Radiator provided with heat conduction copper pipes and used for accelerating heat conduction
By designing a detachable thermal copper tube and heat sink fin structure, the problem of existing radiators needing to be replaced as a whole when damaged is solved, reducing maintenance costs and simplifying the cleaning process.
Patent Information
- Application Number
- CN202421816936.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-30
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2034-07-30
AI Technical Summary
When the existing radiator is damaged, it needs to be replaced as a whole, resulting in high maintenance costs and inconvenient cleaning.
A heat sink with a thermally conductive copper tube is designed. Through a detachable structure, the thermally conductive copper tube main body and the heat-dissipating fin are allowed to be split, and the corresponding parts need only be replaced according to the damaged area without the need for an overall replacement.
It effectively reduces maintenance costs, simplifies the disassembly and assembly and cleaning process of the radiator, and improves the convenience of use.
Smart Images

Figure CN222885036U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of radiators, in particular to a radiator with a heat-conducting copper tube for accelerating heat conduction. Background Art
[0002] With the demand for high speed and complexity of big data processing, the functional requirements of CPU processors are getting higher and higher. The accompanying problem is that the heat generation increases, which will cause the temperature of the CPU, graphics card or other devices to be too high, affecting the use. Therefore, good heat dissipation of the CPU is particularly important. The existing CPU cooling device includes a radiator and a fan. The radiator is set close to the CPU, and it is generally composed of structures such as heat-conducting copper tubes, heat-dissipating fins and heat-conducting plates.
[0003] However, for an integrated radiator, when the thermal copper tube and the cooling fins are damaged, the entire radiator must be replaced, which results in high equipment maintenance costs. In addition, the integrated structure is difficult to clean inside the radiator, which is inconvenient to use. Therefore, technicians in this field provide a radiator with a thermal copper tube for accelerating heat conduction to solve the problems raised in the above background technology. Utility Model Content
[0004] The purpose of the present utility model is to solve the shortcomings existing in the prior art, and to propose a radiator with a heat-conducting copper tube for accelerating heat conduction, which can realize the disassembly operation between multiple heat-conducting copper tube bodies and heat-dissipating fins, so that when the heat-conducting copper tube body and the heat-dissipating fin parts are damaged, there is no need to replace the entire body, only the corresponding parts need to be replaced according to the damaged area, which effectively reduces the maintenance cost, and when cleaning the heat-dissipating fins, the heat-dissipating fins can also be disassembled in this way, which makes it more convenient for operators to perform cleaning work.
[0005] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: a radiator with a heat-conducting copper tube for accelerating heat conduction, comprising an upper heat-conducting plate and a lower heat-conducting plate, a plurality of heat-conducting copper tube bodies are arranged between the upper and lower heat-conducting plates, the outer walls of the plurality of heat-conducting copper tube bodies are fixedly sleeved with a plurality of heat-dissipating fins, the outer walls of the plurality of heat-conducting copper tube bodies are fixedly sleeved with connecting plates at upper and lower positions, one side of the plurality of connecting plates are fixedly connected with connecting plugs, the other side of the plurality of connecting plates are provided with connecting grooves, the ends of the plurality of connecting plugs away from the corresponding heat-dissipating fins are provided with reset grooves, the interiors of the plurality of reset grooves are movably provided with fixed locking blocks, and the inner walls of the ends of the plurality of connecting grooves away from the corresponding heat-dissipating fins are provided with fixed locking grooves;
[0006] Both sides of the upper heat conducting plate are fixedly connected with a first connecting seat, and both sides of the lower heat conducting plate are fixedly connected with a second connecting seat, a back force groove is provided in the middle of the upper end of the two second connecting seats, and movable blocks are movably arranged inside the two back force grooves, and the upper ends of the two movable blocks are fixedly connected with connecting blocks near the front and rear, and a plurality of connecting blocks are fixedly connected with fixed clamping blocks on one side away from the upper heat conducting plate, and movable grooves are provided at the lower ends of the two first connecting seats near the corresponding connecting blocks, and a fixed clamping groove is provided on the inner wall of the side of the plurality of movable grooves away from the upper heat conducting plate;
[0007] Through the above technical solution, by controlling the movement of the fixed card block and making it disengage from the fixed card slot, the fixed connection between the upper heat conducting plate and the lower heat conducting plate can be released, and then the upper heat conducting plate can be removed to realize the disassembly operation of the upper heat conducting plate and the lower heat conducting plate, and by controlling the movement of the fixed locking block and making it disengage from the fixed locking slot, the fixed connection between the connecting plates can be released, and then the multiple heat-conducting copper tube bodies and the heat dissipating fins can be disassembled.
[0008] Furthermore, the plurality of connecting plugs are all snap-fitted in the corresponding connecting slots, and the plurality of fixing lock blocks are all snap-fitted in the corresponding fixing lock slots;
[0009] Through the above technical solution, by snap-fitting multiple connecting plugs in corresponding connecting grooves and snap-fitting multiple fixed locking blocks in corresponding fixed locking grooves, multiple connecting plates can be fixedly connected together, thereby making multiple thermal copper tubes and heat dissipation fins more stable during use.
[0010] Furthermore, the plurality of connecting blocks and fixed card blocks are all movably arranged in the corresponding movable slots, and the plurality of fixed card blocks are all clamped and arranged in the corresponding fixed card slots;
[0011] Through the above technical solution, by controlling the movement of the fixed card block and making it snap into the corresponding fixed card slot, the upper heat conducting plate and the lower heat conducting plate can be fixedly connected together, so that multiple heat conducting copper tubes can be installed between the upper heat conducting plate and the lower heat conducting plate.
[0012] Furthermore, the upper ends of the two second connecting seats are fixedly connected with positioning blocks near the front and rear, and the lower ends of the two first connecting seats are provided with positioning grooves near the front and rear, and the two positioning blocks are engaged in the corresponding positioning grooves;
[0013] Through the above technical solution, by providing the positioning block and the positioning groove, the connection between the upper heat conducting plate and the lower heat conducting plate is made more stable.
[0014] Furthermore, the inner walls of the two force-return grooves on one side away from the lower heat-conducting plate are provided with pressing grooves, and pressing blocks are movably provided inside the two pressing grooves, and the two pressing blocks are fixedly connected to the corresponding movable blocks;
[0015] Through the above technical solution, by providing the pressing groove and the pressing block, it is convenient for the operator to move the movable block by pressing the pressing block.
[0016] Furthermore, a plurality of reset springs are fixedly connected between the plurality of fixed locking blocks and the inner wall of the corresponding reset groove at the opposite end;
[0017] Through the above technical solution, by providing a reset spring, the fixed locking block can be quickly popped out and reset, so that the fixed locking block can be quickly inserted into the fixed locking groove to complete the locking between the connecting plates.
[0018] Furthermore, a plurality of return springs are fixedly connected between the two movable blocks and the inner wall of the corresponding return groove on the opposite side;
[0019] Through the above technical solution, by providing a return spring, the movable block can be quickly popped out and reset, so that the fixed card block can be quickly inserted into the fixed card slot to complete the locking between the first connecting seat and the second connecting seat.
[0020] The utility model has the following beneficial effects:
[0021] 1. The utility model proposes a radiator with a heat-conducting copper tube for accelerating heat conduction. By controlling the movement of the fixed card block and disengaging it from the fixed card slot, the fixed connection between the upper heat-conducting plate and the lower heat-conducting plate can be released, and then the upper heat-conducting plate can be removed to realize the disassembly operation of the upper heat-conducting plate and the lower heat-conducting plate, thereby releasing the fixed restriction on the heat-conducting copper tube body. By controlling the movement of the fixed locking block and disengaging it from the fixed locking slot, the fixed connection between the connecting plates can be released, and then a plurality of heat-conducting copper tube bodies and the heat dissipating fins can be disassembled. The overall disassembly and assembly operation is simple and fast, and it is convenient to use.
[0022] 2. The utility model proposes a radiator with a heat-conducting copper tube for accelerating heat conduction, which can realize the disassembly operation between multiple heat-conducting copper tube bodies and heat-dissipating fins. Therefore, when the heat-conducting copper tube body and the heat-dissipating fin parts are damaged, there is no need to replace the entire part, but only need to select the corresponding part to be replaced according to the damaged area, which effectively reduces the maintenance cost. When cleaning the heat-dissipating fins, the heat-dissipating fins can also be disassembled in this way, which makes it more convenient for operators to perform cleaning work. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 This is an axonometric schematic diagram of a heat sink with a heat-conducting copper tube for accelerating heat conduction proposed by the utility model;
[0024] Figure 2 It is a partial cross-sectional schematic diagram of a radiator with a heat-conducting copper tube for accelerating heat conduction proposed by the utility model;
[0025] Figure 3 for Figure 2 A schematic diagram of the structure enlargement at the center A;
[0026] Figure 4 It is a partial side cross-sectional schematic diagram of a radiator with a heat-conducting copper tube for accelerating heat conduction proposed by the utility model;
[0027] Figure 5 It is a partial front cross-sectional schematic diagram of a connecting plate of a radiator with a heat-conducting copper tube for accelerating heat conduction proposed by the utility model;
[0028] Figure 6 The utility model provides a schematic top view of a radiator with a heat-conducting copper tube for accelerating heat conduction.
[0029] Legend:
[0030] 1. Upper heat conducting plate; 2. Lower heat conducting plate; 3. Heat conducting copper tube body; 4. Heat dissipation fins; 5. Connecting plate; 6. Connecting plug block; 7. Connecting slot; 8. Reset slot; 9. Fixed locking block; 10. Reset spring; 11. Fixed locking slot; 12. First connecting seat; 13. Second connecting seat; 14. Back force slot; 15. Movable block; 16. Back force spring; 17. Connecting block; 18. Fixed card block; 19. Movable slot; 20. Fixed card slot; 21. Pressing slot; 22. Pressing block; 23. Positioning block; 24. Positioning slot. DETAILED DESCRIPTION
[0031] The following will be combined with the drawings in the specific implementation of the utility model to clearly and completely describe the technical solutions in the specific implementation of the utility model. Obviously, the specific implementation described is only a part of the specific implementation of the utility model, not all of the specific implementation. Based on the specific implementation of the utility model, all other specific implementations obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0032] Reference Figure 1-6The utility model provides a specific implementation mode: a radiator with a heat-conducting copper tube for accelerating heat conduction, comprising an upper heat-conducting plate 1 and a lower heat-conducting plate 2, a plurality of heat-conducting copper tube bodies 3 are arranged between the upper heat-conducting plate 1 and the lower heat-conducting plate 2, the outer walls of the plurality of heat-conducting copper tube bodies 3 are fixedly sleeved with a plurality of heat-dissipating fins 4, the outer walls of the plurality of heat-conducting copper tube bodies 3 are fixedly sleeved with connecting plates 5 at the upper and lower parts, one side of the plurality of connecting plates 5 is fixedly connected with a connecting plug 6, the other side of the plurality of connecting plates 5 is provided with a connecting groove 7, the end of the plurality of connecting plugs 6 away from the corresponding heat-dissipating fins 4 is provided with a reset groove 8, the interior of the plurality of reset grooves 8 is movably provided with a fixed locking block 9, and the inner wall of the end of the plurality of connecting grooves 7 away from the corresponding heat-dissipating fins 4 is provided with a fixed The fixed locking groove 11, multiple fixed locking blocks 9 and the inner wall of the opposite end of the corresponding reset groove 8 are fixedly connected with multiple reset springs 10. By providing the reset spring 10, the fixed locking block 9 can be quickly popped out and reset, so that the fixed locking block 9 can be quickly inserted into the fixed locking groove 11 to complete the locking between the connecting plates 5. The multiple connecting plugs 6 are all engaged in the corresponding connecting grooves 7, and the multiple fixed locking blocks 9 are all engaged in the corresponding fixed locking grooves 11. By engaging the multiple connecting plugs 6 in the corresponding connecting grooves 7 and the multiple fixed locking blocks 9 in the corresponding fixed locking grooves 11, the multiple connecting plates 5 can be fixedly connected together, so that the multiple heat-conducting copper tubes and the heat dissipation fins 4 are more stable when in use;
[0033] Both sides of the upper heat conducting plate 1 are fixedly connected with a first connecting seat 12, and both sides of the lower heat conducting plate 2 are fixedly connected with a second connecting seat 13. A back force groove 14 is provided in the middle of the upper end of the two second connecting seats 13. A movable block 15 is movably provided inside the two back force grooves 14. The upper ends of the two movable blocks 15 are fixedly connected with a connecting block 17 near the front and rear ends. The multiple connecting blocks 17 are fixedly connected with a fixed card block 18 on one side away from the upper heat conducting plate 1. The lower ends of the two first connecting seats 12 are opened near the corresponding connecting blocks 17. The movable groove 19, the inner wall of the multiple movable grooves 19 away from the upper heat conducting plate 1 is provided with a fixed card slot 20, and the two movable blocks 15 and the inner wall of the opposite side of the corresponding rebound groove 14 are fixedly connected with multiple rebound springs 16. By providing the rebound spring 16, the movable block 15 can be quickly popped out and reset, so that the fixed card block 18 can be quickly inserted into the fixed card slot 20 to complete the locking between the first connecting seat 12 and the second connecting seat 13. The multiple connecting blocks 17 and the fixed card block 18 are all in the corresponding movable grooves. 19 is movably arranged, and multiple fixed card blocks 18 are all engaged in the corresponding fixed card slots 20. By controlling the movement of the fixed card blocks 18 and making them engage in the corresponding fixed card slots 20, the upper heat conducting plate 1 and the lower heat conducting plate 2 can be fixedly connected together, so that multiple heat conducting copper tubes can be installed between the upper heat conducting plate 1 and the lower heat conducting plate 2. The inner walls of the two return grooves 14 on one side away from the lower heat conducting plate 2 are both provided with pressing grooves 21, and the insides of the two pressing grooves 21 are both movably provided with pressing blocks 22, and the two pressing blocks 22 are It is fixedly connected to the corresponding movable block 15, and is provided with a pressing groove 21 and a pressing block 22, so that the operator can move the movable block 15 by pressing the pressing block 22. The upper ends of the two second connecting seats 13 are fixedly connected with positioning blocks 23 near the front and rear, and the lower ends of the two first connecting seats 12 are provided with positioning grooves 24 near the front and rear. The two positioning blocks 23 are both engaged in the corresponding positioning grooves 24. The positioning blocks 23 and the positioning grooves 24 are provided, so that the connection between the upper heat conducting plate 1 and the lower heat conducting plate 2 is more stable.
[0034] Working principle: When the heat-conducting copper tube body 3 and the heat-dissipating fins 4 are damaged, the pressing block 22 can be pressed to move the fixed card block 18 and disengage from the fixed card slot 20, thereby releasing the fixed connection between the upper heat-conducting plate 1 and the lower heat-conducting plate 2, and then the upper heat-conducting plate 1 can be removed to release the fixed restriction on the heat-conducting copper tube body 3. At this time, the fixed locking block 9 can be pressed to disengage from the fixed locking slot 11 to release the fixed connection between the connecting plates 5, and then the multiple heat-conducting copper tube bodies 3 and the heat-dissipating fins 4 can be disassembled, so that the corresponding parts can be replaced according to the damaged area, without the need for overall replacement, effectively reducing maintenance costs. Similarly, when cleaning the heat-dissipating fins 4, the multiple heat-conducting copper tube bodies 3 and the heat-dissipating fins 4 can be disassembled in this way, which makes it more convenient for operators to perform cleaning work, and the disassembly and assembly operations are simple and easy to use.
[0035] Finally, it should be noted that the above is only a preferred specific implementation method of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned specific implementation methods, those skilled in the art can still modify the technical solutions recorded in the aforementioned specific implementation methods, or make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.
Claims
1. A heat sink with a heat-conducting copper tube for accelerating heat conduction, comprising an upper heat-conducting plate (1) and a lower heat-conducting plate (2), characterized in that: A plurality of heat-conducting copper tube bodies (3) are arranged between the upper heat-conducting plate (1) and the lower heat-conducting plate (2); the outer walls of the plurality of heat-conducting copper tube bodies (3) are fixedly sleeved with a plurality of heat-dissipating fins (4); the outer walls of the plurality of heat-conducting copper tube bodies (3) are fixedly sleeved with connecting plates (5) at upper and lower positions; one side of the plurality of connecting plates (5) is fixedly connected with a connecting plug (6); the other side of the plurality of connecting plates (5) is provided with a connecting groove (7); the ends of the plurality of connecting plugs (6) away from the corresponding heat-dissipating fins (4) are provided with a reset groove (8); the interiors of the plurality of reset grooves (8) are movably provided with a fixed locking block (9); the inner walls of the ends of the plurality of connecting grooves (7) away from the corresponding heat-dissipating fins (4) are provided with a fixed locking groove (11); The upper heat conducting plate (1) is fixedly connected to a first connecting seat (12) on both sides, and the lower heat conducting plate (2) is fixedly connected to a second connecting seat (13) on both sides. A force return groove (14) is provided in the middle of the upper end of each of the two second connecting seats (13). A movable block (15) is movably arranged inside each of the two force return grooves (14). The upper ends of the two movable blocks (15) are fixedly connected to a connecting block (17) at the front and rear ends. A plurality of the connecting blocks (17) are fixedly connected to a fixed clamping block (18) on one side away from the upper heat conducting plate (1). A movable groove (19) is provided at the lower end of each of the two first connecting seats (12) near the corresponding connecting block (17). A fixed clamping groove (20) is provided on the inner wall of a plurality of the movable grooves (19) on one side away from the upper heat conducting plate (1).
2. A heat sink with a heat-conducting copper tube for accelerating heat conduction according to claim 1, characterized in that: The plurality of connection plug blocks (6) are all snap-fitted into the corresponding connection slots (7), and the plurality of fixed locking blocks (9) are all snap-fitted into the corresponding fixed locking slots (11).
3. A heat sink with a heat-conducting copper tube for accelerating heat conduction according to claim 1, characterized in that: The plurality of connection blocks (17) and fixed card blocks (18) are all movably arranged in corresponding movable slots (19), and the plurality of fixed card blocks (18) are all snap-fitted and arranged in corresponding fixed card slots (20).
4. A heat sink with a heat-conducting copper tube for accelerating heat conduction according to claim 1, characterized in that: Positioning blocks (23) are fixedly connected to the front and rear upper ends of the two second connecting seats (13), positioning grooves (24) are provided at the front and rear lower ends of the two first connecting seats (12), and the two positioning blocks (23) are snap-fitted in the corresponding positioning grooves (24).
5. The heat sink with a heat-conducting copper tube for accelerating heat conduction according to claim 1, characterized in that: A pressing groove (21) is provided on the inner wall of the two force-return grooves (14) on a side away from the lower heat conducting plate (2), and a pressing block (22) is movably provided inside the two pressing grooves (21), and the two pressing blocks (22) are fixedly connected to the corresponding movable blocks (15).
6. A heat sink with a heat-conducting copper tube for accelerating heat conduction according to claim 1, characterized in that: A plurality of reset springs (10) are fixedly connected between the plurality of fixed locking blocks (9) and the inner wall of the corresponding reset groove (8) at the opposite end.
7. A heat sink with a heat-conducting copper tube for accelerating heat conduction according to claim 1, characterized in that: A plurality of return springs (16) are fixedly connected between the two movable blocks (15) and the inner wall of the corresponding return groove (14) on the opposite side.