Quick-release heat sink holder

By designing a quick-release radiator bracket, and utilizing the structure of a ring frame and flip-locking mechanism, the radiator can be easily fixed and disassembled, solving the problem of cumbersome disassembly of existing radiators and improving assembly and disassembly efficiency.

CN115220555BActive Publication Date: 2026-05-29INSPUR SUZHOU INTELLIGENT TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
INSPUR SUZHOU INTELLIGENT TECH CO LTD
Filing Date
2022-06-29
Publication Date
2026-05-29

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    Figure CN115220555B_ABST
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Abstract

The application discloses a quick dismounting radiator support and radiator, which comprises a ring-shaped frame body and two fixing members movably arranged on opposite sides of the ring-shaped frame body, and the two fixing members are respectively provided with connecting portions; when the two fixing members are moved, the connecting portions on the two fixing members can be located inside the inner periphery of the ring-shaped frame body or outside the outer periphery of the ring-shaped frame body. When the two fixing members fix the radiator, the two fixing members are moved to the inside of the inner periphery of the ring-shaped frame body, and after the fixing members reach the positions for fixing the radiator, the fixing members are connected with the radiator by using the structural characteristics of the fixing members and the radiator, so that the radiator is fixed; when the radiator is dismounted, the radiator can be dismounted by moving the two fixing members away from the radiator, and the dismounting process is simplified, so that the radiator is more convenient to dismount and mount.
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Description

Technical Field

[0001] This invention relates to the field of radiator bracket technology, and more specifically, to a quick-release radiator bracket. Furthermore, this invention also relates to a radiator including the aforementioned quick-release radiator bracket. Background Technology

[0002] The current research and development, production, and subsequent operation and maintenance of servers place a high demand on the work of R&D, production, operation and maintenance and implementation personnel. A typical server configuration requires at least one CPU, and each CPU needs to be paired with a CPU cooler. However, the existing four-screw structure and six-screw structure coolers have complicated disassembly steps, which brings extra work to the staff.

[0003] In conclusion, how to solve the problem of cumbersome disassembly of existing radiators is a problem that urgently needs to be solved by those skilled in the art. Summary of the Invention

[0004] In view of this, the purpose of the present invention is to provide a quick-release radiator bracket, which has a simple structure and improves the convenience of radiator assembly and disassembly.

[0005] Another object of the present invention is to provide a radiator including the above-described quick-release radiator bracket.

[0006] To achieve the above objectives, the present invention provides the following technical solution:

[0007] A quick-release radiator bracket includes: an annular frame and two fixing members. The two fixing members are movably disposed on opposite sides of the annular frame. Each of the two fixing members is provided with a connecting part. When the two fixing members are movable, the connecting parts on the two fixing members can be located on the inner side of the inner circumference of the annular frame or on the outer side of the outer circumference of the annular frame.

[0008] Preferably, the annular frame is a square annular frame, and the two fixing members are respectively disposed on two opposite straight edges of the square annular frame.

[0009] The square ring frame has a simple structure and is easy to manufacture.

[0010] Preferably, a fixing structure is provided on the outer side of the annular frame.

[0011] This makes it easy to fix the ring-shaped frame onto the heatsink at the bottom of the motherboard.

[0012] Preferably, the fixing structure includes a mounting component and lugs respectively disposed on the outer periphery of opposite sides of the annular frame, the lugs being provided with mounting holes that match the mounting component.

[0013] The matching installation of lugs and mounting parts can improve the ease of installation of the ring frame.

[0014] Preferably, two lugs are provided on each side of the annular frame, and the lugs on one side of the annular frame are symmetrically arranged about the center line of the annular frame with respect to the lugs on the other side.

[0015] The lugs symmetrically positioned on both sides of the ring frame can distribute the force evenly on the ring frame, improving the stability of the ring frame installation.

[0016] Preferably, the mounting hole is a threaded hole, and the mounting component is a screw.

[0017] After a screw is installed in a threaded hole, the interaction of the threads can prevent the screw from loosening and enhance the stability of the screw installation.

[0018] Preferably, the fixing member includes a swing arm and a flip lock connected to the swing arm, the flip lock is hinged to the annular frame, and the swing arm is connected to one end of the flip lock.

[0019] In use, a flipping force is applied to the swing arm, causing the flip lock to swing synchronously. When locking is required, the swing arm drives the flip lock to flip to the inner circumference of the annular frame, fixing the flip lock to the radiator located on the inner circumference of the annular frame. When unlocking is required, an unlocking flipping force opposite to that used when locking is applied to the swing arm, causing the swing arm to drive the flip lock to rotate in the opposite direction, so that the flip lock leaves the radiator, achieving the purpose of unlocking and improving the convenience of disassembly.

[0020] Preferably, the flip lock is a bow-shaped rod with two protrusions arranged side by side. The two ends of the bow-shaped rod are respectively connected to hinge rods, the two hinge rods are in the same straight line, and both hinge rods are hinged to the annular frame. The swing arm is connected to one of the hinge rods.

[0021] The bow-shaped rod has a simple structure, occupies little space, is easy to process and install, has high strength, and provides strong stability for fixing the radiator.

[0022] Preferably, two hinge protrusions are provided on each side of the annular frame, and two hinge protrusions on the same side are respectively provided with coaxial hinge holes, and two hinge rods are respectively inserted into the two hinge holes.

[0023] The coaxial installation of the two hinge holes ensures that the two hinge rods connected to the two ends of the bow-shaped rod are on the same axis, improving the synchronicity of the two ends when the bow-shaped rod rotates.

[0024] A radiator includes a heat sink assembly and connectors disposed on both sides of the heat sink assembly. The radiator is matched and installed with a quick-release radiator bracket as described in any one of the above claims. The fixing member is used to lock the connector.

[0025] When the two fasteners secure the radiator, they are moved to the inner circumference of the annular frame. Once the fasteners reach the position where the radiator can be secured, the fasteners are connected to the radiator using the structural characteristics of the fasteners and the radiator, thus securing the radiator. During disassembly, the radiator can be removed by moving the two fasteners away from the radiator without removing the bolts, simplifying the disassembly process and making the assembly and disassembly of the radiator more convenient. Attached Figure Description

[0026] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on the provided drawings without creative effort.

[0027] Figure 1 This is a schematic diagram of the quick-release radiator bracket provided by the present invention;

[0028] Figure 2 This is a schematic diagram of the fixing structure of the outer periphery of the heat sink provided by the present invention.

[0029] Figure 1-2 middle:

[0030] 1-First locking groove, 2-First swing arm, 3-First rod, 4-Second rod, 5-Third rod, 6-Fourth rod, 7-Seventh rod, 8-Sixth rod, 9-Fifth rod, 10-First hinge rod, 11-Second hinge rod, 12-Annular frame, 13-Third hinge protrusion, 14-Lug, 15-Eighth rod, 16-Ninth rod, 17-Tenth rod, 18-Eleventh rod, 19-Fourteenth rod, 20-Thirteenth rod, 21-Twelfth rod, 22-Second swing arm, 23-Second locking groove, 24-Third hinge rod, 25-Fourth hinge rod, 26-First bow-shaped rod, 27-Second bow-shaped rod, 28-First hinge protrusion, 29-Second hinge protrusion, 30-Mounting hole, 31-Groove, 32-Radiator fin. Detailed Implementation

[0031] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0032] The core of this invention is to provide a quick-release radiator bracket, which has a simple structure and improves the convenience of radiator assembly and disassembly.

[0033] Another core aspect of this invention is to provide a radiator that includes the aforementioned quick-release radiator bracket.

[0034] Please refer to Figures 1-2 , Figure 1 This is a schematic diagram of the quick-release radiator bracket provided by the present invention; Figure 2 This is a schematic diagram of the fixing structure of the outer periphery of the heat sink provided by the present invention.

[0035] The quick-release radiator bracket provided in this application includes: an annular frame 12 and two fixing members. The two fixing members are movably disposed on opposite sides of the annular frame 12. The two fixing members are provided with connecting parts. When the two fixing members are movable, the connecting parts on the two fixing members can be located on the inner side of the inner circumference of the annular frame 12 or on the outer side of the outer circumference of the annular frame 12.

[0036] It should be noted that the annular frame 12 can be a rectangular frame or an annular frame 12 of other structural forms, such as a regular hexagon. The center of the annular frame 12 is used to install the radiator. The structure of the center hole of the annular frame 12 can be set according to the shape of the outer peripheral structure of the radiator. When installing the radiator, after the radiator passes through the annular frame 12, the two sides of the radiator are fixed by two fasteners respectively.

[0037] The ring frame 12 is used to install on the heat sink at the bottom of the motherboard. The installation method can be bolt installation, snap-fit, or other methods that facilitate disassembly and assembly.

[0038] The radiator bracket is used to install the radiator, so it must not reduce the radiator's heat dissipation effect. Preferably, the annular frame 12 is made of alloy, and the manufacturing method can be casting or cutting. The outer peripheral structure of the annular frame 12 can be set according to the actual installation environment. Preferably, the outer peripheral structure of the annular frame 12 is similar to the inner peripheral structure of the annular frame 12, which makes the annular frame 12 more integral, easier to process and install, and can also reduce the space occupied.

[0039] Two fasteners installed on both sides of the annular frame 12 are movable relative to the annular frame 12. The two fasteners can be configured according to the structure of the radiator's connection part, and the two fasteners fit into the structure of the radiator's connection part. Preferably, the two fasteners are unclamped and movable to engage with the radiator. The two fasteners can be installed on the annular frame 12 by hinge, sliding connection, or other movable connection. The two fasteners are simultaneously located on the front or rear side of the annular frame 12. The installation position of the fasteners is set according to the installation direction of the radiator. If the radiator is inserted into the annular frame 12 from the front side to the rear, the two fasteners are located on the front side of the annular frame 12. If the radiator is inserted into the annular frame 12 from the rear side to the front, the two fasteners are located on the rear side of the annular frame 12.

[0040] When the two fasteners fix the radiator, they are moved to the inner circumference of the annular frame 12. After the fasteners reach the position where the radiator can be fixed, the fasteners are connected to the radiator by utilizing the structural characteristics of the fasteners and the radiator, thereby fixing the radiator. When disassembling, the radiator can be removed by moving the two fasteners away from the radiator without removing the bolts, which simplifies the disassembly process and makes the disassembly and assembly of the radiator more convenient.

[0041] To facilitate the processing of the annular frame 12, as a further preferred embodiment based on the above embodiments, the annular frame 12 is a square annular frame, with two fixing members respectively disposed on two opposite straight edges of the square annular frame. The square annular frame has a simple structure and is easy to process. Since the fixing members need to be fixed in position after fixing the heat sink, in order to improve the positional stability of the fixing members, fixing protrusions are provided on the other two opposite straight edges of the square annular shell. When the fixing members are fixed to the heat sink, part of the fixing members will fit against the side of the square annular frame where the fixing protrusions are provided. Engaging the fixing members with the fixing protrusions can further improve the stability of the fixing members in fixing the heat sink.

[0042] Optionally, the structure of the annular frame 12 can also be an annular frame 12 with other regular polygonal structures, such as a regular hexagon. When the connecting part is set at the position of the straight edge of the annular frame 12 corresponding to the outer periphery of the heat sink, the heat sink can be fixed by setting a fastener at the position of the annular frame 12 corresponding to the connecting part. The fixing part of the fastener is connected and fixed to the connecting part.

[0043] Optionally, the structure of the annular frame 12 can also be a circular frame with a connecting part on the outer periphery of the radiator. The radiator can be fixed by setting a fastener at the position corresponding to the connecting part on the circular frame.

[0044] It should be noted that each fastener corresponds to one or more connecting parts located on the outer periphery of the radiator. The specific structure of the fastener can be set according to the structure of the outer periphery of the radiator and the distribution of the connecting parts.

[0045] To facilitate the fixed installation of the annular frame 12 onto the heatsink at the bottom of the motherboard, as a further preferred embodiment, a fixing structure is provided on the outer side of the annular frame 12. The fixing structure can be configured according to the environment of the installation location of the annular frame 12. Since the heatsink bracket is used for installation inside the computer, it is necessary to save space occupied by the heatsink bracket. The fixing structure can be configured as a small protrusion or boss structure to save space. The fixing structure is detachably connected to the heatsink at the bottom of the motherboard. The fixing structure can be bolted or snapped onto the heatsink at the bottom of the motherboard to improve the ease of installation and removal of the annular frame 12.

[0046] Based on the above embodiments, as a further preferred embodiment, the fixing structure includes a mounting component and lugs 14 respectively disposed on the outer periphery of opposite sides of the annular frame 12. The lugs 14 are provided with mounting holes 30 that match the mounting component. The lugs 14 can be welded or integrally machined with the annular frame 12, and the machining method can be casting or cutting. The mating installation of the lugs 14 and the mounting component can improve the ease of installation of the annular frame 12.

[0047] The number of lugs 14 can be set according to the actual installation environment. Two lugs 14 can be set on the outer periphery of one side of the annular frame 12. When the annular frame 12 is a square annular frame, the two lugs 14 are respectively set at the two corners on one side of the square annular frame.

[0048] Optionally, one or more lugs 14 may be provided on one side of the square ring frame, or at least one lug 14 may be provided on the outer periphery of the four straight edges of the square ring frame.

[0049] It should be noted that when setting the lugs 14, it is preferable to set the lugs 14 at symmetrical positions on the annular frame 12 so that the annular frame 12 is subjected to uniform force, thereby improving the fixing effect of the annular frame 12.

[0050] The structure of the lug 14 can be configured according to the actual application. Based on the above embodiment, as a further preferred embodiment, the lug 14 protrudes outward along the side of the annular frame 12, and the outer edge of the lug 14 has an arc-shaped transition structure to avoid scratching fingers during installation.

[0051] The mounting and fixing components are preferably positioned in a staggered structure to avoid the fixing components blocking the mounting position of the fixing components. That is, the fixing components cannot block the position of the mounting hole 30, so that the mounting components can be installed normally.

[0052] The structure of the mounting hole 30 and the mounting component can be configured according to the actual application. The structure of the mounting component is adapted to the required installation location. After passing through the mounting hole 30, the mounting component connects to the heatsink on the bottom of the motherboard, thereby connecting the lug 14 to the heatsink on the bottom of the motherboard. The mounting hole 30 can be a round hole or a hole of other shapes. When the mounting hole 30 is a round hole, a bolt can be used as the mounting component. When the mounting hole 30 is a hole of other shapes, a steel wire can be used for connection. Any structure of the mounting component that can connect the lug 14 to the heatsink on the bottom of the motherboard is included in the protection scope of this application.

[0053] In a preferred embodiment of the lug 14 configuration, based on the above embodiment, as a further preferred embodiment, two lugs 14 are respectively provided on both sides of the annular frame 12. The lug 14 on one side of the annular frame 12 is symmetrically arranged with respect to the center line of the annular frame 12 and the lug 14 on the other side. The symmetrical arrangement of the lugs 14 on both sides of the annular frame 12 can make the annular frame 12 bear force evenly and improve the stability of the annular frame 12 during installation. The symmetrical structure of the lugs 14 in this embodiment is an axially symmetrical structure. When the annular frame 12 has a centrally symmetrical structure, the lugs 14 can also be arranged centrally symmetrically with respect to the center of symmetry of the annular frame 12 on the outer periphery of the annular frame 12.

[0054] When the annular frame 12 is a square annular frame, the four lugs 14 can also be set at the four corners of the square annular frame.

[0055] Optionally, the lugs 14 provided on both sides of the annular frame 12 can also be asymmetrically arranged. The asymmetrical lugs 14 have a wider range of applications and are suitable for installation positions of various structures.

[0056] In the above embodiments, the number of lugs 14 is even. Optionally, the total number of lugs 14 provided on both sides of the annular frame 12 is odd. When the number of lugs 14 provided on both sides of the annular frame 12 is three, the following arrangement can be adopted: one lug 14 is provided on one side of the annular frame 12, and two lugs 14 are provided on the other side of the annular frame 12. In this arrangement, the lug 14 on one side of the ring frame 12 can be positioned at the center of one side, and the lugs 14 on one side of the ring frame 12 can be symmetrically arranged about one lug 14 on the other side, so that the three lugs 14 are symmetrical about the lugs 14 on the side of the ring frame 12, which can improve the stability of the ring frame 12 installation; or, when the ring frame 12 is a rectangular ring frame, the three lugs 14 can be positioned at the center of the three straight sides of the square ring frame, so that the three lugs 14 are symmetrical about the square ring frame; or, when the ring frame 12 is a square ring frame, the three lugs 14 can be positioned at the three corners of the square frame, which can also make the three lugs 14 symmetrical about the square ring frame.

[0057] The above arrangement is a symmetrical arrangement of all lugs 14 about the annular frame 12 when there are three lugs 14. When there are five or more odd numbers of lugs 14, the arrangement of all lugs 14 when there are three lugs 14 can be referred to in the above content.

[0058] To enhance the installation stability of the mounting component, as a further preferred embodiment based on the above-described embodiment, the mounting hole 30 is a threaded hole, and the mounting component is a screw. The screw is installed in the threaded hole by matching the external thread with the internal thread of the threaded hole. After the screw is installed in the threaded hole, the interaction of the threads can prevent the screw from loosening.

[0059] Optionally, the mounting hole 30 can be a straight hole, and the mounting component can also be a rivet.

[0060] Optionally, the mounting component can also be a steel wire, which is wrapped around the lug 14 and then connected to the heatsink at the bottom of the motherboard.

[0061] Optionally, the mounting component can be a straight rod with an outer diameter slightly larger than the inner diameter of the mounting hole 30. The mounting component and the mounting hole 30 are interference fit. The connection can also be achieved by bonding the straight rod to the heat sink at the bottom of the motherboard, but the bonding method is not conducive to heat dissipation.

[0062] Based on the above embodiments, as a further preferred embodiment, the fixing member includes a swing arm and a flip lock connected to the swing arm. The flip lock is hinged to the annular frame 12, and one end of the swing arm is connected to one end of the flip lock. A single fixing member can be provided with one or two swing arms. When one swing arm is provided, one end of the swing arm is connected to one end of the flip lock. When two swing arms are provided, one end of each swing arm is connected to both ends of the flip lock. When two swing arms are provided, the two swing arms are in the same plane, and during movement, the two swing arms rotate synchronously.

[0063] The structure of the flip lock can be configured according to actual application conditions. The flip lock is a flip-locking structure. When the flip lock is flipped to the inner circumference of the annular frame 12, it can connect with the outer circumferential fixing structure of the radiator. When the flip lock is flipped to the outer circumference of the annular frame 12, it can disengage from the outer circumferential fixing structure of the radiator. The flip axis of the flip lock is set on the main structure of the annular frame 12, that is, when the flip lock is flipped, it swings around the main structure of the annular frame 12, and the swing range is 0°~180°.

[0064] The two ends of the flip lock are respectively hinged to the side of the main body of the annular frame 12. When the annular frame 12 is a square annular frame, the two hinged ends of the flip lock are on the same straight line, so that when the flip lock is flipped, the two ends flip around the same flip axis.

[0065] In use, by applying a flipping force to the swing arm, the flip lock swings synchronously. When locking is required, the swing arm drives the flip lock to flip to the inner circumference of the annular frame 12, so that the flip lock is fixed to the radiator set on the inner circumference of the annular frame 12. When unlocking is required, an unlocking flipping force opposite to that used when locking is applied to the swing arm, so that the swing arm drives the flip lock to rotate in the opposite direction, so that the flip lock leaves the radiator, thereby achieving the purpose of unlocking and improving the convenience of disassembly.

[0066] Based on the above embodiments, as a further preferred embodiment, the flip lock is a bow-shaped rod with two protrusions arranged side by side. The two ends of the bow-shaped rod are respectively connected to hinge rods, which are aligned in a straight line. Both hinge rods are hinged to the annular frame 12, and the swing arm is connected to one of the hinge rods. The bow-shaped rod has a simple structure, occupies little space, is easy to process and install, has high strength, and provides strong stability for fixing the radiator.

[0067] A bow-shaped rod is provided on each side of the square ring frame, namely a first bow-shaped rod 26 and a second bow-shaped rod 27. The first bow-shaped rod 26 includes a first rod 3, a second rod 4, a third rod 5, a fourth rod 6, a fifth rod 9, a sixth rod 8, and a seventh rod 7. The first rod 3 and the second rod 4 are connected perpendicularly to each other. The first rod 3 is perpendicular to the side of the square ring frame, and the second rod 4 is parallel to the side of the square ring frame. The end of the first rod 3 is hinged to the side of the square ring frame through a hinge. The second rod 4 extends along the first rod 3 toward the first bow-shaped rod 27. Another hinge point of 6 is extended, with the third rod 5 perpendicular to and connected to the second rod 4. The third rod 5 is perpendicular to the second rod 4 and parallel to the first rod 3. The third rod 5 extends along the end of the second rod 4 toward the side of the square ring frame. The first rod 3, the second rod 4 and the third rod 5 together form a fixing part, which is connected to the fixing structure on the outer periphery of the radiator. The fixing part composed of the first rod 3, the second rod 4 and the third rod 5 bypasses the fixing structure on the outer periphery of the radiator and restricts the radiator from moving back and forth along the square ring frame, thus achieving the effect of fixing.

[0068] The fourth rod 6 is perpendicular to and connected to the third rod 5. The fourth rod 6 is set along the flip axis of the first bow-shaped rod 26, and when rotating, the fourth rod 6 fits against the main body of the square ring frame.

[0069] The fifth rod 9 and the sixth rod 8 are connected perpendicularly to each other. The fifth rod 9 is perpendicular to the side of the square ring frame, and the sixth rod 8 is parallel to the side of the square ring frame. The end of the fifth rod 9 is hinged to the side of the square ring frame via a hinge. The sixth rod 8 extends along the fifth rod 9 toward another hinge point of the first bow-shaped rod 26. The seventh rod 7 is perpendicular to and connected to the sixth rod 8. The seventh rod 7 is perpendicular to the sixth rod 8 and parallel to the fifth rod 9. The seventh rod 7 extends along the end of the sixth rod 8 toward the side of the square ring frame. The fifth rod 9, the sixth rod 8, and the seventh rod 7 together form a fixing part, which is connected to the fixing structure on the outer periphery of the radiator. The fixing part formed by the fifth rod 9, the sixth rod 8, and the seventh rod 7 bypasses the fixing structure on the outer periphery of the radiator and restricts the radiator from moving back and forth along the square ring frame, thus achieving a fixing effect. The fixing part formed by the fifth rod 9, the sixth rod 8, and the seventh rod 7 is symmetrical to the fixing part formed by the first rod 3, the second rod 4, and the third rod 5 about the fourth rod 6.

[0070] The second bow-shaped rod 27 includes an eighth rod 15, a ninth rod 16, a tenth rod 17, an eleventh rod 18, a twelfth rod 21, a thirteenth rod 20, and a fourteenth rod 19. The eighth rod 15 and the ninth rod 16 are connected perpendicularly to each other. The eighth rod 15 is perpendicular to the side of the square ring frame, and the ninth rod 16 is parallel to the side of the square ring frame. The end of the eighth rod 15 is hinged to the side of the square ring frame via a hinge. The ninth rod 16 extends along the eighth rod 15 toward another hinge point of the first bow-shaped rod 26. The tenth rod 17... The tenth rod 17 is perpendicular to and connected to the ninth rod 16, and is parallel to the eighth rod 15. The tenth rod 17 extends along the end of the ninth rod 16 toward the side of the square ring frame. The eighth rod 15, the ninth rod 16 and the tenth rod 17 together form a fixing part, which is connected to the fixing structure on the outer periphery of the radiator. The fixing part composed of the eighth rod 15, the ninth rod 16 and the tenth rod 17 bypasses the fixing structure on the outer periphery of the radiator and restricts the radiator from moving back and forth along the square ring frame, thereby achieving the effect of fixing.

[0071] The eleventh rod 18 is perpendicular to and connected to the tenth rod 17. The eleventh rod 18 is set along the flip axis of the first bow-shaped rod 26, and when rotating, the eleventh rod 18 fits against the main body of the square ring frame.

[0072] The twelfth rod 21 and the thirteenth rod 20 are connected perpendicularly to each other. The twelfth rod 21 is perpendicular to the side of the square ring frame, and the thirteenth rod 20 is parallel to the side of the square ring frame. The end of the twelfth rod 21 is hinged to the side of the square ring frame through a hinge. The thirteenth rod 20 extends along the twelfth rod 21 toward another hinge point of the first bow-shaped rod 26. The fourteenth rod 19 is perpendicular to the thirteenth rod 20 and connected to the thirteenth rod 20. The fourteenth rod 19 is perpendicular to the thirteenth rod 20 and parallel to the twelfth rod 21. The fourteenth rod 19 extends along the end of the thirteenth rod 20 toward the side of the square ring frame. The twelfth rod 21, the thirteenth rod 20 and the fourteenth rod 19 together form a fixing part, which is connected to the fixing structure on the outer periphery of the radiator. The fixing part composed of the twelfth rod 21, the thirteenth rod 20 and the fourteenth rod 19 bypasses the fixing structure on the outer periphery of the radiator and restricts the radiator from moving back and forth along the square ring frame, thus achieving the effect of fixing. The fixed sections formed by the twelfth pole 21, the thirteenth pole 20, and the fourteenth pole 19 are symmetrical about the fixed sections formed by the eighth pole 15, the ninth pole 16, and the tenth pole 17 about the eleventh pole 18.

[0073] Based on the above embodiments, as a further preferred embodiment, two hinge protrusions are respectively provided on both sides of the annular frame 12, and the two hinge protrusions on the same side are respectively provided with coaxial hinge holes, and the two hinge rods are respectively inserted into the two hinge holes. The coaxial installation of the two hinge holes can ensure that the two hinge rods connected to the two ends of the bow-shaped rod are on the same axis, improving the synchronicity of the two ends when the bow-shaped rod rotates.

[0074] Two bow-shaped rods are respectively connected to four hinge rods. One end of the first bow-shaped rod 26 is connected to the first hinge rod 10, and the other end of the first bow-shaped rod 26 is connected to the second hinge rod 11. One end of the second bow-shaped rod 27 is connected to the third hinge rod 24, and the other end of the second bow-shaped rod 27 is connected to the fourth hinge rod 25. The first hinge rod 10 and the second hinge rod 11 are on the same straight line as the seventh rod 7 and are both located on the flip axis of the first bow-shaped rod 26. The third hinge rod 24 and the fourth hinge rod 25 are on the same straight line as the fourteenth rod 19 and are both located on the flip axis of the second bow-shaped rod 27.

[0075] The hinge protrusions include a first hinge protrusion 28, a second hinge protrusion 29, a third hinge protrusion 13, and a fourth hinge protrusion. The first hinge protrusion 28 is provided with a first hinge hole, the second hinge protrusion 29 is provided with a second hinge hole, the third hinge protrusion 13 is provided with a third hinge hole, and the fourth hinge protrusion is provided with a fourth hinge hole. The first hinge protrusion 28 and the second hinge protrusion 29 are arranged opposite to each other, and the third hinge protrusion 13 and the fourth hinge protrusion are arranged opposite to each other. The first hinge hole and the second hinge hole are arranged coaxially, and the third hinge hole and the fourth hinge hole are arranged coaxially. The first hinge rod 10 passes through the first hinge hole, the second hinge rod 11 passes through the second hinge hole, the third hinge rod 24 passes through the third hinge hole, and the fourth hinge rod 25 passes through the fourth hinge hole.

[0076] When a fixed component includes a swing arm, there are a total of two swing arms, namely a first swing arm 2 and a second swing arm 22. A first hinge rod 10 passes through a first hinge hole and is connected to the first swing arm 2, or a second hinge rod 11 passes through a second hinge hole and is connected to the first swing arm 2. A third hinge rod 24 passes through a third hinge hole and is connected to the second swing arm 22, or a fourth hinge rod 25 passes through a fourth hinge hole and is connected to the second swing arm 22.

[0077] When a fixed component includes two swing arms, the total number of swing arms is four, namely the fifth swing arm, the sixth swing arm, the seventh swing arm, and the eighth swing arm. The first hinge rod 10 passes through the first hinge hole and is connected to the fifth swing arm. The second hinge rod 11 passes through the second hinge hole and is connected to the sixth swing arm. The third hinge rod 24 passes through the third hinge hole and is connected to the seventh swing arm. The fourth hinge rod 25 passes through the fourth hinge hole and is connected to the eighth swing arm.

[0078] To facilitate the fixing of the swing arm, a snap-fit ​​protrusion is provided on the side of the annular frame 12 on the swing side of the swing arm. When there are two swing arms, two snap-fit ​​protrusions can be provided, namely the first snap-fit ​​protrusion and the second snap-fit ​​protrusion. The first swing arm 2 and the second swing arm 22 are centrally symmetrical about the square annular frame. The first swing arm 2 is provided with a first snap-fit ​​groove 1, and the second swing arm 22 is provided with a second snap-fit ​​groove 23. When the first bow-shaped rod 26 and the second bow-shaped rod 27 are locked respectively, the first swing arm 2 and the second swing arm 22 are both attached to the square annular frame, so that the first snap-fit ​​groove 1 is snapped with the first snap-fit ​​protrusion, and the second snap-fit ​​groove 23 is snapped with the second snap-fit ​​protrusion.

[0079] To facilitate the use of four locking protrusions when there are four swing arms, when the first bow-shaped rod 26 and the second bow-shaped rod 27 are locked respectively, the first swing arm 2, the second swing arm 22, the third swing arm, and the fourth swing arm are all fitted against the square ring frame. To avoid interference between the swing arms, the length of the first hinge rod 10 can be set longer than the length of the third hinge rod 24, and the length of the second hinge rod 11 can be set longer than the length of the fourth hinge rod 25, so that the first swing arm 2 connected to the first hinge rod 10 is located outside the third swing arm connected to the third hinge rod 24, and the second swing arm 22 connected to the second hinge rod 11 is located outside the fourth swing arm connected to the fourth hinge rod 25; or, the length of the first hinge rod 10 can be set longer than the length of the third hinge rod 24, and the length of the second hinge rod 11 can be set shorter than the length of the fourth hinge rod 25, so that the first swing arm 2 connected to the first hinge rod 10 is located outside the third swing arm connected to the third hinge rod 24. The first hinge arm 2 is located on the outer side of the third hinge arm, and the second hinge arm 22 connected to the second hinge rod 11 is located on the inner side of the fourth hinge arm connected to the fourth hinge rod 25; or, the length of the first hinge rod 10 is set shorter than the length of the third hinge rod 24, and the length of the second hinge rod 11 is set longer than the length of the fourth hinge rod 25, so that the first hinge arm 2 connected to the first hinge rod 10 is located on the inner side of the third hinge arm connected to the third hinge rod 24, and the second hinge arm 22 connected to the second hinge rod 11 is located on the outer side of the fourth hinge arm connected to the fourth hinge rod 25; or, the length of the first hinge rod 10 is set shorter than the length of the third hinge rod 24, and the length of the second hinge rod 11 is set shorter than the length of the fourth hinge rod 25, so that the first hinge arm 2 connected to the first hinge rod 10 is located on the inner side of the third hinge arm connected to the third hinge rod 24, and the second hinge arm 22 connected to the second hinge rod 11 is located on the inner side of the fourth hinge arm connected to the fourth hinge rod 25.

[0080] In addition to the aforementioned quick-release radiator bracket, the present invention also provides a radiator, including a heat sink assembly and connectors disposed on both sides of the heat sink assembly. The radiator is matched and installed with the quick-release radiator bracket of any of the above embodiments, and the fixing member is used to lock the connector.

[0081] The radiator fin group 32 includes radiator fins 32 and a base plate. The side of the radiator fins 32 is provided with a groove 31 for accommodating the connector. The connector is a strip plate. The strip plate protrudes upward along the base plate corresponding to the groove 31. The fixing part composed of the first rod 3, the second rod 4 and the third rod 5 of the first bow-shaped rod 26 and the fixing part composed of the fourth rod 6, the fifth rod 9 and the sixth rod 8 bypass the strip plate and are clamped on the base plate. The fixing part composed of the eighth rod 15, the ninth rod 16 and the tenth rod 17 of the second bow-shaped rod 27 and the fixing part composed of the twelfth rod 21, the thirteenth rod 20 and the fourteenth rod 19 bypass the strip plate and are clamped on the base plate.

[0082] The structure of the other parts of this heat sink is described in reference to existing technologies and will not be repeated here.

[0083] The "first, second, third..." in the above content do not indicate quantity, but only the name of the device following the numeral.

[0084] The various embodiments in this specification are described in a progressive manner, with each embodiment focusing on the differences from other embodiments. The same or similar parts between the various embodiments can be referred to each other.

[0085] The quick-release radiator bracket and radiator provided by this invention have been described in detail above. Specific examples have been used to illustrate the principles and implementation methods of this invention. The descriptions of the embodiments above are only for the purpose of helping to understand the method and core ideas of this invention. It should be noted that those skilled in the art can make several improvements and modifications to this invention without departing from the principles of this invention, and these improvements and modifications also fall within the protection scope of the claims of this invention.

Claims

1. A quick-release radiator bracket, characterized in that, include: The ring frame (12) and two fasteners are provided. The two fasteners are respectively movably disposed on opposite sides of the ring frame (12). The two fasteners are respectively provided with connecting parts. When the two fasteners are moved, the connecting parts on the two fasteners can be located on the inner side of the inner circumference of the ring frame (12) or on the outer side of the outer circumference of the ring frame (12). The fixing component includes a swing arm and a flip lock connected to the swing arm. The flip lock is hinged to the annular frame (12). The swing arm is connected to one end of the flip lock. The flip lock is a bow-shaped rod with two protrusions arranged side by side. The two ends of the bow-shaped rod are respectively connected to hinge rods. The two hinge rods are in the same straight line. Both hinge rods are hinged to the annular frame (12). The swing arm is connected to one of the hinge rods.

2. The quick-release radiator bracket according to claim 1, characterized in that, The annular frame (12) is a square annular frame, and the two fixing members are respectively set on the two opposite straight sides of the square annular frame.

3. The quick-release radiator bracket according to claim 1, characterized in that, A fixing structure is provided on the outside of the annular frame (12).

4. The quick-release radiator bracket according to claim 3, characterized in that, The fixing structure includes a mounting component and lugs (14) respectively disposed on the outer periphery of opposite sides of the annular frame (12), and the lugs (14) are provided with mounting holes (30) that match the mounting component.

5. The quick-release radiator bracket according to claim 1, characterized in that, Two lugs (14) are provided on both sides of the annular frame (12). The lugs (14) on one side of the annular frame (12) are symmetrical about the center line of the annular frame (12) and the lugs (14) on the other side.

6. The quick-release radiator bracket according to claim 4, characterized in that, The mounting hole (30) is a threaded hole, and the mounting component is a screw.

7. The quick-release radiator bracket according to claim 1, characterized in that, Two hinge protrusions are provided on both sides of the annular frame (12), and two hinge protrusions on the same side are respectively provided with coaxial hinge holes, and two hinge rods are respectively inserted into the two hinge holes.

8. A radiator, comprising a heat sink assembly and connectors disposed on both sides of the heat sink assembly, characterized in that, The radiator is matched and installed with the quick-release radiator bracket according to any one of claims 1 to 7, and the fixing member is used to lock the connecting member.