Wind and light storage and charging cooperative control device

The wind-solar energy storage and charging control system addresses installation inefficiencies and instability through a screw-preinstalled fixed plate and hanging mechanism with sliding blocks, enabling quick and stable attachment and detachment.

CN223109671UActive Publication Date: 2025-07-15TIANJIN HISEAS JINFENG NEW ENERGY CO LTD +1
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Patent Information

Application Number
CN202421926785.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-09
Publication Date
2025-07-15
Estimated Expiration
2034-08-09

AI Technical Summary

Technical Problem

The existing wind and light storage and charging collaborative controller has low installation efficiency and cannot be quickly installed and disassembled. The installation structure is unstable, which can easily cause the controller to shake and tilt, affecting the operation of the equipment.

Method used

The fixing plate and support limiting mechanism are used to quickly fix and install through the clamping mechanism of the mounting mechanism and the positioning and card slot of the support limiting mechanism. The elastic sliding block and return spring are used to ensure that the limiting block is stably clamped in the clamping slot to avoid shaking; the elastic reset is used to achieve rapid disassembly during disassembly.

Benefits of technology

It realizes the rapid and stable installation and disassembly of the wind and light storage and charging collaborative controller, reduces installation time, and improves the stability and reliability of equipment operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a wind and light storage and charging cooperative control device which comprises a fixing plate pre-installed through bolts, supporting and limiting mechanisms are evenly distributed on the fixing plate, hooking mechanisms are evenly distributed on the back of a wind and light storage and charging cooperative controller, and positioning clamping grooves are symmetrically formed in the hooking mechanisms. A sliding block is elastically arranged on the top of the supporting limiting mechanism and used for driving limiting blocks arranged on the two sides of the supporting limiting mechanism, and the limiting blocks are installed on the top of the supporting limiting mechanism in a supporting and sliding mode through the limiting mechanism. The hanging mechanism is sleeved on the supporting limiting mechanism, and the limiting block is driven by the sliding block to extend out of the top of the supporting limiting mechanism and is clamped with the positioning clamping groove, so that the hanging mechanism is fixedly sleeved on the supporting limiting mechanism in a limiting manner, and the limiting block always limits the interior of the through hole in an initial state; and the limiting block slides in the horizontal direction all the time, so that the limiting block is prevented from being separated from the through opening and accurately aligned into the positioning clamping groove.
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Description

Technical Field

[0001] The utility model relates to the technical field of wind-solar energy storage collaborative control, and particularly to a wind-solar energy storage charging collaborative control device. Background Art

[0002] A wind-solar collaborative controller is a controller used in wind power generation and solar power generation systems. Its main function is to complement each other between wind energy and solar energy resources to improve the energy utilization efficiency and stability of the system. In a wind-solar energy storage charging collaborative controller, the wind power generation system and the solar power generation system can complement each other. When the electric energy generated by the solar power generation system is insufficient to meet the load demand, the wind power generation system can supplement the additional electric energy. On the contrary, when the electric energy generated by the wind power generation system exceeds the load demand, the excess electric energy can be stored or utilized in other ways, such as stored in a battery or used to supply other devices. The wind-solar energy storage charging collaborative controller usually includes control units of a wind turbine generator set and a solar photovoltaic battery pack, as well as corresponding sensors and actuators. It can automatically adjust the output power of the wind power generation system and the solar power generation system according to the system requirements and environmental conditions, and ensure the stable and efficient operation of the system.

[0003] Publication (Announcement) Number: CN221058568U discloses a wind-solar complementary control controller that is easy to install, including a controller main body and an installation mechanism detachably fixed to the controller main body; the installation mechanism includes an installation base plate and an installation seat arranged on the installation base plate; a fixing mechanism detachably fixed to the installation seat is arranged at the bottom end of the controller main body; a connection component connected to the controller main body is arranged on the installation seat, and the connection component can improve the connection stability between the controller main body and the installation seat.

[0004] In the prior art:

[0005] First, the installation efficiency of the wind-solar energy storage charging collaborative controller is low, and it is impossible to achieve rapid installation and disassembly, and more than two people are required to cooperate in the installation process.

[0006] Second, the stability of the installation structure is not good, resulting in easy shaking and tilting of the controller during operation, causing poor operation of the equipment.

[0007] Therefore, it is necessary to provide a wind-solar energy storage charging collaborative control device. Content of the Utility Model

[0008] In view of the above problems existing in the prior art, the utility model provides a wind-solar energy storage charging collaborative control device, aiming to solve the above-mentioned technical problems.

[0009] To achieve the above object, the utility model is realized through the following technical solutions: a coordinated control device for wind-solar-storage charging, which includes a fixing plate pre-installed by bolts. The fixing plate evenly distributes support and limit mechanisms. The back of the coordinated controller for wind-solar-storage charging is evenly distributed with hanging mechanisms. The inside of the hanging mechanism is symmetrically provided with positioning card slots. The top of the support and limit mechanism is elastically provided with sliding blocks. The sliding blocks are used to drive the limit blocks arranged on both sides of the support and limit mechanism. The limit blocks are slidably installed on the top of the support and limit mechanism through the limit mechanism. When the hanging mechanism is sleeved on the support and limit mechanism, the limit blocks are driven by the sliding blocks to extend out of the top of the support and limit mechanism and are clamped with the positioning card slots, so as to limit and install the hanging mechanism sleeved and fixed on the support and limit mechanism.

[0010] Preferably, the support and limit mechanism is set as a hook-shaped structure. The top of the support and limit mechanism is opened as a limit card slot. The sliding block is arranged along the axial direction of the limit card slot. The bottom of the sliding block is installed with a spring in the limit card slot. Both sides of the sliding block are slidably installed with fixed rods. The side of the fixed rod away from the sliding block is connected with the limit block. The limit block is arranged in the through openings opened on both sides of the limit card slot.

[0011] Preferably, the limit mechanism includes sliding clamping plates I arranged on both sides of the fixed rod. The limit card slot is symmetrically provided with sliding grooves I on the surfaces on both sides of the fixed rod. The end of the sliding clamping plate I away from the fixed rod is slidably installed inside the sliding groove I. And the end of the sliding clamping plate I arranged inside the sliding groove I is fixedly installed with the inner wall of the sliding groove I through a return spring, so that after the limit block is clamped with the positioning card slot, the limit block can be reset by the elastic action of the return spring.

[0012] Preferably, the cross section of the sliding block is in an isosceles trapezoid structure. The end face of the fixed rod in contact with the sliding block is set as a slope surface matching the inclined side of the isosceles trapezoid.

[0013] Preferably, a positioning groove is opened on the surface of one side of the sliding block facing the fixing plate. The surface of the limit card slot opposite to the positioning groove is provided with a positioning column. The positioning column is slidably arranged inside the positioning groove.

[0014] Preferably, the limit block, the through opening, and the positioning card slot are all set as rectangular structures.

[0015] In summary, the utility model provides a wind-solar-storage-charging coordinated control device. This patent is sleeved on the support limit mechanism through a hanging mechanism. A sliding block is installed on the top of the support limit mechanism through a spring. The sliding block contacts the top of the hanging mechanism. As the hanging mechanism is hung on the support limit mechanism, the sliding block is squeezed downward, and the sliding block moves downward inside the limit card slot. Since the fixing rods are installed on both sides of the sliding block, the fixing rods are pushed to move to both sides of the limit card slot, so that the limit blocks installed on the ends of the fixing rods extend out of the through opening and are connected to the positioning card slot, thereby realizing the hanging and installation of the wind-solar-storage-charging coordinated controller on the support limit mechanism through the hanging mechanism, so as to quickly fix the wind-solar-storage-charging coordinated controller. Fixed installation, in order to avoid the installation with a gap between the hanging mechanism and the support limit mechanism, a limit block is added and clamped in the positioning slot to fix the gap between the hanging mechanism and the support limit mechanism, that is, the left and right directions are limited for installation to avoid shaking installation; when disassembling the wind-solar-storage-charging coordinated controller, lift the wind-solar-storage-charging coordinated controller, the hanging mechanism is separated from the support limit mechanism, and the sliding block is pushed upward due to the elastic action of the spring, and the contact slope between the sliding block and the fixed rod becomes narrower. The sliding card plate is reset and pulled back through the elastic action of the reset spring, so as to release the limit block from the positioning slot and reset the limit block in the through opening, thereby completing the disassembly and installation of the wind-solar-storage-charging coordinated controller.

[0016] In order to ensure that the initial state of the limit block is always within the limit opening, a sliding card plate 1 is used on both sides of the fixed rod, and the limit slot is symmetrically arranged on the surface of the limit slot on both sides of the fixed rod. Through the limiting sliding of the slide slot 1 and the sliding card plate 1, the initial state of the limit block is always within the limit opening, and the moving direction of the limit block is always in the horizontal direction, so as to prevent the limit block from falling out of the opening and accurately aligning it to the positioning slot. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 This is a schematic diagram of the structure of the wind-solar-storage-charging coordinated control device of the utility model;

[0018] Figure 2 It is a structural schematic diagram of the installation of the support and limit mechanism and the hanging mechanism of the utility model;

[0019] Figure 3 This is a schematic diagram of the positioning slot structure of the utility model;

[0020] Figure 4 It is a schematic diagram of the limit slot and spring structure of the utility model;

[0021] Figure 5 It is a structural schematic diagram of the utility model in which the sliding block is installed inside the limit slot through a spring;

[0022] Figure 6 The utility model Figure 5Schematic diagram of the installation structure among the fixed rod, the first sliding clamping plate, the first chute, and the return spring at position A in the figure;

[0023] Figure 7 It is a schematic diagram of the dissection structure of the mating installation of the positioning groove and the positioning post of the present utility model;

[0024] Figure 8 It is a schematic diagram of the internal dissection structure of the limit card slot of the present utility model;

[0025] Figure 9 It is a schematic diagram of the structure of the limit block, the fixed rod, and the first sliding clamping plate of the present utility model;

[0026] In the figure: fixing plate 1, support and limit mechanism 2, wind-solar-storage-charging collaborative controller 3, hanging mechanism 4, positioning card slot 5, sliding block 6, limit block 7, limit mechanism 11, limit card slot 12, spring 13, through hole 14, fixed rod 15, first sliding clamping plate 16, first chute 17, positioning groove 21, positioning post 22, return spring 23. Detailed implementation manners

[0027] The following further describes the present utility model with reference to the accompanying drawings.

[0028] As Figures 1 to 9 shown:

[0029] The present utility model is a wind-solar-storage-charging collaborative control device, including a fixing plate 1 pre-installed by bolts. The fixing plate 1 evenly distributes support and limit mechanisms 2. The back of the wind-solar-storage-charging collaborative controller 3 is evenly distributed with hanging mechanisms 4. The inside of the hanging mechanism 4 is symmetrically provided with positioning card slots 5. The top of the support and limit mechanism 2 is elastically provided with sliding blocks 6. The sliding blocks 6 are used to drive the limit blocks 7 arranged on both sides of the support and limit mechanism 2. The limit blocks 7 are supported and slidably installed on the top of the support and limit mechanism 2 through the limit mechanism 11. When the hanging mechanism 4 is sleeved on the support and limit mechanism 2, the sliding blocks 6 drive the limit blocks 7 to extend out of the top of the support and limit mechanism 2 and be clamped with the positioning card slots 5, so as to limit and install the hanging mechanism 4 sleeved and fixed on the support and limit mechanism 2.

[0030] To solve the technical problems of installation efficiency, quick installation, and installation stability in the prior art, the structure adopted in this patent is as follows: The back of the wind-solar-storage-charging collaborative controller 3 is evenly distributed with hanging mechanisms 4. The fixing plate 1 pre-installed by bolts is used to support and hang the wind-solar-storage-charging collaborative controller 3. The fixing plate 1 is evenly distributed with support and limit mechanisms 2. The number of the support and limit mechanisms 2 is preferably three and is distributed in an isosceles triangle. The hanging mechanism 4 is installed on the back of the wind-solar-storage-charging collaborative controller 3 and is arranged in one-to-one correspondence with the support and limit mechanism 2, and the number is also preferably set to three;

[0031] When hanging and installing, positioning card slots 5 are symmetrically arranged inside the hanging mechanism 4. When the hanging mechanism 4 is sleeved on the support and limit mechanism 2, the limit block 7 is driven by the sliding block 6 to extend out of the top of the support and limit mechanism 2 and is clamped with the positioning card slot 5 to limit and install the hanging mechanism 4 sleeved and fixed on the support and limit mechanism 2.

[0032] In at least one embodiment, the support and limit mechanism 2 is arranged in a hook-shaped structure. The top of the support and limit mechanism 2 is provided with a limit card slot 12. The sliding block 6 is arranged along the axial direction of the limit card slot 12. The bottom of the sliding block 6 is installed with the spring 13 in the limit card slot 12. The two sides of the sliding block 6 are slidably installed with fixed rods 15. The side of the fixed rod 15 away from the sliding block 6 is connected with the limit block 7. The limit block 7 is arranged in the through openings 14 opened on both sides of the limit card slot 12. The limit mechanism 11 includes sliding clamping plates one 16 arranged on both sides of the fixed rod 15. The limit card slot 12 is symmetrically provided with sliding grooves one 17 on the surfaces on both sides of the fixed rod 15. The end of the sliding clamping plate one 16 away from the fixed rod 15 is slidably installed inside the sliding groove one 17, and the end of the sliding clamping plate one 16 arranged inside the sliding groove one 17 is fixedly installed with the inner wall of the sliding groove one 17 through a return spring 23, so that after the limit block 7 is clamped with the positioning card slot 5, the limit block 7 can be reset by the elastic action of the return spring 23.

[0033] The installation method of the support and limit mechanism 2 and the hanging mechanism 4 is as follows: The hanging mechanism 4 is sleeved on the support and limit mechanism 2. The sliding block 6 is installed on the top of the support and limit mechanism 2 through the spring 13. The sliding block 6 contacts the inner top of the hanging mechanism 4. As the hanging mechanism 4 is hung on the support and limit mechanism 2, the sliding block 6 is extruded downward. The sliding block 6 moves downward inside the limit card slot 12. Since the two sides of the sliding block 6 are slidably installed with fixed rods 15, by pushing the fixed rods 15 to move toward both sides of the limit card slot 12, the limit block 7 installed at the end of the fixed rod 15 extends out of the through opening 14 and is clamped in the positioning card slot 5, realizing the hanging and installation of the wind-solar-storage-charging collaborative controller 3 through the hanging mechanism 4 and the support and limit mechanism 2, so as to quickly fix and install the wind-solar-storage-charging collaborative controller 3. To avoid the clearance installation between the hanging mechanism 4 and the support and limit mechanism 2, the limit block 7 is increased and clamped in the positioning card slot 5 to realize the clearance fixation between the hanging mechanism 4 and the support and limit mechanism 2, that is, the left-right direction limit installation to avoid the shaking installation; when disassembling the wind-solar-storage-charging collaborative controller 3, lift the wind-solar-storage-charging collaborative controller 3, the hanging mechanism 4 and the support and limit mechanism 2 are separated. Due to the elastic action of the spring 13, the sliding block 6 is jacked up. The inclined plane in contact between the sliding block 6 and the fixed rod 15 becomes narrower. The sliding clamping plate one 16 is reset and pulled back by the elastic action of the return spring 23 to release and pull back the limit block 7 from the positioning card slot 5 and reset the limit block 7 in the through opening 14, completing the disassembly and installation of the wind-solar-storage-charging collaborative controller 3.

[0034] In order to keep the limiting block 7 in the initial state always limited inside the limiting through - opening 14, sliding clamping plates one 16 on both sides of the fixed rod 15 are adopted. Limiting chute one 17 is symmetrically arranged on the surfaces on both sides of the fixed rod 15 where the limiting card slots 12 are located. Through the limiting sliding of the chute one 17 and the sliding clamping plate one 16, the limiting block 7 is always limited inside the limiting through - opening 14 in the initial state, and the moving direction of the limiting block 7 is always in the horizontal direction for sliding, preventing the limiting block 7 from disengaging from the through - opening 14 and accurately aligning it into the positioning card slot 5.

[0035] In at least one embodiment, the transverse cross - section of the sliding block 6 is an isosceles trapezoid structure, and the end face of the fixed rod 15 in contact with the sliding block 6 is set as a slope surface matching the inclined side of the isosceles trapezoid. By the contact of the inclined surface structure between the fixed rod 15 and the sliding block 6, the sliding block 6 pushes the fixed rod 15, so as to push the limiting block 7 out of the inside of the through - opening 14 and install it in the positioning card slot 5 in a clamped manner, realizing the positioning installation of the hanging mechanism 4 and the supporting and limiting mechanism 2, reducing the shaking caused by sliding gaps, and ensuring the good control operation of the wind - solar - storage - charging collaborative controller 3.

[0036] In at least one embodiment, in order to keep the limiting block 7 always limited inside the limiting through - opening 14 and keep the clamping installation position of the limiting block 7 and the positioning card slot 5 fixed all the time, a structure is adopted to limit the moving distance of the sliding block 6. Specifically: a positioning groove 21 is opened on the surface of the sliding block 6 facing the fixing plate 1, and a positioning post 22 is arranged on the surface of the limiting card slot 12 opposite to the positioning groove 21, and the positioning post 22 is slidably arranged inside the positioning groove 21.

[0037] Specifically: the sliding block 6 is installed in the limiting card slot 12 through a spring 13. The limiting block 7 remains in the through - opening 14 in the initial state. The sliding block 6 is pushed upward by the elastic action of the spring 13. At this time, the positioning post 22 is limited and installed at the bottom of the positioning groove 21. The inclined surface of the sliding block 6 is in contact with the inclined surface of the fixed rod 15, playing a limiting role. And then through the reset elastic pulling force of the reset spring 23 on the sliding clamping plate one 16, the limiting block 7 is kept in the through - opening 14 in the initial state;

[0038] When the limiting block 7 is installed in the positioning card slot 5 in a clamped manner, the positioning post 22 is limited and installed at the top of the positioning groove 21. The inclined surface of the sliding block 6 is in contact with the inclined surface of the fixed rod 15. By the downward sliding of the sliding block 6, the wider inclined surface is extended to drive the fixed rod 15 to slide horizontally, so that the limiting block 7 is installed in the positioning card slot 5 in a clamped manner, completing the positioning installation of the hanging mechanism 4 and the supporting and limiting mechanism 2.

[0039] In at least one embodiment, in order to realize the fixed installation of the structure and reduce the gap shaking, the following structure is adopted: the limiting block 7, the through - opening 14, and the positioning card slot 5 are all set as rectangular structures.

[0040] The embodiments in the present utility model are only used to illustrate the present utility model and do not constitute a limitation to the scope of the claims. Other substantially equivalent alternatives that can be conceived by those skilled in the art are all within the protection scope of the present utility model.

Claims

1. A coordinated control device for wind-solar-storage-charging, characterized in that, It includes a fixed plate (1) pre-installed by bolts. The fixed plate (1) uniformly distributes and supports the limiting mechanism (2). The back of the wind-solar-storage-charging collaborative controller (3) is uniformly provided with a hanging mechanism (4). The inside of the hanging mechanism (4) is symmetrically provided with positioning card slots (5). The top of the support and limiting mechanism (2) is elastically provided with a sliding block (6). The sliding block (6) is used to drive the limiting blocks (7) arranged on both sides of the support and limiting mechanism (2). The limiting blocks (7) are supported and slidably installed on the top of the support and limiting mechanism (2) through the limiting mechanism (11). When the hanging mechanism (4) is sleeved on the support and limiting mechanism (2), the sliding block (6) drives the limiting blocks (7) to extend out of the top of the support and limiting mechanism (2), and is clamped with the positioning card slots (5) to limit and install the hanging mechanism (4) sleeved and fixed on the support and limiting mechanism (2).

2. The wind-solar-storage-charging collaborative control device according to claim 1, wherein The support and limiting mechanism (2) is set as a hook-shaped structure. The top of the support and limiting mechanism (2) is opened as a limiting card slot (12). The sliding block (6) is arranged along the axial direction of the limiting card slot (12). The bottom of the sliding block (6) is installed with the limiting card slot (12) through a spring (13). Fixed rods (15) are slidably installed on both sides of the sliding block (6). The side of the fixed rod (15) away from the sliding block (6) is connected to the limiting block (7). The limiting block (7) is arranged in the through holes (14) opened on both sides of the limiting card slot (12).

3. The wind-solar-storage-charging collaborative control device according to claim 2, wherein The limiting mechanism (11) includes sliding clamping plates one (16) arranged on both sides of the fixed rod (15). Sliding grooves one (17) are symmetrically arranged on the surfaces of the limiting card slot (12) on both sides of the fixed rod (15). The end of the sliding clamping plate one (16) away from the fixed rod (15) is slidably installed inside the sliding groove one (17). And the end of the sliding clamping plate one (16) arranged inside the sliding groove one (17) is fixedly installed with the inner wall of the sliding groove one (17) through a return spring (23). It is used to make the limiting block (7) reset through the elastic action of the return spring (23) after the limiting block (7) is clamped with the positioning card slot (5).

4. The wind-solar-storage-charging coordinated control device according to claim 1, characterized in that: The cross-section of the sliding block (6) is in an isosceles trapezoid structure. The end face of the fixed rod (15) in contact with the sliding block (6) is set as a slope surface matching the inclined side of the isosceles trapezoid.

5. The wind-solar-storage-charging collaborative control device according to claim 2, characterized in that, A positioning groove (21) is opened on the surface of the side of the sliding block (6) facing the fixed plate (1). A positioning post (22) is arranged on the surface of the limiting card slot (12) opposite to the positioning groove (21). The positioning post (22) is slidably arranged inside the positioning groove (21).

6. The wind-solar-storage-charging collaborative control device according to claim 2, wherein The limiting block (7), the through hole (14), and the positioning card slot (5) are all set as rectangular structures.

Citation Information

Patent Citations

  • A wind-solar hybrid controller that is easy to install

    CN221058568U