Special heat dissipation structure for computer processor
By designing a dedicated heat dissipation structure including a heat dissipation fan, a heat conductor and a hollow connection block, the troublesome problem of the computer processor heat dissipation structure in the prior art is solved, and a simpler installation and disassembly process is achieved, and the efficiency of bolt disconnection is improved.
Patent Information
- Application Number
- CN202421987747.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-16
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2034-08-16
AI Technical Summary
The heat dissipation structure of existing computer processors is more troublesome when disassembling and installing, and it is easy to cause bolts to be lost, affecting the simplicity of subsequent installation.
A special heat dissipation structure including a heat dissipation fan, a heat conductor, a mounting plate, a groove, a mounting hole, a spring, a hollow connecting block, a threaded groove, a guide rod and a guide plate is designed. The hollow connecting block is driven up by spring rebound, so that the bolts can be quickly disengaged and connected through a threaded groove, reducing the complexity of installation and disassembly.
This enables no need to insert the bolts for installation operations during installation and disassembly, making installation and disassembly easier and less friction, and increases the speed of the bolts to the threaded holes of the computer.
Smart Images

Figure CN222883025U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of heat dissipation of computer processors, in particular to a special heat dissipation structure for computer processors. Background Art
[0002] The dedicated heat dissipation structure of computer processors mainly includes two types: air cooling and water cooling. Air cooling is a heat dissipation method that uses air flow to remove heat. Its structure mainly includes heat dissipation base, heat-conducting copper pipes, heat dissipation fins and heat dissipation fans. The heat generated by the computer CPU is absorbed by the heat dissipation base and then transferred to the heat dissipation fins through the heat-conducting copper pipes. The heat dissipation fan generates airflow to remove the heat on the fins, thereby achieving the purpose of heat dissipation.
[0003] The heat dissipation structure used in existing computer processors is generally fixed in the corresponding position by bolts. However, during the subsequent disassembly operation, the bolts need to be completely separated from the heat dissipation structure and carefully stored. If they are lost, the subsequent installation operation will not be simple enough, and the installation and disassembly will also be more troublesome. Utility Model Content
[0004] The purpose of the present invention is to solve at least one of the above technical deficiencies.
[0005] Therefore, one purpose of the present invention is to provide a special heat dissipation structure for a computer processor to solve the problems mentioned in the background technology and overcome the shortcomings of the prior art.
[0006] In order to achieve the above-mentioned purpose, an embodiment of one aspect of the utility model provides a special heat dissipation structure for a computer processor, including a heat dissipation fan, a heat conductive seat is fixedly installed at the bottom of the heat dissipation fan, mounting plates are fixedly installed on both sides of the heat conductive seat, a groove is provided on the surface of the mounting plate, a mounting hole is provided in the middle of the groove, a spring is fixedly installed on the inner wall of the groove, a hollow connecting block is fixedly installed on one end of the spring, a threaded groove is provided on the inner wall of the hollow connecting block, a guide rod is fixedly installed on the top of the mounting plate, and a guide plate is provided on the surface of the hollow connecting block. The technical effect achieved by adopting the above-mentioned scheme is: the bolt is separated from the threaded hole of the computer by rotating it, and when the bolt is separated from the threaded hole of the computer, the rebound of the spring drives the hollow connecting block to rise, so that the bolt is quickly separated from the computer, and at the same time, the bolt is still connected to the hollow connecting block through the threaded groove, so that in subsequent installation and disassembly operations, it is no longer necessary to insert the bolt for installation operations, so that installation and disassembly can be made easier and simpler.
[0007] Preferably, any of the above schemes is that the diameter of the groove is larger than the diameter of the mounting hole, the height of the groove is larger than the height of the hollow connecting block, the surface of the hollow connecting block is provided with a first rotating groove, the interior of the first rotating groove is provided with a first ball, the surface of the first ball is tangent to the inner wall of the groove, and the technical effect achieved by adopting the above scheme is: when the bolt is pressed down to connect it with the threaded hole of the computer, the hollow connecting block descends into the interior of the groove, and then the surface of the first ball contacts the inner wall of the groove to make it slide inside the first rotating groove, thereby reducing the friction between the hollow connecting block and the inner wall of the groove during the installation operation, thereby making the installation operation easier and more convenient.
[0008] Preferably, any of the above schemes is that the number of the first rotating grooves and the first balls is several, and the several first rotating grooves and the first balls are equidistantly distributed on the surface of the hollow connecting block. The technical effect achieved by adopting the above scheme is: through the cooperation between the several first rotating grooves and the first balls, the friction between the hollow connecting block and the groove when it descends can be reduced, thereby making the installation operation easier and simpler.
[0009] Preferably, any of the above schemes is that the guide plate includes two plate bodies, and the two plate bodies are fixedly mounted on the surface of the hollow connecting block, a sliding hole is opened in the middle of the plate body, and a second rotating groove is opened on the inner wall of the sliding hole, and a second ball is rotatably connected to the inner wall of the second rotating groove, and the surface of the second ball is tangent to the surface of the guide rod. The technical effect achieved by adopting the above scheme is that when the hollow connecting block moves, the second ball arranged inside the sliding hole in the middle of the plate body rolls inside the second rotating groove, thereby reducing the friction between the guide rod, so that the hollow connecting block can be moved more easily and conveniently.
[0010] Preferably, any of the above schemes includes a plurality of second rotating grooves and a plurality of second balls, which are equidistantly distributed circumferentially inside the sliding hole. The technical effect achieved by the above scheme is that the friction with the guide rod can be reduced by rolling the plurality of second balls inside the plurality of second rotating grooves, thereby making it easier and more convenient for the hollow connecting block to move.
[0011] Preferably, any of the above schemes has a threaded cover threadedly connected to one end of the guide rod, and the diameter of the threaded cover is larger than the diameter of the guide rod. The technical effect achieved by adopting the above scheme is that the limit on the top of the guide plate can be relaxed by the threaded cover, thereby facilitating the replacement of the spring.
[0012] Preferably, any of the above schemes is that the inner wall of the hollow connecting block is connected with a bolt via a threaded groove, the diameter of the mounting hole is larger than the bolt, and the mounting hole passes through the mounting plate. The technical effect achieved by adopting the above scheme is that the mounting hole can facilitate the bolt to pass through the mounting plate and connect with the threaded hole of the computer.
[0013] Compared with the prior art, the advantages and beneficial effects of the utility model are:
[0014] 1. A special heat dissipation structure for a computer processor, through the cooperation among a heat dissipation fan, a heat conductive seat, a mounting plate, a groove, a mounting hole, a spring, a hollow connecting block, a threaded groove, a guide rod and a guide plate, can make some bolts and the hollow connecting block threadedly connected when installing and disassembling the heat dissipation fan, so that in the subsequent installation and disassembly operations, it is no longer necessary to insert the bolts for installation operations, so that installation and disassembly can be easier and simpler.
[0015] 2. This special heat dissipation structure for a computer processor can reduce friction when the hollow connecting block is moved by the spring rebound through the cooperation among the guide rod, the plate body, the sliding hole, the second rotating groove, the second ball, the first rotating groove and the first ball, so that the bolt can be disengaged from the threaded hole of the computer more quickly. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 This is a schematic diagram of the structure of the first perspective of the embodiment of the utility model;
[0017] Figure 2 This is the first embodiment of the utility model Figure 1 A schematic diagram of the structure at A;
[0018] Figure 3 This is a schematic diagram of the structure of the first embodiment of the utility model from a second viewing angle;
[0019] Figure 4 This is the first embodiment of the utility model Figure 3 Schematic diagram of the structure at B;
[0020] Figure 5 This is a schematic structural diagram of the third viewing angle of the first embodiment of the utility model.
[0021] Wherein: 1- cooling fan, 2- heat conducting seat, 3- mounting plate, 4- groove, 5- mounting hole, 6- spring, 7- hollow connecting block, 8- threaded groove, 9- guide rod, 10- guide plate, 1001- plate body, 1002- sliding hole, 1003- second rotating groove, 1004- second ball, 11- first rotating groove, 12- first ball, 13- threaded cover. DETAILED DESCRIPTION
[0022] The present invention is further described below in conjunction with the accompanying drawings, but the protection scope of the present invention is not limited to the following description.
[0023] Embodiment 1: Figures 1 to 5 As shown, a special heat dissipation structure for a computer processor comprises a heat dissipation fan 1, a heat conducting seat 2 is fixedly installed at the bottom of the heat dissipation fan 1, mounting plates 3 are fixedly installed on both sides of the heat conducting seat 2, a groove 4 is provided on the surface of the mounting plate 3, a mounting hole 5 is provided in the middle of the groove 4, a spring 6 is fixedly installed on the inner wall of the groove 4, a hollow connecting block 7 is fixedly installed at one end of the spring 6, a threaded groove 8 is provided on the inner wall of the hollow connecting block 7, a guide rod 9 is fixedly installed on the top of the mounting plate 3, a guide plate 10 is provided on the surface of the hollow connecting block 7, a bolt is separated from the threaded hole of the computer by rotating it, when the bolt is separated from the threaded hole of the computer, the rebound of the spring 6 drives the hollow connecting block 7 to rise, so that the bolt is quickly separated from the computer, and at the same time, the bolt is still connected to the hollow connecting block 7 through the threaded groove 8, so that in the subsequent installation and disassembly operations, it is no longer necessary to insert the bolt for installation operations, so that the installation and disassembly can be made easier and simpler.
[0024] As an optional technical solution of the present invention, the diameter of the groove 4 is larger than the diameter of the mounting hole 5, the height of the groove 4 is larger than the height of the hollow connecting block 7, the surface of the hollow connecting block 7 is provided with a first rotating groove 11, and the interior of the first rotating groove 11 is provided with a first ball 12, and the surface of the first ball 12 is tangent to the inner wall of the groove 4. When the bolt is pressed down to connect it with the threaded hole of the computer, the hollow connecting block 7 descends into the interior of the groove 4, and then the surface of the first ball 12 contacts the inner wall of the groove 4 to make it slide inside the first rotating groove 11, thereby reducing the friction between the hollow connecting block 7 and the inner wall of the groove 4 during the installation operation, thereby making the installation operation easier and more convenient.
[0025] As an optional technical solution of the present invention, there are several first rotating grooves 11 and several first balls 12, and the several first rotating grooves 11 and the first balls 12 are equidistantly distributed on the surface of the hollow connecting block 7. Through the cooperation between the several first rotating grooves 11 and the first balls 12, the friction between the hollow connecting block 7 and the groove 4 when descending can be reduced, thereby making the installation operation easier and more convenient.
[0026] As an optional technical solution of the present invention, the guide plate 10 includes two plate bodies 1001, and the two plate bodies 1001 are fixedly installed on the surface of the hollow connecting block 7. A sliding hole 1002 is opened in the middle of the plate body 1001, and a second rotating groove 1003 is opened on the inner wall of the sliding hole 1002. The inner wall of the second rotating groove 1003 is rotatably connected with a second ball 1004, and the surface of the second ball 1004 is tangent to the surface of the guide rod 9. When the hollow connecting block 7 moves through the hollow connecting block 7, the second ball 1004 arranged inside the sliding hole 1002 in the middle of the plate body 1001 rolls inside the second rotating groove 1003, thereby reducing the friction between the guide rod 9, so that the hollow connecting block 7 can be moved more easily and conveniently.
[0027] As an optional technical solution of the present invention, the number of the second rotating grooves 1003 and the number of the second balls 1004 are both multiple, and the multiple second rotating grooves 1003 and the second balls 1004 are equidistantly distributed inside the sliding hole 1002. By rolling the multiple second balls 1004 inside the multiple second rotating grooves 1003, the friction with the guide rod 9 can be reduced, so that the hollow connecting block 7 can be moved more easily and conveniently.
[0028] As an optional technical solution of the utility model, one end of the guide rod 9 is threadedly connected with a threaded cover 13, and the diameter of the threaded cover 13 is larger than the diameter of the guide rod 9. The threaded cover 13 can relax the limit on the top of the guide plate 10, thereby facilitating the replacement of the spring 6.
[0029] As an optional technical solution of the utility model, the inner wall of the hollow connecting block 7 is connected with a bolt through a threaded groove 8. The diameter of the mounting hole 5 is larger than the bolt. The mounting hole 5 passes through the mounting plate 3. The mounting hole 5 can facilitate the bolt to pass through the mounting plate 3 and connect with the threaded hole of the computer.
[0030] A special heat dissipation structure for a computer processor has the following working principle: a bolt is separated from a threaded hole of a computer by rotating it. When the bolt is separated from the threaded hole of the computer, the rebound of a spring 6 drives a hollow connecting block 7 to rise, so that the bolt is quickly separated from the computer. At the same time, the bolt is still connected to the hollow connecting block 7 through a threaded groove 8. Therefore, during subsequent installation and disassembly operations, it is no longer necessary to insert the bolt for installation operations, thereby making installation and disassembly easier and simpler.
[0031] In summary, the computer processor uses a special heat dissipation structure. Through the cooperation among the heat dissipation fan 1, the heat conductive seat 2, the mounting plate 3, the groove 4, the mounting hole 5, the spring 6, the hollow connecting block 7, the threaded groove 8, the guide rod 9 and the guide plate 10, when the heat dissipation fan 1 is installed and disassembled, some bolts can be threadedly connected with the hollow connecting block 7, so that in the subsequent installation and disassembly operations, it is no longer necessary to insert the bolts for installation operations, so that the installation and disassembly can be made easier and simpler. Through the cooperation among the guide rod 9, the plate body 1001, the sliding hole 1002, the second rotating groove 1003, the second ball 1004, the first rotating groove 11 and the first ball 12, when the spring 6 rebounds and drives the hollow connecting block 7 to move, the friction can be reduced, so that the bolts can be more quickly disengaged from the threaded hole of the computer.
[0032] Embodiment 2, a special heat dissipation structure for a computer processor. Based on the above embodiment, a protective block is fixedly installed at the bottom of the threaded cover 13. The protective block can prevent the threaded cover 13 and the hollow connecting block 7 from being worn due to transitional collision when the spring 6 rebounds and drives the hollow connecting block 7 to move.
Claims
1. A special heat dissipation structure for a computer processor, comprising a heat dissipation fan (1), characterized in that: A heat-conducting seat (2) is fixedly mounted on the bottom of the heat-dissipating fan (1), mounting plates (3) are fixedly mounted on both sides of the heat-conducting seat (2), a groove (4) is provided on the surface of the mounting plate (3), a mounting hole (5) is provided in the middle of the groove (4), a spring (6) is fixedly mounted on the inner wall of the groove (4), a hollow connecting block (7) is fixedly mounted on one end of the spring (6), a threaded groove (8) is provided on the inner wall of the hollow connecting block (7), a guide rod (9) is fixedly mounted on the top of the mounting plate (3), and a guide plate (10) is provided on the surface of the hollow connecting block (7).
2. A dedicated heat dissipation structure for a computer processor according to claim 1, characterized in that: The diameter of the groove (4) is larger than the diameter of the mounting hole (5), the height of the groove (4) is larger than the height of the hollow connecting block (7), a first rotating groove (11) is provided on the surface of the hollow connecting block (7), a first rolling ball (12) is provided inside the first rotating groove (11), and the surface of the first rolling ball (12) is tangent to the inner wall of the groove (4).
3. A dedicated heat dissipation structure for a computer processor according to claim 2, characterized in that: The number of the first rotating grooves (11) and the first rolling balls (12) is multiple, and the multiple first rotating grooves (11) and the first rolling balls (12) are equidistantly distributed on the surface of the hollow connecting block (7) at a circumferential distance.
4. The dedicated heat dissipation structure for a computer processor according to claim 3, characterized in that: The guide plate (10) comprises two plate bodies (1001), the two plate bodies (1001) are fixedly mounted on the surface of the hollow connecting block (7), a sliding hole (1002) is provided in the middle of the plate body (1001), a second rotating groove (1003) is provided on the inner wall of the sliding hole (1002), a second ball (1004) is rotatably connected to the inner wall of the second rotating groove (1003), and the surface of the second ball (1004) is tangent to the surface of the guide rod (9).
5. The special heat dissipation structure for a computer processor according to claim 4, characterized in that: The number of the second rotating grooves (1003) and the number of the second rolling balls (1004) are both multiple, and the multiple second rotating grooves (1003) and the second rolling balls (1004) are equidistantly distributed inside the sliding hole (1002) at a circumference.
6. A dedicated heat dissipation structure for a computer processor according to claim 5, characterized in that: One end of the guide rod (9) is threadedly connected to a threaded cover (13), and the diameter of the threaded cover (13) is larger than the diameter of the guide rod (9).
7. A dedicated heat dissipation structure for a computer processor according to claim 6, characterized in that: The inner wall of the hollow connection block (7) is connected to a bolt via a threaded groove (8); the diameter of the mounting hole (5) is larger than the bolt; and the mounting hole (5) passes through the mounting plate (3).