A clean energy device radiator

By designing a fixing frame and locking mechanism, the radiator of the clean energy equipment can be easily disassembled, solving the problem of inconvenient maintenance caused by traditional connection methods and improving the ease of equipment maintenance.

CN224593814UActive Publication Date: 2026-08-04湖北水利水电职业技术学院
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
湖北水利水电职业技术学院
Filing Date
2025-09-12
Publication Date
2026-08-04

AI Technical Summary

Technical Problem

The existing methods for connecting radiators in clean energy equipment typically involve bolt fixing or welding, which makes later maintenance inconvenient.

Method used

It adopts components such as a fixed frame, docking groove, docking block, card plate, storage column and locking mechanism, and realizes convenient disassembly of radiator through sliding groove, moving mechanism, locking mechanism and adjustment mechanism.

Benefits of technology

It enables easy disassembly of the radiator, solves the problem of inconvenient maintenance caused by traditional connection methods, and improves the ease of equipment maintenance.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model relates to the field of radiator technology and discloses a radiator for clean energy equipment. The radiator includes a mounting bracket with two symmetrically arranged docking slots on one side. Each docking slot has a docking block slidably connected inside. A radiator is fixedly connected between the two docking blocks. Each of the two docking slots has two symmetrically arranged connecting grooves, each containing a constraint mechanism for restraining the radiator. Two retaining plates are symmetrically fixedly connected to the surface of the radiator near the docking blocks. Each retaining plate has a storage groove on its surface near the docking blocks, and a storage column is slidably connected inside each storage groove. Each storage column has a moving mechanism on its surface near the docking blocks for moving the storage column. The mounting bracket has two symmetrically arranged locking holes on its surface near the retaining plates, each containing a locking mechanism for locking the radiator. This utility model, through the arrangement of the docking slots and docking blocks, ensures that the radiator can be easily disassembled.
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Description

Technical Field

[0001] This utility model relates to the field of radiator technology, and in particular to a radiator for clean energy equipment. Background Technology

[0002] Clean energy equipment radiators are devices specifically designed for efficient heat dissipation, primarily used in various clean energy systems such as solar power, wind power, and biomass energy. These radiators effectively reduce the temperature of equipment during operation by optimizing the heat exchange process, ensuring optimal performance. Compared to traditional radiators, clean energy equipment radiators often employ advanced materials and technologies, not only improving heat transfer efficiency but also minimizing environmental impact. Through effective heat dissipation management, these devices not only extend the lifespan of energy systems but also improve the overall energy efficiency of energy equipment to a certain extent, thus playing a vital role in promoting the development of renewable energy.

[0003] Most existing clean energy equipment radiators need to be connected to the equipment during use, and the connection method is usually bolt fixing or welding to ensure a tight connection between the radiator and the equipment. However, neither of these methods is convenient for the later maintenance of the radiator. Therefore, this problem needs to be solved. Utility Model Content

[0004] The purpose of this utility model is to address the shortcomings of existing technologies by proposing a clean energy equipment radiator.

[0005] To achieve the above objectives, the present invention adopts the following technical solution:

[0006] A radiator for clean energy equipment includes a mounting frame. Two docking slots are symmetrically formed on one side of the mounting frame. A docking block is slidably connected inside each of the two docking slots. The same radiator is fixedly connected between the two docking blocks. Two connecting slots are symmetrically formed inside each of the two docking slots. A constraint mechanism for restraining the radiator is provided inside each of the two connecting slots. Two retaining plates are symmetrically fixedly connected to the surface of the radiator near the two docking blocks. A storage slot is formed on the surface of each retaining plate near the docking blocks. A storage column is slidably connected inside each of the two storage slots, and the storage column is configured to cooperate with the mounting frame. A moving mechanism for moving the storage column is provided on the surface of each storage column near the docking blocks. Two locking holes are symmetrically formed inside the mounting frame near the retaining plates. A locking mechanism for locking the radiator is provided inside each of the two locking holes. The docking slots and docking blocks ensure that the radiator can be easily disassembled.

[0007] As a further embodiment of this utility model, the constraint mechanism includes a sliding groove, which is formed on the top of the docking block. A first limiting rod is slidably connected inside the two sliding grooves. A slider is fixedly connected to the top of the first limiting rod and is slidably connected inside the connecting groove. A first spring is sleeved on the surface of the first limiting rod. The top end of the first spring is fixedly connected to the bottom of the slider and the bottom end of the first spring is fixedly connected inside the sliding groove. By setting the slider, the radiator can be constrained.

[0008] As a further embodiment of this utility model, the moving mechanism includes a connecting block, which is slidably connected to the inside of the connecting groove, and the connecting block and the storage column are mutually configured. The connecting block is slidably connected to the inside of the storage groove, and four support rods are slidably connected to the bottom of the connecting block. The four support rods are evenly arranged in a square shape, and each of the four support rods is fitted with a tension spring. The top ends of the four tension springs are fixedly connected to the bottom of the connecting block, and the bottom ends of the four tension springs are fixedly connected to the inner surface of the connecting groove. By setting the connecting block, the storage column can be moved.

[0009] As a further embodiment of this utility model, the locking mechanism includes a rotating shaft rotatably connected to the inside of the storage groove. A gear is sleeved on the surface of the rotating shaft, and a second rack is fitted onto the surface of the gear. The second rack is slidably connected to the inside of the storage groove. A locking post is fixedly connected to the surface of the second rack near the lock hole, and the locking post and the lock hole are mutually fitted. Four second limiting rods are slidably connected to the top of the storage post, and the tops of the four second limiting rods are all fixedly connected to the inside of the storage groove. A second spring is sleeved on the surface of each of the four second limiting rods, and the tops of the four second springs are all fixedly connected to the inside of the storage groove. The bottoms of the four second springs are all fixedly connected to the top of the storage post. Two first racks are fixedly connected to the inside of the storage post near the gear, and the two first racks are mutually fitted with the gear. An adjustment mechanism for adjusting the locking post is provided on the surface of the lock hole away from the radiator. The radiator can be locked by setting the locking post.

[0010] As a further embodiment of this utility model, the adjustment mechanism includes two sliding columns, both of which are fixedly connected to one side of the fixed frame. The same pressure plate is slidably connected to the surface of the two sliding columns. A pressing plate is fixedly connected to the surface of the pressure plate near the lock hole, and the pressing plate and the lock column are mutually coordinated. Four fixing plates are fixedly connected to one side of the fixed frame, and the four fixing plates are evenly arranged in a square shape. The locking column can be adjusted by the setting of the pressing plate.

[0011] The beneficial effects of this utility model are as follows:

[0012] 1. This utility model employs a technical solution of constraining and fixing the radiator with a locking pin, ensuring easy disassembly of the radiator. This effectively solves the problem that most radiators in clean energy equipment require connection to the equipment during use, and the connection methods usually involve bolt fixing or welding to ensure a tight connection between the radiator and the equipment. However, both of these methods are inconvenient for later maintenance of the radiator. When the radiator needs to be disassembled, the pressure plates on both sides of the fixing frame are pressed down to move it towards the fixing frame. An extrusion plate is installed on one side of the pressure plate, and the extrusion plate initially slides inside the locking hole. A locking pin is also installed inside the locking hole, and the locking pin is connected to the radiator. Thus, when the locking pin enters the locking hole, it can achieve the purpose of constraining the radiator. Because the extrusion plate and the locking pin are designed to cooperate, when the extrusion plate moves, the locking pin will also move accordingly, thereby releasing the fixation of the radiator. Attached Figure Description

[0013] Figure 1 This is a schematic diagram of the overall structure of a radiator for a clean energy device proposed in this utility model.

[0014] Figure 2 This is a schematic diagram of the back structure of a radiator for a clean energy device proposed in this utility model;

[0015] Figure 3 This is a schematic diagram of the moving mechanism of a radiator for a clean energy device proposed in this utility model;

[0016] Figure 4 for Figure 3 Enlarged structural diagram at point A in the diagram;

[0017] Figure 5 This is a schematic diagram of the constraint mechanism of a radiator for a clean energy device proposed in this utility model;

[0018] Figure 6 for Figure 5 A magnified structural diagram at point B in the diagram.

[0019] In the diagram: 1. Fixing frame; 2. Radiator; 101. Fixing plate; 102. Docking groove; 103. Connecting groove; 104. Connecting block; 105. Support rod; 106. Tension spring; 107. Lock hole; 108. Pressure plate; 109. Sliding column; 110. Extrusion plate; 201. Docking block; 202. Sliding groove; 203. Sliding block; 204. First limiting rod; 205. First spring; 206. Locking plate; 207. Storage groove; 208. Storage column; 209. Second limiting rod; 210. Second spring; 211. Rotating shaft; 212. Gear; 213. First rack; 214. Second rack; 215. Locking column. Detailed Implementation

[0020] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.

[0021] Reference Figure 1 - Figure 6 A clean energy equipment radiator includes a mounting frame 1. Two symmetrical docking slots 102 are formed on one side of the mounting frame 1. Dock blocks 201 are slidably connected inside each docking slot 102. A radiator 2 is fixedly connected between the two docking blocks 201. Two symmetrical connecting slots 103 are formed inside each docking slot 102. Each connecting slot 103 has a constraint mechanism for restraining the radiator 2. Two clamping plates 206 are symmetrically fixedly connected to the surface of the radiator 2 near the two docking blocks 201. The clamping plates 206 reinforce the radiator 2. The surface of plate 206 near the docking block 201 is provided with a storage groove 207. The storage groove 207 is slidably connected to a storage column 208. The storage column 208 is configured to cooperate with the fixing frame 1. The surface of the two storage columns 208 near the docking block 201 is provided with a moving mechanism for moving the storage column 208. The fixing frame 1 is symmetrically provided with two locking holes 107 on the side near the card plate 206. The two locking holes 107 are provided with a locking mechanism for locking the heat sink 2. The docking groove 102 and the docking block 201 can ensure that the heat sink 2 can be easily disassembled.

[0022] Preferably, the constraint mechanism includes a slide groove 202, which is formed on the top of the docking block 201. A first limiting rod 204 is slidably connected inside the two slide grooves 202. A slider 203 is fixedly connected to the top of the first limiting rod 204, and the slider 203 is slidably connected inside the connecting groove 103. A first spring 205 is sleeved on the surface of the first limiting rod 204. The slider 203 can be reset by the setting of the first spring 205. The top end of the first spring 205 is fixedly connected to the bottom of the slider 203, and the bottom end of the first spring 205 is fixedly connected to the inside of the slide groove 202. The radiator 2 can be constrained by the setting of the slider 203.

[0023] Preferably, the moving mechanism includes a connecting block 104, which is slidably connected to the inside of the connecting groove 103. The connecting block 104 and the storage column 208 are mutually coordinated. The connecting block 104 is slidably connected to the inside of the storage groove 207. Four support rods 105 are slidably connected to the bottom of the connecting block 104. The four support rods 105 are evenly arranged in a square shape. Tension springs 106 are sleeved on the surface of each of the four support rods 105. The top ends of the four tension springs 106 are fixedly connected to the bottom of the connecting block 104. The bottom ends of the four tension springs 106 are fixedly connected to the inner surface of the connecting groove 103. The storage column 208 can be moved by the setting of the connecting block 104.

[0024] Preferably, the locking mechanism includes a rotating shaft 211, which is rotatably connected to the inside of the storage groove 207. A gear 212 is sleeved on the surface of the rotating shaft 211, and a second rack 214 is fitted onto the surface of the gear 212. The second rack 214 is slidably connected to the inside of the storage groove 207. A locking pin 215 is fixedly connected to the surface of the second rack 214 near the lock hole 107, and the locking pin 215 and the lock hole 107 are mutually fitted. Four second limiting rods 209 are slidably connected to the top of the storage pin 208, and the tops of the four second limiting rods 209 are all fixedly connected to the inside of the storage groove 207. Each of the four surfaces is fitted with a second spring 210. The top ends of the four second springs 210 are fixedly connected to the inside of the storage slot 207, and the bottom ends of the four second springs 210 are fixedly connected to the top of the storage column 208. Two first racks 213 are fixedly connected inside the storage column 208 on the side near the gear 212, and the two first racks 213 cooperate with the gear 212. Through the setting of the gear 212, the locking column 215 can be moved. The surface of the lock hole 107 away from the radiator 2 is provided with an adjustment mechanism for adjusting the locking column 215. Through the setting of the locking column 215, the radiator 2 can be locked.

[0025] Furthermore, the adjustment mechanism includes two sliding columns 109, both of which are fixedly connected to one side of the fixed frame 1. The same pressure plate 108 is slidably connected to the surface of the two sliding columns 109. A pressing plate 110 is fixedly connected to the surface of the pressure plate 108 near the lock hole 107, and the pressing plate 110 and the lock column 215 are mutually cooperated. Four fixing plates 101 are fixedly connected to one side of the fixed frame 1, and the four fixing plates 101 are evenly arranged in a square. The locking column 215 can be adjusted by the setting of the pressing plate 110.

[0026] Working principle: When the radiator 2 needs to be disassembled, the pressure plates 108 on both sides of the fixing frame 1 are pressed down to move it towards the fixing frame 1. A pressing plate 110 is installed on one side of the pressure plate 108. Initially, the pressing plate 110 slides inside the locking hole 107. A locking pin 215 is also installed inside the locking hole 107, and the locking pin 215 is connected to the radiator 2. Therefore, when the locking pin 215 enters the locking hole 107, it can constrain the radiator 2. The purpose is that, since the extrusion plate 110 and the locking post 215 are configured to cooperate, when the extrusion plate 110 moves, the locking post 215 will also move accordingly. A second rack 214 is installed on one side of the locking post 215, and a gear 212 is fitted on the surface of the second rack 214. Thus, when the second rack 214 moves, the gear 212 will rotate synchronously. A first rack 213 is also fitted on the surface of the gear 212, and the first rack 213 is installed on one side of the storage post 208. Thus, when the gear 212 rotates, the storage post 208 will move downward. A connecting block 104 is fitted on the surface of the storage post 208, and the connecting block 104 is connected to the fixing frame 1. Since the connecting block 104 is initially inside the radiator 2, it can further fix the radiator 2. When the storage post 208 moves downward, the connecting block 104 can be moved out of the radiator 2, thereby releasing the constraint on the radiator 2. A second rack 214 is also fitted at the bottom of the connecting block 104. The device includes a slider 203, which is installed inside the radiator 2. Since the slider 203 is initially inside the mounting bracket 1, when the connecting block 104 moves the slider 203 downward, the slider 203 will release the constraint on the radiator 2. By pressing the pressure plate 108, the locking pin 215, the connecting block 104, and the slider 203 can be reset. After the locking pin 215, the connecting block 104, and the slider 203 have all been reset, the radiator 2 can be removed.

[0027] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A radiator for a clean energy device, with a mounting bracket (1), characterized in that, The fixing frame (1) has two symmetrically arranged docking slots (102) on one side. A docking block (201) is slidably connected inside each of the two docking slots (102). A heat sink (2) is fixedly connected between the two docking blocks (201). Two connecting slots (103) are symmetrically arranged inside each of the two docking slots (102). A constraint mechanism for constraining the heat sink (2) is provided inside each of the two connecting slots (103). Two clamping plates (206) are symmetrically fixedly connected to the surface of the heat sink (2) near the two docking blocks (201). 06) A storage groove (207) is provided on the surface near the docking block (201). A storage column (208) is slidably connected inside the two storage grooves (207). The storage column (208) and the fixing frame (1) are configured to cooperate with each other. A moving mechanism for moving the storage column (208) is provided on the surface near the docking block (201). Two locking holes (107) are symmetrically opened inside the fixing frame (1) near the card plate (206). A locking mechanism for locking the heat sink (2) is provided inside the two locking holes (107).

2. The radiator for clean energy equipment according to claim 1, characterized in that, The constraint mechanism includes a slide groove (202) which is opened on the top of the docking block (201). A first limiting rod (204) is slidably connected inside the two slide grooves (202). A slider (203) is fixedly connected to the top of the first limiting rod (204) and the slider (203) is slidably connected inside the connecting groove (103). A first spring (205) is sleeved on the surface of the first limiting rod (204). The top end of the first spring (205) is fixedly connected to the bottom of the slider (203) and the bottom end of the first spring (205) is fixedly connected inside the slide groove (202).

3. The radiator for clean energy equipment according to claim 1, characterized in that, The moving mechanism includes a connecting block (104), which is slidably connected to the inside of the connecting groove (103). The connecting block (104) and the storage column (208) are mutually coordinated. The connecting block (104) is slidably connected to the inside of the storage groove (207). Four support rods (105) are slidably connected to the bottom of the connecting block (104). The four support rods (105) are evenly arranged in a square shape. Tension springs (106) are sleeved on the surface of each of the four support rods (105). The top ends of the four tension springs (106) are fixedly connected to the bottom of the connecting block (104). The bottom ends of the four tension springs (106) are fixedly connected to the inner surface of the connecting groove (103).

4. The radiator for clean energy equipment according to claim 1, characterized in that, The locking mechanism includes a rotating shaft (211) which is rotatably connected to the inside of the storage groove (207). A gear (212) is sleeved on the surface of the rotating shaft (211). A second rack (214) is fitted on the surface of the gear (212). The second rack (214) is slidably connected to the inside of the storage groove (207). A locking post (215) is fixedly connected to the surface of the second rack (214) near the lock hole (107). The locking post (215) and the lock hole (107) are mutually fitted. Four second limiting rods (209) are slidably connected to the top of the storage post (208). The tops of the four second limiting rods (209) are all fixedly connected to the inside of the storage groove (207).

5. The radiator for clean energy equipment according to claim 4, characterized in that, Each of the four second limiting rods (209) is fitted with a second spring (210). The top ends of the four second springs (210) are fixedly connected to the inside of the storage groove (207). The bottom ends of the four second springs (210) are fixedly connected to the top of the storage column (208). Two first racks (213) are fixedly connected inside the storage column (208) on the side near the gear (212), and the two first racks (213) cooperate with the gear (212). The surface of the lock hole (107) away from the radiator (2) is provided with an adjustment mechanism for adjusting the lock column (215).

6. The radiator for clean energy equipment according to claim 5, characterized in that, The adjustment mechanism includes two sliding columns (109), both of which are fixedly connected to one side of the fixed frame (1). The same pressure plate (108) is slidably connected to the surface of the two sliding columns (109). A pressing plate (110) is fixedly connected to the surface of the pressure plate (108) near the lock hole (107), and the pressing plate (110) and the lock column (215) are mutually cooperated. Four fixing plates (101) are fixedly connected to one side of the fixed frame (1), and the four fixing plates (101) are evenly arranged in a square shape.