Copper strip alloy
By installing connecting components and material combinations on copper strip alloys, the problem of inconvenient assembly of copper strip alloys is solved, achieving stable connection and elastic reset, improving the wear resistance and hardness of the alloy, and making it suitable for high-precision and high-performance applications.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHEJIANG ZHETONG FIVE STAR METAL MATERIALS CO LTD
- Filing Date
- 2025-03-18
- Publication Date
- 2026-04-21
AI Technical Summary
Existing high-performance copper strip alloys lack convenient connection and assembly methods during the assembly process, resulting in inconvenient connections.
A copper strip alloy was designed, which, by installing connecting components, including limiting connectors and return springs, on the alloy parts, utilizes a combination of copper, aluminum, and beryllium materials to achieve stable connection and elastic reset functions.
It offers a convenient assembly method, enhances the wear resistance and hardness of the alloy, ensures the stability and reliability of the connection, and is suitable for high-precision and high-performance applications.
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Figure CN224153720U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of alloy materials, specifically a copper strip alloy. Background Technology
[0002] The background technology for high-performance copper strip alloys mainly involves improving the mechanical properties, electrical conductivity, and corrosion resistance of copper through alloying, microstructure control, and advanced processing techniques. While traditional pure copper possesses excellent electrical and thermal conductivity, its strength and hardness are relatively low, making it difficult to meet the demands of harsh environments such as high stress and high temperature. To address this, researchers have added elements such as zinc, tin, nickel, and silicon to the copper matrix to form solid solution strengthening or precipitate strengthening phases, thereby improving the alloy's strength and hardness while maintaining high electrical conductivity. Furthermore, processes such as cold rolling and heat treatment are used to optimize grain size and distribution, further improving the alloy's overall performance. In recent years, research on nanocrystalline copper alloys and composite materials has also provided new directions for the development of high-performance copper strip alloys, enabling their widespread application in electronics, electrical engineering, aerospace, and other fields.
[0003] Application number CN200620141317.8 discloses a W-shaped copper alloy strip, designed to meet the structural requirements of power transistor frames. The W-shaped copper alloy strip has a "W"-shaped cross-section and consists of a flat copper alloy strip and two protruding strips on it. The angles between the protruding strips and the flat surface are 97 degrees and 135 degrees, respectively. This invention is applicable to key materials for power transistor frames; however, it has shortcomings. During use, the device cannot provide a convenient connection and assembly method, making connection inconvenient when the device needs to be assembled. Utility Model Content
[0004] The purpose of this invention is to provide a copper strip alloy that solves the problem of inconvenient connection and assembly methods during use, which makes the device difficult to connect when it needs to be assembled.
[0005] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution:
[0006] This utility model is a copper strip alloy, including an assembly alloy part one, one side of which is connected to the inner side of an assembly alloy part two through a connecting component.
[0007] The connecting component includes a limiting connector one, and a limiting connector two is installed in the middle of the limiting connector one.
[0008] Furthermore, the assembled alloy component includes an alloy body, the inner wall of which is provided with an installation groove, and the two sides of the installation groove are connected to a limiting installation plate.
[0009] Furthermore, the first limiting connector and the second limiting connector are installed inside the mounting groove by limiting rods.
[0010] Furthermore, the assembled alloy component two includes an alloy body two, the inner wall of which is connected to a limiting block, the limiting block being correspondingly limited within the space between the limiting connector one and the limiting connector two.
[0011] Furthermore, the alloy body one includes copper material, and aluminum material and beryllium material are installed around the copper material. The aluminum material, beryllium material and copper material are uniformly mixed to form the alloy body one.
[0012] Furthermore, the limiting connector includes a limiting component, the middle outer wall of the limiting component is connected to a limiting side plate, and a limiting groove is formed in the middle of the limiting component. The bottom of the limiting side plate is connected to one side of the inner wall of the alloy body through a reset spring.
[0013] Furthermore, the second limiting connector includes a second limiting component. The middle outer wall of the second limiting component is connected to a second limiting side plate, and a second limiting protrusion is installed at the middle bottom of the second limiting component. The bottom of the second limiting side plate is connected to the other side of the inner wall of the first alloy body through a second reset spring. The second limiting protrusion is limited and installed inside the limiting groove, and the second limiting protrusion and the limiting groove are limited and installed inside the mounting groove through a limiting rod.
[0014] This utility model has the following beneficial effects:
[0015] (1) The copper strip alloy of this utility model has a connecting component installed on the device, which provides a convenient assembly method when assembling the alloy parts by connecting the component when using the device, thus making the assembly work more flexible.
[0016] (2) The copper strip alloy of this utility model has aluminum and beryllium materials installed inside the alloy, which makes the alloy more wear-resistant and hard when using the device.
[0017] Of course, any product implementing this utility model does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description
[0018] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0019] Figure 1 This is a schematic diagram of the overall structure of the copper strip alloy of this utility model;
[0020] Figure 2 This is a schematic diagram of the connecting component structure of the copper strip alloy of this utility model;
[0021] Figure 3 This is a schematic diagram of the limiting connector of copper strip alloy according to the present invention.
[0022] Figure 4 This is a schematic diagram of the internal structure of the alloy body of the copper strip alloy of this utility model;
[0023] The attached diagram lists the components represented by each number as follows:
[0024] In the diagram: 1. Assembled alloy component one; 2. Connecting component; 3. Assembled alloy component two; 101. Alloy body one; 102. Mounting groove; 103. Limiting mounting plate; 201. Limiting connector one; 202. Limiting connector two; 301. Alloy body two; 302. Limiting block; 1011. Copper material; 1012. Aluminum material; 1013. Beryllium material; 2011. Limiting component one; 2012. Limiting side plate one; 2013. Return spring one; 2014. Limiting groove; 2021. Limiting component two; 2022. Limiting side plate two; 2023. Limiting protrusion; 2024. Return spring two. Detailed Implementation
[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present utility model, and not 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 effort are within the protection scope of the present utility model.
[0026] Please see Figures 1-4 As shown, this utility model is a copper strip alloy, including an assembly alloy part 1, one side of which is connected to the inner side of an assembly alloy part 2 3 via a connecting component 2.
[0027] The connecting component 2 includes a limiting connector 1 201, and a limiting connector 2 202 is installed in the middle of the limiting connector 1 201.
[0028] By installing the connecting component 2 on the device, a convenient assembly method can be provided when assembling alloy parts using the device, making the assembly work more flexible.
[0029] The assembled alloy part 1 includes an alloy body 101, the inner wall of which is provided with an installation groove 102, and the two sides of the installation groove 102 are connected to a limiting installation plate 103.
[0030] Limiting connector 1 201 and limiting connector 2 202 are limited and installed inside the mounting groove 102 by limiting rods. The connecting assembly 2 includes limiting connector 1 201 and limiting connector 2 202, which are fixed in the mounting groove 102 of the assembled alloy component 1 by limiting rods. The limiting block 302 of the assembled alloy component 2 3 is embedded between limiting connector 1 201 and limiting connector 2 202 to form a stable mechanical connection.
[0031] The assembled alloy component 2 3 includes an alloy body 2 301, and a limiting block 302 is connected to the inner wall of the alloy body 2 301. The limiting block 302 is correspondingly limited inside between the limiting connector 1 201 and the limiting connector 2 202.
[0032] The alloy body 101 includes copper material 1011, and aluminum material 1012 and beryllium material 1013 are installed around the copper material 1011. The aluminum material 1012, beryllium material 1013 and copper material 1011 are uniformly mixed to form the alloy body 101. The alloy body 101 is composed of copper material 1011, aluminum material 1012 and beryllium material 1013. Copper material 1011 provides good electrical and thermal conductivity, aluminum material 1012 reduces the overall weight, and beryllium material 1013 enhances the strength and corrosion resistance of the alloy. This combination of materials gives the alloy body 101 a comprehensive performance of high strength, lightweight and corrosion resistance.
[0033] The limiting connector 201 includes a limiting component 2011, a limiting side plate 2012 connected to the middle outer wall of the limiting component 2011, and a limiting groove 2014 opened in the middle of the limiting component 2011. The bottom of the limiting side plate 2012 is connected to one side of the inner wall of the alloy body 101 through a reset spring 2013.
[0034] The second limiting connector 202 includes a second limiting component 2021. A second limiting side plate 2022 is connected to the middle outer wall of the second limiting component 2021, and a second limiting protrusion 2023 is installed at the middle bottom of the second limiting component 2021. The bottom of the second limiting side plate 2022 is connected to the other side of the inner wall of the first alloy body 101 via a second return spring 2024. The second limiting protrusion 2023 is limited and installed inside the limiting groove 2014, and the second limiting groove 2014 and the second limiting component 2023 are limited and installed inside the mounting groove 102 via a limiting rod. The first limiting connector 201 and the second limiting connector 202 are connected via the limiting groove 2014 and the second limiting protrusion 2023. The cooperation of block 2023 achieves precise positioning. The limiting rod further fixes the limiting connector 1 201 and the limiting connector 202, ensuring the stability of the connecting assembly 2 in the mounting groove 102. The limiting connector 1 201 is connected to one side of the inner wall of the alloy body 101 through the return spring 1 2013, and the limiting connector 202 is connected to the other side of the inner wall of the alloy body 101 through the return spring 2 2024. When the assembled alloy part 1 and the assembled alloy assembly 2 3 are subjected to external force, the return spring 1 2013 and the return spring 2 2024 can provide elastic support, so that the connecting assembly 2 returns to its original position after the external force disappears.
[0035] The working principle of this high-performance copper strip alloy is mainly based on its unique structural design and material combination. The connection between the assembled alloy component 1 and the assembled alloy component 2 is achieved through the connecting component 2. At the same time, the high-precision limiting and elastic reset functions are achieved by using the limiting connector and the return spring. The first alloy component 1 is connected to the second alloy component 3 via a connecting assembly 2. The connecting assembly 2 includes a first limiting connector 201 and a second limiting connector 202, both of which are fixed in the mounting groove 102 of the first alloy component 1 by a limiting rod. The limiting block 302 of the second alloy component 3 is embedded between the first limiting connector 201 and the second limiting connector 202, forming a stable mechanical connection. The first limiting connector 201 and the second limiting connector 202 achieve precise positioning through the cooperation of the limiting groove 2014 and the limiting protrusion 2023. The limiting rod further fixes the first limiting connector 201 and the second limiting connector 202, ensuring the stability of the connecting assembly 2 in the mounting groove 102. The first limiting connector 201 is connected to one side of the inner wall of the first alloy body 101 by a return spring 2013, and the second limiting connector 202 is fixed by a return spring 2013. Spring 2024 is connected to the other side of the inner wall of alloy body 101. When the assembled alloy part 1 and the assembled alloy component 2 3 are subjected to external force, the return spring 2013 and the return spring 2024 can provide elastic support, so that the connecting component 2 returns to its original position after the external force disappears. Alloy body 101 is uniformly mixed with copper material 1011, aluminum material 1012 and beryllium material 1013. Copper material 1011 provides good electrical and thermal conductivity, aluminum material 1012 reduces the overall weight, and beryllium material 1013 enhances the strength and corrosion resistance of the alloy. This material combination gives alloy body 101 a comprehensive performance of high strength, lightweight and corrosion resistance. Alloy body 2 301 cooperates with limit connector 1 201 and limit connector 2 202 through limit block 302 to ensure the stability and reliability of the connection. During assembly, assembly alloy component 1 is connected to assembly alloy component 2 3 via connecting component 2. Limiting connector 1 201 and limiting connector 2 202 are fixed in the mounting groove 102 by limiting rods. Limiting block 302 is embedded between limiting connector 1 201 and limiting connector 2 202. When the alloy is subjected to external force, return spring 1 2013 and return spring 2 2024 provide elastic support to prevent displacement or damage to connecting component 2. The cooperation of limiting groove 2014 and limiting protrusion 2023 ensures precise positioning of connecting component 2, preventing loosening or misalignment. Through material combination and structural design, this high-performance copper strip alloy possesses high strength, lightweight, corrosion resistance, and good conductivity. The elastic reset function of connecting component 2 improves the durability and stability of the alloy, making it suitable for high-precision and high-performance applications. The working principle of this high-performance copper strip alloy mainly relies on its unique connecting component 2 and material combination. Through the structural design of limiting connectors, return springs, and limiting grooves, high-precision connection and elastic reset functions are achieved.Meanwhile, the combination of materials such as copper, aluminum, and beryllium optimizes the alloy's strength, weight, and corrosion resistance, making it suitable for high-performance applications.
[0036] The preferred embodiments of this utility model disclosed above are merely illustrative of the present utility model. These preferred embodiments do not exhaustively describe all details, nor do they limit the utility model to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of this utility model, thereby enabling those skilled in the art to better understand and utilize it. This utility model is limited only by the claims and their full scope and equivalents.
Claims
1. A copper alloy strip comprising an assembled alloy piece one (1), characterized by: One side of the first assembly alloy component (1) is connected to the inside of the second assembly alloy component (3) via a connecting component (2); The connecting component (2) includes a limiting connector one (201), and a limiting connector two (202) is installed in the middle of the limiting connector one (201).
2. The copper alloy strip of claim 1, wherein: The assembled alloy component (1) includes an alloy body (101), the inner wall of which is provided with an installation groove (102), and the two sides of the installation groove (102) are connected to a limiting installation plate (103).
3. The copper alloy strip of claim 1, wherein: The limiting connector one (201) and the limiting connector two (202) are installed inside the mounting groove (102) by limiting rods.
4. The copper alloy strip of claim 1 wherein: The assembled alloy component two (3) includes an alloy body two (301), and the inner wall of the alloy body two (301) is connected to a limiting block (302). The limiting block (302) is correspondingly limited inside between the limiting connector one (201) and the limiting connector two (202).
5. The copper alloy strip of claim 3, wherein: The limiting connector 1 (201) includes a limiting component 1 (2011), the middle outer wall of the limiting component 1 (2011) is connected to a limiting side plate 1 (2012), and a limiting groove (2014) is opened in the middle of the limiting component 1 (2011). The bottom of the limiting side plate 1 (2012) is connected to one side of the inner wall of the alloy body 1 (101) by a reset spring 1 (2013).
6. The copper alloy strip of claim 3, wherein: The second limiting connector (202) includes a second limiting component (2021). The middle outer wall of the second limiting component (2021) is connected to a second limiting side plate (2022), and a second limiting protrusion (2023) is installed at the middle bottom of the second limiting component (2021). The bottom of the second limiting side plate (2022) is connected to the other side of the inner wall of the first alloy body (101) by a second reset spring (2024). The second limiting protrusion (2023) is limited and installed inside the limiting groove (2014), and the second limiting protrusion (2023) and the limiting groove (2014) are limited and installed inside the mounting groove (102) by a limiting rod.
Citation Information
Patent Citations
W-shaped copper alloy belt
CN201000886Y