Air cooling type energy storage all-in-one machine system

The modular design of the wind-cooled energy storage system addresses the issue of fixed component assembly by allowing customizable assembly to fit various battery sizes and spacings, improving adaptability and usability.

CN223109507UActive Publication Date: 2025-07-15ZHEJIANG FUNENG ENERGY STORAGE TECH CO LTD
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Patent Information

Application Number
CN202421600544.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-08
Publication Date
2025-07-15
Estimated Expiration
2034-07-08

AI Technical Summary

Technical Problem

The existing air-cooled energy storage integrated machine cabinets can only be adapted to one size battery, and cannot be adjusted and assembled into different sizes according to the needs of use, resulting in limited use range.

Method used

An air-cooled energy storage cabinet structure including a partitioning member, a first protective member, a limiting member and a second protective member is designed. The internal space of the cabinet is adjusted and adapted through a sliding installation and clamping structure to meet the support and stability requirements of battery cells of different sizes.

Benefits of technology

It realizes the adjustability of the cabinet, can be adapted to battery installation of different sizes, meets diverse usage needs, and improves the scope of application of the cabinet and the stability of the battery cell.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of air cooling type energy storage all-in-one machines, and discloses an air cooling type energy storage all-in-one machine system, which comprises an air cooling energy storage cabinet all-in-one machine and an energy storage control system, the energy storage control system comprises a power supply module, a discharge module and an air cooling module, the power supply module is arranged in the energy storage control system, and the discharge module is arranged in the air cooling module. The discharging module is arranged in the energy storage control system, and the air cooling module is arranged in the energy storage control system; the air cooling energy storage cabinet all-in-one machine comprises a separation part, a first protection part, a limiting part and a second protection part, and the first protection part and the second protection part are fixedly connected to the two sides of the limiting part. And different sizes can be assembled through adaptive adjustment according to requirements, so that the use requirements are met.
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Description

Technical Field

[0001] The utility model relates to the field of air-cooled energy storage integrated machines, and particularly to an air-cooled energy storage integrated machine system. Background Art

[0002] An air-cooled energy storage integrated machine is an energy storage device that dissipates heat through air-cooling technology. This device has the characteristics of simple structure, low manufacturing cost, easy maintenance and servicing, and is applicable to various scenarios. The air-cooled energy storage integrated machine system is a complex integrated system, including multiple parts such as an energy storage system, an air-cooled temperature control system, and other auxiliary systems. These parts cooperate with each other and work together to jointly achieve the conversion, storage, and utilization of wind energy.

[0003] However, the cabinets of existing air-cooled energy storage integrated machines are generally assembled for use between specific components, resulting in a cabinet of an air-cooled energy storage integrated machine being only able to adapt to the installation of batteries of one size, and unable to adapt and assemble cabinets of air-cooled energy storage integrated machines of different sizes according to usage needs. This reduces the scope of use of the cabinet of the air-cooled energy storage integrated machine and is not convenient for adjusting the spacing between the upper and lower installed batteries, thus unable to meet people's usage requirements. Summary of the Utility Model

[0004] The purpose of the utility model is to provide an air-cooled energy storage integrated machine system, and solve the following technical problems: how to enable the cabinet in the air-cooled energy storage integrated machine system to be adapted and adjusted to be assembled into different sizes according to needs to meet usage requirements.

[0005] The purpose of the utility model can be achieved through the following technical solutions: an air-cooled energy storage integrated machine system, including: an air-cooled energy storage cabinet integrated machine and an energy storage control system. The energy storage control system includes a power supply module, a discharge module, and an air-cooled module. The power supply module is arranged inside the energy storage control system, the discharge module is arranged inside the energy storage control system, and the air-cooled module is arranged inside the energy storage control system;

[0006] The air-cooled energy storage cabinet integrated machine includes a partition component, a first protection component, a limiting component, and a second protection component. The first protection component and the second protection component are fixedly connected to both sides of the limiting component, and the air-cooled energy storage cabinet integrated machine is slidably installed inside the limiting component;

[0007] The separation component includes an isolation vertical plate and a first support plate. The first support plate is slidably mounted on the outer surface of the isolation vertical plate. First tooth grooves are provided at both ends of the first support plate. Limiting card slots are provided at the four corners of the isolation vertical plate. Socket holes are provided at the edges of the four corners on the side surface of the isolation vertical plate. Support rollers are provided at both ends of the bottom surface of the isolation vertical plate. A positioning frame is slidably clamped at the bottom of the isolation vertical plate. First positioning tooth blocks are provided at both ends of the positioning frame. Tension springs are fixedly connected to the upper surfaces of both ends of the positioning frame. Second positioning tooth blocks are slidably inserted at both ends of the first support plate. Traction springs are fixedly connected to both ends of the second positioning tooth block;

[0008] The first protection component includes a side plate, a sealing door plate and a second support plate. The second support plate is slidably mounted on the outer surface of the side plate. The sealing door plate is rotatably connected to one end of the side plate;

[0009] The limiting component includes a limiting slideway, a connecting plate, a protection vertical plate and a limiting cross plate. The limiting cross plate is symmetrically and fixedly connected to the upper and lower ends of the protection vertical plate. The connecting plates are respectively arranged at both ends of the limiting cross plate. The limiting slideway is provided on the upper surfaces of both sides of the limiting cross plate.

[0010] As a preferred solution of the present invention: The isolation vertical plate is slidably clamped with the two sides of the upper surface of the limiting cross plate through the limiting card slots at the four corners. Limiting slide bars are provided on both sides of the inner surface of the limiting cross plate.

[0011] As a preferred solution of the present invention: The second positioning tooth block penetrates through one end of the first support plate and is clamped with the first tooth groove.

[0012] As a preferred solution of the present invention: The isolation vertical plate is slidably clamped with the inside of the limiting slideway through the support rollers at both ends of the bottom.

[0013] As a preferred solution of the present invention: A second tooth groove is provided inside the limiting slideway.

[0014] As a preferred solution of the present invention: The positioning frame is clamped with the second tooth groove inside the limiting slideway through the first positioning tooth blocks at both ends.

[0015] As a preferred solution of the present invention: The limiting cross plate is aligned and clamped with the side plate and the second protection component through the connecting plate.

[0016] The beneficial effects of the present invention:

[0017] (1) By arranging a separation component inside the limiting component in the present invention, the separation component can slide inside the limiting component to adjust the space size inside the limiting component. Moreover, by adjusting the distance between the first support plates on the outer surface of the isolation vertical plate, it can support electric cores of different sizes and ensure the stability of the electric cores;

[0018] (2) By combining the partition component, the first protection component, the limiting component and the second protection component, the present utility model can form cabinets of different sizes, so as to meet the requirements of different sizes.

[0019] (3) Through the adaptive combined connection between the partition component, the first protection component, the limiting component and the second protection component, the present utility model can be adaptively adjusted and assembled into different sizes according to needs to meet the usage requirements. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] The present utility model will be further described below with reference to the accompanying drawings.

[0021] Figure 1 It is a schematic diagram of an air-cooled energy storage integrated machine system;

[0022] Figure 2 It is a schematic diagram of the structure of an air-cooled energy storage cabinet integrated machine;

[0023] Figure 3 It is a schematic diagram of the structure of the partition component;

[0024] Figure 4 For Figure 3 The partial enlarged structure diagram at position A in

[0025] Figure 5 It is a schematic diagram of the structure of the first protection component;

[0026] Figure 6 It is a schematic diagram of the structure of the limiting component.

[0027] BRIEF DESCRIPTION OF THE DRAWINGS: 1. Air-cooled energy storage cabinet integrated machine; 2. Energy storage control system; 3. Power supply module; 4. Discharge module; 5. Air-cooling module; 11. Partition component; 12. First protection component; 13. Limiting component; 14. Second protection component; 111. First support plate; 112. Isolation vertical plate; 113. Limiting card slot; 114. Positioning frame; 115. Socket hole; 116. Support roller; 117. First positioning tooth block; 118. Tension spring; 119. First tooth groove; 120. Second positioning tooth block; 121. Traction spring; 122. Side plate; 123. Sealing door plate; 124. Second support plate; 131. Limiting slideway; 132. Connecting plate; 133. Protection vertical plate; 134. Limiting cross plate. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0028] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0029] Please refer to Figures 1-6 As shown, the present utility model is an air-cooled integrated energy storage system, including: an air-cooled energy storage cabinet integrated machine 1 and an energy storage control system 2. The energy storage control system 2 includes a power supply module 3, a discharge module 4 and an air-cooled module 5. The power supply module 3 is arranged inside the energy storage control system 2, the discharge module 4 is arranged inside the energy storage control system 2, and the air-cooled module 5 is arranged inside the energy storage control system 2;

[0030] The air-cooled energy storage cabinet integrated machine 1 includes a partition component 11, a first protection component 12, a limiting component 13 and a second protection component 14. The first protection component 12 and the second protection component 14 are fixedly connected to both sides of the limiting component 13, and the air-cooled energy storage cabinet integrated machine 1 is slidably installed inside the limiting component 13;

[0031] The partition component 11 includes an isolation vertical plate 112 and a first support plate 111. The first support plate 111 is slidably installed on the outer surface of the isolation vertical plate 112. First tooth grooves 119 are opened at both ends of the first support plate 111. Limiting card slots 113 are opened at the four corners of the isolation vertical plate 112. Socket holes 115 are opened at the four corner edges of the side surface of the isolation vertical plate 112. Support rollers 116 are arranged at both ends of the bottom surface of the isolation vertical plate 112. A positioning frame 114 is slidably clamped at the bottom of the isolation vertical plate 112. First positioning tooth blocks 117 are arranged at both ends of the positioning frame 114. Tension springs 118 are fixedly connected to the upper surfaces of both ends of the positioning frame 114. Second positioning tooth blocks 120 are slidably inserted at both ends of the first support plate 111. Traction springs 121 are fixedly connected to both ends of the second positioning tooth blocks 120;

[0032] The first protection component 12 includes a side plate 122, a sealing door plate 123 and a second support plate 124. The second support plate 124 is slidably installed on the outer surface of the side plate 122. The sealing door plate 123 is rotatably connected to one side end of the side plate 122;

[0033] The limiting component 13 includes a limiting slideway 131, a connecting plate 132, a protection vertical plate 133 and a limiting cross plate 134. The limiting cross plate 134 is symmetrically and fixedly connected to the upper and lower ends of the protection vertical plate 133. The connecting plates 132 are respectively arranged at both ends of the limiting cross plate 134. The limiting slideway 131 is opened on the upper surfaces of both sides of the limiting cross plate 134.

[0034] The isolation vertical plate 112 of the utility model is slidably clamped with both sides of the upper surface of the limit cross plate 134 through the limit card slots 113 at the four corners, which can play a role in limiting the sliding of the isolation vertical plate 112, so as to prevent the isolation vertical plate 112 from tipping over during the sliding process. Limit slide bars are arranged on both sides of the inner surface of the limit cross plate 134, which can enable the four corners of the isolation vertical plate 112 to be slidably sleeved on the outer surface of the limit slide bars, ensuring the stability of the sliding of the isolation vertical plate 112. The second positioning tooth block 120 penetrates one end of the first support plate 111 and is clamped with the first tooth groove 119, which can play a positioning role for the first support plate 111.

[0035] The isolation vertical plate 112 of the utility model is slidably clamped with the inside of the limit slideway 131 through the support rollers 116 at both ends of the bottom, which can ensure the smooth sliding of the isolation vertical plate 112 inside the limit component 13. A second tooth groove is opened inside the limit slideway 131, and the positioning frame 114 is clamped with the second tooth groove inside the limit slideway 131 through the first positioning tooth blocks 117 at both ends, which can position the position of the isolation vertical plate 112 inside the limit component 13. The limit cross plate 134 is aligned and clamped with the side plate 122 and the second protection component 14 through the connecting plate 132, improving the stability of their connection with each other.

[0036] Working principle of the present utility model: When assembling the air-cooled energy storage integrated machine, first align and snap the side plate 122 and the second protection component 14 with both sides of the limiting component 13 respectively, and fasten them with fastening screws. Then, adjust the position of the partition component 11 inside the limiting component 13 as needed to make the battery cells and the air-cooled space adaptively distributed. First, pull the positioning frame 114 to drive the first positioning teeth 117 at both ends to rise, so that the first positioning teeth 117 are separated from the second tooth grooves inside the limiting slideway 131. Then, pull the isolation vertical plate 112 to slide to a suitable position inside the limiting component 13. Remove the external force on the positioning frame 114, so that the first positioning teeth 117 descend under the extrusion of the tension spring 118 and are snapped with the second tooth grooves, thereby positioning the position of the isolation vertical plate 112 inside the limiting component 13. After the space inside the limiting component 13 is distributed, it is necessary to adjust the distance between the first support plates 111 and between the second support plates 124 according to the size of the battery cells. Pull the second positioning teeth 120 at both ends of the first support plate 111 to separate from the first tooth grooves 119, and at the same time pull the first support plate 111 to slide up and down on the outer surface of the isolation vertical plate 112 to a suitable position until the distance between the first support plates 111 adapts to the size of the battery cells. Then, remove the external force on the second positioning teeth 120, so that the second positioning teeth 120 are pulled by the traction spring 121 to be snapped with the first tooth grooves 119, thereby positioning the lifted first support plate 111. Finally, install the air-cooled machine and the battery cells inside the cabinet. Therefore, when assembling cabinets of different sizes, the corresponding size of the limiting component 13 can be selected according to the assembly requirements, and then the first protection component 12 and the second protection component 14 are installed on both sides of the limiting component 13. Finally, adjust the position of the partition component 11 inside the limiting component 13 and the distance between the first support plates 111 according to the requirements. Therefore, through the adaptive combination connection between the partition component 11, the first protection component 12, the limiting component 13 and the second protection component 14, it can be adaptively adjusted and assembled into different sizes according to the needs to meet the use requirements.

[0037] The above has described an embodiment of the present utility model in detail, but the content is only the preferred embodiment of the present utility model and cannot be considered as defining the scope of implementation of the present utility model. All equivalent changes and improvements made according to the scope of the application of the present utility model should still fall within the scope covered by the patent of the present utility model.

Claims

1. Air-cooled integrated energy storage system, comprising: Air-cooled energy storage cabinet integrated machine (1) and energy storage control system (2), the energy storage control system (2) includes a power supply module (3), a discharge module (4) and an air-cooled module (5), the power supply module (3) is arranged inside the energy storage control system (2), the discharge module (4) is arranged inside the energy storage control system (2), and the air-cooled module (5) is arranged inside the energy storage control system (2); It is characterized in that the air-cooled energy storage cabinet integrated machine (1) includes a partition component (11), a first protection component (12), a limiting component (13) and a second protection component (14), the first protection component (12) and the second protection component (14) are fixedly connected to both sides of the limiting component (13), and the air-cooled energy storage cabinet integrated machine (1) is slidably installed inside the limiting component (13); The partition component (11) includes an isolation vertical plate (112) and a first support plate (111), the first support plate (111) is slidably installed on the outer surface of the isolation vertical plate (112), first tooth grooves (119) are opened at both ends of the first support plate (111), limiting card slots (113) are opened at the four corners of the isolation vertical plate (112), socket holes (115) are opened at the four corners of the side surface of the isolation vertical plate (112), support rollers (116) are arranged at both ends of the bottom surface of the isolation vertical plate (112), a positioning frame (114) is slidably clamped at the bottom of the isolation vertical plate (112), first positioning tooth blocks (117) are arranged at both ends of the positioning frame (114), tension springs (118) are fixedly connected to the upper surfaces of both ends of the positioning frame (114), second positioning tooth blocks (120) are slidably inserted at both ends of the first support plate (111), and traction springs (121) are fixedly connected to both ends of the second positioning tooth blocks (120).

2. The air-cooled integrated energy storage system according to claim 1, wherein The first protection component (12) includes a side plate (122), a sealing door plate (123) and a second support plate (124), the second support plate (124) is slidably installed on the outer surface of the side plate (122), and the sealing door plate (123) is rotatably connected to one side end of the side plate (122); The limiting component (13) includes a limiting slideway (131), a connecting plate (132), a protection vertical plate (133) and a limiting cross plate (134), the limiting cross plate (134) is symmetrically and fixedly connected to the upper and lower ends of the protection vertical plate (133), the connecting plates (132) are respectively arranged at both ends of the limiting cross plate (134), and the limiting slideway (131) is opened on the upper surfaces of both sides of the limiting cross plate (134); the isolation vertical plate (112) is slidably clamped with the upper surfaces of both sides of the limiting cross plate (134) through the limiting card slots (113) at the four corners, and limiting slide bars are arranged on both sides of the inner surface of the limiting cross plate (134).

3. The air-cooled integrated energy storage system according to claim 2, wherein The second positioning tooth block (120) penetrates through one end of the first support plate (111) and is clamped with the first tooth groove (119).

4. The air-cooled integrated energy storage system according to claim 3, wherein The isolation vertical plate (112) is slidably clamped with the inside of the limiting slideway (131) through the support rollers (116) at both ends of the bottom.

5. The air-cooled energy storage integrated machine system according to claim 4, wherein, A second tooth groove is provided inside the limiting slideway (131).

6. The air-cooled integrated energy storage system according to claim 5, wherein, The positioning frame (114) is clamped with the second tooth groove inside the limiting slideway (131) through the first positioning tooth blocks (117) at both ends.

7. The air-cooled integrated energy storage system according to claim 6, wherein, The limiting cross plate (134) is clamped with the side plate (122) and the second protection component (14) in an aligned manner through the connecting plate (132).