifically, the heat dissipation assembly 30 further includes two movable components 35, which are respectively installed at both ends of the second connecting pipe 34. Each movable component 35 includes a sleeve 351 with a stepped hole 35101 extending through it. One end of the stepped hole 35101 is fixedly connected to the end of the second connecting pipe 34, thereby defining the position of the sleeve 351. Furthermore, those skilled in the art should understand that the first connecting pipe 33 and the second connecting pipe 34 can be welded to the door body 20 via an external connecting block to define their positions.
[0034] Furthermore, the moving component 35 also includes a positioning member 352, which has a moving part, an insertion part, and a abutting part. The two ends of the insertion part are respectively connected to the moving part and the abutting part. The moving part, the insertion part, and the abutting part are integrally formed. The abutting part is placed at the other end of the stepped hole 35101 and is configured to block the stepped hole 35101. Simultaneously, the end connected to the abutting part is also placed inside the stepped hole 35101, and the moving part is spaced a predetermined distance from the end of the sleeve 351. It should be noted that the silicone oil also contacts the two abutting parts through the second connecting pipe 34. When the temperature inside the first cavity 101 rises, the silicone oil inside the first cavity 101 expands due to heat, causing the silicone oil in the stepped hole 35101 to press the two abutting parts closer together. At this time, the two positioning members 352 move a predetermined distance towards the opposite ends. Specifically, to ensure the sealing of the stepped hole 35101, a rubber ring is fitted on the outer wall of both abutting ends to prevent silicone oil from leaking out of the stepped hole 35101.
[0035] Specifically, the movable component 35 further includes a limiting ring 353, which is disposed in the stepped hole 35101 and close to the end of the sleeve 351. The limiting ring 353 is also spaced at a predetermined distance from the abutting part, thereby providing space for the installation of the remaining components of the movable component 35. Specifically, the moving component 35 further includes an elastic element 354, which is sleeved on the insertion part and located between the abutment part and the limiting ring 353. The elastic element 354 is also fixedly connected to the limiting ring 353, wherein the connection method can be welding or bonding. The limiting ring 353 is threadedly connected to the stepped hole 35101, thereby squeezing the elastic element 354 by rotating the limiting ring 353, thus limiting the position of the abutment part. Specifically, when the temperature inside the first cavity 101 rises, the silicone oil expands, causing the two abutment parts to be subjected to force and move in opposite directions, while the two elastic elements 354 are compressed. Conversely, when the temperature drops, the two abutment parts are reset by the corresponding elastic elements 354. It should also be noted that both of the above-mentioned elastic elements 354 are initially in a compressed state, so that the elastic element 354 located on the lower side can ensure that the abutment portion located on the lower side always fits against the end of the stepped hole 35101 located at the bottom.
[0036] It should also be noted that the movement of the aforementioned moving parts can be implemented through protrusions and grooves. That is, the side of the door body 20 near the first cavity 101 also has two oppositely arranged grooves 102. At the same time, each of the moving parts has a protrusion that cooperates with the groove 102, thereby defining the movement path of the positioning member 352. In addition, the side of the door body 20 near the first cavity 101 is also provided with two limit switches 36. The two limit switches 36 are arranged opposite each other and are close to the two moving parts respectively. That is, when the two moving parts move in opposite directions, the two moving parts will contact the corresponding limit switches 36, thereby ensuring the operation of multiple first fans 40 or second fans 50. That is, the two limit switches 36 are also connected to the corresponding first fan 40 or second fan 50.
[0037] In summary, the intelligent heat dissipation energy storage cabinet described in the embodiments of this application is explained, which provides advantages such as simple structure, high practicality, and automatic heat dissipation.
[0038] It is worth mentioning that, in this embodiment, the intelligent heat dissipation energy storage cabinet has a simple structure, does not involve complex manufacturing processes or expensive materials, and is highly economical. At the same time, for manufacturers, the intelligent heat dissipation energy storage cabinet provided in this application is easy to produce and has low cost, which is more conducive to controlling production costs and further facilitates product promotion and use.
[0039] Those skilled in the art should understand that the embodiments of the present invention described above and shown in the accompanying drawings are merely examples and do not limit the present invention. The purpose of the present invention has been fully and effectively achieved. The function and structural principle of the present invention have been shown and explained in the embodiments, and any modifications or variations may be made to the implementation of the present invention without departing from these principles.
Claims
1. An intelligent heat dissipation and energy storage cabinet, characterized in that, The intelligent heat dissipation and energy storage cabinet includes: A cabinet shell, comprising an opening and a first cavity, wherein the opening is connected to the first cavity; A door body, rotatably disposed at the opening, and configured to close the first cavity; and Two heat dissipation components are provided. One heat dissipation component is located on the side of the door body near the first cavity, and the other heat dissipation component is located on the bottom wall forming the first cavity. The side of the door panel near the first cavity has multiple first fans for heat dissipation, and the side of the cabinet shell away from the opening also has multiple evenly distributed second fans. The multiple first fans correspond one-to-one with the multiple second fans.
2. The intelligent heat dissipation energy storage cabinet according to claim 1, wherein the heat dissipation component includes a second housing, the second housing having a connection hole and a second cavity, the connection hole communicating with the second cavity, and the connection hole also communicating with the outside.
3. The intelligent heat dissipation energy storage cabinet according to claim 2, wherein the heat dissipation component further includes a hollow bolt, one end of which is threadedly connected to the connecting hole, and the other end is placed on the outside.
4. The intelligent heat dissipation energy storage cabinet according to claim 3, wherein the heat dissipation component further includes a first connecting pipe and a second connecting pipe, one end of the first connecting pipe is threadedly connected to the hollow bolt placed on the outside, and the other end extends a predetermined distance away from the hollow bolt, while the second connecting pipe is vertical and perpendicular to the second connecting pipe, and the middle section of the second connecting pipe is connected to the second connecting pipe.
5. The intelligent heat dissipation and energy storage cabinet according to claim 4, wherein the heat dissipation component further includes two movable components, the two movable components are respectively installed at both ends of the second connecting pipe, and each movable component includes a sleeve, the sleeve having a stepped hole, the stepped hole penetrating the sleeve, and one end of the stepped hole being fixedly connected to the end of the second connecting pipe, thereby defining the position of the sleeve.
6. The intelligent heat dissipation and energy storage cabinet according to claim 5, wherein the moving component further includes a positioning member, the positioning member having a moving part, an insertion part and a stop part, the two ends of the insertion part being connected to the moving part and the stop part respectively, wherein the moving part, the insertion part and the stop part are integrally formed, and the stop part is placed at the other end of the stepped hole and is configured to block the stepped hole, while the end connected to the stop part is also placed in the stepped hole, and the moving part is spaced apart from the end of the sleeve by a predetermined distance, and the moving part is movably disposed on the door body.
7. The intelligent heat dissipation and energy storage cabinet according to claim 6, wherein the moving component further includes a limiting ring, the limiting ring being disposed in the stepped hole and close to the end of the sleeve, and the limiting ring being spaced a predetermined distance from the abutting part.
8. The intelligent heat dissipation and energy storage cabinet according to claim 7, wherein the moving component further includes an elastic member, the elastic member being sleeved on the insertion part and located between the abutment part and the limiting ring, and the elastic member being fixedly connected to the limiting ring.
9. The intelligent heat dissipation and energy storage cabinet according to claim 8, wherein the heat dissipation component further includes two limit switches, the two limit switches are disposed on the side of the door body near the first cavity or forming the bottom wall of the first cavity, the two limit switches are disposed opposite to each other and are respectively close to the two moving parts, and the two limit switches are also respectively connected to a plurality of first fans or second fans.