Electronic product detection table convenient to detect and method thereof
By designing an automated loading unit, testing unit and classification mechanism, the problems of the existing electronic product testing bench being unable to automatically classify and the cumbersome fixture replacement are solved, thereby improving the testing efficiency.
Patent Information
- Application Number
- CN202511221248.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-29
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2045-08-29
AI Technical Summary
Existing electronic product testing stations cannot achieve automatic classification and fixture replacement is cumbersome, resulting in low testing efficiency.
An electronic product testing platform including a loading unit, a testing unit and a classification mechanism is designed to reduce manual intervention through automatic loading, testing and classification.
It realizes the automated detection and classification of electronic products, improves the detection efficiency and reduces the tedious process of fixture replacement.
Smart Images

Figure CN120734005A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of electronic product testing platforms, in particular to an electronic product testing platform and a method thereof for convenient testing. Background Art
[0002] An electronic product test bench is a device used to test and evaluate electronic products. It is usually used in a laboratory or engineering environment. It provides a series of test instruments, tools and environments to ensure that electronic products meet specific standards and requirements.
[0003] At present, the existing electronic product testing bench cannot classify the tested products when in use. The staff needs to take out the tested products and then pick out the unqualified products to complete the classification purpose. In addition, when testing different types of electronic products, the fixture needs to be replaced, and the fixture replacement process is relatively cumbersome. The above problems will greatly reduce the testing efficiency of electronic products.
[0004] In view of the above problems, it can be found that the existing electronic product testing stations on the market that are convenient for inspection are difficult to avoid the above problems at the same time when in use. Even if they can be solved, they need to be solved with the help of external tools, which makes it impossible to achieve the desired effect. Therefore, we propose an electronic product testing station and method for convenient inspection. Summary of the Invention
[0005] The object of the present invention is to provide an electronic product testing station and method for convenient testing, so as to solve the problems raised in the above background technology.
[0006] To achieve the above object, the present invention provides the following technical solution: an electronic product testing platform for convenient inspection, comprising a testing platform, a testing mechanism is provided above the testing platform, and a classification mechanism is provided on the left side of the testing platform; The detection mechanism includes a loading unit, which is arranged above the detection table and can automatically load the material onto the detection table; The detection mechanism further includes a detection unit, which is arranged above the detection table and cooperates with the loading unit. The detection unit can automatically test the electronic product to be detected; The classification mechanism cooperates with the detection mechanism, and the classification mechanism can automatically classify and unload the detected electronic products.
[0007] Material toggling mechanism, its both sides respectively have a cylinder pressure, and the cylinder pressure bar connects swing arm, and the swing arm end face has hook portion, and a bar passes position between the end of two swing arms and the hook portion.
[0008] Preferably, the inner wall of the rotating plate is rotatably connected to the outer surface of the rotating shaft, the interior of the rotating plate and the interior of the movable plate are jointly clamped with a clamping shaft, the inner wall of the rotating plate is provided with two first sliding grooves, the interior of each of the first sliding grooves is slidably connected with a first slider, the side surfaces of the two first sliders close to each other are jointly fixedly connected with a rectangular block, the left side of the rectangular block is fixedly connected with a transmission shaft, the two first sliding grooves are symmetrically and evenly opened on the inner side wall of the rotating plate with the center of the transmission shaft, and the outer surface of the transmission shaft is clamped with the interior of the rotating shaft.
[0009] Preferably, the inner wall of the detection platform is fixedly connected to the support frame, the outer surface of the movable plate is slidably connected to the inside of the support frame, the inner wall of the detection platform is provided with two second sliding grooves, the inside of each of the second sliding grooves is slidably connected to a second slider, and the side surfaces of the two second sliders close to each other are respectively fixedly connected to the two side surfaces of the movable plate, the inner wall of each second slider is rotatably connected to a roller, and the outer surface of each roller is in contact with the inner wall of the detection platform.
[0010] Preferably, the front of the detection platform is fixedly connected to a support plate, the upper surface of the support plate is fixedly connected to a stepper motor, the output end of the stepper motor is fixedly connected to a third threaded shaft, the outer surface of the third threaded shaft is threadedly connected to the inner wall of the movable plate, the outer surface of the third threaded shaft is rotatably connected to the inner wall of the detection platform, the bottom surface of each of the rectangular plates is fixedly connected to the upper surface of the detection platform, and the ends of the two force springs close to the baffle are jointly fixedly connected to the outer surface of the baffle.
[0011] Preferably, the detection unit includes an insulation resistance tester, the outer surface of the insulation resistance tester is fixedly connected to the inner wall of the detection platform, the inner wall of the detection platform is fixedly connected to a withstand voltage tester, the outer surfaces of the insulation resistance tester and the withstand voltage tester are fixedly connected to a first conductive wire and a second conductive wire, the inner wall of the detection platform is respectively fixedly connected to two first conductive frames and two second conductive frames, the right end of each first conductive wire is fixedly connected to the left side of the first conductive frame, one end of each second conductive wire passes through the detection platform and extends to the top of the detection platform, and the end of each second conductive wire close to the second conductive frame is fixedly connected to the back of the second conductive frame, the inner wall of each first conductive frame and the inner wall of the second conductive frame are fixedly connected to two first insulating plates, the inner walls of each two first insulating plates are fixedly connected to a first hydraulic rod, the telescopic end of each first hydraulic rod is fixedly connected to a second insulating plate, and the bottom surface of each second insulating plate is fixedly connected to a conductive block, wherein the outer surfaces of two of the conductive blocks are respectively slidably connected to the interior of the two first conductive frames, and the outer surfaces of the other two conductive blocks are respectively slidably connected to the interior of the two second conductive frames.
[0012] Preferably, the classification mechanism includes two fixed blocks, the inner wall of each fixed block is fixedly connected to the first iron shaft, the right side of the detection platform is fixedly connected to a fixed frame, the inner wall of the fixed frame is fixedly connected to two first return springs, the right end of each first return spring is fixedly connected to the second iron shaft, the left end of one of the second iron shafts is fixedly connected to a permanent magnet, and the right end of each second iron shaft is fixedly connected to a bull's eye bearing, the right side of the detection platform is provided with a rectangular groove, the interior of the fixed frame and the interior of the rectangular groove are jointly slidably connected to a sliding plate, the right side of the fixed frame is fixedly connected to the first connecting block, the right side of the sliding plate is fixedly connected to the second connecting block, the front side of the first connecting block and the back side of the second connecting block are jointly fixedly connected to the second return spring, the right side of the first connecting block is fixedly connected to the connecting frame, the inner wall of the connecting frame is fixedly connected to the third iron shaft, the left side of the sliding plate is fixedly connected to an extension plate, the inner wall of the extension plate is rotatably connected to a number of identical rollers, and the left side of the detection platform is fixedly connected to a guide frame.
[0013] Preferably, two support frames are fixedly connected to the right side of the fixed frame, and the inner walls of the two support frames are commonly fixedly connected to a second hydraulic rod. The bottom surface of each fixed block is fixedly connected to the upper surface of the detection table, the outer surface of each first iron shaft is fixedly connected to the outer surface of the second conductive wire, and each second iron shaft is arranged in the inner cavity of the fixed frame, one of the bull's eye bearings and the permanent magnet is arranged in the inner cavity of the sliding plate, and the outer surface of the other bull's eye bearing is in contact with the left side of the sliding plate.
[0014] Preferably, the inner wall of the sliding plate is rotatably connected to a roller, the outer surface of the roller contacts the outer surface of one of the bull's eye bearings, the inner wall of the sliding plate is rotatably connected to a spring return shaft, the outer surface of the spring return shaft is fixedly connected to a flip plate, the outer surface of the third iron shaft is fixedly connected to the outer surface of one of the second conductive wires, and the outer surface of the extension plate is slidably connected to the inside of the support frame.
[0015] A method for conveniently inspecting an electronic product testing station comprises the following steps: S1: When the device needs to be used, the staff can apply rotating power to the rotating handle, and the rotating handle will transmit the power to the first threaded shaft, thereby driving the first threaded shaft to rotate, and cooperating with the lifting plate that is threadedly connected to the first threaded shaft, the two lifting plates can be driven to move upward, and when the lifting plate moves upward, it will drive the lifting frame to move upward synchronously until the lifting frame moves to a suitable height, and the stepping motor is controlled to operate. The rotating plate can push the baffle to move backward. Therefore, when the baffle moves backward, the electronic products inside the lifting frame will fall downward, and the moving plate will provide a short-term supporting force to the electronic products inside the lifting frame during the movement until the baffle is reset under the action of the force spring, thereby achieving the purpose of unloading. S2: When the movable plate and the rotating plate push the electronic product to be tested to a position between the first conductive frame and the second conductive frame at the rear, the first hydraulic rod is used to push the conductive block toward the electronic product to be tested until the conductive block contacts the two sides of the electronic product to be tested. The insulation resistance tester is then controlled to operate, thereby testing whether the daily insulation performance of the electronic product is qualified. When the test is completed, the stepper motor is controlled to operate again to continue pushing the electronic product to be tested until it moves to the first conductive frame and the second conductive frame at the front. The conductive block is also pushed to contact the electronic product. The withstand voltage tester is then controlled to operate, and the withstand voltage tester repeats the above test steps to perform extreme withstand voltage testing on the electronic product. S3: When the electronic product to be tested is tested using an insulation resistance tester and a voltage tester, if the electronic product passes the test, the electronic product will be pushed by the movable plate and the rotating plate to enter the roller connected to the inner wall of the extension plate, and the roller is arranged obliquely along the extension plate. Under the action of the roller and gravity, the qualified electronic product will enter the channel at the rear end of the guide frame. When the electronic product fails the insulation resistance test, the movable plate will eventually push the unqualified electronic product to the roller. Under the action of the roller, the electronic product that fails the insulation test can be guided to the middle channel of the guide frame. When the electronic product completes the insulation test and passes, the electronic product will enter the high voltage test. When the electronic product fails the high voltage test, the electronic product that fails the high voltage test will enter the channel at the front end of the guide frame.
[0016] Compared with the prior art, the present invention has the following beneficial effects: The present invention provides a loading unit, which can be used to centrally place electronic equipment that needs to be tested inside the lifting frame, and can automatically transport the electronic equipment to the testing position, thereby increasing the convenience of the equipment when in use.
[0017] The present invention sets up a detection unit, which can be used to perform insulation test and high voltage resistance test on the electronic products to be tested. The detection unit and the loading unit cooperate with each other, which can effectively eliminate the need for workers to hold the clamps on the electronic products to be tested, thereby increasing the detection efficiency of electronic products.
[0018] The present invention provides a classification mechanism, which can automatically classify electronic products after inspection. By providing a loading unit, an inspection unit and a classification mechanism, it can effectively avoid the problem that when the equipment is in use, the clamping and classification of electronic products will waste a lot of staff time, thereby reducing the efficiency of electronic product inspection. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a schematic structural diagram of the present invention as a whole; Figure 2 Schematic diagram of the structure of the stepping motor of the present invention; Figure 3 Schematic diagram of the structure of the third threaded shaft of the present invention; Figure 4 It is a structural schematic diagram of the extension plate of the present invention; Figure 5 is a schematic structural diagram of the second slider of the present invention; Figure 6 It is a structural schematic diagram of the first sliding block of the present invention; Figure 7Schematic diagram of the structure of the first conductive frame of the present invention; Figure 8 It is a structural schematic diagram of the first hydraulic rod of the present invention; Figure 9 Schematic diagram of the structure of the second conductive frame of the present invention; Figure 10 is a schematic structural diagram of the second conductive wire of the present invention; Figure 11 It is a rear structural schematic diagram of the second hydraulic rod of the present invention; Figure 12 Schematic diagram of the rear structure of the sliding plate of the present invention; Figure 13 Schematic diagram of the rear view structure of the bull's eye bearing of the present invention; Figure 14 This is a schematic diagram of the rear structural view of the first iron shaft of the present invention.
[0020] In the figure: 1. Inspection table; 2. Inspection mechanism; 21. Loading unit; 2101. Lifting plate; 2102. Rotating handle; 2103. Lifting frame; 2104. First threaded shaft; 2105. Baffle; 2106. Positioning shaft; 2107. Force spring; 2108. Rectangular plate; 2109. T-shaped slider; 2110. T-shaped chute; 2111. Third threaded shaft; 2112. Support frame; 2113. Second slider Block; 2114, second chute; 2115, roller; 2116, moving plate; 2117, second threaded shaft; 2118, clamping shaft; 2119, rotating shaft; 2120, transmission shaft; 2121, rectangular block; 2122, first chute; 2123, first slider; 2124, rotating plate; 2125, support plate; 2126, stepping motor; 22, detection unit; 2201, insulation resistance tester; 220 2. Hipot tester; 2203. First conductive wire; 2204. First conductive frame; 2205. Second conductive frame; 2206. Second conductive wire; 2207. Conductive block; 2208. First insulating plate; 2209. First hydraulic rod; 2210. Second insulating plate; 3. Sorting mechanism; 301. Guide frame; 302. Fixed frame; 303. Roller; 304. Sliding plate; 305. Rectangular slot; 306. Extension plate ; 307, first iron shaft; 308, fixed block; 309, support frame; 310, second hydraulic rod; 311, second connecting block; 312, second return spring; 313, first connecting block; 314, spring return shaft; 315, flip plate; 316, bull's eye bearing; 317, second iron shaft; 318, first return spring; 319, roller; 320, connecting frame; 321, third iron shaft; 322, permanent magnet. DETAILED DESCRIPTION
[0021] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0022] Example 1: Please refer to Figure 1-Figure 3 、 Figure 5 and Figure 6 The present invention provides a technical solution: a testing platform for electronic products that is convenient for inspection. The present invention makes corresponding improvements to the technical problems mentioned in the background technology, including a testing platform 1, a testing mechanism 2 is provided above the testing platform 1, and a classification mechanism 3 is provided on the left side of the testing platform 1; The detection mechanism 2 includes a loading unit 21 . The loading unit 21 is disposed above the detection platform 1 . The loading unit 21 can automatically load materials onto the detection platform 1 .
[0023] As a further limitation of the detection mechanism 2 of the present invention, the loading unit 21 includes two rectangular plates 2108, the upper surface of each rectangular plate 2108 is fixedly connected to two positioning shafts 2106, the inner wall of each rectangular plate 2108 is rotatably connected to a first threaded shaft 2104, the top of each first threaded shaft 2104 is fixedly connected to a rotating handle 2102, the outer surface of each first threaded shaft 2104 is threadedly connected to a lifting plate 2101, the interior of each lifting plate 2101 is slidably connected to the outer surface of the two positioning shafts 2106, the side of the two lifting plates 2101 close to each other is fixedly connected to a lifting frame 2103, and the bottom surface of the lifting frame 2103 is provided with two T-shaped slots 2110, each T-shaped slot 211 0 is slidably connected with a T-shaped slider 2109, and the bottom surfaces of the two T-shaped sliders 2109 are fixedly connected with a baffle 2105. The back of the lifting frame 2103 is fixedly connected with two force springs 2107. A movable plate 2116 is provided inside the detection platform 1. The inner wall of the movable plate 2116 is threadedly connected with a second threaded shaft 2117. The top of the second threaded shaft 2117 is fixedly connected with a rotating shaft 2119. A rotating plate 2124 is provided on the outside of the rotating shaft 2119. By setting up a loading unit 21, the loading unit 21 can be used to place the electronic equipment that needs to be tested in the interior of the lifting frame 2103, so as to achieve the purpose of automatically transporting the electronic equipment to the detection position, thereby increasing the convenience of the equipment when in use.
[0024] See also Figure 6The inner wall of the rotating plate 2124 is rotatably connected to the outer surface of the rotating shaft 2119, and the interior of the rotating plate 2124 and the interior of the movable plate 2116 are jointly clamped with the clamping shaft 2118. The inner wall of the rotating plate 2124 is provided with two first sliding grooves 2122, and the interior of each first sliding groove 2122 is slidably connected with a first slider 2123. The side of the two first sliders 2123 close to each other is jointly fixedly connected with a rectangular block 2121, and the left side of the rectangular block 2121 is fixedly connected with a transmission shaft 2120. The two first sliding grooves 2122 are evenly arranged on the inner wall of the rotating plate 2124 symmetrically with the transmission shaft 2120. The outer surface of the transmission shaft 2120 is clamped with the rotating plate 2124. A clamping shaft 2118 is provided inside the rotating shaft 2119, and the clamping shaft 2118 can be used to limit the rotating plate 2124 and the movable plate 2116 to prevent the rotating plate 2124 from rotating when pushing the electronic product to move. When the first slider 2123 slides inside the first slide groove 2122, the moving position of the rectangular block 2121 can be limited, and the rotational force exerted on the rotating plate 2124 can be transmitted to the rotating shaft 2119 through the rectangular block 2121 and the transmission shaft 2120, and further drive the rotating shaft 2119 and the second threaded shaft 2117 to rotate, thereby facilitating the raising of the height of the rotating plate 2124 to adapt to the height of the electronic product to be tested.
[0025] See also Figure 3-Figure 5 The inner wall of the detection platform 1 is fixedly connected to the support frame 2112, and the outer surface of the movable plate 2116 is slidably connected to the inside of the support frame 2112. The inner wall of the detection platform 1 is provided with two second sliding grooves 2114, and the inside of each second sliding groove 2114 is slidably connected to the second slider 2113. The side surfaces of the two second sliders 2113 close to each other are respectively fixedly connected to the two side surfaces of the movable plate 2116, and the inner wall of each second slider 2113 is rotatably connected to the roller 2115. The outer surface of each roller 2115 contacts the inner wall of the detection platform 1. By providing the second sliding groove 2114 and the second slider 2113, the characteristic of the second slider 2113 sliding inside the second sliding groove 2114 can be used to limit the movable plate 2116 so that the movable plate 2116 can only move in the forward and backward directions.
[0026] See also Figure 1 and Figure 2The front of the detection platform 1 is fixedly connected to a support plate 2125, and the upper surface of the support plate 2125 is fixedly connected to a stepping motor 2126. The output end of the stepping motor 2126 is fixedly connected to a third threaded shaft 2111. The outer surface of the third threaded shaft 2111 is threadedly connected to the inner wall of the movable plate 2116, and the outer surface of the third threaded shaft 2111 is rotatably connected to the inner wall of the detection platform 1. The bottom surface of each rectangular plate 2108 is fixedly connected to the upper surface of the detection platform 1, and one end of the two force springs 2107 close to the baffle 2105 is jointly fixedly connected to the outer surface of the baffle 2105. By providing a stepping motor 2126, the stepping motor 2126 can drive the third threaded shaft 2111 to rotate, and the threaded connection relationship between the third threaded shaft 2111 and the movable plate 2116 can provide power for the movement of the movable plate 2116.
[0027] The specific implementation of this embodiment is as follows: when it is necessary to use this device, the staff can apply rotational power to the rotating handle 2102, and the rotating handle 2102 will transmit the power to the first threaded shaft 2104, thereby driving the first threaded shaft 2104 to rotate, and cooperating with the lifting plate 2101 that is threadedly connected to the first threaded shaft 2104, it can drive the two lifting plates 2101 to move upward, and when the lifting plate 2101 moves upward, it will drive the lifting frame 2103 to move upward synchronously until the lifting frame 2103 moves to a suitable height. It should be understood here that this suitable height refers to the distance between the bottom surface of the lifting frame 2103 and the support frame 2112. This distance is determined by the thickness of the electronic product to be tested, and then the staff will control the stepper When the motor 2126 is running, the stepper motor 2126 will drive the third threaded shaft 2111 to rotate, and there is a threaded connection relationship between the third threaded shaft 2111 and the movable plate 2116. Therefore, under the action of the threaded connection relationship, the movable plate 2116 and the rotating plate 2124 can be pushed to move forward, and after the rotating plate 2124 moves, it will not provide a limit for the baffle 2105. At this time, the baffle 2105 will move forward under the action of the force spring 2107, and the two T-shaped sliders 2109 fixed on the upper surface of the baffle 2105 will move along the T-shaped slide groove 2110 opened on the bottom surface of the lifting frame 2103, which can limit the moving position of the baffle 2105 until the baffle 2105 moves to the bottom of the lifting frame 2103. When the plate 2116 moves to the front, the card shaft 2118 that is jointly engaged with the inside of the movable plate 2116 and the inside of the rotating plate 2124 can be pulled out, and then a rotational force can be applied to the rotating plate 2124. It should be understood here that since the rotating plate 2124 and the rotating shaft 2119 are in a rotational connection relationship, when the rotating plate 2124 is subjected to the rotational force, the rotating plate 2124 cannot transmit the force to the rotating shaft 2119. Therefore, it is necessary to push the rectangular block 2121 and the transmission shaft 2120 in the direction of the rotating shaft 2119 in advance so that the transmission shaft 2120 is stuck in the inside of the rotating shaft 2119. At this time, applying a rotational force to the rotating plate 2124 can synchronously drive the rotating shaft 2119 and the second threaded shaft 2117 to rotate. When the upper surface of the rotating plate 2124 moves to the position aligned with the bottom surface of the lifting frame 2103, the rotating plate 2124 can be controlled to apply a rotating force, and then the transmission shaft 2120 and the rectangular block 2121 are pulled outward, so that the transmission shaft 2120 is no longer engaged with the rotating shaft 2119. At this time, the rotating plate 2124 is again applied with a rotating force to reset the rotating plate 2124. At this time, the clamping shaft 2118 can be clamped again between the rotating plate 2124 and the movable plate 2116 to complete the position limiting of the rotating plate 2124, preventing the rotating plate 2124 from rotating when pushing the product to be tested to move. Then, the electronic product to be tested is placed inside the lifting frame 2103.At this time, the electronic product to be inspected will be limited and supported by the baffle 2105, and then the stepper motor 2126 will be controlled to operate, prompting the rotating plate 2124 to reset. When the moving plate 2116 and the rotating plate 2124 are reset, the rotating plate 2124 has risen to a position in contact with the bottom surface of the lifting frame 2103, so the rotating plate 2124 can push the baffle 2105 to move backward. Therefore, when the baffle 2105 moves backward, the electronic products inside the lifting frame 2103 will fall downward, and the fallen electronic products will just fill the space between the entire lifting frame 2103 and the support frame 2112. Therefore, when the moving plate 2116 moves forward again under the action of the stepper motor 2126, it will only push one electronic product to move, and the moving plate 2116 will provide a short supporting force to the electronic products inside the lifting frame 2103 during the movement until the baffle 2105 is reset under the action of the force spring 2107, thereby achieving the purpose of unloading.
[0028] Example 2: Please refer to Figure 7-10 The present invention provides a technical solution: an electronic product testing platform that is convenient for inspection. The present invention makes corresponding improvements to the technical problems mentioned in the background technology. The detection mechanism 2 also includes a detection unit 22. The detection unit 22 is arranged above the detection platform 1. The detection unit 22 cooperates with the loading unit 21. The detection unit 22 can automatically test the electronic products to be inspected.
[0029] As a further limitation of the detection mechanism 2 of the present invention, the detection unit 22 includes an insulation resistance tester 2201, the outer surface of the insulation resistance tester 2201 is fixedly connected to the inner wall of the detection platform 1, and the inner wall of the detection platform 1 is fixedly connected to a withstand voltage tester 2202. The outer surfaces of the insulation resistance tester 2201 and the withstand voltage tester 2202 are fixedly connected with a first conductive wire 2203 and a second conductive wire 2206. The inner wall of the detection platform 1 is respectively fixedly connected with two first conductive frames 2204 and two second conductive frames 2205. The right end of each first conductive wire 2203 is fixedly connected to the left side of the first conductive frame 2204, and one end of each second conductive wire 2206 passes through the detection platform 1 and extends to the top of the detection platform 1. The end of each second conductive wire 2206 close to the second conductive frame 2205 is fixedly connected to the back of the second conductive frame 2205. The inner wall of each first conductive frame 2204 Two first insulating plates 2208 are fixedly connected to the inner walls of the second conductive frame 2205, and a first hydraulic rod 2209 is fixedly connected to the inner walls of each of the two first insulating plates 2208. The telescopic end of each first hydraulic rod 2209 is fixedly connected to the second insulating plate 2210, and the bottom surface of each second insulating plate 2210 is fixedly connected to a conductive block 2207, wherein the outer surfaces of the two conductive blocks 2207 are respectively slidably connected to the inside of the two first conductive frames 2204, and the outer surfaces of the other two conductive blocks 2207 are respectively slidably connected to the inside of the two second conductive frames 2205. By setting up a detection unit 22, the detection unit 22 can be used to perform insulation testing and high-voltage resistance testing on the electronic products to be tested. The detection unit 22 and the loading unit 21 cooperate with each other, which can effectively eliminate the need for staff to clamp the construction of the electronic products to be tested, thereby increasing the detection efficiency of electronic products.
[0030] The specific implementation of this embodiment is as follows: when the movable plate 2116 and the rotating plate 2124 push the electronic product to be tested to a position between the first conductive frame 2204 and the second conductive frame 2205 at the rear, the stepper motor 2126 will stop running. It should be understood that the surfaces of the support frame 2112 and the extension plate 306 are covered with a lubricating coating to reduce the friction of the electronic product to be tested when it moves. At this time, the first hydraulic rod 2209 located inside the first conductive frame 2204 and the second conductive frame 2205 at the rear will run. The first hydraulic rod 2209 can be used to push the conductive block 2207 to move toward the electronic product to be tested until the conductive block 2207 contacts the two sides of the electronic product to be tested. It should be understood that the first hydraulic rod 2209 is in contact with the first insulating plate 2208 and the second insulating plate 2210. Therefore, the current will not affect the use of the first hydraulic rod 2209. Then, the insulation resistance tester 2201 is controlled to run. The insulation resistance tester 2201 will pass the first conductive plate 2208 and the second insulating plate 2210. The wire 2203 transmits current to the first conductive frame 2204 and conductive block 2207 at the rear. If the insulation of the electronic product meets the requirements, the current will not be transmitted to the second conductive frame 2205 at the rear, nor will it be transmitted to the second conductive wire 2206. This allows the electronic product to be tested for its daily insulation performance. After the test is completed, the first hydraulic rod 2209 located inside the first and second conductive frames 2204 and 2205 at the rear is reset, and the stepper motor 2126 is controlled to operate again to continue moving the electronic product to be tested until it moves to the first and second conductive frames 2204 and 2205 at the front. The first hydraulic rod 2209 inside the first and second conductive frames 2204 and 2205 at the front is then controlled to operate, similarly pushing the conductive block 2207 into contact with the electronic product. The withstand voltage tester 2202 is then controlled to operate, and the withstand voltage tester 2202 repeats the above test steps to perform an extreme withstand voltage test on the electronic product.
[0031] Example 3: Please refer to Figure 11-14 The present invention provides a technical solution: an electronic product testing platform that is convenient for inspection. The present invention makes corresponding improvements to the technical problems mentioned in the background technology. The classification mechanism 3 and the inspection mechanism 2 cooperate with each other, and the classification mechanism 3 can automatically classify and unload the inspected electronic products.
[0032] As a further limitation of the classification mechanism 3 of the present invention, the classification mechanism 3 includes two fixed blocks 308, the inner wall of each fixed block 308 is fixedly connected to the first iron shaft 307, the right side of the detection platform 1 is fixedly connected to the fixed frame 302, the inner wall of the fixed frame 302 is fixedly connected to two first return springs 318, the right end of each first return spring 318 is fixedly connected to the second iron shaft 317, the left end of one of the second iron shafts 317 is fixedly connected to the permanent magnet 322, and the right end of each second iron shaft 317 is fixedly connected to the bull's eye bearing 316, a rectangular groove 305 is provided on the right side of the detection platform 1, the interior of the fixed frame 302 and the interior of the rectangular groove 305 are jointly slidably connected to the sliding plate 304, the right side of the fixed frame 302 is fixedly connected to the first connecting block 313, and the right side of the sliding plate 304 is fixedly connected to the second connecting block 317. Two connecting blocks 311, the front of the first connecting block 313 and the back of the second connecting block 311 are fixedly connected with the second return spring 312, the right side of the first connecting block 313 is fixedly connected with the connecting frame 320, the inner wall of the connecting frame 320 is fixedly connected with the third iron shaft 321, the left side of the sliding plate 304 is fixedly connected with the extension plate 306, the inner wall of the extension plate 306 is rotatably connected with several identical rollers 303, and the left side of the detection table 1 is fixedly connected with the guide frame 301. By setting up a classification mechanism 3, the classification mechanism 3 can be used to automatically classify the electronic products after inspection. By setting up a loading unit 21, a detection unit 22 and a classification mechanism 3, it can be effectively avoided that when the equipment is in use, the clamping and classification of electronic products will waste a lot of time of the staff, thereby reducing the efficiency of electronic product inspection.
[0033] See also Figure 11 Two support frames 309 are fixedly connected to the right side of the fixed frame 302, and the inner walls of the two support frames 309 are commonly fixedly connected with a second hydraulic rod 310. The bottom surface of each fixed block 308 is fixedly connected to the upper surface of the detection platform 1, and the outer surface of each first iron shaft 307 is fixedly connected to the outer surface of the second conductive wire 2206. Each second iron shaft 317 is arranged in the inner cavity of the fixed frame 302, and one bull's eye bearing 316 and the permanent magnet 322 are both arranged in the inner cavity of the sliding plate 304. The outer surface of the other bull's eye bearing 316 is in contact with the left side of the sliding plate 304. By providing a second hydraulic rod 310, the second hydraulic rod 310 can be used to push the sliding plate 304 to reset.
[0034] See also Figure 14The inner wall of the sliding plate 304 is rotatably connected to a roller 319, and the outer surface of the roller 319 contacts the outer surface of one of the bull's eye bearings 316. The inner wall of the sliding plate 304 is rotatably connected to a spring return shaft 314, and the outer surface of the spring return shaft 314 is fixedly connected to a flip plate 315. The outer surface of the third iron shaft 321 is fixedly connected to the outer surface of one of the second conductive wires 2206. The outer surface of the extension plate 306 is slidably connected to the inside of the support frame 2112. By providing the roller 319, the friction between the bull's eye bearing 316 and the sliding plate 304 can be reduced when it moves to the left, and the spring return shaft 314 and the flip plate 315 can prevent the bull's eye bearing 316 from entering the opening opened on the surface of the sliding plate 304 during the resetting process of the sliding plate 304.
[0035] The specific implementation of this embodiment is as follows: when the insulation resistance tester 2201 and the withstand voltage tester 2202 are used to test the electronic product to be tested, if the electronic product is qualified, the electronic product will enter the roller 303 connected to the inner wall of the extension plate 306 under the push of the moving plate 2116 and the rotating plate 2124, and the roller 303 is arranged obliquely along the extension plate 306. Under the action of the roller 303 and gravity, the qualified electronic product will enter the channel at the rear end of the guide frame 301. When the electronic product fails the insulation resistance test, the electronic product will transmit a strong current to the conductive block 2207 and the second conductive frame 2205, and the second conductive frame 2205 will transmit the current to the second conductive block 2207. On the second conductive wire 2206, the second conductive wire 2206 is wound around and fixed on the first iron shaft 307. Therefore, the first iron shaft 307 has magnetism at this time. Under the action of the magnetic force, the second iron shaft 317 located at the rear will be pulled to move toward the first iron shaft 307 located at the rear. When the second iron shaft 317 moves to the left, it will synchronously drive the permanent magnet 322 and the bull's eye bearing 316 to move synchronously to the rear. It should be understood here that since the side of the bull's eye bearing 316 inside the sliding plate 304 is in contact with the surface of the roller 319, the friction between the side of the bull's eye bearing 316 and the sliding plate 304 can be greatly reduced under the special characteristics of the rotation of the roller 319, making it easier for the bull's eye bearing 316 inside the sliding plate 304 to move between the second iron shaft 317 and the first iron shaft 317. When the second return spring 312 is in a compressed state, the second return spring 312 will push the sliding plate 304 to move forward. When the sliding plate 304 moves forward, the extension plate 306 will be driven forward synchronously by the extension plate 306. It should be understood that the extension plate 306 only serves the purpose of supporting and guiding, so the extension plate 306 itself can be made of a lighter material so that the sliding plate 304 can smoothly drive the extension plate 306 to move forward. When the notch on the surface of the movable plate 304 moves to the bull's eye bearing 316 at the front, the bull's eye bearing 316 at the front will be pushed into the notch on the surface of the sliding plate 304 under the action of the first return spring 318. It can be understood here that the bull's eye bearing 316 and the second iron shaft 317 at the front are always subject to the elastic force of the first return spring 318, and the bull's eye bearing 316 at the front uses its own rolling characteristics to reduce the friction between it and the sliding plate 304. At this time, the sliding plate 304 can be limited, and the roller 303 on the extension plate 306 is exactly corresponding to the middle entrance of the guide frame 301. At this time, the stepper motor 2126 is controlled to control the movable plate 2116 and the rotating plate 2124 to continue to move forward.Therefore, the electronic products that fail the insulation test will be pushed to move to the extension plate 306. As the stepper motor 2126 continues to operate, the moving plate 2116 will eventually push the unqualified electronic products to move to the roller 303. Under the action of the roller 303, the electronic products that fail the insulation test can be guided into the middle channel of the guide frame 301. When the electronic product completes the insulation test and passes it, the electronic product will undergo a high-voltage test. When the electronic product fails the high-voltage test, the same electronic product will transmit current to the second conductive wire 2206 connected to the voltage tester, and when the second conductive wire 2206 passes through the first iron shaft 307 and the third iron shaft 321 in front, it will cause the first iron shaft 307 and the third iron shaft 321 in front to pass through. The third iron shaft 321 is magnetic, and under the action of the magnetism of the first iron shaft 307, it will pull the bull's eye bearing 316 at the front to move to the left. It should be understood that since the electronic product has passed the insulation test, it has not pulled the bull's eye bearing 316 at the rear to move to the left. Therefore, at this time, the bull's eye bearing 316 at the rear is still inside the sliding plate 304, and when the third iron shaft 321 generates magnetic force, it will repel the permanent magnet 322. It should be understood that since the electronic product is subjected to a large current when undergoing a high-voltage resistance test, the magnetism generated by the third iron shaft 321 will be relatively large, so the repulsive force generated on the permanent magnet 322 is much greater than the elastic force of the first return spring 318, so it can push the bull's eye bearing 316 inside the sliding plate 304. The eye bearing 316 moves to the left. At this time, the two bull's eye bearings 316 are not in contact with the sliding plate 304. Therefore, the sliding plate 304 will continue to move forward under the thrust of the second return spring 312 until the second force spring 2107 is fully expanded. At this time, the roller 303 of the extension plate 306 will correspond to the frontmost exit of the guide frame 301. Therefore, electronic products that fail the high-pressure resistance test will enter the frontmost channel of the guide frame 301. When it is necessary to reset the sliding plate 304, control the second hydraulic rod 310 to push the connecting block and the sliding plate 304 to reset forward. During the resetting process, the inner walls of the two sliding plates 304 rotate with the spring return shaft 314, and the surface of the spring return shaft 314 is fixed and flipped. When the turning plate 315 is moved to the bull's eye bearing 316, the turning plate 315 will be pushed to rotate by the bull's eye bearing 316. Therefore, the turning plate 315 can cover half of the opening on the surface of the sliding plate 304 to prevent the bull's eye bearing 316 from being stuck inside the sliding plate 304 during the resetting process of the sliding plate 304. When the sliding plate 304 moves to the rear of the bull's eye bearing 316, the spring return shaft 314 will drive the turning plate 315. It should be understood here that the spring return shaft 314 is a mechanical device that uses the elastic potential energy of the spring to achieve automatic resetting. Its core principle is to store and release energy through the spring.The spring return shaft 314 automatically returns to the preset initial position after the external force is applied, and the second hydraulic rod 310 is controlled to return to its original position. The sliding plate 304 will then move forward again under the action of the second return spring 312. At this time, the bull's eye bearing 316 will enter the notch on the outer surface of the sliding plate 304, completing the return operation.
[0036] A method for conveniently inspecting an electronic product testing station comprises the following steps: When the lifting plate 2101 is in a threaded connection with the first threaded shaft 2104, the two lifting plates 2101 can be driven to move upward, and the lifting plate 2101 will drive the lifting frame 2103 to move upward synchronously when moving upward, until the lifting frame 2103 moves to a suitable height, and the stepping motor 2126 is controlled to operate, and the rotating plate 2124 can push the baffle 2105 to move backward. Therefore, when the baffle 2105 moves backward, the electronic products inside the lifting frame 2103 will fall downward, and the moving plate 2116 will provide a short-term supporting force to the electronic products inside the lifting frame 2103 during the movement, until the baffle 2105 is reset under the action of the force spring 2107, thereby achieving the purpose of unloading. S2: When the movable plate 2116 and the rotating plate 2124 push the electronic product to be tested to a position between the first conductive frame 2204 and the second conductive frame 2205 at the rear, the first hydraulic rod 2209 is used to push the conductive block 2207 toward the electronic product to be tested until the conductive block 2207 contacts both sides of the electronic product to be tested. Then, the insulation resistance tester 2201 is controlled to operate, thereby testing whether the daily insulation performance of the electronic product is qualified. After the test is completed, the stepper motor 2126 is controlled to operate again to continue to push the electronic product to be tested until it moves to the first conductive frame 2204 and the second conductive frame 2205 at the front. The conductive block 2207 is also pushed to contact the electronic product. Then, the withstand voltage tester 2202 is controlled to operate, and the withstand voltage tester 2202 repeats the above test steps to perform extreme withstand voltage testing on the electronic product. S3: When the insulation resistance tester 2201 and the voltage tester 2202 are used to test the electronic product to be tested, if the electronic product passes the test, the electronic product will enter the roller 303 connected to the inner wall of the extension plate 306 under the push of the movable plate 2116 and the rotating plate 2124, and the roller 303 is arranged obliquely along the extension plate 306. Under the action of the roller 303 and gravity, the qualified electronic product will enter the channel at the rear end of the guide frame 301. When the electronic product fails the insulation resistance test, the movable plate 2116 will eventually push the unqualified electronic product to the roller 303. Under the action of the roller 303, the electronic product that fails the insulation test can be guided into the middle channel of the guide frame 301. After the electronic product completes the insulation test and passes, the electronic product will enter the high voltage test. When the electronic product fails the high voltage test, the electronic product that fails the high voltage test will enter the channel at the front end of the guide frame 301.
[0037] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.
[0038] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A convenient testing platform for electronic products, comprising a testing platform (1), characterized in that: A detection mechanism (2) is provided above the detection platform (1), and a classification mechanism (3) is provided on the left side of the detection platform (1); The detection mechanism (2) includes a loading unit (21), and the loading unit (21) is arranged above the detection table (1). The loading unit (21) can achieve the purpose of automatically loading materials onto the detection table (1); The detection mechanism (2) further comprises a detection unit (22), the detection unit (22) being arranged above the detection platform (1), the detection unit (22) cooperating with the loading unit (21), and the detection unit (22) being able to automatically test the electronic product to be detected; The classification mechanism (3) cooperates with the detection mechanism (2), and the classification mechanism (3) can automatically classify and unload the detected electronic products; The loading unit (21) comprises two rectangular plates (2108), the upper surface of each rectangular plate (2108) is fixedly connected to two positioning shafts (2106), the inner wall of each rectangular plate (2108) is rotatably connected to a first threaded shaft (2104), the top end of each first threaded shaft (2104) is fixedly connected to a rotating handle (2102), the outer surface of each first threaded shaft (2104) is threadedly connected to a lifting plate (2101), the interior of each lifting plate (2101) is slidably connected to the outer surfaces of the two positioning shafts (2106), and the side surfaces of the two lifting plates (2101) that are close to each other are fixedly connected to a lifting frame (2103); The detection unit (22) comprises an insulation resistance tester (2201), the outer surface of the insulation resistance tester (2201) is fixedly connected to the inner wall of the detection platform (1), the inner wall of the detection platform (1) is fixedly connected to a withstand voltage tester (2202), the outer surfaces of the insulation resistance tester (2201) and the withstand voltage tester (2202) are fixedly connected to a first conductive wire (2203) and a second conductive wire (2206), and the inner wall of the detection platform (1) is respectively fixedly connected to two first conductive frames (2204) and two second conductive frames (2205); The classification mechanism (3) comprises two fixed blocks (308), the inner wall of each fixed block (308) is fixedly connected to a first iron shaft (307), the right side of the detection platform (1) is fixedly connected to a fixed frame (302), the inner wall of the fixed frame (302) is fixedly connected to two first return springs (318), the right end of each first return spring (318) is fixedly connected to a second iron shaft (317), the left end of one of the second iron shafts (317) is fixedly connected to a permanent magnet (322), and the right end of each second iron shaft (317) is fixedly connected to a bull's eye bearing (316).
2. The electronic product testing platform for convenient inspection according to claim 1, characterized in that: The bottom surface of the lifting frame (2103) is provided with two T-shaped slots (2110), the interior of each T-shaped slot (2110) is slidably connected to a T-shaped slider (2109), the bottom surfaces of the two T-shaped sliders (2109) are fixedly connected to a baffle (2105), the back surface of the lifting frame (2103) is fixedly connected to two force springs (2107), a movable plate (2116) is provided inside the detection platform (1), the inner wall of the movable plate (2116) is threadedly connected to a second threaded shaft (2117), the top end of the second threaded shaft (2117) is fixedly connected to a rotating shaft (2119), and a rotating plate (2124) is provided on the outer side of the rotating shaft (2119).
3. The electronic product testing platform for convenient inspection according to claim 2, characterized in that: The inner wall of the rotating plate (2124) is rotatably connected to the outer surface of the rotating shaft (2119); the interior of the rotating plate (2124) and the interior of the movable plate (2116) are jointly clamped with a clamping shaft (2118); the inner wall of the rotating plate (2124) is provided with two first sliding grooves (2122); the interior of each first sliding groove (2122) is slidably connected with a first slider (2123); the two first sliders (2123) are fixedly connected to a rectangular block (2121) on one side close to each other; the left side of the rectangular block (2121) is fixedly connected to a transmission shaft (2120); the two first sliding grooves (2122) are symmetrically and evenly opened on the inner wall of the rotating plate (2124) with the center of the transmission shaft (2120); the outer surface of the transmission shaft (2120) is clamped with the interior of the rotating shaft (2119).
4. The electronic product testing platform for convenient inspection according to claim 2, characterized in that: The inner wall of the detection platform (1) is fixedly connected to a support frame (2112), the outer surface of the movable plate (2116) is slidably connected to the inside of the support frame (2112), and the inner wall of the detection platform (1) is provided with two second sliding grooves (2114), the inside of each second sliding groove (2114) is slidably connected to a second slider (2113), and the side surfaces of the two second sliders (2113) that are close to each other are fixedly connected to the two side surfaces of the movable plate (2116), and the inner wall of each second slider (2113) is rotatably connected to a roller (2115), and the outer surface of each roller (2115) is in contact with the inner wall of the detection platform (1).
5. The electronic product testing platform for convenient inspection according to claim 2, characterized in that: The front surface of the detection platform (1) is fixedly connected to a support plate (2125), the upper surface of the support plate (2125) is fixedly connected to a stepping motor (2126), the output end of the stepping motor (2126) is fixedly connected to a third threaded shaft (2111), the outer surface of the third threaded shaft (2111) is threadedly connected to the inner wall of the movable plate (2116), the outer surface of the third threaded shaft (2111) is rotatably connected to the inner wall of the detection platform (1), the bottom surface of each rectangular plate (2108) is fixedly connected to the upper surface of the detection platform (1), and one end of the two force springs (2107) close to the baffle (2105) is fixedly connected to the outer surface of the baffle (2105).
6. The electronic product testing platform for convenient inspection according to claim 1, characterized in that: The right end of each of the first conductive wires (2203) is fixedly connected to the left side of the first conductive frame (2204), one end of each of the second conductive wires (2206) passes through the detection platform (1) and extends to the top of the detection platform (1), and one end of each of the second conductive wires (2206) close to the second conductive frame (2205) is fixedly connected to the back of the second conductive frame (2205), and the inner wall of each of the first conductive frame (2204) and the inner wall of the second conductive frame (2205) are fixedly connected to two first insulating plates (2208), and each of the two The inner wall of the first insulating plate (2208) is fixedly connected to a first hydraulic rod (2209), the telescopic end of each first hydraulic rod (2209) is fixedly connected to a second insulating plate (2210), and the bottom surface of each second insulating plate (2210) is fixedly connected to a conductive block (2207), wherein the outer surfaces of two of the conductive blocks (2207) are respectively slidably connected to the inside of the two first conductive frames (2204), and the outer surfaces of the other two conductive blocks (2207) are respectively slidably connected to the inside of the two second conductive frames (2205).
7. The electronic product testing platform for convenient inspection according to claim 1, characterized in that: A rectangular groove (305) is provided on the right side of the detection platform (1); a sliding plate (304) is slidably connected to the interior of the fixed frame (302) and the interior of the rectangular groove (305); a first connecting block (313) is fixedly connected to the right side of the fixed frame (302); a second connecting block (311) is fixedly connected to the right side of the sliding plate (304); a second return spring (312) is fixedly connected to the front of the first connecting block (313) and the back of the second connecting block (311); a connecting frame (320) is fixedly connected to the right side of the first connecting block (313); a third iron shaft (321) is fixedly connected to the inner wall of the connecting frame (320); an extension plate (306) is fixedly connected to the left side of the sliding plate (304); a plurality of identical rollers (303) are rotatably connected to the inner wall of the extension plate (306); and a guide frame (301) is fixedly connected to the left side of the detection platform (1).
8. The electronic product testing platform for convenient inspection according to claim 7, characterized in that: The right side of the fixing frame (302) is fixedly connected to two support frames (309), the inner walls of the two support frames (309) are fixedly connected to a second hydraulic rod (310), the bottom surface of each fixing block (308) is fixedly connected to the upper surface of the detection table (1), the outer surface of each first iron shaft (307) is fixedly connected to the outer surface of the second conductive wire (2206), and each second iron shaft (317) is arranged in the inner cavity of the fixing frame (302), one of the bull's eye bearings (316) and the permanent magnet (322) are arranged in the inner cavity of the sliding plate (304), and the outer surface of the other bull's eye bearing (316) is in contact with the left side of the sliding plate (304).
9. The convenient inspection electronic product testing platform according to claim 7, characterized in that: The inner wall of the sliding plate (304) is rotatably connected to a roller (319), the outer surface of the roller (319) contacts the outer surface of one of the bull's eye bearings (316), the inner wall of the sliding plate (304) is rotatably connected to a spring return shaft (314), the outer surface of the spring return shaft (314) is fixedly connected to a flip plate (315), the outer surface of the third iron shaft (321) is fixedly connected to the outer surface of one of the second conductive wires (2206), and the outer surface of the extension plate (306) is slidably connected to the interior of the support frame (2112).
10. The method for conveniently inspecting an electronic product testing station according to any one of claims 1 to 9, characterized in that: The specific steps include: S1: When the device is needed, the staff can apply rotational power to the rotating handle (2102), and the rotating handle (2102) will transmit the power to the first threaded shaft (2104), thereby driving the first threaded shaft (2104) to rotate, and cooperate with the lifting plate (2101) that is threadedly connected to the first threaded shaft (2104), which can drive the two lifting plates (2101) to move upward, and when the lifting plate (2101) moves upward, it will drive the lifting frame (2103) to move upward synchronously until the lifting frame (2103) is 103) moves up to a suitable height, controls the stepper motor (2126) to operate, and the rotating plate (2124) can push the baffle (2105) to move backward. Therefore, when the baffle (2105) moves backward, the electronic products inside the lifting frame (2103) will fall downward, and the moving plate (2116) will provide a short-term supporting force to the electronic products inside the lifting frame (2103) during the movement, until the baffle (2105) is reset under the action of the force spring (2107), thereby achieving the purpose of unloading; S2: When the movable plate (2116) and the rotating plate (2124) push the electronic product to be tested to a position between the first conductive frame (2204) and the second conductive frame (2205) at the rear, the first hydraulic rod (2209) can be used to push the conductive block (2207) to move toward the electronic product to be tested until the conductive block (2207) contacts the two sides of the electronic product to be tested, and then the insulation resistance tester (2201) is controlled to operate, thereby detecting whether the daily insulation performance of the electronic product is qualified. After the test is completed, the stepper motor (2126) is controlled to operate again to continue to push the electronic product to be tested until it moves to the first conductive frame (2204) and the second conductive frame (2205) at the front, and the conductive block (2207) is also pushed to contact the electronic product. Then, the withstand voltage tester (2202) can be controlled to operate, and the withstand voltage tester (2202) will repeat the above test steps to perform extreme withstand voltage test on the electronic product. S3: When the electronic product to be tested is tested using the insulation resistance tester (2201) and the withstand voltage tester (2202), if the electronic product is qualified, the electronic product will enter the roller (303) connected to the inner wall of the extension plate (306) under the push of the moving plate (2116) and the rotating plate (2124), and the roller (303) is arranged obliquely along the extension plate (306). Under the action of the roller (303) and gravity, the qualified electronic product will enter the channel at the rear of the guide frame (301), and When an electronic product fails the insulation resistance test, the movable plate (2116) will eventually push the unqualified electronic product to the roller (303). Under the action of the roller (303), the electronic product that fails the insulation test can be guided into the middle channel of the guide frame (301). When the electronic product completes the insulation test and passes, the electronic product will enter the high voltage test. When the electronic product fails the high voltage test, the electronic product that fails the high voltage test will enter the front channel of the guide frame (301).
Citation Information
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