Copper ore 5G module deployment auxiliary device

By using a stainless steel connector body, a nickel-chromium alloy membrane, and a spring-loaded contact in the auxiliary device for deploying 5G modules in copper mines, combined with a polytetrafluoroethylene insulating shell and guide groove design, the corrosion resistance and unstable electrical connection problems of traditional devices are solved, achieving stable signal transmission and convenient installation.

CN223583354UActive Publication Date: 2025-11-21YUNNAN DIQING NONFERROUS METAL CO LTD
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Patent Information

Application Number
CN202520226801.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-13
Publication Date
2025-11-21
Estimated Expiration
2035-02-13

AI Technical Summary

Technical Problem

Traditional copper mine 5G module deployment auxiliary devices have poor corrosion resistance in corrosive environments, unstable electrical connections that affect signal transmission, and are inconvenient to install and maintain.

Method used

The connector body is made of stainless steel with a nickel-chromium alloy coating. Combined with spring-loaded contacts and a polytetrafluoroethylene insulating shell, it features guide grooves and fixing clips to ensure electrical connection stability and protection.

Benefits of technology

It improves the corrosion resistance of the connector, ensures the stability and reliability of the electrical connection, simplifies the installation and disassembly process, extends the service life, and improves the signal transmission quality.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model provides an auxiliary device for copper ore 5G module deployment, which belongs to the technical field of auxiliary devices and comprises a connector body, a metal film, a spring type contact, an insulating shell, a fixing buckle and a guide groove. The connector main body is made of stainless steel, the metal film is plated on the surface of the connector main body, the spring type contact is arranged in the connector main body, the insulating shell wraps the connector main body, the fixing buckles are arranged on the two sides of the insulating shell, the guide groove is formed in the surface of the insulating shell, and the metal film is plated on the surface of the connector main body. When the connector body is in butt joint with the 5G module, the contact body of the spring type contact is in close contact with the conductive pin of the 5G module to achieve electric connection, the technical problems that a traditional connector is poor in anti-corrosion performance and unstable in electric connection are solved, and the installation and maintenance efficiency is improved.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to the technical field of auxiliary device, specifically, relate to a copper mine 5G module deployment auxiliary device. BACKGROUND

[0002] In the current digitalization and intelligentization development wave, the application of 5G technology brings great changes to various industries. For the copper mine industry, the introduction of 5G technology is particularly critical. Copper mines are usually located in remote areas, with complex environment and complex internal space structure, and there are high humidity, dust, corrosive substances and other harsh conditions. In such an environment, a series of auxiliary devices are needed to ensure that the 5G module can run stably and efficiently.

[0003] However, the traditional copper mine 5G module deployment auxiliary device has many drawbacks. In terms of connector, the material of the traditional connector often does not have good corrosion resistance. Because there are a lot of corrosive substances in the copper mine, such as acid gas, moisture containing minerals, etc., the traditional connector is easily corroded in such an environment, causing the structure of the connector to be damaged, the conductivity to be reduced, and thus affecting the connection stability of the 5G module and the external circuit, causing signal transmission to be interrupted or interfered, and seriously affecting the normal work of the 5G module. From the connection method, the traditional connector mostly adopts simple plug-in or screw fixing method. Simple plug-in connection is easy to loosen in the vibration environment of the copper mine, causing poor contact; while the screw fixing method is relatively firm, but the installation and disassembly process is cumbersome, consuming a lot of time and manpower, which is not conducive to the rapid deployment and later maintenance of the 5G module. In terms of electrical connection stability, the contact design of the traditional connector is unreasonable, and cannot always maintain close contact with the conductive pins of the 5G module in a complex environment. When encountering vibration, temperature change and other conditions, gaps are easily formed between the contact and the conductive pins, causing increased resistance and increased signal transmission loss, and even signal interruption, which cannot meet the requirements of 5G technology for high-speed and stable data transmission. UTILITY MODEL CONTENTS

[0004] Therefore, the utility model provides a copper mine 5G module deployment auxiliary device, which solves the technical problems of poor corrosion resistance of traditional connectors and unstable electrical connection, and improves the installation and maintenance efficiency.

[0005] The utility model is implemented as follows:

[0006] The utility model provides a kind of copper mine 5G module deployment auxiliary device, wherein, including connector main body, metal film, spring contact, insulating shell, fixed buckle and guide groove;The connector main body is stainless steel material, the metal film is plated on the connector main body surface, the spring contact is arranged in the connector main body interior, the insulating shell is wrapped the connector main body, the fixed buckle is arranged in the insulating shell both sides, the guide groove is opened in the insulating shell surface.

[0007] When the connector main body is connected with 5G module, the contact body of spring contact is in close contact with the conductive pin of 5G module, and electrical connection is realized.

[0008] The connector main body of stainless steel material provides good structural strength and durability;Surface nickel-chromium alloy metal film is plated, which enhances the corrosion resistance of the connector main body, so that it can work stably in the harsh environment of copper mine humidity and many corrosive substances, prolonging the service life;Spring contact ensures the stability of electrical connection;Insulating shell prevents electric shock and protects internal structure;Fixed buckle facilitates stable connection with 5G module;Guide groove facilitates accurate plug-in connection of connector and 5G module.

[0009] Based on the above technical solution, the copper mine 5G module deployment auxiliary device of the utility model can also be improved as follows:

[0010] Among them, the connector main body is cylindrical, one end is provided with a docking port for connecting with 5G module, and the other end is provided with a connection port for connecting external line.

[0011] The beneficial effects of the above improvement scheme are: the cylindrical connector main body is convenient for handheld operation and installation, and the clear setting of the docking port and the connection port facilitates the separate connection with the 5G module and the external line, making the connection structure clear and easy to operate.

[0012] Further, the metal film is a nickel-chromium alloy film with a thickness of 0.05-0.1mm.

[0013] The beneficial effects of the above improvement scheme are: the nickel-chromium alloy film has good corrosion resistance and oxidation resistance, and this thickness range can ensure sufficient corrosion resistance without affecting the conductivity and overall structural strength of the connector main body.

[0014] Further, the spring contact includes a contact body, a compression spring and a fixed seat, the fixed seat is fixed in the connector main body, one end of the compression spring is connected to the fixed seat, and the other end is connected to the contact body.

[0015] Further, the contact body is made of copper alloy material, and the surface is plated with a silver layer.

[0016] The copper alloy material ensures good electrical conductivity, the surface silver plating further reduces the contact resistance, improves the electrical conductivity, reduces the loss in the signal transmission process, and improves the signal transmission quality of the 5G module.

[0017] Further, the insulating shell is made of polytetrafluoroethylene material, and an installation groove matched with the connector body is arranged inside the insulating shell.

[0018] The beneficial effects of the above improvement scheme are that polytetrafluoroethylene has good insulation performance, chemical stability and corrosion resistance, which can effectively protect the internal conductive components and prevent leakage and external environment from eroding the internal structure; the matched installation groove ensures that the connector body is firmly installed and is not easy to shake.

[0019] Inside the insulating shell, an installation groove matched with the connector body is arranged, the installation groove is a cylindrical groove, the inner diameter of the installation groove is slightly smaller than the outer diameter of the connector body, and the connector body is tightly embedded in the installation groove through interference fit. On both sides of the insulating shell, symmetrical fixing buckles are arranged, the fixing buckles are elastic metal sheets, one end of each fixing buckle is hingedly connected to the insulating shell, and the other end of each fixing buckle is provided with a clamping tooth, and a non-slip rubber pad is attached to the surface of the clamping tooth. Two symmetrical long strip-shaped guide grooves are further arranged on the surface of the insulating shell, the length of each guide groove is consistent with the length of the insulating shell, and the guide grooves are used for guiding the connection of the connector and the 5G module, and guide balls are uniformly distributed in the guide grooves.

[0020] Further, the fixing buckle is an elastic metal sheet, one end of the fixing buckle is hingedly connected to the insulating shell, and the other end of the fixing buckle is provided with a clamping tooth for cooperation and fixation with the clamping groove on the 5G module.

[0021] Further, the guide groove is a long strip-shaped groove arranged symmetrically on the surface of the insulating shell, and the length of the guide groove is consistent with the length of the insulating shell.

[0022] The guide balls arranged in the guide grooves facilitate the plugging operation of the connector and the 5G module. The symmetrical guide grooves with consistent lengths can accurately guide the connection direction of the connector and the 5G module, improve the accuracy and efficiency of plugging, and reduce damage caused by inaccurate connection.

[0023] Further, a contact installation cavity for accommodating the spring contact is arranged inside the connector body, and the contact installation cavity is in communication with the connection port and the connection port of the connector body.

[0024] A chamfer is arranged at the connection port of the connector body, which facilitates quick connection with the 5G module.

[0025] Further, the spring contacts are arranged in a ring array inside the connector body, and the number of the spring contacts is 4-8.

[0026] The beneficial effects of the improved scheme are that the annular array distributed spring contacts can uniformly contact the 5G module conductive pins, ensuring the stability and reliability of the electrical connection, and multiple contacts can share the current, reducing the load of a single contact and improving the conductivity of the connector.

[0027] Compared with the prior art, the copper mine 5G module deployment auxiliary device provided by the utility model has the beneficial effects that:

[0028] Excellent corrosion resistance: the connector body of the utility model is made of stainless steel, which has high strength and corrosion resistance, can withstand certain external impact and is not easy to be corroded. The surface is plated with a nickel-chromium alloy film, further enhancing the corrosion resistance. The nickel-chromium alloy film has good corrosion resistance and oxidation resistance, can effectively block the corrosion of corrosive substances in the copper mine environment to the connector body, ensure the long-term stable work of the connector in harsh environments, greatly prolong the service life of the connector, and reduce the maintenance and replacement cost caused by corrosion;

[0029] Stable electrical connection: the design of the spring contact is the key to realize stable electrical connection. The spring contact includes a contact body, a compression spring and a fixed seat. The elastic action of the compression spring keeps the contact body in close contact when it contacts the 5G module conductive pin. Even in complex working conditions such as vibration and displacement of the copper mine, it can effectively avoid the problem of signal interruption or unstable transmission caused by poor contact. At the same time, the spring contact is arranged in an annular array inside the connector body. This distribution mode can uniformly contact the 5G module conductive pin, ensuring the stability and reliability of the electrical connection. Multiple contacts can also share the current, reducing the load of a single contact and improving the conductivity of the connector. In addition, the contact body is made of high-conductivity copper alloy material and plated with silver. The copper alloy ensures good conductivity, the silver plating layer further reduces the contact resistance, improves the conductivity, reduces the loss in the signal transmission process, and improves the signal transmission quality of the 5G module;

[0030] Convenient installation and disassembly: the connector body is in a cylindrical shape, facilitating handheld operation and installation. The clear arrangement of the interfacing port at one end and the connecting port at the other end facilitates separate connection with the 5G module and external lines, making the connection structure clear and the operation simple. The guide grooves are two symmetrically arranged long groove-shaped recesses on the surface of the insulating shell, with a length consistent with the length of the insulating shell, which can accurately guide the interfacing direction of the connector and the 5G module, improve the accuracy and efficiency of plugging, and reduce damage caused by inaccurate interfacing. The guide balls arranged in the guide grooves further reduce the frictional force in the plugging process of the connector and the 5G module, making the plugging operation smoother, while reducing the wear and tear on the guide grooves and the guide structure of the 5G module, prolonging the service life. The chamfer arranged at the interfacing port of the connector body also facilitates quick interfacing with the 5G module, reducing the difficulty of interfacing and improving the interfacing efficiency. The fixing buckle is a flexible metal sheet, hinged at one end to the insulating shell and provided with a clamping tooth at the other end, used to cooperate with the clamping groove on the 5G module to fix it, which can be easily clamped into the clamping groove of the 5G module and provide sufficient fixing force to prevent the connector from accidentally falling off. When disassembling, press the fixing buckle to make it disengage from the clamping groove and the connector can be pulled out, which is simple and convenient to operate.

[0031] Reliable protection performance: the insulating shell is made of polytetrafluoroethylene material, which has good insulation performance, chemical stability and corrosion resistance, can effectively protect the internal conductive components, prevent leakage and external environment from eroding the internal structure. The insulating shell is provided with a mounting groove matched with the connector body, and the connector body is tightly embedded in the mounting groove to ensure firm installation and prevent shaking. The sealing rubber layer arranged between the connector body and the insulating shell further enhances the protection performance, prevents water vapor and dust in the copper mine environment from entering the connector, avoids corrosion and damage to the internal conductive components, and ensures long-term stable operation of the connector. The anti-slip rubber pad arranged on the surface of the clamping tooth of the fixing buckle increases the friction between the clamping tooth and the clamping groove of the 5G module, making the fixing effect of the fixing buckle better, even in harsh environments such as vibration, the connector can also be effectively prevented from loosening and falling off. The anti-slip texture arranged on the surface of the insulating shell facilitates plugging operation, increases the friction between the operator's hand and the insulating shell, and makes the operator hold better when plugging the connector, preventing hand slipping from causing operation errors, improving the safety and convenience of operation. BRIEF DESCRIPTION OF DRAWINGS

[0032] In order to more clearly illustrate the technical scheme of the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the description of the embodiments of the present application. Obviously, the drawings in the following description are only some embodiments of the present application, and for those skilled in the art, other drawings can also be obtained from these drawings without creating labor.

[0033] Fig. 1It is an example drawing of a copper mine 5G module deployment auxiliary device;

[0034] Fig. 2 It is a top view of a connector body of a copper mine 5G module deployment auxiliary device;

[0035] Fig. 3 It is a top view of a copper mine 5G module deployment auxiliary device;

[0036] In the drawings, the components represented by each reference numeral are listed as follows:

[0037] 10, connector body; 11, metal film; 12, fixed buckle; 13, guide groove; 20, spring contact; 30, insulating shell. DETAILED DESCRIPTION

[0038] In order to make the purpose, technical scheme and advantages of the embodiments of the present application more clear, the technical scheme in the embodiments of the present application will be described clearly and completely below in combination with the drawings in the embodiments of the present application.

[0039] As Figs. 1-3 shown, it is a first embodiment of a copper mine 5G module deployment auxiliary device provided by the present application, in the embodiment, including connector body 10, metal film 11, spring contact 20, insulating shell 30, fixed buckle 12 and guide groove 13; the connector body 10 is made of stainless steel, the metal film 11 is plated on the surface of the connector body 10, the spring contact 20 is arranged inside the connector body 10, the insulating shell 30 wraps the connector body 10, the fixed buckle 12 is arranged on both sides of the insulating shell 30, and the guide groove 13 is arranged on the surface of the insulating shell 30.

[0040] In the above technical scheme, the connector body 10 is in a cylindrical shape, one end is provided with a docking port for docking with a 5G module, and the other end is provided with a connection port for connecting external lines.

[0041] Further, in the above technical scheme, the metal film 11 is a nickel-chromium alloy film with a thickness of 0.1mm.

[0042] Further, in the above technical scheme, the spring contact 20 includes a contact body, a compression spring and a fixed seat, the fixed seat is fixed inside the connector body, one end of the compression spring is connected to the fixed seat, and the other end is connected to the contact body.

[0043] Further, in the above technical scheme, the contact body is made of copper alloy material, and the surface is plated with a silver layer.

[0044] Further, in the above technical scheme, the insulating shell 30 is made of polytetrafluoroethylene material, and has an installation groove adapted to the connector body 10 inside, and the connector body 10 is embedded in the installation groove.

[0045] Further, in the above technical solution, the fixed buckle 12 is an elastic metal sheet, one end of which is hinged to the insulating shell 30, and the other end of which is provided with a clamping tooth for cooperating with a clamping groove on the 5G module to be fixed.

[0046] Further, in the above technical solution, the guide groove 13 is a long strip-shaped groove symmetrically arranged on the surface of the insulating shell 30, and the length of the guide groove 13 is consistent with the length of the insulating shell 30.

[0047] Further, in the above technical solution, the inside of the connector main body 10 is provided with a contact mounting cavity for accommodating the spring contact 20, and the contact mounting cavity is in communication with the butt joint port and the connection port of the connector main body 10.

[0048] Further, in the above technical solution, the spring contact 20 is arranged in a ring array inside the connector main body 10, and the number is 4.

[0049] Specifically, the principle of the utility model is:

[0050] The anti-corrosion technical principle is that the connector main body is made of stainless steel material, and the stainless steel contains alloy elements such as chromium and nickel, which can form a dense oxide film on the surface of the stainless steel, which can prevent oxygen, water and other chemicals from further reacting with the internal metal, thereby playing a certain anti-corrosion role. And the nickel-chromium alloy film plated on the surface of the stainless steel is high in corrosion resistance. Nickel-chromium alloy can form a stable passivation film in the air, and the passivation film has good chemical stability, which can effectively block various corrosive media in the copper mine environment, such as acidic substances, salts and the like, so that the connector main body is double-protected, and the corrosion resistance in harsh environment is greatly improved.

[0051] The electric connection technical principle is that the design of the spring contact is based on the principle of elasticity. The compression spring has elastic potential energy, when the connector is butt jointed with the 5G module, the contact body is subjected to the reaction force of the conductive pin of the 5G module, the compression spring is compressed, and the elastic potential energy is stored. Under the action of the elastic potential energy, the contact body always maintains a certain pressure on the conductive pin, ensuring that the two are in close contact. According to the electrical principle, the contact resistance is inversely proportional to the contact pressure, and close contact can effectively reduce the contact resistance and ensure the smooth transmission of current. A plurality of spring contacts are arranged in a ring array, which is to make the current uniformly distributed, and avoid overheating or unstable conduction caused by the concentration of current on a single contact. The contact body is made of copper alloy, which has good conductivity, and the concentration of free electrons in the copper alloy is high, which can quickly move in the electric field to form an electric current. The surface is plated with silver because the resistivity of silver is lower than that of copper, and the silver plating layer can further reduce the contact resistance, improve the conductivity, and reduce the energy loss in the signal transmission process.

[0052] The installation and fixing technology principle: the cylindrical connector body conforms to the ergonomic principle, facilitating the operator to hold and operate. The clear setting of the docking port and the connection port is to realize the standardization and standardization of connection, and facilitate connection with different equipment. The design of the guide groove utilizes the geometric positioning principle, and the two symmetrical and consistent guide grooves can accurately match the guide structure on the 5G module, guide the connector to be accurately inserted, and ensure the accuracy of the docking position. The application of guide ball is based on the rolling friction principle, and the rolling friction coefficient is much smaller than the sliding friction coefficient. In the process of inserting and pulling out the connector, the guide ball rolls in the guide groove, greatly reducing the friction, making the insertion and pulling operation more labor-saving and smooth. The elastic metal sheet design of the fixing buckle utilizes the elastic deformation principle of metal. When the teeth are clamped into the 5G module slot, the elastic metal sheet deforms elastically, generates a certain elastic force, and makes the teeth tightly clamp the slot to provide reliable fixing force. When disassembling, press the fixing buckle to make it elastically deform, and the teeth are separated from the slot to realize the disassembly of the connector.

Claims

1. A copper mine 5G module deployment auxiliary device, characterized in that, The connector includes a connector body (10), a metal film (11), a spring-loaded contact (20), an insulating shell (30), a fixing buckle (12), and a guide groove (13). The connector body (10) is made of stainless steel. The metal film (11) is plated on the surface of the connector body (10). The spring-loaded contact (20) is disposed inside the connector body (10). The insulating shell (30) encloses the connector body (10). The fixing buckle (12) is disposed on both sides of the insulating shell (30). The guide groove (13) is opened on the surface of the insulating shell (30).

2. The copper mine 5G module deployment auxiliary device according to claim 1, characterized in that, The connector body (10) is cylindrical, with a docking port at one end for docking with a 5G module and a connection port at the other end for connecting to an external line.

3. The copper mine 5G module deployment auxiliary device according to claim 2, characterized in that, The metal film (11) is a nickel-chromium alloy film with a thickness of 0.05-0.1 mm.

4. The copper mine 5G module deployment auxiliary device according to claim 3, characterized in that, The spring-type contact (20) includes a contact body, a compression spring and a fixing seat. The fixing seat is fixed inside the connector body. One end of the compression spring is connected to the fixing seat and the other end is connected to the contact body.

5. The copper mine 5G module deployment auxiliary device according to claim 4, characterized in that, The contact body is made of copper alloy and has a silver plating layer on its surface.

6. The copper mine 5G module deployment auxiliary device according to claim 5, characterized in that, The insulating shell (30) is made of polytetrafluoroethylene and has an internal mounting groove that is adapted to the connector body (10). The connector body (10) is embedded in the mounting groove.

7. The copper mine 5G module deployment auxiliary device according to claim 6, characterized in that, The fixing buckle (12) is an elastic metal sheet, one end of which is hinged to the insulating shell (30), and the other end is provided with a locking tooth for fixing with the slot on the 5G module.

8. The copper mine 5G module deployment auxiliary device according to claim 7, characterized in that, The guide groove (13) is two elongated grooves symmetrically arranged on the surface of the insulating shell (30), and the length of the guide groove (13) is the same as the length of the insulating shell (30).

9. The copper mine 5G module deployment auxiliary device according to claim 8, characterized in that, The connector body (10) has a contact mounting cavity inside for accommodating the spring contact (20), and the contact mounting cavity is connected to the docking port and the connection port of the connector body (10).

10. A copper mine 5G module deployment auxiliary device according to claim 9, characterized in that, The spring-type contacts (20) are arranged in a ring array inside the connector body (10), with a quantity of 4-8.