Computer flat cable automatic detection device
By setting up support columns and detection components around the detection table, and combining optical detection with robotic arm operation, the problems of low efficiency and low automation in existing detection equipment are solved, achieving high-precision and automated computer-controlled cable inspection.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- XINXIWANG INTELLIGENT TECH (SHENZHEN) CO LTD
- Filing Date
- 2025-01-20
- Publication Date
- 2026-05-26
AI Technical Summary
Existing computer-controlled cable inspection equipment is inefficient and cannot meet the rapid inspection needs of large-scale production lines. Furthermore, manual operation is prone to positional deviations that affect the accuracy and consistency of inspections. It is also not compatible with robotic arms, resulting in a low degree of automation.
Design an automatic computer cable testing device. By setting up support columns around the testing table to form a testing channel, and installing testing components facing the testing table surface, the device combines optical testing principles and high-precision positioning design, and uses a robotic arm to grasp and accurately place the computer, reducing reliance on manual operation.
It improves testing efficiency and accuracy, reduces labor costs, avoids human error, enhances the automation level of the production line and the consistency of testing, and has strong versatility and adaptability.
Smart Images

Figure CN224287024U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of computer testing equipment technology, and in particular to an automatic testing device for computer ribbon cables. Background Technology
[0002] With the rapid development of the electronic equipment manufacturing industry, the internal wiring structures of devices such as computers and mobile phones are becoming increasingly complex. As a crucial carrier for signal transmission and circuit connections, the accuracy of the wiring's installation position directly affects the performance and stability of the equipment. In computer manufacturing, wiring installation often requires high-precision alignment; even the slightest deviation can lead to device malfunction or performance degradation. Therefore, inspecting the installation accuracy of computer wiring has become a vital aspect of production quality control.
[0003] Existing testing equipment typically relies on manual operation, where operators manually place the computer to be tested onto the testing table, and the equipment checks the cable installation position. This traditional method has significant drawbacks: first, manual operation is inefficient and cannot meet the rapid testing requirements of large-scale production lines; second, manual placement is prone to positional deviations, affecting testing accuracy and consistency; and third, the design of the testing table and testing components in existing equipment does not consider compatibility with robotic arms, making it difficult to integrate into automated production lines. This results in a high degree of dependence on manual operation, low automation, and low overall testing efficiency.
[0004] Therefore, existing computer cable testing devices suffer from low testing efficiency. Utility Model Content
[0005] The present invention aims to at least solve one of the technical problems existing in the prior art. Therefore, one objective of the present invention is to provide an automatic detection device for computer ribbon cables.
[0006] The automatic detection device for computer ribbon cables is characterized by comprising:
[0007] A testing station, used to mount the computer to be tested;
[0008] The support column is provided in a rectangular array on the outer edge of the detection table, and the free end of the support column is provided with a mounting platform.
[0009] A detection component is mounted on the mounting platform, with the detection component facing the platform surface, and is used to detect the computer to be tested.
[0010] A detection channel is provided between each pair of adjacent support columns.
[0011] In some examples of this utility model, the detection component includes:
[0012] A camera is mounted on the mounting platform, and the camera is directly opposite the detection platform;
[0013] A light source compensation device is installed around the camera and is used to provide adjustable light.
[0014] In some examples of this utility model, the detection platform is provided with a fixed area and a lifting area. The fixed area is used to install the support column, the lifting area is used to install the limiting component, the limiting component is used to fix the computer with detection, and the lifting area can be vertically raised and lowered.
[0015] In some examples of this utility model, the limiting component includes four limiting blocks, which are arranged to form a rectangular frame, and the rectangular frame is adapted to the computer to be tested.
[0016] In some examples of this utility model, a lifting structure is provided at the bottom of the lifting area, the lifting structure comprising:
[0017] The lead screw is provided in pairs, and the movable area is fixedly connected to the top of the lead screw;
[0018] A drive device, wherein the drive device is connected to any of the lead screws;
[0019] A transmission device is provided between the two lead screws.
[0020] In some examples of this utility model, the transmission device includes:
[0021] A transmission gear and a drive gear, wherein the transmission gear and the drive gear are respectively mounted on two lead screws;
[0022] A transmission chain, which is fitted between the transmission gear and the drive gear.
[0023] In some examples of this utility model, a maintenance cabinet is also included, which is mounted on the lifting structure and has a cabinet door.
[0024] In some examples of this utility model, the bottom of the maintenance cabinet is provided with anti-slip feet.
[0025] In some examples of this utility model, the maintenance cabinet is equipped with a cooling fan and ventilation openings.
[0026] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. The automatic computer cable inspection device proposed in this invention, through a rationally designed layout of the inspection platform, support columns, and inspection components, particularly the formation of inspection channels between the support columns and the installation of inspection components at the free ends of the support columns, successfully solves the problems of existing inspection equipment being unable to adapt to robotic arm operation, low inspection efficiency, and high reliance on manual labor. Specifically, this invention sets support columns around the inspection platform, and the inspection channels formed between the support columns provide a clear path and operating space for the robotic arm to grasp and accurately place the computer to be inspected, avoiding errors from manual placement and improving the automation level of the production line. Furthermore, by fixing the inspection components to the free ends of the support columns and ensuring that the inspection components are directly facing the inspection platform, comprehensive coverage and accurate identification of the cable positions are achieved, ensuring high precision and consistency in the inspection process. The design of the inspection channels further improves the ease of operation and flexibility of the equipment, enabling the device to adapt to computers of different specifications and shapes, and possessing strong versatility. By leveraging optimized structure and fully automated operation, this invention effectively reduces reliance on manual operation, significantly lowers labor costs, and avoids detection errors caused by human factors, thereby improving detection efficiency and product quality. Through optical detection principles combined with a high-precision positioning design, the detection component can quickly identify installation deviations in computer cabling and monitor installation quality in real time. Attached Figure Description
[0027] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0028] Figure 1 This is a first-view structural schematic diagram of the automatic computer cable detection device provided according to this utility model;
[0029] Figure 2 This is a second-view structural schematic diagram of the automatic computer cable detection device provided according to the present invention;
[0030] Figure 3 This is a schematic diagram of the internal structure of the automatic computer cable detection device provided according to this utility model.
[0031] Explanation of reference numerals in the attached figures:
[0032] 100 - Testing table; 110 - Fixed area; 120 - Lifting area; 130 - Limit block;
[0033] 200-Support column;
[0034] 300 - Detection component; 301 - Camera; 310 - Light source compensation device;
[0035] 400-Detection Channel;
[0036] 500 - Lifting device; 510 - Lead screw; 520 - Drive device; 530 - Transmission device;
[0037] 600 - Inspection cabinet; 610 - Cabinet door;
[0038] 700-Anti-slip feet;
[0039] 800 - Ventilation opening. Detailed Implementation
[0040] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.
[0041] In the description of this utility model, it should be understood that the terms "center," "longitudinal," "transverse," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," "counterclockwise," "axial," "radial," and "circumferential," etc., indicating the orientation or positional relationship shown in the accompanying drawings, are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Furthermore, features defined with "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, unless otherwise stated, "a plurality of" means two or more.
[0042] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0043] The embodiments of this utility model are described in detail below. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.
[0044] Figure 1 This is a first-view structural schematic diagram of the automatic computer cable detection device provided according to this utility model; Figure 2 This is a second-view structural schematic diagram of the automatic computer cable detection device provided by this utility model. Figure 3 This is a schematic diagram of the internal structure of the automatic computer cable detection device provided according to this utility model.
[0045] The following is for reference. Figures 1-3 This invention describes an automatic computer cable testing device according to an embodiment of the present invention, comprising: a testing platform 100 for mounting a computer to be tested; four support columns 200 arranged in a rectangular array on the outer edge of the testing platform 100, with mounting platforms at the free ends of the support columns 200; and a testing component 300 mounted on the mounting platforms, facing the surface of the testing platform 100, for testing the computer to be tested; wherein a testing channel 400 is provided between two adjacent support columns 200.
[0046] Specifically, the automatic computer cable testing device in this embodiment achieves precise testing of the computer cables by rationally designing the layout of the testing platform 100, support columns 200, and testing components 300. Support columns 200 are arranged around the testing platform 100, and testing components 300 are installed at their free ends. The testing channel 400 formed between the support columns 200 provides the path required for the robotic arm to operate, enabling it to perform operations such as grasping, placing, and adjusting. The testing components 300 are fixed to the free ends of the support columns 200, facing the testing platform 100, ensuring comprehensive coverage and accurate identification of the cables. This layout design allows the device to automate the testing process while maintaining high flexibility, adapting to the testing needs of computer cables of different specifications and shapes.
[0047] Furthermore, this utility model's automatic computer wiring detection device, through a rationally designed layout of the detection platform 100, support column 200, and detection component 300, successfully solves the problems of existing detection equipment being unable to adapt to robotic arm operation, low detection efficiency, and high reliance on manual labor. Specifically, the detection channel 400 provides a clear path and operating space for the robotic arm to grasp and accurately place the computer to be detected, avoiding errors from manual placement and improving the automation level of the production line. By fixing the detection component 300 to the free end of the support column 200 and aligning it directly with the detection platform 100, comprehensive coverage and accurate identification of the wiring position are achieved, ensuring high precision and consistency in the detection process. In addition, the optimized structural design of the device reduces reliance on manual operation, significantly lowers labor costs, avoids detection errors caused by human factors, thereby greatly improving detection efficiency and product quality, while also possessing strong versatility and adaptability to computers of different specifications and shapes.
[0048] It is worth noting that the material of the testing platform 100 can be selected from aluminum alloy, stainless steel or composite materials to meet different strength requirements. The arrangement of the support columns 200 can be adjusted to a hexagonal or circular array according to the shape of the testing platform 100 to adapt to specific needs. The testing component 300 can be replaced with a three-dimensional laser sensor or a multispectral camera 301 to meet higher precision testing requirements. The size and shape of the testing channel 400 can be adjusted according to the specifications of the computer to be tested to adapt to larger or special-shaped computers. The robotic arm path can also be optimized according to the device structure to improve testing efficiency through more efficient motion trajectory design.
[0049] Please continue reading Figure 1-3As shown, according to an optional embodiment of the present invention, the detection component 300 includes: a camera 301, which is mounted on a mounting platform and faces the detection platform 100; and a light source compensation device 310, which is mounted around the camera 301 and is used to provide an adjustable light source.
[0050] Specifically, this embodiment involves mounting a camera 301 and a light source compensation device 310 on a mounting platform. The camera 301 faces the inspection platform 100 directly, enabling real-time acquisition of image data of the ribbon cable of the computer under inspection. The light source compensation device 310 is installed around the camera 301, providing adjustable light intensity according to the actual inspection environment, avoiding inspection errors caused by insufficient or excessive light. The combined design of the camera 301 and the light source compensation device 310 ensures that the inspection component 300 has stable imaging performance and can adapt to different ambient light conditions, improving the accuracy and consistency of ribbon cable inspection.
[0051] Furthermore, the detection component 300 of this invention, through the combined application of camera 301 and light source compensation device 310, solves the problem of image distortion caused by lighting issues in traditional detection equipment, while optimizing the clarity and accuracy of the detection. Specifically, the adjustable function of the light source compensation device 310 can adapt to different lighting conditions, effectively improving the adaptability of the detection environment. The direct alignment of camera 301 and detection stage 100 ensures the integrity of the detection image, further improving the accuracy of ribbon cable detection. With this configuration, the device can operate stably in complex detection environments, significantly reducing detection errors caused by changes in ambient light, and providing a reliable guarantee for automated detection on the production line.
[0052] It is worth noting that the camera 301 can be selected in different resolutions or with different functions according to specific inspection requirements, such as an industrial camera 301, an infrared camera 301, or a camera 301 with depth sensing function, to adapt to different inspection needs; the light source compensation device 310 can be selected from LED lights, laser light sources, or ring light sources, and adjust the wavelength or brightness of the light according to the material and color of the computer to be inspected; the installation method of the camera 301 can also be flexibly changed, for example, by mounting it through a sliding rail or a universal bracket, to achieve a more flexible inspection angle; in addition, the light source compensation device 310 can be integrated with an intelligent dimming module to achieve the effect of dynamically adjusting the light output according to the brightness of the inspection area, further improving the adaptability and intelligence level of the device.
[0053] Please continue reading Figure 1-3As shown, according to an optional embodiment of the present invention, the testing table 100 is provided with a fixed area 110 and a lifting area 120. The fixed area 110 is used to install the support column 200, and the lifting area 120 is used to install the limiting component. The limiting component is used to fix the testing computer. The lifting area 120 can be vertically lifted.
[0054] Specifically, the testing platform 100 in this embodiment is divided into two parts: a fixed area 110 and a lifting area 120. The fixed area 110 stably supports the support column 200, providing the structural foundation required for the installation of the testing component 300. The lifting area 120 is used to install the limiting component. Through its vertical lifting function, the lifting area 120 can be adjusted in height to fix the computer under test in a suitable position for testing. The limiting component, used in conjunction with the lifting area 120, can effectively restrict the movement of the computer under test, ensuring that the computer's position is accurate and stable during the testing process. The design of the lifting area 120 improves the operational flexibility of the device and can adapt to testing needs at different heights.
[0055] Furthermore, the testing platform 100 of this invention significantly improves the ease of operation and adaptability of the device through the rational partitioning design of the fixed area 110 and the lifting area 120. Specifically, the fixed area 110 provides a stable and reliable foundation for the support column 200 and its installation, while the lifting area 120 ensures the fixation and precise positioning of the computer under test during the testing process through the setting of the limiting components. The vertical lifting function of the lifting area 120 allows the device to adapt to computers under test of different sizes or shapes, further improving the versatility and automation level of the testing device. In addition, through the cooperation of the limiting components and the lifting area 120, the testing process is more efficient, while reducing the complexity and error risk of manual operation.
[0056] It is worth further explaining that the movement mechanism of the lifting area 120 can take various forms, such as hydraulic lifting, electric screw 510 lifting, or pneumatic lifting, to meet different precision and load-bearing requirements; the limit components can be designed as adjustable structures according to the shape and size of different computers, for example, by using slide rails, buckles, or clamping mechanisms to achieve diverse fixing methods; the boundary between the fixed area 110 and the lifting area 120 can also be appropriately adjusted according to the device size and the specifications of the computer to be tested, so as to improve the space utilization of the device; in addition, the movement range of the lifting area 120 and the adjustment method of the limit components can be combined with the intelligent control system to achieve automated adjustment, so as to further improve the working efficiency and flexibility of the testing device.
[0057] Please continue reading Figure 3 As shown, according to an optional embodiment of the present invention, the limiting component includes four limiting blocks 130, which are arranged to form a rectangular frame, and the rectangular frame is adapted to the computer to be tested.
[0058] Specifically, the limiting component in this embodiment consists of four limiting blocks 130, which form a rectangular frame and are adapted to the shape and size of the computer to be tested. This design allows the rectangular frame to fix the computer to be tested in a specific position on the testing table 100, preventing displacement or tilting during testing. The rectangular frame design ensures the stability of the computer under test while simplifying installation and operation, thereby improving testing efficiency.
[0059] Furthermore, the limiting component of this invention, through its rectangular frame design, ensures precise fixation of the computer under test on the testing table 100, solving the problem of testing errors caused by unstable fixing devices in existing technologies. The arrangement of the four limiting blocks 130 can accommodate various specifications of computer equipment, and the position of the limiting blocks 130 can be adjusted to meet different size requirements. The limiting component has a simple structure, is easy to operate, and possesses high durability. Through this design, the testing device not only achieves stable fixation of the computer under test but also further improves the automation level of the production line and the reliability of the testing process.
[0060] It is worth further explaining that the material of the limiting block 130 can be selected from materials with high strength and wear resistance, such as aluminum alloy, engineering plastics or composite materials, to improve the service life of the component; the shape of the limiting block 130 can also be designed to adapt to non-rectangular computers, for example, by using curved, triangular or other geometric shapes of the limiting block 130 to achieve a more flexible fixing method; in addition, the limiting component can also be combined with sensors or cameras to monitor the fixing status of the computer under test in real time, and issue warnings or automatically adjust when it deviates from the position, thereby further improving the intelligence level and safety of the detection device.
[0061] Please continue reading Figure 3 As shown, according to an optional embodiment of the present invention, a lifting structure 500 is provided at the bottom of the lifting area 120. The lifting structure 500 includes: a lead screw 510, two of which are provided, and a movable area is fixedly connected to the top of the lead screw 510; a driving device 520, which is drivenly connected to either lead screw 510; wherein a transmission device 530 is provided between the two lead screws 510.
[0062] Specifically, the lifting structure 500 in this embodiment consists of two lead screws 510, a drive device 520, and a transmission device 530. The top end of the lead screw 510 is fixedly connected to the lifting area 120, enabling vertical movement of the lifting area 120 through rotation. The drive device 520 is connected to either lead screw 510, providing the power required for lifting. To ensure synchronous movement between the two lead screws 510, the transmission device 530 connects the two lead screws 510, thereby preventing tilting or jamming of the lifting area 120 due to asynchrony. Through the above structural design, the lifting structure 500 can achieve smooth lifting of the lifting area 120, adapting to computer cable testing requirements at different heights.
[0063] Furthermore, the lifting structure 500 of this invention, through the cooperation of the lead screw 510 and the transmission device 530, solves the problem of insufficient precision caused by unstable movement in traditional lifting mechanisms. The connection design between the lead screw 510 and the drive device 520 provides stable and reliable power transmission, while the transmission device 530 further ensures the synchronization between the two lead screws 510. Through this design, the lifting area 120 can achieve precise height adjustment, which not only improves the adaptability and versatility of the detection device, but also enhances the smoothness and safety of operation. In addition, the modular design of the lifting structure 500 facilitates later maintenance and replacement, further improving the durability and service life of the device.
[0064] It is worth further explaining that the lead screw 510 can be selected according to the load requirements of the lifting area 120, with different diameters or material specifications, such as high-strength steel, stainless steel, or carbon fiber. The drive device 520 can be driven by a motor, hydraulically, or pneumatically to meet different working scenarios. The transmission device 530 can use gear transmission, chain transmission, or belt transmission to achieve a more flexible transmission structure design. In addition, the lifting structure 500 can be combined with a position sensor or height control module to realize real-time monitoring and automatic adjustment of the height of the lifting area 120, thereby further improving the lifting accuracy and intelligence level.
[0065] Please continue reading Figure 3 As shown, according to an optional embodiment of the present invention, the transmission device 530 includes: a transmission gear and a drive gear, the transmission gear and the drive gear being respectively mounted on two lead screws 510; and a transmission chain, the transmission chain being fitted between the transmission gear and the drive gear.
[0066] Specifically, in this embodiment, the transmission device 530 achieves synchronous movement of the two lead screws 510 through a combination of transmission gears, drive gears, and transmission chains. The transmission gears and drive gears are fixedly mounted on the two lead screws 510, respectively, and the transmission chain is fitted between the gears. When the drive device 520 drives one lead screw 510 to rotate, the chain drives the other lead screw 510 to rotate synchronously, thereby ensuring smooth lifting and lowering of the lifting area 120. This design is simple in structure and provides stable motion transmission, effectively avoiding tilting or jamming caused by asynchrony during lifting.
[0067] Furthermore, the transmission device 530 of this invention optimizes the synchronous transmission effect between the lead screw 510 through the cooperation of the transmission chain and gears, solving the problem of unstable movement caused by uneven power distribution in the traditional lifting structure 500. The efficient transmission characteristics of the transmission chain not only improve the reliability of the transmission device 530 but also reduce power loss during operation. In addition, the precise meshing between the transmission gear and the drive gear further improves the motion accuracy during the lifting process, ensuring that the lifting area 120 can adjust its height quickly and smoothly. The overall structure is easy to disassemble and maintain, and can adapt to the needs of various working environments.
[0068] It is worth noting that the materials for the transmission gears and drive gears can be selected from high-strength steel, wear-resistant cast iron, or engineering plastics depending on the operating environment to meet different strength and cost requirements; the transmission chain can be a rust-proof chain or a high-strength chain to extend the service life of the device in high humidity or high load environments; the layout of the transmission device 530 can be further optimized, for example, by adding a tensioning device to maintain the appropriate tension of the chain, thereby preventing transmission failure caused by chain slack; in addition, the transmission device 530 can be combined with an intelligent monitoring module to realize real-time monitoring of the operating status of the chain and gears, and provide early warning of abnormal wear or failure risks of the transmission device 530, thereby improving the reliability and intelligence level of the device.
[0069] Please continue reading Figure 1-3 As shown, according to an optional embodiment of the present invention, it further includes a maintenance cabinet 600, which is mounted on the lifting structure 500 and has a cabinet door 610.
[0070] Specifically, in this embodiment, the maintenance cabinet 600 is mounted on the lifting structure 500 and provides a convenient maintenance access through the cabinet door 610, facilitating users to inspect, maintain, or replace the lifting structure 500 and related components. The maintenance cabinet 600 not only protects the lifting structure 500 from external environmental influences such as dust and moisture but also further enhances the overall safety of the device. A well-designed layout of the maintenance cabinet 600 effectively shortens maintenance time and ensures the continuous and stable operation of the device. The cabinet door 610 is designed to open and close, allowing users to quickly access the internal components while maintaining the cleanliness and safety of the equipment when not in use.
[0071] Furthermore, the maintenance cabinet 600 of this utility model effectively reduces the impact of the external environment on the lifting mechanism by enclosing the lifting structure 500 inside the cabinet, providing additional protection, especially in harsh production environments. At the same time, the design of the maintenance cabinet 600 makes equipment inspection and maintenance more convenient, avoiding the operational complexity and potential safety hazards caused by exposed components in traditional structures. With the cabinet door 610, users can quickly complete the inspection and maintenance of the lifting mechanism without disassembling the main structure, significantly improving maintenance efficiency and the reliability of equipment operation.
[0072] It is worth noting that the material of the maintenance cabinet 600 can be selected from corrosion-resistant stainless steel, aluminum alloy, or engineering plastics according to actual needs to adapt to different environmental conditions; the design of the cabinet door 610 can be enhanced with a transparent window or observation hole, making it easy to check the internal operating status without opening the cabinet door 610; the maintenance cabinet 600 can reserve storage space for maintenance tools, further improving the ease of operation; in addition, the maintenance cabinet 600 can be combined with dustproof sealing strips, locking devices, or alarm sensors to enhance the safety and sealing of the device, ensuring that the environment inside the maintenance cabinet 600 is suitable for long-term protection of the lifting structure 500 and extending the service life of the device.
[0073] Please continue reading Figure 1-3 As shown, according to an optional embodiment of the present invention, the bottom of the maintenance cabinet 600 is provided with anti-slip feet 700.
[0074] Specifically, in this embodiment, the maintenance cabinet 600 is equipped with anti-slip feet 700 at its bottom, which effectively enhances the stability of the device during operation. The anti-slip feet 700 reduce movement or sliding of the equipment under vibration or external forces through friction with the ground, ensuring the stability and safety of the device during high-precision testing operations. The anti-slip feet 700 have a simple design structure, yet significantly improve the reliability of equipment operation, while also facilitating installation and adjustment.
[0075] Furthermore, the inspection cabinet 600 of this utility model, by adding anti-slip feet 700 at the bottom, not only improves the operational stability of the device but also avoids the problem of decreased detection accuracy or component damage caused by equipment slippage. The anti-slip feet 700 can adapt to various ground materials, such as smooth floors, rough cement floors, or floors with a certain slope, and have strong versatility and adaptability. In addition, the anti-slip feet 700 can also reduce vibration transmission during equipment operation, improving the overall service life and operating efficiency of the device.
[0076] It is worth further explaining that the anti-slip feet 700 can be made of composite materials such as wear-resistant rubber, polyurethane, or metal-coated rubber to improve the durability and friction performance of the feet. The height of the feet can be designed to be adjustable, adapting to different ground heights and unevenness through thread or spring adjustment. In addition, the anti-slip feet 700 can be combined with shock absorption design, such as adding shock-absorbing pads or elastic elements inside, to further reduce the transmission of vibration during equipment operation. For equipment that needs to be moved frequently, pulley feet with locking function can also be designed to flexibly switch between convenient movement and stable positioning, improving the ease of use of the equipment.
[0077] Please continue reading Figure 1-3 As shown, according to an optional embodiment of the present invention, the maintenance cabinet 600 is provided with a cooling fan and a ventilation opening 800.
[0078] Specifically, the maintenance cabinet 600 in this embodiment is equipped with a cooling fan and a vent 800 to ensure that the internal temperature of the maintenance cabinet 600 can be maintained within a suitable range. The cooling fan actively dissipates the heat generated inside, while the vent 800 allows for air circulation, effectively preventing overheating of the equipment due to prolonged operation. The combined design of the cooling fan and the vent 800 provides good heat dissipation while preventing external dust and debris from entering the maintenance cabinet 600, further ensuring the normal operation of the lifting structure 500 and related components.
[0079] Furthermore, this invention solves the problem of heat dissipation difficulties in a sealed structure by adding a cooling fan and a vent 800 inside the maintenance cabinet 600. This significantly improves the stability and safety of the equipment, especially under high-intensity continuous operation. The active cooling effect of the cooling fan, combined with the natural convection of the vent 800, rapidly reduces the internal temperature, extending the service life of the lifting structure 500 and other electrical components. In addition, this design can adapt to various environmental conditions, effectively reducing the impact of high temperatures on the equipment's accuracy and performance, while preventing downtime or malfunctions due to excessively high equipment temperatures.
[0080] It is worth further explaining that the type of cooling fan can be selected as an axial fan, centrifugal fan, or cross-flow fan as needed, and combined with the temperature control module, the fan speed can be automatically adjusted according to the internal temperature; the design of the vent 800 can be equipped with a filter or dust cover to prevent dust and foreign objects from entering the maintenance cabinet 600 and affecting the operation of the equipment; the ventilation system can also be combined with a humidity sensor or air quality sensor to monitor the internal environmental parameters in real time and further optimize the operating environment of the equipment; in addition, the cooling system can be designed with a modular structure, which facilitates the replacement and upgrading of fans or vent 800, further improving the maintenance convenience and adaptability of the equipment.
[0081] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0082] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.
Claims
1. An automatic detection device for computer cable, characterized in that, include: A testing station, used to mount the computer to be tested; The support column is provided in a rectangular array on the outer edge of the detection table, and the free end of the support column is provided with a mounting platform. A detection component is mounted on the mounting platform, with the detection component facing the platform surface, and the detection component is used to detect the computer to be tested. A detection channel is provided between each pair of adjacent support columns.
2. The computer cable automatic detection device according to claim 1, wherein, The detection component includes: A camera is mounted on the mounting platform, and the camera is directly opposite the detection platform; A light source compensation device is installed around the camera and is used to provide an adjustable light source.
3. The automatic computer cable detection device according to claim 1, characterized in that, The testing platform is provided with a fixed area and a lifting area. The fixed area is used to install the support column, and the lifting area is used to install the limiting component. The limiting component is used to fix the computer to be tested, and the lifting area can be raised and lowered vertically.
4. The automatic computer cable detection device according to claim 3, characterized in that, The limiting component includes four limiting blocks, which are arranged to form a rectangular frame, and the rectangular frame is adapted to the computer to be tested.
5. The automatic computer cable detection device according to claim 4, characterized in that, A lifting structure is provided at the bottom of the lifting area, the lifting structure comprising: The lead screw is provided in two parts, and the lifting area is fixedly connected to the top of the lead screw; A drive device, wherein the drive device is connected to any of the lead screws; A transmission device is provided between the two lead screws.
6. The automatic computer cable detection device according to claim 5, characterized in that, The transmission device includes: A transmission gear and a drive gear, wherein the transmission gear and the drive gear are respectively mounted on two lead screws; A transmission chain, which is fitted between the transmission gear and the drive gear.
7. The automatic computer cable detection device according to claim 5, characterized in that, It also includes a maintenance cabinet, which is mounted on the lifting structure and has a cabinet door.
8. The automatic computer cable detection device according to claim 7, characterized in that, The bottom of the maintenance cabinet is equipped with anti-slip feet.
9. The automatic computer cable detection device according to claim 7, characterized in that, The inspection cabinet is equipped with a cooling fan and ventilation openings.