High-strength copper piece applied to socket

By setting the plug reinforcement structure and body reinforcement rib on the main body of the socket copper component, the deformation problem caused by fatigue and temperature changes of the copper component is solved, and the durability and safety of the socket are improved.

CN223079402UActive Publication Date: 2025-07-08ZHEJIANG GENO ELECTRICAL
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Patent Information

Application Number
CN202421774163.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-25
Publication Date
2025-07-08
Estimated Expiration
2034-07-25

AI Technical Summary

Technical Problem

The copper parts of existing sockets are prone to deform due to fatigue and temperature changes after long-term use, resulting in poor contact and safety hazards.

Method used

The plug-in reinforcement structure is provided on the copper body of the socket, including the convex reinforcement ribs on the outside of the slot and the groove-like structure on the inside, as well as the strip-shaped and dot-shaped reinforcement ribs on the body, which disperse and absorb external forces, improve structural strength and deformation resistance.

Benefits of technology

It significantly improves the durability and safety of the socket, prevents the plug-in from deforming due to multiple plug-ins and unplugging and high current loads, extends service life and enhances stability.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223079402U_ABST
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Abstract

According to the high-strength copper piece applied to the socket, the insertion part reinforcing rib structure is arranged on the insertion part of the copper piece body, and the insertion part reinforcing rib structure is formed on the outer side groove wall of the insertion groove along the shape of the insertion part, so that the insertion groove can more effectively disperse and resist external force when the external force is applied to the insertion groove; the durability and the safety of the socket are obviously improved; and the plugging part reinforcing ribs can prevent the plugging part from being deformed due to multiple plugging actions and large current load, so that the structural strength and the deformation resistance of the copper piece body are improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of switch accessories, and particularly relates to a high-strength copper part applied to a socket. Background Art

[0002] In the existing switches and sockets, the internal copper parts are prone to deformation after long-term use. Especially when the plugs are inserted and removed frequently or the current load is large, the copper parts are likely to deform due to fatigue and temperature changes, resulting in poor contact of the socket, increased resistance, and even potential safety hazards. Summary of the Invention

[0003] In view of this, the utility model provides a high-strength copper part applied to a socket.

[0004] To achieve the above object, the utility model provides the following technical solutions:

[0005] A high-strength copper part applied to a socket includes a copper part body. The copper part body has a body portion and at least one insertion portion. The insertion portion is arranged at at least one end of the body portion. The insertion portion has a slot, and on the outer slot wall of the slot, there is an insertion portion reinforcing rib structure arranged along the shape of the insertion portion.

[0006] Preferably, the insertion portion reinforcing rib structure protrudes on the outer slot wall of the slot, and the inner slot wall of the slot is concavely formed into a groove-like structure corresponding to the insertion portion reinforcing rib structure.

[0007] Preferably, on one side end face of the body portion of the copper part body, a body portion reinforcing rib structure protrudes, and on the other side end face of the body portion, a groove-like structure is concavely formed corresponding to the body portion reinforcing rib structure.

[0008] Preferably, the body portion reinforcing rib structure is in a strip structure and is arranged on the body portion along the length direction of the body portion.

[0009] Preferably, the body portion reinforcing rib structure includes strip-shaped reinforcing ribs and dot-shaped reinforcing ribs. A plurality of strip-shaped reinforcing ribs are arranged, and the dot-shaped reinforcing ribs are arranged between adjacent strip-shaped reinforcing ribs.

[0010] Preferably, two insertion portions are arranged, and the insertion portions are arranged at both ends of the body portion. The insertion portions include a two-pin insertion portion and a three-pin insertion portion. The three-pin insertion portion is formed by bending one end of the body portion away from the two-pin insertion portion, and a bending reinforcing rib extending to the three-pin insertion portion is arranged on the body portion.

[0011] Preferably, the bending reinforcing rib is arranged in a continuous structure on the body portion and the three-pin insertion portion.

[0012] Preferably, the insertion part has a first insertion surface, a second insertion surface and a third insertion surface. The second insertion surface is arranged between the first insertion surface and the third insertion surface. The first insertion surface and the third insertion surface are arranged in a parallel structure, and the angles between the first insertion surface and the third insertion surface and the second insertion surface are both 90°.

[0013] The beneficial effects of the present utility model are as follows: By providing a reinforcing rib structure on the insertion part of the copper part body, and the reinforcing rib structure of the insertion part is formed on the outer groove wall of the slot along the shape of the insertion part. Such a structure enables the slot to more effectively disperse and resist external forces when subjected to external forces, thereby significantly improving the durability and safety of the socket; and the reinforcing ribs of the insertion part can prevent the insertion part from deforming due to multiple plugging and unplugging actions and large current loads, thereby improving the structural strength and anti-deformation ability of the copper part body. Description of the Drawings

[0014] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0015] Attached Figure 1 is a schematic diagram of the copper part structure;

[0016] Attached Figure 2 is a schematic diagram of the insertion part;

[0017] Attached Figure 3 is a schematic diagram of the copper part from another angle;

[0018] Attached Figure 4 is a schematic diagram of the assembly of the copper part and the wall socket. Detailed Embodiments

[0019] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model with reference to the drawings in the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, rather than all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present utility model.

[0020] The following will further describe the present utility model with reference to the drawings in the specification.

[0021] The present utility model provides the following technical solutions:

[0022] As attachedFigures 1-4 As shown in the figure, the utility model discloses a high-strength copper part applied to a socket, which includes a copper part body 1. The copper part body 1 has a body part 2 and at least one plug-in part 3. The plug-in part 3 is arranged at at least one end of the body part 2. The plug-in part 3 has a slot 4, and on the outer side wall of the slot 4, there is a plug-in part reinforcing rib structure 5 arranged along the shape of the plug-in part 3. Specifically, in this design, by arranging the plug-in part reinforcing rib structure 5 on the plug-in part 3 of the copper part body 1, and the plug-in part reinforcing rib structure 5 is formed on the outer side wall of the slot 4 along the shape of the plug-in part 3. Such a structure enables the slot 4 to more effectively disperse and resist external forces when subjected to external forces, thus significantly improving the durability and safety of the socket; and the reinforcing ribs of the plug-in part 3 can prevent the plug-in part 3 from deforming due to multiple plugging and unplugging actions and a large current load, thereby improving the structural strength and anti-deformation ability of the copper part body 1.

[0023] Furthermore, the plug-in part reinforcing rib structure 5 protrudes from the outer side wall of the slot 4, and the inner side wall of the slot 4 is concave to form a groove-like structure corresponding to the plug-in part reinforcing rib structure 5. Specifically, in this embodiment, the plug-in part reinforcing rib structure 5 is formed on the outer side wall of the slot 4 by protruding, while on the inner side wall of the slot 4, a groove-like structure is correspondingly formed by concave. This internal and external corresponding structural design further enhances the overall strength of the plug-in part 3. The groove-like structure not only provides additional support for the plug-in part 3, but also reduces the use of materials for the plug-in part 3, achieving the lightweight design goal. And this design can also effectively avoid the stress concentration phenomenon generated during the plugging and unplugging process. When the plug is inserted into or pulled out of the slot 4, the plug-in part reinforcing rib structure 5 and the groove-like structure can work together to disperse and absorb these stresses, thereby reducing the wear and deformation of the plug-in part 3.

[0024] Furthermore, a body portion reinforcing rib structure 6 protrudes from one side end face of the body portion 2 of the copper part body 1, and a groove-like structure is concavely formed on the other side end face of the body portion 2 corresponding to the body portion reinforcing rib structure 6. Specifically, in this embodiment, in addition to the design of the insertion portion reinforcing rib structure 5, the body portion 2 of the copper part body 1 is also correspondingly strengthened. The body portion reinforcing rib structure 6 is formed by protruding from one side end face of the copper part body 1, providing additional support and stability for the copper part body 1. On the other side end face of the body portion 2, a groove-like structure is correspondingly concavely formed. Such a design not only forms an internal and external corresponding structure with the body portion reinforcing rib structure 6, further enhancing the overall strength of the copper part body 1, but also achieves the goal of lightweight. The cooperation of the body portion reinforcing rib structure 6 and the groove-like structure enables the copper part body 1 to better disperse and absorb external pressure or impact forces when subjected to them, thereby reducing deformation and damage of the copper part body 1. This design is particularly suitable for sockets that need to be frequently plugged and unplugged, effectively extending the service life of the socket and improving safety and stability.

[0025] Furthermore, the body portion reinforcing rib structure 6 is arranged on the body portion 2 in a strip structure along the length direction of the body portion 2. Specifically, in this embodiment, the body portion reinforcing rib structure 6 is designed as a strip structure and is arranged along the length direction of the copper part body 1. This design enables the reinforcing rib structure to more effectively support and strengthen the entire body portion 2. Especially when subjected to longitudinal forces, its strength and stability can be significantly improved. At the same time, the strip-shaped reinforcing rib can also improve the heat conduction performance of the copper part body 1 to a certain extent, helping to reduce heat accumulation caused by excessive current load, thereby further improving the safety and reliability of the socket.

[0026] Furthermore, the body portion reinforcing rib structure 6 includes strip-shaped reinforcing ribs 7 and dot-shaped reinforcing ribs 8. A plurality of strip-shaped reinforcing ribs 7 are provided, and the dot-shaped reinforcing ribs 8 are arranged between adjacent strip-shaped reinforcing ribs 7. Specifically, in this embodiment, in addition to the arrangement of the strip-shaped reinforcing ribs 7, dot-shaped reinforcing ribs 8 are added between adjacent strip-shaped reinforcing ribs 7. Such a design not only retains the advantages of the strip-shaped reinforcing ribs 7 in supporting and strengthening the body portion 2, but also the addition of the dot-shaped reinforcing ribs 8 further enhances the structural strength of the body portion 2. The dot-shaped reinforcing ribs 8 can specifically strengthen the possible local stress concentration points on the body portion 2, effectively preventing deformation or damage of the body portion 2 caused by stress concentration. In addition, the design of the dot-shaped reinforcing ribs 8 can also improve the fatigue resistance of the copper part body 1 to a certain extent, enabling the socket to maintain stable performance during long-term use. This comprehensive design of the body portion reinforcing rib structure 6 significantly improves the safety, stability and durability of the socket.

[0027] Furthermore, two plug-in parts 3 are provided, and the plug-in parts 3 are arranged at both ends of the body part 2. The plug-in parts 3 include a two-pin plug-in part 9 and a three-pin plug-in part 10. The three-pin plug-in part 10 is formed by bending one end of the body part 2 away from the two-pin plug-in part 9. A bent reinforcing rib 11 extending to the three-pin plug-in part 10 is provided on the body part 2. Specifically, in this embodiment, the three-pin plug-in part 10 is formed by bending one end of the body part 2 away from the two-pin plug-in part 9. Such a design not only saves space but also makes the overall structure of the socket more compact. To further enhance the strength and stability of the three-pin plug-in part 10, a bent reinforcing rib 11 extending to the three-pin plug-in part 10 is also provided on the body part 2. The bent reinforcing rib 11 is arranged along the bending path of the three-pin plug-in part 10 and is closely attached to the outer groove wall of the three-pin plug-in part 10, providing it with additional support and stability. When the plug is inserted into or pulled out of the three-pin plug-in part 10, the bent reinforcing rib 11 can effectively disperse and absorb the stress generated during the plugging and unplugging process, preventing the three-pin plug-in part 10 from deforming or being damaged due to stress concentration.

[0028] Furthermore, the bent reinforcing rib 11 is arranged on the body part 2 and the three-pin plug-in part 10 in a continuous structure. Specifically, in this embodiment, the bent reinforcing rib 11 is designed with a continuous structure, which forms a seamless connection between the body part 2 and the three-pin plug-in part 10. This continuous design not only improves the overall strength of the structure but also enables the bent reinforcing rib 11 to more effectively disperse and absorb these forces when subjected to external forces, further improving the durability and safety of the socket. At the same time, the continuous structure also makes the processing process simpler and improves production efficiency.

[0029] Furthermore, the plug-in part 3 has a first plugging surface 21, a second plugging surface 22, and a third plugging surface 23. The second plugging surface 22 is arranged between the first plugging surface 21 and the third plugging surface 23. The first plugging surface 21 and the third plugging surface 23 are arranged in a parallel structure. The angles between the first plugging surface 21 and the third plugging surface 23 and the second plugging surface 22 are both 90°. Specifically, in this embodiment, the design of the plug-in part 3 takes into account the convenience and stability of plugging and unplugging. The parallel structure design of the first plugging surface 21 and the third plugging surface 23 enables the plug to maintain a stable posture when inserted or pulled out, reducing the plugging and unplugging resistance caused by angle deviation. At the same time, the 90° angle design between the first plugging surface 21 and the third plugging surface 23 and the second plugging surface 22 not only enhances the structural strength of the plug-in part 3 but also enables the plug to form a stable contact surface with the plug-in part 3 after insertion. The plug is in surface contact with the first plugging surface 21 and the third plugging surface 23, ensuring the stability and safety of current transmission while enhancing the wear resistance of the plug-in part 3.

[0030] The above description of the disclosed embodiments enables those skilled in the art to implement or use the present utility model. Various modifications to these embodiments will be apparent to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present utility model. Therefore, the present utility model will not be limited to these embodiments shown herein, but rather to the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A high-strength copper part applied to a socket, comprising a copper part body, the copper part body having a body portion and at least one plugging portion, the plugging portion being arranged at at least one end of the body portion, the plugging portion having a slot, characterized in that: On the outer groove wall of the slot, there is a plug-in part reinforcing rib structure arranged along the shape of the plug-in part.

2. The high-strength copper part applied to the socket according to claim 1, wherein: The plug-in part reinforcing rib structure protrudes and is formed on the outer groove wall of the slot, and the inner groove wall of the slot is concavely formed into a groove-like structure corresponding to the plug-in part reinforcing rib structure.

3. The high-strength copper part applied to the socket according to claim 1, characterized in that: On one end face of the body part of the copper part body, a body part reinforcing rib structure protrudes and is formed, and on the other end face of the body part, a groove-like structure is concavely formed corresponding to the body part reinforcing rib structure.

4. The high-strength copper part applied to the socket according to claim 3, characterized in that: The body part reinforcing rib structure is in a strip-like structure and is arranged on the body part along the length direction of the body part.

5. The high-strength copper part applied to the socket according to claim 3, characterized in that: The body part reinforcing rib structure includes strip-shaped reinforcing ribs and dot-shaped reinforcing ribs. A number of the strip-shaped reinforcing ribs are provided, and the dot-shaped reinforcing ribs are arranged between adjacent strip-shaped reinforcing ribs.

6. The high-strength copper part applied to the socket according to claim 1, wherein: Two plug-in parts are provided, and the plug-in parts are arranged at both ends of the body part. The plug-in parts include a two-pin plug-in part and a three-pin plug-in part. The three-pin plug-in part is formed by bending one end of the body part away from the two-pin plug-in part, and a bending reinforcing rib extending to the three-pin plug-in part is provided on the body part.

7. The high-strength copper part applied to the socket according to claim 6, characterized in that: The bending reinforcing rib is arranged in a continuous structure on the body part and the three-pin plug-in part.

8. The high-strength copper piece applied to the socket according to claim 1, characterized in that: The plug-in part has a first plugging surface, a second plugging surface, and a third plugging surface. The second plugging surface is arranged between the first plugging surface and the third plugging surface. The first plugging surface and the third plugging surface are arranged in a parallel structure, and the angles between the first plugging surface and the third plugging surface and the second plugging surface are both 90°.

Citation Information

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