Semi-automatic WiFi chip test shielding device
By designing a semi-automatic WiFi chip testing shielding device, which utilizes drive components and robotic arm components to achieve automatic loading and unloading, the problems of low efficiency and safety risks in existing technologies are solved, thereby improving testing efficiency and safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- RIST ELECTRONIC TECH (SUZHOU) CO LTD
- Filing Date
- 2023-11-29
- Publication Date
- 2026-04-28
AI Technical Summary
Existing WiFi chip testing shielding devices require manual operation, which leads to inefficiency and the risk of damaging products or equipment.
A semi-automatic WiFi chip testing shielding device was designed. A drive component drives a robotic arm component to rotate and lift, realizing automatic loading and unloading and reducing manual operation.
It improves testing efficiency, avoids damage caused by manual operation, and ensures the safety and reliability of the testing process.
Smart Images

Figure CN224171969U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of WiFi chip testing shielding, and specifically refers to a semi-automatic WiFi chip testing shielding device. Background Technology
[0002] WiFi is a common function in electronic devices such as mobile phones and tablets. Its function relies on WiFi chips. The manufacturing of WiFi chips requires a strict environment. Places with electromagnetic radiation may cause errors in the test results of WiFi chips.
[0003] Existing patent 201822249239.9 discloses a WiFi chip testing shielding device, which solves the above problems. However, during testing, workers need to manually place the WiFi chip into the test card slot before testing. This is not only time-consuming and labor-intensive, but manual operation may also lead to operational errors that could damage the product or equipment. Utility Model Content
[0004] The purpose of this invention is to overcome the shortcomings of the existing technology and provide a semi-automatic WiFi chip testing shielding device.
[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows: a semi-automatic WiFi chip testing shielding device, comprising a base, a tooling assembly for placing the product to be tested on one side of the loading end of the top surface of the base, a testing device for testing the product to be tested on the top surface of the base, a cover opening assembly for opening the sealing cover of the testing device directly above the testing assembly, a drive assembly for lifting and rotating between the tooling assembly and the testing assembly on the top surface of the base, and a robotic arm assembly for picking up the product to be tested on the rotating end of the drive assembly; the robotic arm assembly completes unloading at the same time as loading.
[0006] Preferably, the drive assembly includes a lifting drive cylinder mounted on the base and a rotary drive cylinder mounted on the lifting end of the lifting drive cylinder; the robotic arm assembly is mounted on the drive end of the optional drive cylinder.
[0007] Preferably, a translation adjuster is provided between the connection end of the lifting drive cylinder and the rotary drive cylinder.
[0008] Preferably, guide rails are provided on both sides of the rotary drive cylinder; the rotary drive cylinder is slidably mounted on the two guide rails on both sides respectively.
[0009] Preferably, the robotic arm assembly includes a long, strip-shaped drive plate horizontally mounted on the rotating end of the rotary drive gas, and suction cups mounted on the bottom surfaces at both ends of the drive plate.
[0010] Preferably, a fork-shaped sensor is provided at the end point of the rotation of one end of the drive plate toward the tooling assembly; the fork-shaped sensor is located between the tooling assembly and the drive plate and is connected to the output end of the translation adjuster; sensing pins for sensing by the fork-shaped sensor are provided on the bottom surfaces of both ends of the drive plate.
[0011] Preferably, the tooling table assembly includes a tooling seat mounted on a base, a feeding platform mounted in the center of the top surface of the tooling seat for feeding material, and material detection sensors mounted on both sides of the top surface of the tooling seat for detecting whether there is material on the feeding platform.
[0012] Preferably, the cover opening assembly includes a gantry support frame disposed on the top surface of the base, and a cover opening drive cylinder disposed in the middle of the top surface of the gantry support frame and whose output end is connected to the sealing cover of the detection device; the detection device is located directly below the gantry support frame.
[0013] Due to the application of the above technical solution, this utility model has the following advantages compared with the prior art:
[0014] This invention uses a drive component to rotate and lift a robotic arm component, simultaneously picking up materials from the tooling table component and the testing device. By rotating, the tested and untested materials are placed onto the tooling table component and the testing device respectively, realizing simultaneous loading and unloading. This not only reduces manpower and improves efficiency, but also avoids accidents that may be caused by manual loading. Attached Figure Description
[0015] The technical solution of this utility model will be further described below with reference to the accompanying drawings:
[0016] Appendix Figure 1 This is a schematic diagram of the overall structure of the semi-automatic WiFi chip testing shielding device described in this utility model;
[0017] Appendix Figure 2 The semi-automatic WiFi chip testing shielding device described in this utility model Figure 1 A magnified schematic diagram of the structure at point A;
[0018] Appendix Figure 3 This is a front structural diagram of the semi-automatic WiFi chip testing shielding device described in this utility model.
[0019] The components include: 1. Base; 2. Tooling table assembly; 21. Feeding table; 22. Material detection sensor; 23. Tooling seat; 3. Detection device; 4. Opening assembly; 41. Gantry support frame; 42. Opening drive cylinder; 5. Drive assembly; 51. Lifting drive cylinder; 52. Rotation drive cylinder; 6. Robot arm assembly; 61. Drive plate; 62. Suction cup; 7. Translation adjuster; 8. Guide rail; 9. Fork sensor; 10. Sensing needle. Detailed Implementation
[0020] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.
[0021] Appendix Figures 1-3 The semi-automatic WiFi chip testing and shielding device of this utility model includes a base 1, a fixture assembly 2 for placing the product to be tested on the loading side of the top surface of the base 1, a testing device 3 for testing the product to be tested on the top surface of the base 1, a cover opening assembly 4 for opening the sealing cover of the testing device 3 directly above the testing assembly, a drive assembly 5 for lifting and rotating between the fixture assembly 2 and the testing assembly on the top surface of the base 1, and a robotic arm assembly 6 for picking up the product to be tested on the rotating end of the drive assembly 5; the robotic arm assembly completes the unloading at the same time as loading; the drive assembly 5 includes a lifting drive cylinder 51 on the base 1 and a rotating drive cylinder 52 on the lifting end of the lifting drive cylinder 51; the robotic arm assembly 6 is located on the drive end of the optional drive cylinder; the robotic arm assembly 6 includes a horizontally arranged, elongated section on the rotating end of the rotating drive cylinder. The drive plate 61 is shaped like a fork, and suction cups 62 are disposed on the bottom surfaces of both ends of the drive plate 61. A fork-shaped sensor 9 is disposed at the end point of the drive plate 61 rotating towards the tooling table assembly 2. The fork-shaped sensor 9 is located between the tooling table assembly 2 and the drive plate 61 and is connected to the output end of the translation adjuster 7. Sensing needles 10 for sensing by the fork-shaped sensor 9 are disposed on the bottom surfaces of both ends of the drive plate 61. The tooling table assembly 2 includes a tooling seat 23 disposed on the base 1, a feeding platform 21 disposed in the middle of the top surface of the tooling seat 23 for feeding material, and material detection sensors 22 disposed on both sides of the top surface of the tooling seat 23 for detecting whether there is material on the feeding platform 21. The cover opening assembly 4 includes a gantry support frame 41 disposed on the top surface of the base 1, and a cover opening drive cylinder disposed in the middle of the top surface of the gantry support frame 41 with its output end connected to the sealing cover of the detection device 3. The detection device 3 is located directly below the gantry support frame 41.
[0022] Furthermore, a translation adjuster 7 is provided between the connection end of the lifting drive cylinder 51 and the rotary drive cylinder 52 to facilitate adjustment of the left and right positions.
[0023] Furthermore, guide rails 8 are provided on both sides of the rotary drive cylinder 52; the rotary drive cylinder 52 is slidably mounted on the two guide rails 8 on both sides, making the lifting and lowering more stable.
[0024] In use: First, the external feeding equipment places the material onto the feeding platform 21 on the tooling base 23. After the material detection sensors 22 on both sides of the feeding platform 21 detect the material, the drive assembly 5 and the cover opening assembly 4 are activated. Then, the cover opening drive cylinder opens the detection device 3. At the same time, the lifting drive cylinder 51 drives the rotary drive cylinder 52 to rise. Then, the rotary drive cylinder 52 drives the robot arm assembly 6 to rotate. After the drive plate 61 rotates to the correct position, the fork-shaped sensor 9 senses that the drive plate 61 has rotated to the correct position and the external suction device is activated. At the same time, the lifting drive cylinder 51 drives the rotary drive cylinder 52 to descend, and then the drive plate 61 also descends. Then, the suction cups 62 at both ends of the drive plate 61 respectively suck up the material on the platform. The material inside the detection device 3 is then lifted, and the lifting drive cylinder 51 drives the drive plate 61 to rise again. The material to be detected and the detected material follow. Then, the rotation drive cylinder 52 rotates the drive plate 61 to move the material to be detected and the detected material to the correct position. At the same time, the lifting drive cylinder 52 drives the drive plate 61 to fall again. Then, the external suction device stops, and the suction cup 62 loses its suction force on the material. Then, the drive assembly 5 and the robot arm assembly 6 reset. Finally, the detected material on the material platform is collected by the external receiving device. The cover opening drive cylinder resets to seal the detection device 3. Then, the detection device 3 tests the material. Since the detection device 3 is existing technology, it will not be described in detail.
[0025] The above are merely specific application examples of this utility model and do not constitute any limitation on the scope of protection of this utility model. All technical solutions formed by equivalent transformations or equivalent substitutions fall within the scope of protection of this utility model.
Claims
1. A semi-automatic WiFi chip testing shielding device, characterized in that: The device includes a base, a tooling table assembly for placing the product to be tested on the top surface of the base (on the loading end side), a testing device for testing the product to be tested on the top surface of the base, a cover opening assembly for opening the sealing cover of the testing device directly above the testing assembly, a drive assembly for lifting and rotating between the tooling table assembly and the testing assembly on the top surface of the base, and a robotic arm assembly for picking up the product to be tested on the rotating end of the drive assembly; the robotic arm assembly completes unloading at the same time as loading.
2. The semi-automatic WiFi chip testing shielding device according to claim 1, characterized in that: The drive assembly includes a lifting drive cylinder mounted on the base and a rotary drive cylinder mounted on the lifting end of the lifting drive cylinder; the robotic arm assembly is mounted on the drive end of the optional drive cylinder.
3. The semi-automatic WiFi chip testing shielding device according to claim 2, characterized in that: A translation adjuster is provided between the connection end of the lifting drive cylinder and the rotary drive cylinder.
4. The semi-automatic WiFi chip testing shielding device according to claim 2, characterized in that: Guide rails are provided on both sides of the rotary drive cylinder; the rotary drive cylinder is slidably mounted on the two guide rails on both sides respectively.
5. The semi-automatic WiFi chip testing shielding device according to claim 1, characterized in that: The robotic arm assembly includes a long, strip-shaped drive plate horizontally mounted on the rotating end of a rotary drive gas cylinder, and suction cups mounted on the bottom surfaces at both ends of the drive plate.
6. The semi-automatic WiFi chip testing shielding device according to claim 5, characterized in that: A fork-shaped sensor is provided at the end point of the rotation of one end of the drive plate toward the tooling table assembly; the fork-shaped sensor is located between the tooling table assembly and the drive plate, and is connected to the output end of the translation adjuster; sensing pins for sensing by the fork-shaped sensor are provided on the bottom surfaces of both ends of the drive plate.
7. The semi-automatic WiFi chip testing shielding device according to claim 1, characterized in that: The tooling table assembly includes a tooling seat mounted on a base, a feeding platform mounted in the center of the top surface of the tooling seat for feeding material, and material detection sensors mounted on both sides of the top surface of the tooling seat for detecting whether there is material on the feeding platform.
8. The semi-automatic WiFi chip testing shielding device according to claim 1, characterized in that: The opening assembly includes a gantry support frame mounted on the top surface of the base, and an opening drive cylinder mounted in the middle of the top surface of the gantry support frame with its output end connected to the sealing cover of the detection device; the detection device is located directly below the gantry support frame.
Citation Information
Patent Citations
WiFi chip test shielding device
CN209878832U