A rotary 5g communication module detection device and method of use thereof

By designing a rotary 5G communication module testing device and adopting automated assembly line testing of limit and testing components, the problems of slow testing speed and low accuracy in existing technologies are solved, and fast and accurate module testing and separation are achieved.

CN117160920BActive Publication Date: 2026-05-15JIANGSU FULIAN COMM TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
JIANGSU FULIAN COMM TECH CO LTD
Filing Date
2023-08-31
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

Existing 5G communication module testing generally relies on manual cable plugging and unplugging, resulting in slow testing speed, a high risk of false positives or false negatives, and inconsistent test results that do not meet the testing requirements of modern 5G communication modules.

Method used

Design a rotary 5G communication module testing device, which adopts a limit component, a testing component, and an automated assembly line testing system. The device includes a rotation component, a lifting component, a pre-inspection data entry component, a post-inspection comparison component, and a material handling component. It can achieve automated testing for different sizes and testing requirements, and can quickly identify and separate qualified and unqualified modules.

Benefits of technology

It enables rapid, automated, pipeline-style testing of 5G communication modules, allowing for the selection of limit and detection components as needed. It is applicable to a variety of modules, improving testing efficiency and accuracy, and ensuring timely separation and identification of test results.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a rotary 5G communication module detection device and a use method thereof, which comprises a base, a rotating assembly is arranged on the upper surface of the base, and the rotating end of the rotating assembly is detachably connected with a limiting assembly, a skirt plate is arranged on the outer wall of the base, and the outer wall of the skirt plate is detachably connected with the fixed end of a lifting assembly; the application realizes the function of selecting the limiting assembly and the detection assembly according to needs, thereby being applicable to the detection of 5G communication modules of various sizes and detection requirements, and the selection, disassembly and connection are relatively convenient, the function of automatically detecting the 5G communication modules in a pipeline mode is realized, the detection speed is relatively high, the function of separating the unqualified 5G communication modules from the qualified 5G communication modules in time after the detection of the 5G communication modules is realized, and the mechanical automatic identification is realized, the device has a simple structure, a good detection effect, and is suitable for being widely promoted and used.
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Description

Technical Field

[0001] This invention relates to the field of 5G communication module testing technology, and in particular to a rotary 5G communication module testing device and its usage method. Background Technology

[0002] A 5G communication module is a combination of a communication chip, memory, radio frequency circuit, and positioning system. The 5G communication module can be connected internally or externally to the device to provide the device with 5G communication functions.

[0003] Currently, 5G communication modules require various quality and signal tests before leaving the factory to ensure their quality. Existing 5G communication module testing generally uses manual cable plugging and unplugging, resulting in slow testing speed and a high risk of false positives or false negatives. Furthermore, the test results cannot be comprehensively matched, failing to meet the testing requirements of modern 5G communication modules. Therefore, it is necessary to design a rotary 5G communication module testing device and its usage method. Summary of the Invention

[0004] The main objective of this invention is to address the problems of slow testing speed, frequent misdetection or missed detection, and inconsistent test results in existing 5G communication module testing methods. These methods rely heavily on manual cable insertion and removal, resulting in inconsistent testing speeds and failing to meet modern 5G communication module testing requirements. This invention provides a rotary 5G communication module testing device and its usage method. It allows for the selection of limiting and testing components to suit various sizes and testing needs of 5G communication modules. The device is easy to install and remove after selection. It also enables automated, assembly-line testing of 5G communication modules at a fast speed. Furthermore, it allows for the timely separation of unqualified and qualified 5G communication modules after testing, with mechanized automatic identification. The device has a simple structure and provides good testing results.

[0005] To achieve the above objectives, the technical solution adopted by the present invention is as follows:

[0006] A rotary 5G communication module testing device and its method of use include a base, a rotating assembly disposed on the upper surface of the base, and a limiting assembly detachably connected to the rotating end of the rotating assembly; a skirt disposed on the outer side wall of the base, and a fixed end of a lifting assembly detachably connected to the outer side wall of the skirt; a detection assembly detachably connected to the lifting end of the lifting assembly; a pre-inspection data entry assembly and a post-inspection comparison assembly installed on the base; and a material handling assembly detachably connected to the upper surface of the base; the limiting assembly is used to limit the 5G communication module, and the rotating assembly is used to limit the 5G module by the limiting assembly. The communication module is conveyed horizontally in a circular manner at the working positions of the pre-inspection input component, the detection component, the post-inspection comparison component, and the material picking component. The pre-inspection input component is used to input the information of the 5G communication module to be inspected. The detection component is used to perform inspection on the 5G communication module. The lifting component is used to move the detection component back and forth in the vertical direction to complete the inspection. The post-inspection comparison component is used to perform secondary identification on the 5G communication module and convey the location information of the identified unqualified 5G communication module to the material picking component. The material picking component is used to push the unqualified 5G communication module out of the limiting component.

[0007] The aforementioned rotary 5G communication module testing device includes a motor mounted on the upper surface of a base. One end of the motor's output shaft is connected to a rotating shaft, and the other end of the rotating shaft is detachably connected to a rotating plate. The upper surface of the rotating plate is provided with a slot and a threaded groove. An insertion hole A is provided on the inner wall of the bottom surface of the slot. A side plate is provided on the inner side wall of the skirt plate, and a through hole is provided on the upper surface of the side plate. An auxiliary support wheel is rotatably connected to the inner side wall of the through hole.

[0008] The aforementioned rotary 5G communication module testing device includes a pre-test data entry component comprising a support plate A, which is disposed on the upper surface of a base, and a barcode scanner A is detachably connected to the outer side wall of the support plate A.

[0009] The aforementioned rotary 5G communication module testing device includes a lifting assembly comprising a right-angle plate, which is detachably connected to the upper surface of a skirt plate. A cylinder A is provided on the upper surface of the skirt plate. One end of a pneumatic telescopic rod A is slidably connected to the inner side wall of the cylinder A, and the other end of the pneumatic telescopic rod A is fixedly connected to a connecting plate A. A connecting hole A is provided on the upper surface of the connecting plate A.

[0010] The aforementioned rotary 5G communication module testing device includes a testing component comprising a connecting plate B, a connecting groove on the upper surface of the connecting plate B, a connecting hole B on the inner wall of the bottom surface of the connecting groove, one end of a connecting rod on the outer wall of the bottom surface of the connecting plate B, and a detector fixedly connected to the other end of the connecting rod. A protrusion is fixedly connected to the outer wall of the bottom surface of the detector, and a contact is provided on the outer wall of the bottom surface of the protrusion.

[0011] The aforementioned rotary 5G communication module testing device includes a post-test comparison component comprising a support plate B, which is disposed on the upper surface of a base, and a barcode scanner B is detachably connected to the outer side wall of the support plate B.

[0012] The aforementioned rotary 5G communication module testing device includes a limiting component comprising a template, a slot on the upper surface of the template, an insertion hole B on the inner wall of the bottom surface of the slot, a side arm on the outer wall of the template, and a vertical hole on the upper surface of the side arm.

[0013] The aforementioned rotary 5G communication module testing device includes a material handling component comprising a support rod, one end of which is detachably connected to the upper surface of a base, and the other end of which is provided with a horizontal plate. A cylinder B is provided on the outer wall of the bottom surface of the horizontal plate, and a pneumatic telescopic rod B is slidably connected to the inner wall of the cylinder B.

[0014] In the aforementioned rotary 5G communication module testing device, one end of an external bolt is provided on the inner wall of the vertical hole, and the other end of the external bolt extends into the threaded groove. The inner wall of the connecting groove is engaged with the outer wall of the connecting plate A, and the connecting hole A and the connecting hole B are detachably connected by an external fastener.

[0015] Preferably, it includes the following steps:

[0016] Step 1: Select the limiting components and connections as needed. Select and move the limiting components as needed. Then, engage the outer wall of the template with the inner wall of the slot. Next, rotate the external bolt along the vertical hole and extend it into the threaded groove to make a detachable connection between the template and the rotating plate.

[0017] Step 2: Select the detection components and connections as needed. Select the detection components as needed and engage the inner wall of the connecting groove with the outer wall of the connecting plate A. Then, rotate the external fasteners along the connecting holes A and B to make the connecting plate A and connecting plate B detachably connected.

[0018] Step 3, feeding and conveying: Move the 5G communication module to be tested and place it along the slot. Then, drive the output shaft to rotate through the motor, which in turn drives the rotating shaft and the rotating plate to rotate. This will drive the 5G communication module to be tested to move in a circle to the position below the pre-inspection data entry component. At the same time, the rotating plate can be kept stable and horizontally rotated by the action of the auxiliary support wheel rotating along the inner side wall of the through hole.

[0019] Step 4, Information entry before detection: The barcode information of the 5G communication module to be detected is entered before detection by running barcode scanner A.

[0020] Step 5, testing: The pneumatic telescopic rod A is extended and slid by the operation of cylinder A, which in turn drives the connecting plate A and the testing components to move linearly up and down. This allows the contact to be inserted into the socket of the 5G communication module to be tested for data communication. The detector then performs the corresponding testing operation on the 5G communication module according to the corresponding program. The test results are then output to the external CPU, which compares them with the pass / fail standard and outputs the barcode information of the unqualified 5G communication module.

[0021] Step 6: Secondary identification of information after detection. The barcode scanner B can perform secondary identification of the information of the detected 5G communication modules and output the barcode information of the identified unqualified 5G communication modules to the material handling component.

[0022] Step 7, material discharge: The pneumatic telescopic rod B is driven by cylinder B to extend and slide, so that the pneumatic telescopic rod B can be inserted along the socket A and socket B, and then the 5G communication module can slide along the inner side wall of the slot and be pushed out, completing the testing of the 5G communication module.

[0023] Compared with the prior art, the present invention has the following beneficial effects:

[0024] 1. First, select and move the limiting component as needed. Then, engage the outer wall of the template with the inner wall of the slot. Next, rotate the external bolt along the vertical hole and extend it into the threaded groove to detachably connect the template and the rotating plate. Then, select the detection component as needed and engage the inner wall of the connecting groove with the outer wall of the connecting plate A. Then, rotate the external fastener along the connecting hole A and connecting hole B to detachably connect the connecting plate A and the connecting plate B. This effectively realizes the function of selecting the limiting component and detection component as needed, making it suitable for detecting 5G communication modules of various sizes and detection requirements. Moreover, the disassembly and assembly after selection are relatively convenient, improving the applicability of the device.

[0025] 2. The 5G communication module to be tested is moved and placed into the slot. The motor drives the output shaft to rotate, which in turn drives the rotating shaft and the rotating plate to rotate. This causes the 5G communication module to move in a circular motion to the position below the pre-inspection data entry component. At the same time, the auxiliary support wheel rotates along the inner wall of the through hole to keep the rotating plate stable and horizontal. Then, the barcode scanner A is run to enter the barcode information of the 5G communication module to be tested before inspection. Then, the cylinder A drives the pneumatic telescopic rod A to extend and slide, which drives the connecting plate A and the inspection component to move linearly up and down. This causes the contact to be inserted into the socket of the 5G communication module to be tested to establish a data communication connection. Then, the detector performs the corresponding inspection operation on the 5G communication module according to the corresponding program. After that, the inspection result is output to the external CPU, which is then checked against the pass standard and outputs the barcode information of the unqualified 5G communication module. This device effectively realizes the function of automated pipeline inspection of 5G communication modules, and the inspection speed is fast, which improves the inspection efficiency of the device.

[0026] 3. The barcode scanner B can perform secondary identification of the information of the tested 5G communication modules, and output the barcode information of the identified unqualified 5G communication modules to the material handling component. Then, the cylinder B drives the pneumatic telescopic rod B to extend and slide, so that the pneumatic telescopic rod B can be inserted along the socket A and socket B, and then the 5G communication module can slide along the inner side wall of the slot and be ejected. This effectively realizes the function of separating unqualified 5G communication modules from qualified 5G communication modules in a timely manner after the 5G communication module is tested, and can automatically identify them mechanically, thus improving the detection effect of the device. Attached Figure Description

[0027] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0028] Figure 2 This is a schematic diagram of the rotating component structure of the present invention;

[0029] Figure 3 For the present invention Figure 2 Enlarged structural diagram at point A in the middle;

[0030] Figure 4 For the present invention Figure 2 Enlarged structural diagram at point B;

[0031] Figure 5 This is a schematic diagram of the pre-inspection data entry component of the present invention;

[0032] Figure 6 For the present invention Figure 5 Enlarged structural diagram at point C;

[0033] Figure 7This is a schematic diagram of the overall front view of the present invention;

[0034] Figure 8 This is a top view of the overall structure of the present invention.

[0035] In the diagram: 1. Base; 2. Skirt; 3. Rotating assembly; 301. Motor; 302. Shaft; 303. Rotating plate; 304. Side plate; 305. Slot; 306. Threaded groove; 307. Insertion hole A; 308. Through hole; 309. Auxiliary support wheel; 4. Pre-inspection data entry assembly; 401. Support plate A; 402. Barcode scanner A; 5. Lifting assembly; 501. Right angle plate; 502. Cylinder A; 503. Pneumatic telescopic rod A; 504. Connecting plate A; 505. Connecting hole A; 6. Inspection Components; 601, Connecting plate B; 602, Connecting groove; 603, Connecting hole B; 604, Connecting rod; 605, Detector; 606, Protrusion; 607, Contact; 7, Post-inspection comparison component; 701, Support plate B; 702, Barcode scanner B; 8, Limiting component; 801, Template; 802, Slot; 803, Side arm; 804, Vertical hole; 805, Insertion hole B; 9, Material handling component; 901, Vertical rod; 902, Horizontal plate; 903, Cylinder B; 904, Pneumatic telescopic rod B. Detailed Implementation

[0036] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.

[0037] like Figure 1-8As shown, a rotary 5G communication module testing device and its usage method include a base 1. A rotating assembly 3 is disposed on the upper surface of the base 1, and a limiting assembly 8 is detachably connected to the rotating end of the rotating assembly 3. A skirt 2 is disposed on the outer side wall of the base 1, and a fixed end of a lifting assembly 5 is detachably connected to the outer side wall of the skirt 2. A detection assembly 6 is detachably connected to the lifting end of the lifting assembly 5. A pre-inspection data entry assembly 4 and a post-inspection comparison assembly 7 are installed on the base 1. A material picking assembly 9 is detachably connected to the upper surface of the base 1. The limiting assembly 8 is used to limit the 5G communication module. The rotating assembly 3 is used to laterally and circumferentially transport the 5G communication module limited by the limiting assembly 8 to the pre-inspection data entry assembly 4, the detection assembly 6, and the post-inspection comparison assembly 7. The working positions of component 7 and material handling component 9 are as follows: the pre-inspection input component 4 is used to input the information of the 5G communication module to be inspected; the inspection component 6 is used to perform inspection on the 5G communication module; the lifting component 5 is used to move the inspection component 6 back and forth in the vertical direction to complete the inspection; the post-inspection comparison component 7 is used to perform secondary identification on the 5G communication module and transmit the location information of the identified unqualified 5G communication module to the material handling component 9; the material handling component 9 is used to push the unqualified 5G communication module out of the limiting component 8. By setting the pre-inspection input component 4, inspection component 6, post-inspection comparison component 7 and material handling component 9, the system realizes the function of automated assembly line inspection of 5G communication modules, and the inspection speed is relatively fast.

[0038] Specifically, the rotating assembly 3 includes a motor 301, which is mounted on the upper surface of the base 1. The output shaft of the motor 301 has a rotating shaft 302 at one end, and the other end of the rotating shaft 302 is detachably connected to a rotating plate 303. The upper surface of the rotating plate 303 has a slot 305 and a threaded groove 306. The inner wall of the bottom surface of the slot 305 has an insertion hole A307. The inner side wall of the skirt 2 has a side plate 304, and the upper surface of the side plate 304 has a through hole 308. The inner side wall of the through hole 308 is rotatably connected to an auxiliary support wheel 309. The motor 301 drives the output shaft to rotate, thereby driving the rotating shaft 302 and the rotating plate 303 to rotate, which in turn drives the 5G communication module to be tested to move in a circular motion to the position below the pre-inspection data entry assembly 4.

[0039] Specifically, the pre-inspection data entry component 4 includes a support plate A401, which is disposed on the upper surface of the base 1. A barcode scanner A402 is detachably connected to the outer wall of the support plate A401. The barcode scanner A402 is used to enter the barcode information of the 5G communication module to be inspected before inspection.

[0040] Specifically, the lifting assembly 5 includes a right-angle plate 501, which is detachably connected to the upper surface of the skirt plate 2. A cylinder A502 is provided on the upper surface of the skirt plate 2. One end of a pneumatic telescopic rod A503 is slidably connected to the inner wall of the cylinder A502, and the other end of the pneumatic telescopic rod A503 is fixedly connected to a connecting plate A504. A connecting hole A505 is provided on the upper surface of the connecting plate A504. The cylinder A502 drives the pneumatic telescopic rod A503 to extend and slide, thereby driving the connecting plate A504 and the detection assembly 6 to move linearly up and down, which in turn drives the contact 607 to be inserted into the socket of the 5G communication module to be tested for data communication connection.

[0041] Specifically, the detection component 6 includes a connecting plate B601. A connecting groove 602 is formed on the upper surface of the connecting plate B601, and a connecting hole B603 is formed on the inner wall of the bottom surface of the connecting groove 602. One end of a connecting rod 604 is provided on the outer wall of the bottom surface of the connecting plate B601, and a detector 605 is fixedly connected to the other end of the connecting rod 604. A protrusion 606 is fixedly connected to the outer wall of the bottom surface of the detector 605, and a contact 607 is provided on the outer wall of the bottom surface of the protrusion 606. The detector 605 can perform corresponding detection operations on the 5G communication module according to the corresponding program, and then output the detection results to an external CPU. The external CPU will then check the results against the qualified standard and output the barcode information of the unqualified 5G communication module.

[0042] Specifically, the post-inspection comparison component 7 includes a support plate B701, which is disposed on the upper surface of the base 1. A barcode scanner B702 is detachably connected to the outer wall of the support plate B701. The barcode scanner B702 can perform secondary identification of the information of the tested 5G communication modules and output the barcode information of the identified unqualified 5G communication modules to the material handling component 9.

[0043] Specifically, the limiting component 8 includes a template 801, a slot 802 is provided on the upper surface of the template 801, and an insertion hole B805 is provided on the inner wall of the bottom surface of the slot 802. A side arm 803 is provided on the outer side wall of the template 801, and a vertical hole 804 is provided on the upper surface of the side arm 803. By selecting and moving the limiting component 8 as needed, the outer side wall of the template 801 is engaged with the inner side wall of the slot 305. Then, the external bolt is rotated along the vertical hole 804 and extends into the threaded groove 306, thereby enabling a detachable connection between the template 801 and the rotating plate 303.

[0044] Specifically, the material handling assembly 9 includes a support rod 901. One end of the support rod 901 is detachably connected to the upper surface of the base 1, and the other end of the support rod 901 is provided with a horizontal plate 902. A cylinder B903 is provided on the outer wall of the bottom surface of the horizontal plate 902, and a pneumatic telescopic rod B904 is slidably connected to the inner wall of the cylinder B903. The pneumatic telescopic rod B904 can be extended and slid by the operation of the cylinder B903, so that the pneumatic telescopic rod B904 can be inserted along the socket A307 and the socket B805, thereby allowing the 5G communication module to slide along the inner wall of the slot 802 and be ejected.

[0045] Specifically, one end of an external bolt is provided on the inner wall of the vertical hole 804, and the other end of the external bolt extends into the threaded groove 602. The inner wall of the connecting groove 602 is engaged with the outer wall of the connecting plate A504. The connecting hole A505 and the connecting hole B603 are detachably connected by an external fastener. By selecting the detection component 6 as needed and engaging the inner wall of the connecting groove 602 with the outer wall of the connecting plate A504, and then rotating the external fastener along the connecting hole A505 and the connecting hole B603, the connecting plate A504 and the connecting plate B601 can be detachably connected.

[0046] Specifically, it includes the following steps:

[0047] Step 1: Select and connect the limiting component 8 as needed. Select and move the limiting component 8 as needed. Then, engage and connect the outer wall of the template 801 with the inner wall of the slot 305. Next, rotate the external bolt along the vertical hole 804 and extend it into the threaded groove 306 to make a detachable connection between the template 801 and the rotating plate 303. This gives the device the function of selecting the limiting component 8 as needed, making it suitable for testing 5G communication modules of various sizes and testing requirements.

[0048] Step 2: Select the detection component 6 and connect it as needed. Select the detection component 6 and engage the inner wall of the connecting groove 602 with the outer wall of the connecting plate A504. Then, rotate the external fastener along the connecting hole A505 and the connecting hole B603 to make the connecting plate A504 and the connecting plate B601 detachably connected. This means that the device has the function of selecting the detection component 6 as needed, which is suitable for testing 5G communication modules of various sizes and testing requirements.

[0049] Step 3, feeding and conveying: Move the 5G communication module to be tested and place it into the slot 802. Then, the motor 301 drives the output shaft to rotate, which in turn drives the rotating shaft 302 and the rotating plate 303 to rotate. This causes the 5G communication module to be tested to move in a circular motion to the position below the pre-inspection data entry component 4. At the same time, the auxiliary support wheel 309 rotates along the inner wall of the through hole 308 to keep the rotating plate 303 rotating stably and horizontally, so that the device has the function of a production line-type rotary conveyor.

[0050] Step 4, Information Entry Before Testing: The barcode information of the 5G communication module to be tested is entered before testing by running the barcode scanner A402, thus enabling the device to have the function of entering information before testing the 5G communication module.

[0051] Step 5, testing: The cylinder A502 drives the pneumatic telescopic rod A503 to extend and slide, thereby causing the connecting plate A504 and the testing component 6 to move linearly up and down. This allows the contact 607 to be inserted into the socket of the 5G communication module to be tested for data communication connection. Then, the detector 605 performs corresponding testing operations on the 5G communication module according to the corresponding program. The test results are then output to the external CPU, which compares them with the pass / fail standard and outputs the barcode information of the unqualified 5G communication module. This demonstrates that the device has the function of automatically testing 5G communication modules.

[0052] Step 6: Secondary identification of information after detection. The barcode scanner B702 can perform secondary identification of the information of the detected 5G communication modules and output the barcode information of the identified unqualified 5G communication modules to the material handling component 9. This means that the device has the function of outputting the information of unqualified products in a timely manner after the 5G communication module is detected.

[0053] Step 7, material discharge: The pneumatic telescopic rod B904 is extended and slid by the cylinder B903, so that the pneumatic telescopic rod B904 can be inserted along the socket A307 and socket B805, and then the 5G communication module can slide along the inner side wall of the slot 802 and be pushed out, thus completing the inspection of the 5G communication module. This means that the device has the function of separating the unqualified products from the qualified products in a timely manner after the 5G communication module is inspected.

[0054] The electronic components used in this invention are all general standard parts or components known to those skilled in the art. Their structures and principles can be learned by those skilled in the art through technical manuals or conventional experimental methods.

[0055] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of this invention is defined by the appended claims and their equivalents.

Claims

1. A rotating 5G communication module testing device, comprising a base (1), characterized in that: The upper surface of the base (1) is provided with a rotating component (3), and the rotating end of the rotating component (3) is detachably connected to a limiting component (8). The outer side wall of the base (1) is provided with a skirt (2), and the outer side wall of the skirt (2) is detachably connected to the fixed end of a lifting component (5). The lifting end of the lifting component (5) is detachably connected to a detection component (6). The base (1) is equipped with a pre-inspection input component (4) and a post-inspection comparison component (7). The upper surface of the base (1) is detachably connected to a material picking component (9). The limiting component (8) is used to limit the 5G communication module. The rotating component (3) is used to transport the 5G communication module limited by the limiting component (8) in a horizontal circumferential manner to the working position of the pre-inspection input component (4), the detection component (6), the post-inspection comparison component (7), and the material picking component (9). The pre-inspection input component (4) is used to input the information of the 5G communication module to be inspected. The detection component (6) is used to perform inspection on the 5G communication module. The lifting component (5) is used to move the detection component (6) back and forth in the vertical direction and complete the inspection. The post-inspection comparison component (7) is used to perform secondary identification on the 5G communication module information and transport the identified unqualified 5G communication module position information to the material picking component (9). The material picking component (9) is used to push the unqualified 5G communication module out of the limiting component (8). The detection component (6) includes a connecting plate B (601), a connecting groove (602) is provided on the upper surface of the connecting plate B (601), a connecting hole B (603) is provided on the inner wall of the bottom surface of the connecting groove (602), one end of a connecting rod (604) is provided on the outer wall of the bottom surface of the connecting plate B (601), and a detector (605) is fixedly connected to the other end of the connecting rod (604). A protrusion (606) is fixedly connected to the outer wall of the bottom surface of the detector (605), and a contact (607) is provided on the outer wall of the bottom surface of the protrusion (606). The limiting component (8) includes a template (801), a slot (802) is provided on the upper surface of the template (801), and an insertion hole B (805) is provided on the inner wall of the bottom surface of the slot (802). A side arm (803) is provided on the outer wall of the template (801), and a vertical hole (804) is provided on the upper surface of the side arm (803).

2. The rotating 5G communication module testing device according to claim 1, characterized in that: The rotating assembly (3) includes a motor (301), which is mounted on the upper surface of the base (1). The output shaft of the motor (301) is provided with one end of a rotating shaft (302), and the other end of the rotating shaft (302) is detachably connected to a rotating plate (303). The upper surface of the rotating plate (303) is provided with a slot (305) and a threaded groove (306). The inner wall of the bottom surface of the slot (305) is provided with an insertion hole A (307). The inner side wall of the skirt (2) is provided with a side plate (304), and the upper surface of the side plate (304) is provided with a through hole (308). The inner side wall of the through hole (308) is rotatably connected to an auxiliary support wheel (309).

3. The rotating 5G communication module testing device according to claim 2, characterized in that: The pre-inspection data entry component (4) includes a support plate A (401), which is disposed on the upper surface of the base (1), and a barcode scanner A (402) is detachably connected to the outer side wall of the support plate A (401).

4. The rotating 5G communication module testing device according to claim 3, characterized in that: The lifting assembly (5) includes a right-angle plate (501), which is detachably connected to the upper surface of the skirt board (2). A cylinder A (502) is provided on the upper surface of the skirt board (2). One end of a pneumatic telescopic rod A (503) is slidably connected to the inner side wall of the cylinder A (502), and the other end of the pneumatic telescopic rod A (503) is fixedly connected to a connecting plate A (504). A connecting hole A (505) is provided on the upper surface of the connecting plate A (504).

5. The rotating 5G communication module testing device according to claim 4, characterized in that: The post-inspection comparison component (7) includes a support plate B (701), which is disposed on the upper surface of the base (1), and a barcode scanner B (702) is detachably connected to the outer side wall of the support plate B (701).

6. The rotating 5G communication module testing device according to claim 5, characterized in that: The material handling component (9) includes a support rod (901), one end of which is detachably connected to the upper surface of the base (1), and the other end of which is provided with a horizontal plate (902). A cylinder B (903) is provided on the outer wall of the bottom surface of the horizontal plate (902), and a pneumatic telescopic rod B (904) is slidably connected to the inner wall of the cylinder B (903).

7. The rotating 5G communication module testing device according to claim 6, characterized in that: One end of the external bolt is provided on the inner wall of the vertical hole (804), and the other end of the external bolt extends into the interior of the connecting groove (602). The inner wall of the connecting groove (602) is engaged with the outer wall of the connecting plate A (504), and the connecting hole A (505) and the connecting hole B (603) are detachably connected by external fasteners.

8. A method of using the rotating 5G communication module testing device according to claim 7, characterized in that, Includes the following steps: Step 1: Select the limiting component (8) and connection as needed. Select the limiting component (8) and move it as needed. Then, engage the outer wall of the template (801) with the inner wall of the slot (305). Next, rotate the external bolt along the vertical hole (804) and extend it into the threaded groove (306) so that the template (801) and the rotating plate (303) can be detachably connected. Step 2: Select the detection component (6) and connection as needed. Select the detection component (6) as needed and engage the inner wall of the connection groove (602) with the outer wall of the connection plate A (504). Then rotate the external fastener along the connection hole A (505) and the connection hole B (603) to make a detachable connection between the connection plate A (504) and the connection plate B (601). Step 3, material feeding and conveying: move the 5G communication module to be tested and put it into the slot (802). Then, the output shaft is driven to rotate by the motor (301), which can drive the rotating shaft (302) and the rotating plate (303) to rotate. This can drive the 5G communication module to be tested to move in a circle to the position below the pre-inspection input component (4). At the same time, the rotating plate (303) can be kept stable and horizontally rotated by the auxiliary support wheel (309) rotating along the inner wall of the through hole (308). Step 4, Information entry before detection: The barcode information of the 5G communication module to be detected is entered before detection by running barcode scanner A (402); Step 5, detection: The pneumatic telescopic rod A (503) is driven by the cylinder A (502) to extend and slide, thereby driving the connecting plate A (504) and the detection component (6) to move linearly up and down, thereby driving the contact (607) to be inserted into the socket of the 5G communication module to be tested for data communication connection. Then, the detector (605) can perform corresponding detection operations on the 5G communication module according to the corresponding program. The detection results are then output to the external CPU and checked against the qualified standard by the external CPU, and the barcode information of the unqualified 5G communication module is output. Step 6: Secondary identification of information after detection. The barcode scanner B (702) can perform secondary identification of the information of the detected 5G communication modules and output the barcode information of the unqualified 5G communication modules to the material handling component (9). Step 7, unloading: The pneumatic telescopic rod B (904) is driven by cylinder B (903) to extend and slide, so that the pneumatic telescopic rod B (904) can be inserted along the socket A (307) and socket B (805), and then the 5G communication module can slide along the inner wall of the slot (802) and be pushed out, thus completing the testing of the 5G communication module.