An automated testing device for intelligent electronic devices
By designing an automated testing device for intelligent electronic devices, efficient and accurate automated testing of optical distance sensors has been achieved, solving the problems of low efficiency, poor consistency and insufficient accuracy in existing technologies, and meeting the quality control requirements of large-scale production.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN ZHIDING IND CO LTD
- Filing Date
- 2025-07-21
- Publication Date
- 2026-08-04
AI Technical Summary
Existing technologies for automated testing of optical distance sensors suffer from low efficiency, poor consistency, limited coverage, and insufficient accuracy, making it difficult to meet the quality control requirements of large-scale production.
An automated testing device for intelligent electronic devices was designed, including a frame, a feeding and discharging conveyor, a loading and unloading conveying mechanism, a testing mechanism, a product transfer mechanism, and an information detection mechanism. This device enables an automated testing process and improves testing efficiency and accuracy through information detection, loading and unloading conveying, testing, and product transfer.
It improves the level of automation in testing, solves the problems of low efficiency, poor consistency and insufficient accuracy, adapts to the stability requirements of complex environments, and meets the quality control requirements of large-scale production.
Smart Images

Figure CN224586399U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electronic equipment testing technology, and in particular to an automated testing device for intelligent electronic equipment. Background Technology
[0002] With the development of technology, the network and communication have become increasingly advanced, and smart electronic devices have become more and more popular, becoming one of the indispensable application tools in people's production and life.
[0003] In the production and quality inspection of smart electronic devices, automated testing of optical proximity sensors (such as infrared light sensing modules integrated into smartphones, tablets, and other devices) is a crucial step in ensuring their functional reliability. These sensors are typically used for ambient light intensity detection (e.g., automatically adjusting screen brightness) and proximity object detection (e.g., preventing accidental touches by turning off the screen during calls), and their performance directly impacts the user experience and interaction stability of the device.
[0004] In existing technologies, automated testing of optical distance sensors mainly relies on manual operation (such as covering / removing the sensor with a finger), which is inefficient, inconsistent, highly subjective, and cannot accurately control key parameters such as distance and speed. It is also difficult to cover complex test scenarios and is not suitable for large-scale production testing.
[0005] Therefore, there is an urgent need for a new type of intelligent automated testing device for electronic equipment that can effectively isolate ambient light interference, cover the entire range of high-precision measurements, adapt to the stability requirements of complex environments, and improve testing efficiency and equipment compatibility, so as to meet the quality control requirements in the large-scale production of electronic equipment. Utility Model Content
[0006] This invention provides an automated testing device for intelligent electronic devices, which can solve the problems of low testing efficiency, poor consistency, limited coverage, and insufficient accuracy in the existing technology.
[0007] To solve the above-mentioned technical problems, the present invention provides an automated testing device for intelligent electronic devices, comprising: frame; An infeed / outfeed conveying mechanism is mounted on the frame; A loading and unloading conveying mechanism is mounted on the frame and located above the infeed and outfeed conveying mechanism; A testing mechanism is mounted on the frame and located on one side of the infeed and discharge conveying mechanism; The product transfer mechanism is mounted on the frame and located above the infeed and outfeed conveying mechanism, and is spaced apart from the loading and unloading conveying mechanism. An information testing mechanism is provided on the frame and located between the product transfer mechanism and the loading and unloading transfer mechanism; When the intelligent electronic device is conveyed to its position by the feeding and discharging conveyor, the information detection mechanism scans and binds the product information of the intelligent electronic device. The loading and unloading conveying mechanism then transports the intelligent electronic device to the testing mechanism for testing. After the test is completed, the loading and unloading conveying mechanism transports the intelligent electronic device back to the feeding and discharging conveyor and the product transfer mechanism is used to transfer the product.
[0008] According to one embodiment of the present invention, the feeding and discharging conveying mechanism includes a first mounting base fixed on the frame, a first conveying component and a second conveying component disposed on the first mounting base, wherein the first conveying component and the second conveying component are arranged in parallel and at intervals.
[0009] According to one embodiment of the present invention, the first conveying assembly includes a first conveyor belt disposed on the first mounting base, a first blocking member disposed on the first conveyor belt, a second blocking member disposed on the first conveyor belt, and a product positioning member disposed between the first blocking member and the second blocking member. The first blocking member and the second blocking member are parallel to each other and spaced apart to divide the first conveyor belt into three first regions.
[0010] According to one embodiment of the present invention, the second conveying assembly includes a second conveyor belt disposed on the first mounting base, a third blocking member disposed on the second conveyor belt, and a fourth blocking member disposed on the second conveyor belt. The third blocking member and the fourth blocking member are arranged parallel to each other and spaced apart to divide the second conveyor belt into three second regions.
[0011] According to one embodiment of the present invention, the loading and unloading conveying mechanism includes a second mounting base fixed on the frame, a first lateral moving component disposed on the second mounting base, a first longitudinal moving component connected to the first lateral moving component, a rotating component connected to the first longitudinal moving component, and a first gripper picking component connected to the rotating component.
[0012] According to one embodiment of the present invention, the testing mechanism includes a shielding box fixed on the frame, a second lateral moving component extending through the side of the shielding box, a clamp positioning component positioned above the second lateral moving component, an NFC testing component positioned at the bottom of the clamp positioning component, an optical distance lifting component extending through the top of the shielding box, and a gray card testing component positioned on the inner surface of the shielding box.
[0013] According to one embodiment of the present invention, the product transfer mechanism includes a third mounting base fixed on the frame, a third lateral moving component disposed on the third mounting base, a second longitudinal moving component connected to the third lateral moving component, and a second gripper picking component connected to the second longitudinal moving component.
[0014] According to one embodiment of the present invention, the information detection mechanism includes a fixed support fixed to the frame, a support column connected to the fixed support, an adjustment block installed on the support column, and a barcode scanner fixed to the adjustment block.
[0015] According to one embodiment of the present invention, the frame includes an upper cover assembly and a lower cover assembly arranged from top to bottom and detachably connected. The feeding and discharging conveying mechanism, the loading and unloading material handling mechanism, the testing mechanism, the product transfer and handling mechanism, and the information detection mechanism are all located inside the upper cover assembly.
[0016] According to one embodiment of the present invention, the outer surface of the upper cover assembly is provided with a human-machine interaction component; the lower cover assembly is provided with a power and air inlet interface component.
[0017] The beneficial effects of this utility model are as follows: An automated testing device for intelligent electronic devices includes: a frame; an infeed / outfeed conveying mechanism, which is disposed on the frame; an loading / unloading transport mechanism, which is disposed on the frame and located above the infeed / outfeed conveying mechanism; a testing mechanism, which is disposed on the frame and located to one side of the infeed / outfeed conveying mechanism; a product transfer transport mechanism, which is disposed on the frame and located above the infeed / outfeed conveying mechanism, and the product transfer transport mechanism is spaced apart from the loading / unloading transport mechanism; and an information detection mechanism, which is disposed on the frame. The device is mounted on a frame and located between the product transfer mechanism and the loading / unloading transfer mechanism. When the intelligent electronic device is conveyed to its position from the infeed / outfeed conveyor, the information detection mechanism scans and binds the product information of the intelligent electronic device. The loading / unloading transfer mechanism then moves the intelligent electronic device to the testing mechanism for testing. After the test is completed, the loading / unloading transfer mechanism moves the intelligent electronic device back to the infeed / outfeed conveyor and the product transfer mechanism completes the product transfer. This device has a high degree of automation and can solve problems such as low testing efficiency, poor consistency, limited coverage, and insufficient accuracy in existing technologies. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the structure of an automated testing device for an intelligent electronic device according to an embodiment of the present invention; Figure 2 yes Figure 1 A schematic diagram of the structure of an automated testing device for intelligent electronic devices, with the upper cover assembly removed, from one perspective. Figure 3 This is a schematic diagram of the structure of the feeding and discharging conveying mechanism according to an embodiment of the present invention; Figure 4 This is a schematic diagram of the structure of a loading and unloading conveying mechanism according to an embodiment of the present invention; Figure 5 This is a schematic diagram of the structure of a testing mechanism according to one embodiment of the present invention from one perspective; Figure 6 This is a schematic diagram of the testing mechanism from another perspective of one embodiment of the present invention; Figure 7 This is a schematic diagram of the product transfer mechanism according to an embodiment of the present invention; Figure 8 This is a schematic diagram of the structure of an information detection mechanism according to an embodiment of the present invention.
[0019] The meanings of the labels in the attached diagram are as follows: 100-Automated testing device; 200-Intelligent electronic device; 1-Frame; 2-Infeed / outfeed conveying mechanism; 3-Loading / unloading handling mechanism; 4-Testing mechanism; 5-Product transfer mechanism; 6-Information detection mechanism; 101-Upper cover assembly; 102-Lower cover assembly; 1010-Human-machine interaction component; 1020-Power and air inlet interface assembly; 201-First mounting base; 202-First conveying component; 203-Second conveying component; 2021-First conveying... Belt; 2022-First blocking component; 2023-Second blocking component; 2024-Product positioning component; 2031-Second conveyor belt; 2032-Third blocking component; 2033-Fourth blocking component; 301-Second mounting base; 302-First lateral movement assembly; 303-First longitudinal movement assembly; 304-Rotation assembly; 305-First gripper material handling assembly; 401-Shielding box; 402-Second lateral movement assembly; 403-Clamping positioning assembly; 404-NFC testing assembly; 405-Light distance lifting assembly; 406-Gray card testing assembly; 501-Third mounting base; 502-Third lateral movement assembly; 503-Second longitudinal movement assembly; 504-Second gripper material handling assembly; 601-Fixed support; 602-Support column; 603-Adjusting block; 604-Bar scanner. Detailed Implementation
[0020] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present utility model, and not all of them. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.
[0021] The terms "first," "second," and "third" in this utility model are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Therefore, a feature defined as "first," "second," or "third" may explicitly or implicitly include at least one of that feature. In the description of this utility model, "a plurality of" means at least two, such as two, three, etc., unless otherwise explicitly specified. All directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of this utility model are only used to explain the relative positional relationships and movement of the components in a specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indications will also change accordingly. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion.
[0022] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of the present invention. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0023] Figure 1 This is a schematic diagram of the structure of an automated testing device for an intelligent electronic device according to an embodiment of the present invention; Figure 2 yes Figure 1 A schematic diagram of the automated testing device for intelligent electronic devices from one perspective after removing the upper cover assembly. (See diagram below.) Figure 1-2As shown, the automated testing device 100 is suitable for testing intelligent electronic devices 200, such as smartphones, smartwatches, and tablet computers. The automated testing device 100 includes: a frame 1, a feeding / discharging conveyor 2, a loading / unloading transfer mechanism 3, a testing mechanism 4, a product transfer mechanism 5, and an information detection mechanism 6, all housed within the frame 1. The loading / unloading transfer mechanism 3 is located above the feeding / discharging conveyor 2; the testing mechanism 4 is located to one side of the feeding / discharging conveyor 2; the product transfer mechanism 5 is located above the feeding / discharging conveyor 2 and is spaced apart from the loading / unloading transfer mechanism 3; and the information detection mechanism 6 is located between the product transfer mechanism 5 and the loading / unloading transfer mechanism 3.
[0024] When the intelligent electronic device 200 is conveyed to its position from the feeding / discharging conveyor 2, the information detection mechanism 6 scans and binds the product information of the intelligent electronic device 200. The loading / unloading transfer mechanism 3 then transports the intelligent electronic device 200 to the testing mechanism 4 for testing. After the test is completed, the loading / unloading transfer mechanism 3 transports the intelligent electronic device 200 back to the feeding / discharging conveyor 2, and the product transfer mechanism 5 completes the product transfer. This automated testing device 100 for the intelligent electronic device 200 has a high degree of automation and can solve the problems of low testing efficiency, poor consistency, limited coverage, and insufficient accuracy in existing technologies.
[0025] For some feasible implementations, please refer to Figure 1 The frame 1 includes an upper cover assembly 101 and a lower cover assembly 102, which are detachably connected from top to bottom. The feeding / discharging conveyor mechanism 2, the loading / unloading handling mechanism 3, the testing mechanism 4, the product transfer mechanism 5, and the information detection mechanism 6 are all located inside the upper cover assembly 101. The upper cover assembly 101 protects the mechanisms installed inside. Furthermore, the outer surface of the upper cover assembly 101 is provided with a human-machine interface component 1010; the lower cover assembly 102 is provided with a power and air inlet interface component 1020. This intelligent electronic device 200's automated testing device 100 makes full use of the frame space, resulting in a compact and aesthetically pleasing structure, thereby reducing the floor space required.
[0026] For some feasible implementations, please refer to Figure 3 The feeding and discharging conveying mechanism 2 has the function of feeding and discharging materials. It includes a first mounting base 201 fixed on the frame 1, a first conveying component 202 and a second conveying component 203 disposed on the first mounting base 201. The first conveying component 201 and the second conveying component 202 are arranged in parallel and at intervals.
[0027] For further details, please see Figure 3The first conveying assembly 202 includes a first conveyor belt 2021 mounted on a first mounting base 201, a first blocking member 2022 mounted on the first conveyor belt 2021, a second blocking member 2023 mounted on the first conveyor belt 2021, and a product positioning member 2024 positioned between the first blocking member 2022 and the second blocking member 2023. The first blocking member 2022 and the second blocking member 2023 are parallel to each other and spaced apart to divide the first conveyor belt 2021 into three first areas. The first conveyor belt 2021 is controlled by a high-precision stepper motor, which can effectively and accurately control the product position. The product positioning member 2024 uses a slide table cylinder for secondary positioning. This first conveying assembly 202 can operate in both left-in-right-out and right-in-left-out configurations. Specifically, when the intelligent electronic device 200 enters from the left and exits from the right, it enters from the first area on the left, passes through the first blocking member 2022 (which does not act as a blocker), and reaches the first area in the middle. The second blocking member 2023 acts as a blocker, and the product positioning member 2024 positions the intelligent electronic device 200. When the intelligent electronic device 200 enters from the right and exits from the left, it enters from the first area on the right, passes through the second blocking member 2023 (which does not act as a blocker), and reaches the first area in the middle. The first blocking member 2022 acts as a blocker, and the product positioning member 2024 positions the intelligent electronic device 200.
[0028] For further details, please see Figure 4 The second conveying assembly 203 includes a second conveyor belt 2031 mounted on the first mounting base 201, a third blocking member 2032 mounted on the second conveyor belt 2031, and a fourth blocking member 2033 mounted on the second conveyor belt 2031. The third blocking member 2032 and the fourth blocking member 2033 are parallel to each other and spaced apart to divide the second conveyor belt 2031 into three second areas. This second conveying assembly 203 can enter from the left and exit from the right, or enter from the right and exit from the left. Specifically, when the intelligent electronic device 200 enters from the left and exits from the right, the intelligent electronic device 200 enters from the middle second area. When the test result of the intelligent electronic device 200 is "pass", the fourth blocking member 2033 acts as a blocking member; when the test result of the intelligent electronic device 200 is "fail", the intelligent electronic device 200 passes through the fourth blocking member 2033 (the fourth blocking member 2033 does not act as a blocking member) and reaches the second area on the right. When the intelligent electronic device 200 enters from the right and exits from the left, it enters from the second area in the middle. When the test result of the intelligent electronic device 200 is "pass", the third blocking member 2032 acts as a blocking member. When the test result of the intelligent electronic device 200 is "fail", the intelligent electronic device 200 passes through the third blocking member 2032 (the third blocking member 2032 does not act as a blocking member) and reaches the second area on the right.
[0029] For example, when the intelligent electronic device 200 enters from the left and exits from the right, the intelligent electronic device 200 enters the first conveyor belt 2021 from the first area on the left, passes through the first blocking member 2022 (the first blocking member 2022 does not act as a blocking member), and arrives at the first area in the middle. The second blocking member 2023 acts as a blocking member, and the product positioning member 2024 positions the intelligent electronic device 200. Then, the loading and unloading conveying mechanism 3 transports the intelligent electronic device 200 to the testing mechanism 4 for testing. After the test is completed, the loading and unloading conveying mechanism 3 transports the intelligent electronic device 200 to its designated position. In the second area in the middle, the intelligent electronic device 200 enters the second conveyor belt 2031; when the test result of the intelligent electronic device 200 is passed, the fourth blocking member 2033 acts as a blocking member, and the product transfer mechanism 5 transports the intelligent electronic device 200 to the first area on the right, and the intelligent electronic device 200 re-enters the first conveyor belt 2021 and flows out; when the test result of the intelligent electronic device 200 is failed, the intelligent electronic device 200 passes through the fourth blocking member 2033 (the fourth blocking member 2033 does not act as a blocking member) and reaches the second area on the right and flows out.
[0030] For example, when the intelligent electronic device 200 enters from the right and exits from the left, the intelligent electronic device 200 enters the first conveyor belt 2021 from the first area on the right, passes through the second blocking member 2023 (the second blocking member 2023 does not act as a blocking member), and arrives at the first area in the middle. The first blocking member 2022 acts as a blocking member, and the product positioning member 2024 positions the intelligent electronic device 200. Then, the loading and unloading conveying mechanism 3 transports the intelligent electronic device 200 to the testing mechanism 4 for testing. After the test is completed, the loading and unloading conveying mechanism 3 transports the intelligent electronic device 200 to its designated position. In the second area in the middle, the intelligent electronic device 200 enters the second conveyor belt 2031; when the test result of the intelligent electronic device 200 is passed, the third blocking member 2032 acts as a blocking member, and the product transfer mechanism 5 transports the intelligent electronic device 200 to the first area on the left, and the intelligent electronic device 200 re-enters the first conveyor belt 2021 and flows out; when the test result of the intelligent electronic device 200 is failed, the intelligent electronic device 200 passes through the third blocking member 2032 (the third blocking member 2032 does not act as a blocking member) and reaches the second area on the left and flows out.
[0031] For some feasible implementations, please refer to Figure 4The loading and unloading conveying mechanism 3 includes a second mounting base 301 fixed on the frame 1, a first transverse moving component 302 disposed on the second mounting base 301, a first longitudinal moving component 303 connected to the first transverse moving component 302, a rotating component 304 connected to the first longitudinal moving component 303, and a first gripper material-picking component 305 connected to the rotating component 304. During operation, the first longitudinal moving component 303 moves up and down, and the first gripper material-picking component 305 picks up and places materials. The rotating component 304 rotates the material by an angle, and the first transverse moving component 302 moves the material laterally to the corresponding workstation.
[0032] For some feasible implementations, please refer to Figure 5 and Figure 6 The testing mechanism 4 includes a shielding box 401 fixed to the frame 1, a second lateral moving component 402 extending through the side of the shielding box 401, a fixture positioning component 403 positioned above the second lateral moving component 402, an NFC testing component 404 positioned at the bottom of the fixture positioning component 403, an optical distance lifting component 405 extending through the top of the shielding box 401, and a gray card testing component 406 positioned on the inner surface of the shielding box 401. During operation, the loading and unloading conveying mechanism 3 moves the smart electronic device 200 onto the fixture positioning component 403. Then, the NFC testing component 404 performs an NFC test on the smart electronic device 200. After the test, it moves laterally into the shielding box 401 via the second lateral moving component 402 to perform corresponding tests on the gray card testing component 406 and the optical distance lifting component 405. After completion, it moves laterally out of the shielding box 401 via the second lateral moving component 402.
[0033] For some feasible implementations, please refer to Figure 8 The product transfer mechanism 5 includes a third mounting base 501 fixed on the frame 1, a third lateral moving component 502 disposed on the third mounting base 501, a second longitudinal moving component 503 connected to the third lateral moving component 502, and a second gripper material-picking component 504 connected to the second longitudinal moving component 503. During transfer, the second longitudinal moving component 503 descends to allow the second gripper material-picking component 504 to grip the intelligent electronic device 200, and then the third lateral moving component 502 moves laterally to the corresponding workstation.
[0034] For some feasible implementations, please refer to Figure 8 The information testing mechanism 6 includes a fixed support 601 fixed to the frame 1, a support column 602 connected to the fixed support 601, an adjustment block 603 installed on the support column 602, and a barcode scanner 604 fixed to the adjustment block 603. The barcode scanner 604 can scan product information on the smart electronic device 200, such as test type, product model, and production date.
[0035] The above are merely embodiments of this utility model and do not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the description and drawings of this utility model, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.
Claims
1. An automated testing device for intelligent electronic devices, characterized in that, include: frame; An infeed / outfeed conveying mechanism is mounted on the frame; A loading and unloading conveying mechanism is mounted on the frame and located above the infeed and outfeed conveying mechanism; A testing mechanism is mounted on the frame and located on one side of the infeed and discharge conveying mechanism; The product transfer mechanism is mounted on the frame and located above the infeed and outfeed conveying mechanism, and is spaced apart from the loading and unloading conveying mechanism. An information testing mechanism is provided on the frame and located between the product transfer mechanism and the loading and unloading transfer mechanism; When the intelligent electronic device is conveyed to its position by the feeding and discharging conveyor, the information detection mechanism scans and binds the product information of the intelligent electronic device. The loading and unloading conveying mechanism then transports the intelligent electronic device to the testing mechanism for testing. After the test is completed, the loading and unloading conveying mechanism transports the intelligent electronic device back to the feeding and discharging conveyor and the product transfer mechanism is used to transfer the product.
2. The automated testing device for intelligent electronic devices according to claim 1, characterized in that, The feeding and discharging conveying mechanism includes a first mounting base fixed on the frame, a first conveying component and a second conveying component disposed on the first mounting base, wherein the first conveying component and the second conveying component are arranged in parallel and at intervals.
3. The automated testing device for intelligent electronic devices according to claim 2, characterized in that, The first conveying assembly includes a first conveyor belt disposed on the first mounting base, a first blocking member disposed on the first conveyor belt, a second blocking member disposed on the first conveyor belt, and a product positioning member disposed between the first blocking member and the second blocking member. The first blocking member and the second blocking member are parallel to each other and spaced apart to divide the first conveyor belt into three first regions.
4. The automated testing device for intelligent electronic devices according to claim 2, characterized in that, The second conveying assembly includes a second conveyor belt disposed on the first mounting base, a third blocking member disposed on the second conveyor belt, and a fourth blocking member disposed on the second conveyor belt. The third blocking member and the fourth blocking member are arranged parallel to each other and spaced apart to divide the second conveyor belt into three second regions.
5. The automated testing device for intelligent electronic devices according to claim 1, characterized in that, The loading and unloading conveying mechanism includes a second mounting base fixed on the frame, a first lateral moving component disposed on the second mounting base, a first longitudinal moving component connected to the first lateral moving component, a rotating component connected to the first longitudinal moving component, and a first gripper picking component connected to the rotating component.
6. The automated testing device for intelligent electronic devices according to claim 1, characterized in that, The testing mechanism includes a shielding box fixed to the frame, a second lateral moving component extending through the side of the shielding box, a clamp positioning component located above the second lateral moving component, an NFC testing component located at the bottom of the clamp positioning component, an optical distance lifting component extending through the top of the shielding box, and a gray card testing component located on the inner surface of the shielding box.
7. The automated testing device for intelligent electronic devices according to claim 1, characterized in that, The product transfer mechanism includes a third mounting base fixed on the frame, a third lateral moving component disposed on the third mounting base, a second longitudinal moving component connected to the third lateral moving component, and a second gripper picking component connected to the second longitudinal moving component.
8. The automated testing device for intelligent electronic devices according to claim 1, characterized in that, The information detection mechanism includes a fixed support fixed to the frame, a support column connected to the fixed support, an adjustment block installed on the support column, and a barcode scanner fixed to the adjustment block.
9. The automated testing device for intelligent electronic devices according to claim 1, characterized in that, The frame includes an upper cover assembly and a lower cover assembly that are detachably connected from top to bottom. The feeding and discharging conveying mechanism, the loading and unloading handling mechanism, the testing mechanism, the product transfer mechanism, and the information detection mechanism are all located inside the upper cover assembly.
10. The automated testing device for intelligent electronic devices according to claim 9, characterized in that, The outer surface of the upper cover assembly is provided with a human-machine interaction component; the lower cover assembly is provided with a power and air inlet interface component.