Heat dissipation structure convenient to install
Through the design of limiting components and splicing mechanisms, the problem that traditional heat dissipation structure cannot be flexibly adjusted and compatible is solved, and the flexibly disassembled and cleaned the heat dissipation board is realized, adapting to the installation of motherboards of different specifications, and improving the service life and practicality of the device.
Patent Information
- Application Number
- CN202422520492.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-18
- Publication Date
- 2025-08-22
- Estimated Expiration
- 2034-10-18
AI Technical Summary
The traditional computer cooling structure cannot flexibly adjust the number of heat sink boards, which leads to difficulty in maintenance and is incompatible with motherboards of different specifications, increasing maintenance costs and installation difficulties.
The limiting assembly and splicing mechanism are adopted to realize the combined splicing of the heat sink through bidirectional threaded rods and clamps. The adjustment mechanism and fixing components are used to meet the installation needs of motherboards of different specifications.
It realizes flexible disassembly and cleaning of the heat sink, improves the service life and practicality of the device, and is suitable for the installation of motherboards of different specifications.
Smart Images

Figure CN223260148U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of computers, in particular to a heat dissipation structure which is easy to install. Background Art
[0002] In the computer industry, heat dissipation is a crucial factor in ensuring device stability and performance. As the performance of electronic components like computer processors and graphics cards increases, so too does the heat they generate. Therefore, heat dissipation structures are widely used to ensure proper computer operation and prevent overheating.
[0003] The heat dissipation structure on traditional computers is an integrated structure. The number of different heat sinks cannot be freely adjusted according to the heat dissipation requirements of the computer chip, and its flexibility and versatility are poor. At the same time, when the heat dissipation structure is damaged, it needs to be replaced as a whole, which has high equipment maintenance costs. In addition, the integrated structure is difficult to clean and maintain. At the same time, the traditional heat dissipation structure cannot be applied to the installation between motherboards of different specifications, has poor compatibility, and is not convenient for installation and fixation.
[0004] Therefore, the present invention provides a heat dissipation structure that is easy to install to solve the problems raised in the above background technology. Utility Model Content
[0005] The purpose of the present invention is to solve the shortcomings of the prior art and to propose a heat dissipation structure that is easy to install. The number of different heat dissipation plates can be freely adjusted according to the heat dissipation requirements of computer chips. The heat dissipation plates can be disassembled with the cooperation of the splicing mechanism, which is convenient for cleaning and maintenance of the heat dissipation plates, avoids the reduction of heat dissipation effect due to dust accumulation or long-term use, and further improves the service life of the device. At the same time, with the cooperation of the adjustment mechanism and the fixing assembly, it can be adapted to the installation requirements between motherboards of different specifications, thereby improving the practicality of the device.
[0006] To achieve the above-mentioned object, the present invention provides the following technical solutions: a heat dissipation structure that is easy to install, comprising a heat dissipation base and two brackets, wherein limit assemblies are fixedly provided on both sides of the upper end surface of the heat dissipation base, and the two limit assemblies each comprise a limit horizontal plate and a limit rod, and nine heat dissipation plates are slidably provided on the upper end surface of the heat dissipation base, and a splicing mechanism is provided on one side of each of the nine heat dissipation plates, and the nine splicing mechanisms each comprise a connector and a bidirectional threaded rod;
[0007] The front and rear end surfaces of the heat dissipation base are fixedly provided with a first connecting rod, and the centers of both sides of the upper end surfaces of the two first connecting rods are provided with a first movable groove, and the inner walls of the four first movable grooves are movably provided with a second connecting rod, and the four second connecting rods are provided with an adjustment mechanism, and the four adjustment mechanisms include a sleeve, a rotating rod and a ring. A plurality of fixed grooves are provided at the centers of the upper end surfaces of the two brackets near the front and rear ends, and two telescopic rods are movably provided on the inner wall of each of the two brackets, and telescopic grooves are provided at the centers of the opposite sides of the upper end surfaces of two telescopic rods located on the same bracket among the four telescopic rods, and fixing components are provided in the four telescopic grooves.
[0008] Furthermore, the two limiting rods are respectively threadedly arranged on the centers of the upper end surfaces of the two limiting transverse plates near the rear end, and a first sliding groove is provided at the centers of the opposite sides of the two limiting transverse plates.
[0009] Furthermore, limit blocks are fixedly arranged at the center position of the lower end on both sides of the outer walls of the nine heat dissipation plates, and limit grooves are opened at the center of the upper end surfaces of the multiple limit blocks. The nine limit blocks located on the same side of the multiple limit blocks are all slidably engaged in the first slide grooves on the corresponding side of the two first slide grooves, and the two limit rods are respectively threaded in two limit grooves located on the same heat dissipation plate among the multiple limit grooves.
[0010] Furthermore, each of the nine connecting parts is fixedly arranged at the upper end of the front end of one side of each of the nine heat sinks, and a slot is opened at the center of the front end surface of the nine connecting parts. The nine bidirectional threaded rods are respectively rotatably arranged at the centers of both sides of the inner walls of the nine slots, and a rotating handle is fixedly arranged on one side of the nine bidirectional threaded rods.
[0011] Furthermore, each of the nine bidirectional threaded rods is provided with a clamping block threadedly sleeved on both sides of the outer wall, and the nine heat dissipation plates are fixedly provided with a splicing block at the upper end of the rear end of the other side, and a connecting groove is provided through the center of the upper end of the front end surface of the nine splicing blocks. Two of the multiple clamping blocks located on the same connecting piece are respectively slidably clamped in a corresponding connecting groove on the corresponding splicing block.
[0012] Furthermore, a second sliding groove is provided at the center of one side away from the lower end surface of the inner wall of two first movable grooves located on the same first connecting rod among the four first movable grooves, and a slider is fixedly provided at the center of the opposite side of the lower end surface of two second connecting rods located on the same first connecting rod among the four second connecting rods, and the four sliders are respectively slidably engaged in the four second sliding grooves.
[0013] Furthermore, the four sleeves are respectively rotatably embedded in the center of one side of the upper end surface of the four second connecting rods, the four rotating rods are respectively threadedly sleeved on the inner walls of the four sleeves, the four circular rings are respectively fixedly sleeved at the upper ends of the outer walls of the four sleeves, and the front and rear end surfaces of the outer walls of the four rotating rods are hingedly provided with adjustment rods at the lower ends, and multiple adjustment grooves are opened at the centers of the front and rear end surfaces of the inner walls of the four first movable grooves. Two adjustment rods on the same second connecting rod among the eight adjustment rods are respectively movably embedded in the two adjustment grooves corresponding to the horizontal positions inside the corresponding first movable grooves.
[0014] Furthermore, movable grooves are provided on the front and rear end surfaces of the inner walls of the four sleeves near the upper ends, and movable blocks are fixedly provided on the front and rear end surfaces of the outer walls of the four rotating rods near the upper ends, and the eight movable blocks are respectively slidably engaged in the eight movable grooves.
[0015] Furthermore, the four fixing components each include a fixing block and a spring, and the two second connecting rods located on the same first connecting rod among the four second connecting rods are respectively fixedly connected to the positions on the opposite side of the two brackets, and the upper end surfaces of the two telescopic rods located on the same bracket among the four telescopic rods are penetrated by the center of one side, and the four fixing blocks are respectively slidably arranged in the four telescopic slots, and a spring is fixedly arranged at the center of the lower end surface of the inner wall of the four telescopic slots, and one end of the four springs is respectively fixedly connected to the position on the opposite side of the lower end surface of the four fixing blocks, and the four fixing blocks are respectively movably embedded in one of the multiple fixing slots corresponding to the horizontal position inside the corresponding brackets.
[0016] The utility model has the following beneficial effects:
[0017] 1. The utility model proposes a heat dissipation structure that is easy to install. Through the cooperation of the limit assembly and the splicing mechanism, the two clamping blocks on the bidirectional threaded rod are driven to move apart. Because the clamping blocks are of a special shape and the protruding edges of the two clamping blocks on the same bidirectional threaded rod are on the separated side, the two clamping blocks can be clamped and fixed to the connecting groove, thereby realizing the combined splicing between multiple heat dissipation plates, facilitating the later cleaning and maintenance of the heat dissipation plates, and at the same time, the number of heat dissipation plates can be increased or decreased according to the specific heat dissipation requirements of the computer chip, thereby improving the service life of the device.
[0018] 2. The utility model proposes a heat dissipation structure that is easy to install. When the operator needs to adjust the position of the mounting hole, the two second connecting rods on the same first connecting rod are pulled to slide on the inner wall of the second slide groove. Then, under the cooperation of the adjusting mechanism, the two adjusting rods on the same second connecting rod are driven to be movably engaged in the two adjusting grooves corresponding to the horizontal positions inside the first movable groove, so that the movable positions of the two second connecting rods can be fixed, thereby realizing the adjustment of the longitudinal position of the mounting hole; then, the fixing block on the fixing assembly is pressed downward, and then the two telescopic rods on the same bracket are pulled. When it is adjusted to the required position, the fixing block is released so that it is movably engaged in one of the multiple fixing grooves corresponding to the horizontal positions inside the corresponding bracket under the action of the spring elastic force, thereby realizing the adjustment of the horizontal position of the mounting hole, thereby being able to meet the installation requirements between motherboards of different specifications. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 This is an axonometric diagram of the present utility model;
[0020] Figure 2 This is an axonometric diagram of the heat dissipation base of the present invention;
[0021] Figure 3 This is an axonometric diagram of the heat dissipation plate of the present invention;
[0022] Figure 4 For the utility model Figure 3 A in the middle is an enlarged schematic diagram;
[0023] Figure 5 This is a schematic diagram of the combination of the first connecting rod and the second connecting rod of the present invention;
[0024] Figure 6 This is a schematic diagram of the combination of the bracket and the telescopic rod of the present invention;
[0025] Figure 7 This is a side sectional schematic diagram of the second connecting rod of the present invention;
[0026] Figure 8 It is a side sectional schematic diagram of the bracket and telescopic rod combination of the present invention.
[0027] Legend:
[0028] 1. Heat dissipation base; 2. Limiting assembly; 3. Heat dissipation plate; 4. Splicing mechanism; 5. First connecting rod; 6. First movable slot; 7. Adjusting mechanism; 8. Second connecting rod; 9. Telescopic rod; 10. Slider; 11. Fixed slot; 12. Mounting hole; 13. Bracket; 14. Telescopic slot; 15. Fixing assembly; 16. Limiting block; 17. Limiting slot; 18. Second slide slot; 201. Limiting horizontal plate; 202. First slide slot; 203. Limiting rod; 401. Connecting piece; 402. Two-way threaded rod; 403. Slot; 404. Block; 405. Rotating handle; 406. Splicing block; 407. Connecting slot; 701. Sleeve; 702. Rotating rod; 703. Adjusting rod; 704. Moving slot; 705. Moving block; 706. Ring; 707. Adjusting slot; 1501. Fixed block; 1502. Spring. DETAILED DESCRIPTION
[0029] 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.
[0030] Reference Figure 1-3 and Figure 5-8 The heat dissipation device is a heat dissipation device, and a heat dissipation device is used to dissipate heat from the heat source to the heat source. The heat dissipation device is a heat dissipation device, and a heat dissipation device is used to dissipate heat from the heat source to the heat source.
[0031] The two second connecting rods 8 located on the same first connecting rod 5 among the four second connecting rods 8 are respectively fixedly connected to the two brackets 13 at the opposite side positions, and a plurality of fixing grooves 11 are provided at the center of the upper end surfaces of the two brackets 13 near the front and rear ends. Two telescopic rods 9 are movably provided on the inner wall of each of the two brackets 13. Mounting holes 12 are penetrated at the center of the side away from the upper end surfaces of the two telescopic rods 9 located on the same bracket 13 among the four telescopic rods 9. Telescopic grooves 14 are provided at the center of the side opposite to the upper end surfaces of the two telescopic rods 9 located on the same bracket 13 among the four telescopic rods 9, and fixing components 15 are provided in the four telescopic grooves 14.
[0032] Specifically, the combination and splicing of multiple heat sinks 3 is achieved through the cooperation of the limiting component 2 and the splicing mechanism 4, which facilitates the disassembly of the heat sinks 3 and also realizes the later cleaning and maintenance of the heat sinks 3. At the same time, the number of heat sinks 3 can be increased or decreased according to the specific heat dissipation requirements of the computer chip, further improving the service life of the device. Subsequently, the two second connecting rods 8 on the same first connecting rod 5 are pulled to slide on the inner wall of the second slide groove 18, and then the two second connecting rods 8 are fixed in the cooperation of the adjustment mechanism 7, thereby realizing the adjustment of the longitudinal position of the mounting hole 12; then, by pressing the fixing block 1501 on the fixing component 15 downward, and then pulling the two telescopic rods 9 on the same bracket 13, when it is adjusted to the desired position, the fixing block 1501 is released so that it is movably connected to one of the multiple fixing grooves 11 corresponding to the horizontal position inside the corresponding bracket 13 under the elastic reset action of the spring 1502, thereby realizing the adjustment of the horizontal position of the mounting hole 12, thereby being able to meet the installation requirements between motherboards of different specifications, thereby improving the practicality and versatility of the device.
[0033] Reference Figure 1-4 , the two limit assemblies 2 each include a limit horizontal plate 201 and a limit rod 203, the two limit rods 203 are respectively threadedly arranged at the rear end position of the center of the upper end surface of the two limit horizontal plates 201, and a first sliding groove 202 is opened at the center of the opposite side of the two limit horizontal plates 201. The limit blocks 16 are fixedly provided at the center position of the lower end on both sides of the outer walls of the nine heat dissipation plates 3, and the limit grooves 17 are opened at the centers of the upper end surfaces of the multiple limit blocks 16. The nine limit blocks 16 located on the same side of the multiple limit blocks 16 are all slidably engaged in the first sliding grooves 202 on the corresponding side of the two first sliding grooves 202, and the two limit rods 203 are respectively threadedly arranged in two limit grooves 17 located on the same heat dissipation plate 3 among the multiple limit grooves 17;
[0034] The nine splicing mechanisms 4 each include a connector 401 and a bidirectional threaded rod 402. Each of the nine connectors 401 is fixedly arranged at the upper end of the front end of each of the nine heat sinks 3. A slot 403 is provided at the center of the front end surface of each of the nine connectors 401. The nine bidirectional threaded rods 402 are rotatably arranged at the centers of both sides of the inner walls of the nine slots 403. A rotating handle 405 is fixedly provided on one side of the nine bidirectional threaded rods 402. Each of the bidirectional threaded rods 402 is provided with a clamping block 404 on both sides of the outer wall of the bidirectional threaded rod 402, and a splicing block 406 is fixedly provided at the upper end of the rear end of the other side of the nine heat dissipation plates 3. A connecting groove 407 is provided through the center of the upper end of the front end surface of the nine splicing blocks 406. Two of the multiple clamping blocks 404 located on the same connecting piece 401 are respectively slidably clamped in a corresponding connecting groove 407 on the corresponding splicing block 406.
[0035] Specifically, the first heat sink 3 is fixed by rotating the limit rod 203. A splicing mechanism 4 is provided on one side of each heat sink 3. With the cooperation of the splicing mechanism 4, the number of heat sinks 3 can be increased or decreased according to the specific heat dissipation requirements of the computer chip. When the heat sink 3 needs to be disassembled and installed, the operator can rotate the rotating handle 405 inside the splicing mechanism 4 on one heat sink 3 to drive the rotation of the two-way threaded rod 402. Then, the rotation of the two-way threaded rod 402 drives the relative movement of the two blocking blocks 404 on the outer wall, and then moves it to the corresponding splicing block 406 of the other heat sink 3. The two clamping blocks 404 are placed in a corresponding connecting groove 407, and then the rotating handle 405 is rotated to drive the two clamping blocks 404 on the two-way threaded rod 402 to move apart. Because the clamping blocks 404 are of a special shape and the protruding edges of the two clamping blocks 404 on the same two-way threaded rod 402 are on the separated side, the two clamping blocks 404 can be clamped and fixed to the connecting groove 407, thereby realizing the combined splicing between the two heat sinks 3, facilitating the disassembly of the heat sinks 3, and also realizing the later cleaning and maintenance of the heat sink 3, avoiding the reduction of the heat dissipation effect due to dust accumulation or long-term use, and further improving the service life of the device.
[0036] Reference Figure 5-8The four adjustment mechanisms 7 each include a sleeve 701, a rotating rod 702 and a ring 706. The four sleeves 701 are respectively rotatably embedded in the center of one side of the upper end surface of the four second connecting rods 8. The four rotating rods 702 are respectively threadedly sleeved on the inner walls of the four sleeves 701. The four rings 706 are respectively fixedly sleeved on the outer walls of the four sleeves 701 near the upper end. The outer walls of the four rotating rods 702 are hingedly provided with adjustment rods 703 at the lower end positions. The inner walls of the four first movable grooves 6 are respectively provided with the center of the front and rear end surfaces. A plurality of adjustment slots 707 are provided at each of the eight adjustment rods 703. Two adjustment rods 703 located on the same second connecting rod 8 are movably embedded in two adjustment slots 707 corresponding to the horizontal positions inside the corresponding first movable slot 6. A movable slot 704 is provided at the upper ends of the front and rear end surfaces of the inner walls of the four sleeves 701. A movable block 705 is fixedly provided at the upper ends of the front and rear end surfaces of the outer walls of the four rotating rods 702. The eight movable blocks 705 are slidably engaged in the eight movable slots 704 respectively.
[0037] The four fixing components 15 each include a fixing block 1501 and a spring 1502. The four fixing blocks 1501 are respectively slidably arranged in the four telescopic slots 14. A spring 1502 is fixedly arranged at the center of the lower end surface of the inner wall of the four telescopic slots 14, and one end of the four springs 1502 is respectively fixedly connected to the position on the opposite side of the lower end surface of the four fixing blocks 1501. The four fixing blocks 1501 are respectively movably embedded in one of the multiple fixing slots 11 corresponding to the horizontal position inside the corresponding bracket 13 in the four brackets 13.
[0038] Specifically, through the cooperation of the adjusting mechanism 7 and the fixing assembly 15, the horizontal and vertical positions of the mounting hole 12 can be adjusted to meet the installation requirements of motherboards of different specifications. When the position of the mounting hole 12 needs to be adjusted, the operator can rotate the ring 706 on the adjusting mechanism 7 to drive the rotation of the sleeve 701. Then, under the rotation of the sleeve 701, it drives the rotating rod 702 threadedly connected thereto to move vertically upward. At the same time, under the sliding engagement of the moving block 705 and the moving groove 704, the stability of the overall sliding is improved. Then, during the vertical upward movement of the rotating rod 702, the two adjusting rods 703 hingedly arranged on the outer wall are retracted and disengaged from the two adjusting grooves 707 on the opposite side, thereby releasing the fixation between the second connecting rod 8 and the first connecting rod 5, and then moving the second connecting rod 8 to slide in the second slide groove 18. When the required installation length and position are adjusted, the operator can adjust the mounting hole 12 by rotating the ring 706 on the adjusting mechanism 7. When the lock is in the correct position, the ring 706 is rotated again so that the rotating rod 702 moves vertically downward under the rotation of the sleeve 701, and then the two adjusting rods 703 on the same second connecting rod 8 are respectively movably connected to the two adjusting grooves 707 corresponding to the horizontal position inside the first movable groove 6, thereby realizing the adjustment of the longitudinal position of the mounting hole 12; then, by pressing the fixing block 1501 on the fixing assembly 15 downward to retract it into the fixing groove 11, the two telescopic rods 9 on the same bracket 13 are pulled. When it is adjusted to the desired position, the fixing block 1501 is released so that it is movably connected to one of the multiple fixing grooves 11 corresponding to the horizontal position inside the corresponding bracket 13 under the elastic reset action of the spring 1502, thereby realizing the fixing of the adjusted position of the two telescopic rods 9, thereby realizing the adjustment of the horizontal position of the mounting hole 12, thereby improving the practicality and versatility of the device.
[0039] Working principle: When the operator needs to adjust the position of the mounting hole 12, the two second connecting rods 8 on the same first connecting rod 5 are pulled to slide on the inner wall of the second slide groove 18, and then the two adjusting rods 703 on the same second connecting rod 8 are driven to be movably connected to the two adjusting grooves 707 corresponding to the horizontal position inside the first movable groove 6 under the cooperation of the adjusting mechanism 7, so that the movable positions of the two second connecting rods 8 can be fixed, thereby realizing the adjustment of the longitudinal position of the mounting hole 12; then the fixing block 1501 on the fixing assembly 15 is pressed downward, and then the two telescopic rods 9 on the same bracket 13 are pulled. When it is adjusted to the required position, the fixing block 1501 is released so that it can be movably connected to one of the multiple fixing grooves 11 corresponding to the horizontal position inside the corresponding bracket 13 under the elastic reset action of the spring 1502, thereby realizing the adjustment of the horizontal position of the mounting hole 12, thereby being able to meet the installation requirements between motherboards of different specifications;
[0040] Secondly, through the cooperation of the limiting component 2 and the splicing mechanism 4, the combination splicing of multiple heat sinks 3 can be realized, and the multiple heat sinks 3 can be disassembled to facilitate the later cleaning and maintenance of the heat sinks 3. At the same time, the number of heat sinks 3 can be increased or decreased according to the specific heat dissipation requirements of the computer chip, thereby improving the service life of the device.
[0041] Finally, it should be noted that the above is only a preferred embodiment 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 embodiments, those skilled in the art can still modify the technical solutions described in the aforementioned embodiments or make equivalent replacements for some of the technical features therein. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A heat dissipation structure that is easy to install, comprising a heat dissipation base (1) and two brackets (13), characterized in that: Limiting assemblies (2) are fixedly provided on both sides of the upper end surface of the heat dissipation base (1), and the two limiting assemblies (2) each include a limiting horizontal plate (201) and a limiting rod (203). Nine heat dissipation plates (3) are slidably provided on the upper end surface of the heat dissipation base (1), and a splicing mechanism (4) is provided on one side of each of the nine heat dissipation plates (3). The nine splicing mechanisms (4) each include a connecting piece (401) and a bidirectional threaded rod (402). The front and rear end surfaces of the heat dissipation base (1) are fixedly provided with first connecting rods (5), the centers of both sides of the upper end surfaces of the two first connecting rods (5) are provided with first movable grooves (6), the inner walls of the four first movable grooves (6) are movably provided with second connecting rods (8), the four second connecting rods (8) are provided with adjustment mechanisms (7), the four adjustment mechanisms (7) each include a sleeve (701), a rotating rod (702) and a ring (706), a plurality of fixed grooves (11) are provided at the centers of the upper end surfaces of the two brackets (13) near the front and rear ends, the inner wall of each bracket (13) of the two brackets (13) is movably provided with two telescopic rods (9), the centers of the upper end surfaces of the two telescopic rods (9) located on the same bracket (13) are provided with telescopic grooves (14) on opposite sides, and the four telescopic grooves (14) are provided with fixing components (15).
2. The heat dissipation structure that is easy to install according to claim 1, characterized in that: The two limiting rods (203) are respectively threadedly arranged at the rear end positions of the centers of the upper end surfaces of the two limiting transverse plates (201), and the centers of the opposite sides of the two limiting transverse plates (201) are both provided with first sliding grooves (202).
3. The heat dissipation structure that is easy to install according to claim 2, characterized in that: Limiting blocks (16) are fixedly arranged at the center positions of the lower ends on both sides of the outer walls of the nine heat dissipation plates (3), and limiting grooves (17) are provided at the centers of the upper end surfaces of the plurality of limiting blocks (16). The nine limiting blocks (16) located on the same side of the plurality of limiting blocks (16) are slidably engaged in the first sliding grooves (202) on the corresponding side of the two first sliding grooves (202), and the two limiting rods (203) are respectively threadedly arranged in two limiting grooves (17) located on the same heat dissipation plate (3) among the plurality of limiting grooves (17).
4. The heat dissipation structure easy to install according to claim 1, characterized in that: Each of the nine connecting members (401) is fixedly arranged at a front end position close to the upper end of one side of each of the nine heat dissipation plates (3); a slot (403) is provided at the center of the front end surface of each of the nine connecting members (401); the nine bidirectional threaded rods (402) are rotatably arranged at the centers of both sides of the inner walls of the nine slots (403); and a rotating handle (405) is fixedly arranged on one side of each of the nine bidirectional threaded rods (402).
5. The heat dissipation structure easy to install according to claim 1, characterized in that: Each of the nine bidirectional threaded rods (402) has a clamping block (404) threadedly sleeved on its outer wall at both sides, and a splicing block (406) is fixedly provided at the upper end of the rear end of the other side of the nine heat dissipation plates (3). A connecting groove (407) is provided through the center of the front end of the nine splicing blocks (406) at the upper end, and two clamping blocks (404) located on the same connecting member (401) among the multiple clamping blocks (404) are respectively slidably clamped in a corresponding connecting groove (407) on the corresponding splicing block (406).
6. The heat dissipation structure easy to install according to claim 1, characterized in that: A second sliding groove (18) is provided at the center of one side of the lower end surface of the inner wall of two first movable grooves (6) located on the same first connecting rod (5) among the four first movable grooves (6), and a sliding block (10) is fixedly provided at the center of one side of the lower end surface of two second connecting rods (8) located on the same first connecting rod (5) among the four second connecting rods (8). The four sliding blocks (10) are respectively slidably engaged in the four second sliding grooves (18).
7. The heat dissipation structure easy to install according to claim 1, characterized in that: The four sleeves (701) are respectively rotatably embedded in the center of one side of the upper end surface of the four second connecting rods (8), the four rotating rods (702) are respectively threadedly sleeved on the inner walls of the four sleeves (701), the four rings (706) are respectively fixedly sleeved on the upper ends of the outer walls of the four sleeves (701), and the front and rear end surfaces of the outer walls of the four rotating rods (702) are hingedly provided with adjustment rods (703) at the lower ends. The centers of the front and rear end surfaces of the inner walls of the four first movable grooves (6) are each provided with a plurality of adjustment grooves (707), and two adjustment rods (703) located on the same second connecting rod (8) of the eight adjustment rods (703) are respectively movably embedded in the two adjustment grooves (707) corresponding to the horizontal positions inside the corresponding first movable grooves (6).
8. The heat dissipation structure easy to install according to claim 1, characterized in that: The inner walls of the four sleeves (701) are provided with movable grooves (704) at the upper end positions of the front and rear end surfaces, and the outer walls of the four rotating rods (702) are fixed with movable blocks (705) at the upper end positions of the front and rear end surfaces. The eight movable blocks (705) are respectively slidably engaged in the eight movable grooves (704).
9. The heat dissipation structure easy to install according to claim 1, characterized in that: The four fixing components (15) each include a fixing block (1501) and a spring (1502). Two second connecting rods (8) located on the same first connecting rod (5) among the four second connecting rods (8) are fixedly connected to positions on opposite sides of the two brackets (13) respectively. Two telescopic rods (9) located on the same bracket (13) among the four telescopic rods (9) are provided with mounting holes (12) at the centers of the sides of the upper end surfaces. The four fixing blocks (1501) are respectively slidably arranged in the four telescopic slots (14). A spring (1502) is fixedly arranged at the centers of the lower end surfaces of the inner walls of the four telescopic slots (14), and one end of the four springs (1502) is respectively fixedly connected to positions on opposite sides of the lower end surfaces of the four fixing blocks (1501). The four fixing blocks (1501) are respectively movably embedded in one of the multiple fixing slots (11) corresponding to the horizontal positions inside the corresponding brackets (13) in the four brackets (13).