Aluminum extrusion structure of new energy storage liquid cooling plate
Through the coordination of the total hydraulic control seat and the pushing extrusion structure, the problem of synchronous extrusion of the die seat in the aluminum extrusion structure of the new energy storage liquid cooling plate is solved, the efficient forming of aluminum materials is achieved, and the production efficiency and quality are improved.
Patent Information
- Application Number
- CN202422865952.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-25
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2034-11-25
AI Technical Summary
The existing aluminum extrusion structure of new energy storage liquid cooling plates is not convenient for simultaneous extrusion of dual mold bases, resulting in low production efficiency.
It adopts a total hydraulic control seat and a push-extrusion structure. By pushing the docking shaft block in the extrusion structure to connect with the total hydraulic control seat, the telescopic adjustment of the docking shaft block is realized, driving the movement of the connecting guide frame and the lifting and pushing block. In conjunction with the first and second connecting guide plates, the pushing rod can slide on the guide block to perform aluminum extrusion processing in the die base.
The synchronous extrusion forming of aluminum materials in the die base is realized, which improves production efficiency and ensures the aluminum forming quality and production efficiency.
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Figure CN223394064U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of cold plate aluminum extrusion equipment, in particular to a new energy storage liquid cold plate aluminum extrusion structure. Background Art
[0002] Aluminum extrusion molding (or aluminum extrusion molding) is a plastic processing method that applies strong pressure to the aluminum billet placed in the mold cavity (or extrusion cylinder), forcing the aluminum billet to produce directional plastic deformation and extrude it from the die hole of the extrusion die, thereby obtaining parts or semi-finished products with the required cross-sectional shape, size and certain mechanical properties.
[0003] According to Chinese patent publication number CN116544556A, a liquid-cooled heat sink for energy storage batteries and its aluminum extrusion molding process are disclosed, comprising a support device for support, a heat sink fixedly installed on the inner end surface of the support device for heat dissipation, a heat conduction device fixedly installed on the upper end surface of the support device for heat conduction, and a protective bottom cover fixedly installed on the lower end surface of the support device for protection. By providing a heat sink, the present invention can effectively increase the flow path of the coolant when dissipating heat from the battery pack, thereby increasing the contact time between the coolant and the heat-conducting bottom plate during the conduction process, thereby increasing the efficiency of the coolant inside the spiral heat sink to absorb and remove the heat energy emitted by the battery pack, effectively improving the heat dissipation efficiency of the battery pack.
[0004] However, the current aluminum extrusion structure of new energy storage liquid cooling plates has the following problems: it is inconvenient to perform synchronous extrusion of dual mold bases to improve production efficiency, so the existing equipment needs to be improved. Utility Model Content
[0005] The purpose of the present invention is to provide an aluminum extrusion structure for a new energy storage liquid cooling plate to solve the problems raised in the above-mentioned background technology.
[0006] To achieve the above objectives, the present invention provides the following technical solutions: an aluminum extrusion structure for a new energy storage liquid cooling plate, comprising a main hydraulic control seat, a guard plate, a front mounting plate, a die base, and a push extrusion structure, wherein the side end of the main hydraulic control seat is connected to the push extrusion structure, the side end of the push extrusion structure is butt-jointed with a die base, the die base is fixedly mounted via the front mounting plate, and the side end of the front mounting plate is fixedly connected to the guard plate;
[0007] The pushing and extruding structure includes a first connecting guide plate, a second connecting guide plate, a docking shaft block, a connecting guide frame and a lifting and pushing block. The first connecting guide plate and the second connecting guide plate are fixedly connected to the connecting guide frame. The side end of the connecting guide frame is fixedly connected to the lifting and pushing block. The front end of the lifting and pushing block is fixedly connected to the docking shaft block.
[0008] Specifically, the docking shaft block is connected and combined with the main hydraulic control seat, and the main hydraulic control seat controls the telescopic adjustment of the docking shaft block.
[0009] Specifically, the lifting and pushing block is slidably adjusted on the guide block, and the first connecting guide plate and the second connecting guide plate are connected to the pushing rod, and the pushing rod slides on the guide block.
[0010] Specifically, the guide block is extruded with a die base to perform aluminum extrusion processing, and a die is provided on the die base.
[0011] Specifically, the guard plate, front mounting plate, die base, guide block, and push rod are symmetrically arranged.
[0012] Specifically, the total hydraulic control seat performs synchronous extrusion on both sides by pushing the extrusion structure.
[0013] Compared with the prior art, the beneficial effects of the present invention are:
[0014] 1. By installing the main hydraulic control seat, the main hydraulic control seat can push the position of the push rod by pushing the extrusion structure, so that the push rod and the rear end of the die base slide, and at the same time fill the die base with aluminum material to facilitate cold pressing. A mold is set in the die base for forming processing. The guard plate and the front mounting plate play a supporting role. The guard plate is provided with a groove to facilitate the introduction of aluminum material, so that the aluminum rod reaches the rear end of the die base and is extruded by the push rod to perform the forming work.
[0015] 2. By installing the push-extrusion structure, the docking shaft block in the push-extrusion structure is connected to the main hydraulic control seat. The main hydraulic control seat is used to control the expansion and contraction of the docking shaft block, so that the connecting guide frame and the lifting and pushing block follow the movement. The connecting guide frame is provided with a first connecting guide plate and a second connecting guide plate. The first connecting guide plate and the second connecting guide plate are connected to the pushing rod, so that the pushing rod can slide on the guide block, thereby extruding the aluminum material in the die base. The pushing rod is fixed to the first connecting guide plate and the second connecting guide plate. The first connecting guide plate and the second connecting guide plate can limit the range of movement and at the same time serve the purpose of strengthening the connection. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 This is a schematic diagram of the main structure of the utility model;
[0017] Figure 2 It is a three-dimensional side view of the main body of the utility model;
[0018] Figure 3 It is a three-dimensional diagram of the pushing and extruding structure of the utility model.
[0019] In the figure: 1- main hydraulic control seat; 2- guard plate; 3- front mounting plate; 4- die base; 5- pushing and extruding structure; 6- first connecting guide plate; 7- second connecting guide plate; 8- docking shaft block; 9- connecting guide frame; 10- pulling and pushing block. DETAILED DESCRIPTION
[0020] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0021] See also Figure 1-3 The utility model provides a technical solution: an aluminum extrusion structure of a new energy storage liquid cooling plate, comprising a main hydraulic control seat 1, a guard plate 2, a front mounting plate 3, a die seat 4 and a pushing and extruding structure 5. The side end of the main hydraulic control seat 1 is connected to the pushing and extruding structure 5, and the side end of the pushing and extruding structure 5 is docked with a die seat 4. The die seat 4 is fixed by the front mounting plate 3, and the side end of the front mounting plate 3 is fixedly connected to the guard plate 2. By installing the main hydraulic control seat 1, the main hydraulic control seat 1 can push the position of the push rod through the pushing and extruding structure 5, so that the push rod and the rear end of the die seat 4 slide, and at the same time, aluminum material is filled in the die seat 4, which is convenient for cold pressing forming work. A mold is set in the die seat 4 for forming processing work. The guard plate 2 and the front mounting plate 3 play a supporting role. A groove is provided on the guard plate 2, which can facilitate the introduction of aluminum material, so that the aluminum rod reaches the rear end of the die seat 4 and is extruded by the push rod to perform forming work.
[0022] The pushing and extruding structure 5 includes a first connecting guide plate 6, a second connecting guide plate 7, a docking shaft block 8, a connecting guide frame 9 and a lifting and pushing block 10. The first connecting guide plate 6 and the second connecting guide plate 7 are fixedly connected to the connecting guide frame 9. The side end of the connecting guide frame 9 is fixedly connected to the lifting and pushing block 10. The front end of the lifting and pushing block 10 is fixedly connected to the docking shaft block 8. By installing the pushing and extruding structure 5, the docking shaft block 8 in the pushing and extruding structure 5 is connected to the total hydraulic control seat 1. The total hydraulic control seat 1 is controlled to control the docking shaft block 8 to move, so that the connecting guide frame 9 and the lifting and pushing block 10 follow the movement. The connecting guide frame 9 is provided with a first connecting guide plate 6 and a second connecting guide plate 7. The first connecting guide plate 6 and the second connecting guide plate 7 are connected to the pushing rod, so that the pushing rod can slide on the guide block, thereby extruding the aluminum material in the die base 4. The pushing rod is fixed to the first connecting guide plate 6 and the second connecting guide plate 7. The first connecting guide plate 6 and the second connecting guide plate 7 can limit the range of motion and at the same time serve the purpose of strengthening the connection.
[0023] The docking shaft block 8 is connected and combined with the main hydraulic control seat 1, and the main hydraulic control seat 1 controls the telescopic adjustment of the docking shaft block 8.
[0024] The lifting and pushing block 10 is slidably adjusted on the guide block, and the first connecting guide plate 6 and the second connecting guide plate 7 are connected to the pushing rod, and the pushing rod slides on the guide block.
[0025] The guide block is extruded with the die base 4 to perform aluminum extrusion processing, and a die is provided on the die base 4.
[0026] The guard plate 2, the front mounting plate 3, the die base 4, the guide block and the push rod are symmetrically arranged.
[0027] The main hydraulic control seat 1 pushes the extrusion structure 5 to perform synchronous extrusion on both sides.
[0028] Working principle: When work is needed, the user installs the main hydraulic control seat 1, and the main hydraulic control seat 1 can push the position of the push rod by pushing the extrusion structure 5, so that the push rod and the rear end of the die base 4 slide, and at the same time fill the die base 4 with aluminum material, which is convenient for cold pressing. A mold is set in the die base 4 for forming processing. The guard plate 2 and the front mounting plate 3 play a supporting role. The guard plate 2 is provided with a groove, which can facilitate the introduction of aluminum material, so that the aluminum rod reaches the rear end of the die base 4, and the forming work is carried out by extruding the push rod. By installing the push extrusion structure 5, the docking shaft block 8 in the extrusion structure 5 is pushed and the main The hydraulic control seat 1 is connected, and the telescopic control of the total hydraulic control seat 1 drives the docking shaft block 8 to move, so that the connecting guide frame 9 and the lifting and pushing block 10 follow the movement. The connecting guide frame 9 is provided with a first connecting guide plate 6 and a second connecting guide plate 7. The first connecting guide plate 6 and the second connecting guide plate 7 are connected to the pushing rod, which can enable the pushing rod to slide on the guide block, thereby extruding the aluminum material in the mold base 4. The pushing rod is fixed to the first connecting guide plate 6 and the second connecting guide plate 7. The first connecting guide plate 6 and the second connecting guide plate 7 can limit the range of movement, and at the same time can serve the purpose of strengthening the connection to complete the work.
[0029] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A new energy storage liquid cooling plate aluminum extrusion structure, characterized by: It comprises a main hydraulic control seat (1), a guard plate (2), a front mounting plate (3), a die seat (4) and a pushing and extruding structure (5); the side end of the main hydraulic control seat (1) is connected to the pushing and extruding structure (5); the side end of the pushing and extruding structure (5) is butt-jointed with the die seat (4); the die seat (4) is fixedly mounted via the front mounting plate (3); and the side end of the front mounting plate (3) is fixedly connected to the guard plate (2); The pushing and extruding structure (5) comprises a first connecting guide plate (6), a second connecting guide plate (7), a docking shaft block (8), a connecting guide frame (9) and a lifting and pushing block (10); the first connecting guide plate (6) and the second connecting guide plate (7) are fixedly connected to the connecting guide frame (9); the side end of the connecting guide frame (9) is fixedly connected to the lifting and pushing block (10); and the front end of the lifting and pushing block (10) is fixedly connected to the docking shaft block (8).
2. The aluminum extrusion structure of a new energy storage liquid cooling plate according to claim 1 is characterized in that: The docking shaft block (8) is connected and assembled with the main hydraulic control seat (1), and the main hydraulic control seat (1) controls the telescopic adjustment of the docking shaft block (8).
3. The aluminum extrusion structure of a new energy storage liquid cooling plate according to claim 2 is characterized in that: The lifting and pushing block (10) is slidably adjusted on the guide block, and the first connecting guide plate (6) and the second connecting guide plate (7) are connected to the pushing rod, and the pushing rod slides on the guide block.
4. The aluminum extrusion structure of a new energy storage liquid cooling plate according to claim 3 is characterized in that: The guide block is extruded with the die base (4) to perform aluminum extrusion processing, and a die is provided on the die base (4).
5. The aluminum extrusion structure of a new energy storage liquid cooling plate according to claim 4 is characterized in that: The guard plate (2), the front mounting plate (3), the die base (4), the guide block, and the propulsion rod are symmetrically arranged.
6. The aluminum extrusion structure of a new energy storage liquid cooling plate according to claim 5 is characterized in that: The total hydraulic control seat (1) performs synchronous extrusion on both sides by pushing the extrusion structure (5).