Improved structure of vapor chamber

By adopting an inward-concave sliding groove design, magnetic sheets and positioning magnetic blocks, reinforcement components and anti-slip teeth in the locking structure of the temperature spreader, the problem of the existing locking structure detaching under external force impact is solved, and a stable connection and efficient assembly are achieved.

CN223388994UActive Publication Date: 2025-09-26DONGGUAN RUIJIA NEW MATERIAL CO LTD
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Patent Information

Application Number
CN202422617427.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-28
Publication Date
2025-09-26
Estimated Expiration
2034-10-28

AI Technical Summary

Technical Problem

The existing temperature-vaporizing plate locking structure is limited only by the elasticity of the spring, which fails to provide a fastening function and is easily detached under external force impact, thereby increasing the process and reducing work efficiency.

Method used

It adopts a concave slide structure design, combined with magnetic suction plates and positioning magnets, a convex slide rail structure, equipped with reinforcement components and anti-slip teeth, and enhances the connection strength through external screws to ensure a firm connection between the locking part and the board.

Benefits of technology

It improves the accuracy and reliability of locking, enhances the stability and diversity of connection, reduces the probability of falling off and displacement, simplifies the assembly process, and reduces material cost and weight.

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Abstract

The utility model relates to an improved structure of a uniform temperature plate in the technical field of uniform temperature plates, which comprises a plate body and a locking piece, the surface of the plate body is provided with a chute, the surface of the locking piece is provided with a slide rail matched with the chute, the chute is provided with a magnetic suction sheet, the surface of the slide rail is provided with a positioning magnetic block, and the positioning magnetic block is provided with a magnet. The sliding groove is of an inwards-concave structure, one end of the sliding groove is provided with a through hole opening, the other end of the sliding groove is provided with a non-through hole opening, a locking foundation is provided for fixing of the locking piece, in addition, a magnetic attraction piece is embedded in the sliding groove and close to the through hole opening, and the locking piece can be automatically aligned and preliminarily fixed in the process of sliding into the sliding groove through the design; the positioning effect is enhanced by the positioning magnetic block on the locking piece, so that the locking accuracy and reliability are ensured; the surface of the locking piece is further provided with a reinforcing assembly, it is ensured that the stability and durability of the structure can be kept in various working environments, by means of the design, the diversity and stability of connection are improved, and the effect that a user can freely adjust the locking force through the tightness of a screw is achieved.
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Description

Technical Field

[0001] The utility model relates to the technical field of temperature averaging plates, in particular to an improved structure of a temperature averaging plate. Background Art

[0002] A vapor chamber is a device used to maintain or regulate temperature by evenly distributing heat across its surface or interior. Vapor chambers are typically made of materials with good thermal conductivity, such as aluminum, copper, or specialized composites. They can be passive, relying solely on the thermal conductivity of the material to achieve temperature uniformity, or active, equipped with heating elements or cooling systems that use electronic controls to precisely regulate temperature.

[0003] A vapor chamber lock is a structural design used to secure and connect components. This structure is commonly used in industrial applications that must withstand high or low temperatures, such as in the aerospace, automotive, and energy industries. The design of the vapor chamber lock takes into account thermal expansion and contraction, ensuring a stable connection strength between components during temperature fluctuations. The locking mechanism may include welding, bonding, or mechanical locking, depending on the application requirements and environmental conditions.

[0004] The existing Chinese patent with reference number CN219679048U discloses a temperature equalizing plate locking structure, which relates to the technical field of temperature equalizing plates, including a fixing frame, a circuit board and a temperature equalizing plate, wherein the fixing frame is fixedly connected to four springs inside, and one side of the four springs is fixedly connected to a telescopic column. The beneficial effect of the utility model is that the positioning is completed by inserting the positioning pin shaft into the positioning hole, and the stop block will contact the telescopic column and apply pressure to the telescopic column, so that the telescopic column slides inside the fixing frame and compresses the spring. When the stop block is located in the air avoidance groove, the stop block will no longer apply pressure on the telescopic column, so that the telescopic column is reset under the action of the spring and inserted into the limit groove opened by the insert block, thereby completing the locking of the temperature equalizing plate. Compared with the existing locking structure, the temperature equalizing plate locking structure only needs to insert the positioning shaft into the positioning hole to complete the installation of the temperature equalizing plate. Its structure is simple and more convenient to use.

[0005] Although this patent has a locking structure, its locking structure is only limited by the elasticity of the spring and does not have a fastening function. When subjected to external force impact, since the reset ability of the spring itself does not have a fastening function, the locking structure and the heat spreader may be separated. The locking structure needs to be further processed and improved, which increases the process and reduces work efficiency. For this reason, the inventors proposed an improved structure of the heat spreader to solve the above-mentioned technical problems. Utility Model Content

[0006] The utility model aims to overcome the above-mentioned shortcomings and provide a technical solution that can solve the above-mentioned problems.

[0007] The invention relates to an improved structure of a temperature uniform plate, comprising a plate body and a locking member, wherein the plate body and the locking member are provided with a detachable structure, and the adoption of this design facilitates the replacement between the plate body and the locking member, thereby reducing the time and expense of maintenance. A slide groove is provided on the surface of the plate body, the slide groove is in a concave structure, one end of the slide groove is in the shape of a through hole opening, and the other end of the slide groove is in the shape of a non-through hole opening. A slide rail is provided on the surface of the locking member to be matched with the slide groove, the slide rail is in an outward convex structure, the slide rail and the slide groove are provided with a clearance fit, and the sizes of the slide rail and the slide groove are consistent, a magnetic sheet is installed on the inner wall of the slide groove near the end of the through hole opening, the magnetic sheet and the slide groove are in an inlaid structure, a positioning magnetic block is installed on the surface of the slide rail, and a reinforcement component for connecting an external screw is provided on the surface of the locking member;

[0008] The chute adopts a concave structure with a through-hole opening at one end and a non-through-hole opening at the other end, providing a locking foundation for the fixing of the locking member. The slide rail on the locking member is convex and matches the chute. The clearance fit ensures smooth and stable sliding. In addition, a magnetic attraction piece is embedded in the chute near the through-hole opening. This design enables the locking member to automatically align and initially fixate when sliding into the chute. The positioning magnet on the locking member further enhances this positioning effect, ensuring accurate and reliable locking.

[0009] The surface of the locking piece is also equipped with a reinforcement component. This design allows users to further enhance the connection strength through external screws, ensuring that the structure remains stable and durable in various working environments. This design increases the diversity and stability of the connection and makes it easier for users to freely adjust the locking force by loosening or tightening the screws.

[0010] Furthermore, the reinforcement assembly includes a first mounting plate, a second mounting plate and a third mounting plate, the first mounting plate, the second mounting plate and the third mounting plate are all integrally formed with the locking member, a connecting groove is opened in the middle of the first mounting plate and the second mounting plate, and a fastening hole is opened in the middle of the third mounting plate.

[0011] The first mounting plate, the second mounting plate and the third mounting plate are integrally formed with the locking member to form a stable whole. The connection groove is arranged in the middle of the first mounting plate and the second mounting plate, which not only facilitates the connection between the components, but also enhances the flexibility and adjustability of the connection. The fastening hole on the third mounting plate is used to fix one end of the thread of the external connecting member, and a nut can be added to the third mounting plate to facilitate the external connecting member to be fixed in the fastening hole on the third mounting plate, further consolidating the fixation of the component and making it stable when dealing with various external forces. This design optimizes the assembly process of the component and also improves the stability and safety of the overall structure.

[0012] Furthermore, the connecting groove is in the shape of a keyway, the fastening hole is circular, the inner walls of the connecting groove and the fastening hole are provided with anti-slip patterns, the anti-slip patterns are annularly distributed on the inner wall of the fastening hole, the plane of the connecting groove is smooth, and the anti-slip patterns are annularly distributed on the arc surface of the connecting groove;

[0013] The anti-slip pattern is distributed in an annular shape on the inner wall of the fastening hole and the arc surface of the connecting groove. This design can increase the friction between the fastener and the connecting groove and the fastening hole, thereby improving the stability of the connection and the fastening effect. The smooth plane design ensures that the connecting piece can be easily inserted or removed when the connecting groove is not subject to the fastening force, while reducing the wear on the connecting piece. When a force is applied to the connecting piece, the connecting piece fits with the arc surface of the connecting groove, so that the arc surface increases the friction generated by the contact with the surface of the connecting piece. This design takes into account the convenience of connection and durability of use, and increases the connection stability of the product.

[0014] Furthermore, the surface of the locking member is provided with a plurality of mounting holes, the mounting holes being located between two adjacent slide rails, the surface of the plate body is provided with a plurality of threaded holes mating with the mounting holes, the threaded holes being located between two adjacent slide grooves, the mounting holes and the threaded holes being coaxially arranged, and the inner wall of the mounting hole being provided with anti-slip teeth;

[0015] The addition of anti-slip grooves provides a better grip on the mounting holes, preventing bolts or screws from slipping during installation, thereby improving installation stability and reliability. Furthermore, the anti-slip grooves provide additional friction during removal, making the removal process more convenient and safer, and reducing the chance of bolts or screws falling off due to the smooth surface of the mounting holes.

[0016] When the plate body is connected to the locking piece, the external screw passes through the mounting hole and the threaded hole in sequence, thereby applying a locking force between the plate body and the locking piece, increasing the connection stability between the plate body and the locking piece, and reducing the probability of falling off and displacement.

[0017] Furthermore, the surface of the plate body is provided with several anti-skid pads for reducing the sliding of the locking piece. The anti-skid pads are located between two adjacent slide grooves, and the highest point of the anti-skid pads is flush with the surface of the plate body. When the plate body is connected to the locking piece, the surface of the locking piece fits with the surface of the outer side surface of the plate body, and the surface of the locking piece slides along the outer side surface of the plate body. When the user uses improper force or speeds at a high speed during this process, it may cause damage to the slide rail and the slide groove. The anti-skid pads play a role in preventing and buffering the surface of the locking piece, reducing the probability of this phenomenon occurring and playing a protective role.

[0018] Furthermore, the positioning magnetic block and the magnetic attraction sheet are magnetically connected; the design can quickly and accurately align and limit the position through magnetic force, so that this connection method simplifies the assembly process, improves assembly efficiency, and reduces the need for precision mechanical operations. In addition, the magnetic connection can also withstand certain vibrations and impacts, maintain the stability and reliability of the components, and the magnetic connection usually does not require additional fixing devices, thereby reducing material costs and weight, making the overall design more simple and lightweight.

[0019] Compared with the prior art, the present invention has the following advantages: the slide groove adopts an inwardly concave structure and a design with a through hole opening at one end and a non-through hole opening at the other end, which provides a locking basis for the fixation of the locking member. In addition, a magnetic attraction piece is embedded in the slide groove near the through hole opening. This design enables the locking member to automatically align and initially fixate when sliding into the slide groove, and the positioning magnetic block on the locking member further enhances this positioning effect, ensuring accurate and reliable locking.

[0020] The surface of the locking piece is also equipped with a reinforcement component. This design allows users to further enhance the connection strength through external screws, ensuring that the structure remains stable and durable in various working environments. This design increases the diversity and stability of the connection and makes it easier for users to freely adjust the locking force by loosening or tightening the screws. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 It is a three-dimensional diagram of the locking part in the improved structure of the temperature plate;

[0022] Figure 2 Another perspective view of a locking member in an improved structure of a temperature-vaporizing plate;

[0023] Figure 3 yes Figure 2 A partial enlarged schematic diagram;

[0024] Figure 4 It is a three-dimensional diagram of the plate body in the improved structure of the temperature equalizing plate;

[0025] Figure 5 yes Figure 4 A partial enlarged schematic diagram of B in the middle;

[0026] In the figure: plate body 1, locking member 2, slide groove 3, slide rail 4, magnetic sheet 5, positioning magnet 6, first mounting plate 7, second mounting plate 8, third mounting plate 9, connecting groove 10, fastening hole 11, anti-slip pattern 12, mounting hole 13, threaded hole 14, anti-slip tooth pattern 15, anti-slip pad 16. DETAILED DESCRIPTION

[0027] The present invention will be described in further detail below with reference to the accompanying drawings and specific implementations.

[0028] For this example, please refer to Figure 1-Figure 5 The cam 3 is a kind of cam 3 that is fixed on the cam 3, and the cam 3 is fixed on the cam 3. When the cam 3 is fixed on the cam 3, the cam 3 is fixed on the cam 3. When the cam 3 is fixed on the cam 3, the cam 3 is fixed on the cam 3. When the cam 3 is fixed on the cam 3, the cam 3 is fixed on the cam 3. When the cam 3 is fixed on the cam 3, the cam 3 is fixed on the cam 3.

[0029] The slide groove 3 adopts a concave structure with a through-hole opening at one end and a non-through-hole opening at the other end, which provides a locking basis for the fixation of the locking member 2. The slide rail 4 on the locking member 2 is convex and matches the slide groove 3. The clearance fit setting ensures smooth and stable sliding. In addition, a magnetic attraction piece 5 is embedded in the slide groove 3 near the through-hole opening. This design enables the locking member 2 to automatically align and initially fix in the process of sliding into the slide groove 3. The positioning magnetic block 6 on the locking member 2 further enhances this positioning effect, ensuring accurate and reliable locking.

[0030] The surface of the locking member 2 is also equipped with a reinforcement component. This design allows the user to further enhance the connection strength through external screws, ensuring that the structure can remain stable and durable in various working environments. This design increases the diversity and stability of the connection, making it easier for the user to freely adjust the locking force by loosening the screws.

[0031] The reinforcement assembly includes a first mounting plate 7, a second mounting plate 8 and a third mounting plate 9. The first mounting plate 7, the second mounting plate 8 and the third mounting plate 9 are all integrally formed with the locking member 2. A connecting groove 10 is provided in the middle of the first mounting plate 7 and the second mounting plate 8, and a fastening hole 11 is provided in the middle of the third mounting plate 9.

[0032] The first mounting plate 7, the second mounting plate 8 and the third mounting plate 9 are integrally formed with the locking member 2 to form a stable whole. The connection groove 10 is arranged in the middle of the first mounting plate 7 and the second mounting plate 8, which not only facilitates the connection between the components, but also enhances the flexibility and adjustability of the connection. The fastening hole 11 on the third mounting plate 9 is used to fix one end of the thread of the external connecting member, and a nut can be added to the third mounting plate 9 to facilitate the external connecting member to be fixed in the fastening hole 11 on the third mounting plate 9, further consolidating the fixity of the component and making it stable when dealing with various external forces. This design optimizes the assembly process of the component and also improves the stability and safety of the overall structure.

[0033] The connecting groove 10 is in the shape of a keyway, and the fastening hole 11 is circular. The inner walls of the connecting groove 10 and the fastening hole 11 are provided with anti-slip patterns 12. The anti-slip patterns 12 are annularly distributed on the inner wall of the fastening hole 11. The plane of the connecting groove 10 is smooth, and the anti-slip patterns 12 are annularly distributed on the arc surface of the connecting groove 10.

[0034] The anti-slip pattern 12 is distributed in an annular manner on the inner wall of the fastening hole 11 and the arc surface of the connecting groove 10. This design can increase the friction between the fastener and the connecting groove 10 and the fastening hole 11, thereby improving the stability of the connection and the fastening effect. The smooth plane design ensures that the connecting groove 10 can be easily inserted or removed when it is not subject to the fastening force, while reducing the wear on the connecting part. When a force is applied to the connecting part, the connecting part fits into the arc surface of the connecting groove 10, so that the arc surface increases the friction generated by the contact with the surface of the connecting part. This design takes into account the convenience of connection and the durability of use, and increases the connection stability of the product.

[0035] The surface of the locking member 2 is provided with a plurality of mounting holes 13, the mounting holes 13 being located between two adjacent slide rails 4, and the surface of the plate body 1 is provided with a plurality of threaded holes 14 mating with the mounting holes 13, the threaded holes 14 being located between two adjacent slide grooves 3, the mounting holes 13 and the threaded holes 14 being coaxially arranged, and the inner wall of the mounting hole 13 is provided with anti-slip teeth 15;

[0036] The addition of the anti-slip grooves 15 provides a better grip on the mounting hole 13, ensuring that the bolts or screws will not easily slip off during installation, thereby improving the stability and reliability of installation. In addition, the anti-slip grooves 15 also help provide additional friction during disassembly, making the disassembly process more convenient and safer, and reducing the probability of bolts or screws falling off due to the smooth surface of the mounting hole 13 during installation.

[0037] When the plate body 1 is connected to the locking member 2, the external screws penetrate the mounting hole 13 and the threaded hole 14 in sequence, thereby applying a locking force between the plate body 1 and the locking member 2, increasing the connection stability between the plate body 1 and the locking member 2, and reducing the probability of falling off and displacement.

[0038] The surface of the plate body 1 is provided with several anti-skid pads 16 for reducing the sliding of the locking member 2. The anti-skid pads 16 are located between two adjacent slide grooves 3. The highest point of the anti-skid pads 16 is flush with the surface of the plate body 1. When the plate body 1 is connected to the locking member 2, the surface of the locking member 2 fits with the surface of the outer side of the plate body 1, and the surface of the locking member 2 slides along the outer side of the plate body 1. When the user uses improper force or at a high speed during this process, it may cause damage to the slide rail 4 and the slide groove 3. The anti-skid pads 16 play a role in preventing and buffering the surface of the locking member 2, reducing the probability of this phenomenon occurring and playing a protective role.

[0039] The positioning magnetic block 6 is magnetically connected to the magnetic sheet 5. The design can quickly and accurately align and limit the position through magnetic force, so that this connection method simplifies the assembly process, improves assembly efficiency, and reduces the need for precision mechanical operations. In addition, the magnetic connection can also withstand certain vibrations and shocks to maintain the stability and reliability of the components. Magnetic connections usually do not require additional fixing devices, thereby reducing material costs and weight, making the overall design more concise and lightweight.

[0040] The key design features of the present invention are as follows: the chute 3 adopts an inwardly concave structure and a design with a through-hole opening at one end and a non-through-hole opening at the other end, which provides a locking basis for the fixing of the locking member 2. In addition, a magnetic attraction sheet 5 is embedded in the chute 3 near the through-hole opening. This design enables the locking member 2 to automatically align and initially fixate when sliding into the chute 3. The positioning magnetic block 6 on the locking member 2 further enhances this positioning effect, ensuring accurate and reliable locking.

[0041] The surface of the locking member 2 is also equipped with a reinforcement component. This design allows the user to further enhance the connection strength through external screws, ensuring that the structure can remain stable and durable in various working environments. This design increases the diversity and stability of the connection, making it easier for the user to freely adjust the locking force by loosening the screws.

[0042] The above content is a further detailed description of the present invention in conjunction with specific preferred embodiments, and the specific implementation of the present invention cannot be considered to be limited to these descriptions. For those skilled in the art of the present invention, several simple deductions or substitutions can be made without departing from the concept of the present invention, and all of these should be considered as within the scope of protection of the present invention.

Claims

1. An improved structure of a temperature-vaporizing plate, comprising a plate body and a locking member, characterized in that: There is a detachable structure between the plate body and the locking piece, and a slide groove is provided on the surface of the plate body. The slide groove is a concave structure, one end of the slide groove is a through hole opening, and the other end of the slide groove is a non-through hole opening. A slide rail is provided on the surface of the locking piece to be installed in pair with the slide groove, and the slide rail is a convex structure. The slide rail and the slide groove are clearance-matched, and the sizes of the slide rail and the slide groove are consistent. A magnetic sheet is installed on the inner wall of the slide groove near the through hole opening end, and the magnetic sheet and the slide groove are an inlaid structure. A positioning magnetic block is installed on the surface of the slide rail, and a reinforcement component for connecting external screws is provided on the surface of the locking piece.

2. The improved structure of the temperature vapor chamber according to claim 1, characterized in that: The reinforcement assembly includes a first mounting plate, a second mounting plate and a third mounting plate. The first mounting plate, the second mounting plate and the third mounting plate are all integrally formed with the locking member. A connecting groove is provided in the middle of the first mounting plate and the second mounting plate, and a fastening hole is provided in the middle of the third mounting plate.

3. The improved structure of the temperature vapor chamber according to claim 2, characterized in that: The connecting groove is in the shape of a keyway, the fastening hole is circular, the inner walls of the connecting groove and the fastening hole are provided with anti-slip patterns, the anti-slip patterns are distributed in an annular manner on the inner wall of the fastening hole, the plane of the connecting groove is a smooth plane, and the anti-slip patterns are distributed in an annular manner on the arc surface of the connecting groove.

4. The improved structure of a temperature vapor chamber according to any one of claims 1 to 3, characterized in that: The surface of the locking member is provided with several mounting holes, and the mounting holes are located between two adjacent slide rails. The surface of the plate body is provided with several threaded holes that are matched with the mounting holes, and the threaded holes are located between two adjacent slide grooves. The mounting holes and the threaded holes are coaxially arranged, and the inner wall of the mounting hole is provided with anti-slip teeth.

5. The improved structure of a temperature vapor chamber according to any one of claims 1 to 3, characterized in that: The surface of the plate body is provided with a plurality of anti-skid pads for reducing the sliding of the locking member. The anti-skid pads are located between two adjacent slide grooves, and the highest points of the anti-skid pads are flush with the surface of the plate body.

6. The improved structure of a temperature vapor chamber according to any one of claims 1 to 3, characterized in that: The positioning magnetic block is magnetically connected to the magnetic attraction sheet.

Citation Information

Patent Citations

  • Vapor chamber locking structure

    CN219679048U