Electronic component batch electricity testing experiment platform

By setting up multiple sets of experimental panels and adjustment components on the batch electrical testing platform for electronic components, synchronous electrical testing of different models and types of electronic components is realized. This solves the problem that traditional devices can only test a single model, improves the ease of operation and resource utilization, reduces costs, and adapts to the needs of different operators.

CN121431902AInactive Publication Date: 2026-01-30NANTONG ZHUANGJI HUAWEI ELECTRONICS CO LTD
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Patent Information

Application Number
CN202511727719.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-01-14
Publication Date
2026-01-30
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Traditional electronic component electrical performance testing equipment can only perform electrical tests on one type and type of electronic component, which leads to complicated testing operations for different electronic components, waste of resources, and increased costs.

Method used

A batch electrical testing experimental platform for electronic components was designed. By setting multiple sets of experimental panels and adjustment components on the cabinet, the synchronous rotation and position switching of the experimental panels are realized by using a worm gear transmission system. It is equipped with a dust cover and a lifting mechanism, which supports multiple operators to conduct electrical testing experiments on different models and types of electronic components at the same time.

Benefits of technology

It improves the convenience and resource utilization of electrical testing, reduces equipment space occupation, lowers costs, and extends the service life of the device through dust covers and lifting mechanisms, adapting to the needs of operators of different heights and arm lengths.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of electronic component electrical performance testing, in particular to an electronic component batch electrical testing experiment platform. Comprising a cabinet body, the cabinet body is provided with an adjusting assembly, the adjusting assembly is in transmission connection with a plurality of groups of experiment panels, and electricity testing modules in the plurality of groups of experiment panels are different; the top end of the inner wall of the cabinet body is rotationally connected with a turntable, the top end of the turntable is fixedly connected with a transmission shaft, and the top end of the transmission shaft is fixedly connected with an adjusting assembly; by arranging a plurality of groups of experiment panels on the cabinet body, the device can simultaneously meet the requirement that a plurality of operators simultaneously carry out electricity testing experiments on electronic components of different models and types, a worm gear drives a turntable to synchronously rotate, and a transmission shaft drives an adjusting assembly to synchronously rotate, so that the adjusting assembly drives the experiment panels to synchronously rotate; therefore, the position switching of the experiment panel can be realized.
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Description

[0001] The present application is a divisional application of the application with application number 202510054825.X and titled "Electronic Component Batch Electrical Measurement Experiment Platform and Operation Method Thereof", filed on January 14, 2025. TECHNICAL FIELD

[0002] The present application belongs to the technical field of electronic component electrical performance testing, and particularly relates to an electronic component batch electrical measurement experiment platform. BACKGROUND

[0003] With the continuous development of science and technology, the electrical conductivity plays an increasingly important role in electronic devices. In order to ensure the stability and reliability of electronic products in actual application, the test of electrical conductivity is of great significance. Different types and categories of electronic components correspond to different test methods. The traditional electronic component electrical performance testing device can only test one type and category of electronic component. Testing different electronic components often needs to be carried out on different devices, which leads to low efficiency of electronic component electrical measurement operation and waste of resources.

[0004] Through retrieval, the prior art discloses a kind of electrically conductive probe test table and its testing method, including storage seat, the top of the storage seat is fixedly installed with control console, the surface of the control console is movably installed with heat sink.The application realizes the installation of support rod through the fixed setting of connecting groove at the bottom of support rod, and the support rod is installed through the connecting groove, and the probe body is driven to reciprocate up and down by the electric push rod, and then the connecting seat is conveniently connected with the probe body through the setting of internal thread sleeve, and then the protection effect of the probe body is protected when not in use, to prevent the accuracy from being reduced due to the erosion of moisture, then the probe body adopts four-probe structure, thereby increasing the accuracy of the probe and the coverage area of the electronic device, so that the detection result of the electronic device is accurate, and repeated detection is not needed due to low accuracy and small area of the probe, thereby improving the work efficiency of detection.

[0005] However, the device still has the following defects: although the device can accurately detect electronic components, the device can only test one type and model of electronic components. Testing different electronic components often needs to be carried out on different devices, which leads to the inconvenience of electrical measurement operation of different types of electronic components, and the additional devices occupy a lot of space and increase the cost. SUMMARY

[0006] In view of the above problems, the present application provides an electronic component batch measurement experiment platform, comprising a cabinet, the cabinet is provided with an adjusting assembly, the adjusting assembly is drivingly connected with a plurality of experimental panels, the measurement modules in the plurality of experimental panels are different; The inner wall top end of the cabinet is rotationally connected with a turntable, the top end of the turntable is fixedly connected with a transmission shaft, and the top end of the transmission shaft is fixedly connected with the adjusting assembly; The bottom end of the cabinet is provided with a bottom plate, the center of the bottom plate is rotationally connected with a worm gear, the worm gear is provided with a rotating shaft, and the rotating shaft is fixedly connected with the center of the turntable; By providing a plurality of experimental panels on the cabinet, the device can simultaneously satisfy multiple operators to simultaneously perform measurement experiments on different types and categories of electronic components, the worm gear drives the turntable to rotate synchronously, the transmission shaft drives the adjusting assembly to rotate synchronously, and the adjusting assembly drives the experimental panels to rotate synchronously, so that the position switching of the experimental panels can be realized.

[0007] Further, a plurality of loading grooves are formed in the cabinet, a sliding partition plate is arranged in each of the loading grooves, a handle is arranged on the sliding partition plate, clamping plates are arranged on the two side walls of the sliding partition plate, clamping grooves are formed in the two side inner walls of the loading groove, and the two clamping grooves are movably attached to the two clamping plates, respectively.

[0008] Further, a plurality of loading boxes are arranged in the cabinet, the opening of each loading box is in communication with the loading groove, a plurality of connecting blocks are fixedly connected to the side wall of the turntable, the other end of each connecting block is fixedly connected to a corresponding loading box, a protrusion is arranged at the bottom end of each loading box, an annular groove is formed in the bottom plate, and the annular groove is movably attached to the protrusion.

[0009] Further, two fixing plates are arranged on the bottom plate, a worm is rotationally connected between the two fixing plates, the worm is meshingly connected with the worm gear, a fourth motor is mounted on one of the fixing plates, and the output end of the fourth motor is drivingly connected with one end of the worm.

[0010] Further, the adjusting assembly is provided with a dust cover, the bottom end of the dust cover is provided with a sealing strip, the adjusting assembly comprises a bottom disc and a top disc, a plurality of groups of telescopic columns are arranged on the top disc, the top ends of the plurality of groups of telescopic columns are fixedly connected with the inner wall top end of the dust cover, a threaded rod is rotatably connected at the center of the bottom disc, an internally threaded cylinder is threadedly connected on the threaded rod, the top end of the internally threaded cylinder is fixedly connected with the inner wall top end of the dust cover, a through hole is formed at the center of the top disc, the through hole is movably attached to the internally threaded cylinder, an external gear ring is sleeved on the threaded rod, a second motor is installed on the bottom disc, the output end of the second motor is drivingly connected with a drive gear, and the drive gear is meshingly connected with the external gear ring.

[0011] Further, a plurality of groups of lifting mechanisms are arranged between the bottom disc and the top disc, and the plurality of groups of lifting mechanisms are respectively drivingly connected with a corresponding group of experimental panels.

[0012] Further, the lifting mechanism comprises two groups of limiting columns, the two groups of limiting columns are fixedly connected between the bottom disc and the top disc, a lead screw is arranged between the two groups of limiting columns, the top end of the lead screw is drivingly connected with the output end of the first motor, the lead screw is rotatably connected between the bottom disc and the top disc, a linkage block is threadedly connected on the lead screw, the linkage block is movably attached to the two groups of limiting columns, a telescopic part is fixedly connected to the linkage block, a transmission box is drivingly connected to the telescopic part, the transmission box is fixedly connected with the experimental panel, a main controller is arranged in the bottom disc, and a plurality of groups of wires are arranged on the bottom disc.

[0013] Further, the telescopic part comprises a drive box, a bidirectional lead screw is rotatably connected in the drive box, a third motor is arranged on one side of the outer wall of the drive box, the output end of the third motor is drivingly connected with one end of the bidirectional lead screw, two groups of internally threaded blocks are threadedly connected on the bidirectional lead screw, and the two groups of internally threaded blocks are symmetrically distributed with the central axis of the bidirectional lead screw as the center.

[0014] Further, a hinged frame is arranged on each of the two groups of internally threaded blocks, a first linkage rod is rotatably connected on each of the two groups of hinged frames, the centers of the two groups of first linkage rods are rotatably connected, a second linkage rod is rotatably connected to the other end of each of the two groups of first linkage rods, the centers of the two groups of second linkage rods are rotatably connected, the other ends of the two groups of second linkage rods are rotatably connected with sliding bolts after extending into the transmission box, and the inner wall bottom end and the inner wall top end of the transmission box are both provided with a limiting groove.

[0015] An operation method of an electronic component batch electrical measurement experiment platform, the operation method comprises: Loading the electronic components to be tested; The control adjustment assembly adjusts the height and position of the experimental panel; Using the probe pen corresponding to a set of experimental panels to perform batch electrical test on electronic components in turn; When different types and categories of electronic components need to be tested, the control adjustment assembly synchronously switches the positions of the experimental panel and the loading box.

[0016] The beneficial effects of the present application are: 1. By arranging multiple experimental panels on the cabinet, the device can meet the electrical test of electronic components of different types and categories. The fourth motor drives the worm to rotate, and the worm drives the turntable to rotate synchronously. The turntable rotates, and the transmission shaft drives the chassis to rotate synchronously, so that the adjustment assembly drives the experimental panel to rotate synchronously, which can realize the switching of the experimental panel, and the operator can perform electrical test on electronic components of different types and categories without moving. The device improves resource utilization and electrical test convenience.

[0017] 2. By pulling the handle, the sliding partition plate enters the storage slot. The operator can place the electronic components to be tested in the conductive groove and use the probe pen corresponding to a set of experimental panels to perform batch electrical test on the electronic components. After the test is completed, the sliding partition plate is pulled out and covers the loading slot to protect the electronic components in the loading box. While switching the experimental panel, the turntable drives the several loading boxes to rotate synchronously, thereby realizing the synchronous switching of the experimental panel and the corresponding loading box position, effectively improving the convenience of electrical test operation.

[0018] 3. By rotating the driving gear driven by the second motor, the outer gear ring drives the threaded rod to rotate synchronously, thereby driving the dust cover to move downward. By arranging several telescopic columns between the top disc and the dust cover, the inner threaded cylinder is prevented from rotating with the threaded rod, and the dust cover is more stable during the descending or ascending process. The dust cover is lowered to make the sealing strip arranged at the bottom end of the dust cover fit the upper surface of the cabinet, and the several experimental panels are covered in the dust cover, effectively preventing dust from accumulating on the experimental panels, protecting the experimental panels, and effectively prolonging the service life of the device.

[0019] 4, The first motor is controlled through the control button to drive the screw rod to rotate, the telescopic part drives the transmission box to move up and down, so that the experimental panel moves synchronously, the experimental panel can be adjusted in height according to the different height of the operator, the bidirectional screw rod is driven by the third motor to rotate, so that the two groups of internal threaded blocks move synchronously in the opposite direction or synchronously in the opposite direction, so that the two groups of first linkage rods and second linkage rods rotate synchronously, because the two groups of sliding bolts are attached in the two groups of limiting grooves and slide, the telescopic part can drive the transmission box to move, so that the telescopic adjustment of the experimental panel is realized, so that the device can meet the use demand of the operator with different height and arm length, and the universality of the device is effectively improved. BRIEF DESCRIPTION OF DRAWINGS

[0020] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, below the drawings needed to be used in the embodiments or prior art description will be briefly introduced, obviously, the drawings in the following description are some embodiments of the present application, and for those skilled in the art, other drawings can also be obtained without creative labor on the basis of these drawings.

[0021] Figure 1 The main structure schematic diagram according to the embodiment of the present application is shown; Figure 2 The main structure explosion schematic diagram according to the embodiment of the present application is shown; Figure 3 The adjustment assembly structure schematic diagram according to the embodiment of the present application is shown; Figure 4 The telescopic part structure schematic diagram according to the embodiment of the present application is shown; Figure 5 The cabinet upper part structure schematic diagram according to the embodiment of the present application is shown; Figure 6 The cabinet internal part structure schematic diagram according to the embodiment of the present application is shown; Figure 7 The cabinet internal part structure explosion schematic diagram according to the embodiment of the present application is shown.

[0022] In the figure: 1, cabinet body; 2, control button; 3, loading slot; 4, sliding partition; 401, handle; 402, clamping plate; 5, adjusting assembly; 501, bottom disc; 502, top disc; 503, lifting mechanism; 5031, limiting column; 5032, screw rod; 5033, linkage block; 5034, telescopic part; 50341, drive box; 50342, bidirectional screw rod; 50343, third motor; 50344, internally threaded block; 50345, hinged frame; 50346, first linkage rod; 50347, second linkage rod; 50348, sliding bolt; 5035, transmission box; 50351, limiting groove; 504, first motor; 505, telescopic column; 506, threaded rod; 507, internally threaded cylinder; 508, through hole; 509, external gear ring; 5010, second motor; 5011, drive gear; 5012, wire group; 6, dust cover; 601, sealing strip; 7, experiment panel; 701, terminal; 8, clamping groove; 9, storage groove; 10, loading box; 11, turntable; 12, connecting block; 13, bottom plate; 1301, annular groove; 14, transmission shaft; 15, worm gear; 16, rotating shaft; 17, fixed plate; 18, worm; 19, fourth motor; 20, protruding block. DETAILED DESCRIPTION

[0023] To make the objectives, technical solutions, and advantages of the embodiments of the present application clearer, the following will be combined with the accompanying drawings for a clear and complete description of the technical solutions in the embodiments of the present application. Obviously, the described embodiments are some but not all of the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by a person of ordinary skill in the art without creative work fall within the protection scope of the present application.

[0024] The embodiments of the present application provide an electronic component batch electric measurement experiment platform, which comprises a cabinet body 1. Figures 1-3 As shown in the figure.

[0025] A plurality of control buttons 2 are arranged on the cabinet body 1, a plurality of loading slots 3 are formed on the cabinet body 1, a plurality of sliding partitions 4 are arranged in the plurality of loading slots 3, and an adjusting assembly 5 is arranged at the top center of the outer wall of the cabinet body 1. A plurality of experiment panels 7 are movably connected to the adjusting assembly 5, the electric measurement modules in the plurality of experiment panels 7 are different, a display screen, an adjusting button, a wire jack, and a probe pen are arranged on the experiment panel 7, the plurality of experiment panels 7 correspond to the plurality of loading slots 3 respectively, the plurality of experiment panels 7 correspond to the plurality of control buttons 2 respectively, and a terminal 701 is arranged at the bottom end of the experiment panel 7. The adjusting assembly 5 comprises a bottom disc 501 and a top disc 502, a plurality of groups of lifting mechanisms 503 are arranged between the bottom disc 501 and the top disc 502, the plurality of groups of lifting mechanisms 503 are respectively in transmission connection with a corresponding group of experimental panels 7, a plurality of groups of first motors 504 are installed on the top disc 502, and output ends of the plurality of groups of first motors 504 are respectively in transmission connection with a corresponding group of lifting mechanisms 503; A plurality of groups of telescopic columns 505 are arranged on the top disc 502, top ends of the plurality of groups of telescopic columns 505 are fixedly connected with inner wall top ends of the dust cover 6, a threaded rod 506 is rotationally connected at the center of the bottom disc 501, an internally-threaded cylinder 507 is threadedly connected on the threaded rod 506, the top end of the internally-threaded cylinder 507 is fixedly connected with the inner wall top end of the dust cover 6, a through hole 508 is formed at the center of the top disc 502, the through hole 508 is movably attached to the internally-threaded cylinder 507, an external gear ring 509 is sleeved on the threaded rod 506, a second motor 5010 is installed on the bottom disc 501, an output end of the second motor 5010 is in transmission connection with a drive gear 5011, and the drive gear 5011 is in meshing connection with the external gear ring 509; Specifically, the second motor 5010 drives the drive gear 5011 to rotate, so that the external gear ring 509 drives the threaded rod 506 to rotate synchronously, so that the internally-threaded cylinder 507 drives the dust cover 6 to move downward, by arranging a plurality of groups of telescopic columns 505 between the top disc 502 and the dust cover 6, the internally-threaded cylinder 507 is prevented from rotating with the threaded rod 506, and the dust cover 6 is more stable during the descending or ascending process, the dust cover 6 descends, the sealing strip 601 arranged at the bottom end of the dust cover 6 is attached to the upper surface of the cabinet 1, a plurality of groups of experimental panels 7 are covered in the dust cover 6, dust accumulated on the experimental panels 7 is effectively avoided, and the experimental panels 7 are protected.

[0026] The lifting mechanism 503 comprises two groups of limiting columns 5031, the two groups of limiting columns 5031 are fixedly connected between the bottom disc 501 and the top disc 502, a lead screw 5032 is arranged between the two groups of limiting columns 5031, the top end of the lead screw 5032 is in transmission connection with the output end of the first motor 504, the lead screw 5032 is rotationally connected between the bottom disc 501 and the top disc 502, the lead screw 5032 is threadedly connected with a linkage block 5033, the linkage block 5033 is movably attached to the two groups of limiting columns 5031, the linkage block 5033 is fixedly connected with a telescopic part 5034, the telescopic part 5034 is in transmission connection with a transmission box 5035, the transmission box 5035 is fixedly connected with the experimental panel 7, a main controller is arranged in the bottom disc 501, a plurality of groups of wire groups 5012 are arranged on the bottom disc 501, the plurality of groups of wire groups 5012 are electrically connected with the main controller, and the wire group 5012 is electrically connected with the wiring head 701; Specifically, the first motor 504 is controlled by the control button 2 to drive the lead screw 5032 to rotate, which causes the telescopic part 5034 to drive the transmission box 5035 to move up and down, thereby making the experimental panel 7 move synchronously. By setting two sets of limit posts 5031, the stability of the experimental panel 7 moving up and down is improved, and the height of the experimental panel 7 can be adjusted according to the height of the operator.

[0027] For example, such as Figure 4 As shown.

[0028] The telescopic part 5034 includes a drive box 50341, within which a bidirectional lead screw 50342 is rotatably connected. A third motor 50343 is mounted on one outer wall of the drive box 50341, and its output end is connected to one end of the bidirectional lead screw 50342. Two sets of internal thread blocks 50344 are threaded onto the bidirectional lead screw 50342. The two sets of internal thread blocks 50344 are symmetrically distributed about the central axis of the bidirectional lead screw 50342. Each set of internal thread blocks 50344 is equipped with a hinge frame 50345. 5. Each of the two sets of first linkage rods 50346 is rotatably connected. The center of the two sets of first linkage rods 50346 is rotatably connected. The other end of each of the two sets of first linkage rods 50346 is rotatably connected to a second linkage rod 50347. The center of each of the two sets of second linkage rods 50347 is rotatably connected. The other end of each of the two sets of second linkage rods 50347 extends into the transmission box 5035 and is rotatably connected to a sliding bolt 50348. The bottom and top of the inner wall of the transmission box 5035 are provided with limiting grooves 50351. The upper and lower ends of the sliding bolt 50348 are respectively in contact with the inner walls of the two sets of limiting grooves 50351. Specifically, the third motor 50343 drives the bidirectional lead screw 50342 to rotate, causing the two sets of internal threaded blocks 50344 to move synchronously in opposite directions or synchronously in opposite directions. This causes the two sets of first linkage rods 50346 and second linkage rods 50347 to rotate synchronously. Since the two sets of sliding bolts 50348 slide in the two sets of limiting grooves 50351, the telescopic part 5034 can drive the transmission box 5035 to move, thereby realizing the telescopic adjustment of the experimental panel 7. When an electronic device electrical testing experiment is required, the telescopic part 5034 is controlled by the control button 2 to extend the experimental panel 7 for easy wiring, control, and data observation. After the experiment is completed, the telescopic part 5034 drives the experimental panel 7 to retract, so that the dust cover 6 can be lowered for protection.

[0029] For example, such as Figure 5 As shown.

[0030] The sliding partition 4 is provided with a handle 401. Both sides of the sliding partition 4 are provided with snap-fit ​​plates 402. Both sides of the loading slot 3 are provided with snap-fit ​​grooves 8. The two sets of snap-fit ​​grooves 8 are respectively movably fitted with the two sets of snap-fit ​​plates 402. One end of the loading slot 3 is provided with a storage slot 9. The storage slot 9 is interconnected with the two sets of snap-fit ​​grooves 8. The storage slot 9 is movably fitted with the sliding partition 4. Several sets of loading boxes 10 are provided inside the cabinet 1. Loading plates are provided inside the loading boxes 10. Several sets of conductive grooves are provided on the loading plates. Electronic components are placed in the several sets of conductive grooves. Conductive contacts are provided in the conductive grooves to electrically connect the electronic components with the corresponding set of experimental panels 7. The opening of the loading box 10 is interconnected with the loading slot 3. Specifically, by pulling the handle 401, the sliding partition 4 is moved into the storage slot 9. The operator can then place the electronic components to be tested into the conductive slot in the loading box 10 through the loading slot 3, and conduct electrical tests by contacting the electronic components with the probes on the corresponding set of experimental panels 7. After the test is completed, by pulling the handle 401, the sliding partition 4 is slid out and blocks the loading slot 3, thus protecting the electronic components in the loading box 10.

[0031] For example, such as Figure 6 and Figure 7 As shown.

[0032] The top of the inner wall of the cabinet 1 is rotatably connected to a turntable 11. Several sets of connecting blocks 12 are fixedly connected to the side wall of the turntable 11. The other end of the several sets of connecting blocks 12 is fixedly connected to a corresponding set of loading boxes 10. The bottom of the several sets of loading boxes 10 is provided with protrusions 20. A drive shaft 14 is fixedly connected to the top of the turntable 11. The top of the drive shaft 14 passes through the top of the outer wall of the cabinet 1 and is fixedly connected to the bottom of the chassis 501. A base plate 13 is provided at the bottom of the cabinet 1. A worm gear 15 is rotatably connected to the center of the base plate 13. A rotating shaft 16 is fixedly connected to the center of the worm gear 15. The top of the rotating shaft 16 is fixedly connected to the center of the turntable 11. Two sets of fixing plates 17 are provided on the base plate 13. A worm gear 18 is rotatably connected between the two sets of fixing plates 17. The worm gear 18 is meshed with the worm gear 15. A fourth motor 19 is installed on one set of fixing plates 17. The output end of the fourth motor 19 is connected to one end of the worm gear 18. An annular groove 1301 is provided on the base plate 13. The annular groove 1301 is movably fitted with the protrusion 20. Specifically, the fourth motor 19 drives the worm gear 18 to rotate, which in turn drives the worm wheel 15 to rotate the turntable 11 synchronously. This causes several sets of loading boxes 10 to rotate synchronously. While the turntable 11 is rotating, the transmission shaft 14 drives the chassis 501 to rotate synchronously, which in turn causes the adjustment component 5 to rotate the experimental panel 7 synchronously. This achieves synchronous adjustment of the experimental panel 7 and the loading box 10, allowing the operator to switch the experimental panel 7 and its corresponding electronic components synchronously without having to move around. This meets the operator's experimental needs for various models and types of electronic components.

[0033] The working principle of the batch electrical testing platform for electronic components proposed in this invention is as follows: By setting multiple sets of experimental panels 7 on the cabinet 1, the device can simultaneously meet the needs of multiple operators to perform electrical testing operations on different types of electronic components, effectively improving experimental efficiency. The fourth motor 19 drives the worm gear 18 to rotate, which in turn drives the turntable 11 to rotate synchronously. As the turntable 11 rotates, the transmission shaft 14 drives the chassis 501 to rotate synchronously, thereby causing the adjustment component 5 to drive the experimental panel 7 to rotate synchronously. This allows the experimental panel 7 to be switched, enabling operators to perform electrical testing operations on different types and categories of electronic components without having to move around.

[0034] By pulling handle 401, the sliding partition 4 is moved into the storage slot 9. The operator can then place the electronic components to be tested into the conductive slot through the loading slot 3 and use the probe on the corresponding set of experimental panels 7 to conduct batch electrical tests. After the test is completed, by pulling handle 401, the sliding partition 4 is slid out and covers the loading slot 3 to protect the electronic components in the loading box 10. While switching the experimental panel 7, the turntable 11 drives several sets of loading boxes 10 to rotate synchronously, thereby realizing the synchronous switching of the positions of the experimental panel 7 and the corresponding set of loading boxes 10.

[0035] By driving the drive gear 5011 to rotate via the second motor 5010, the external gear ring 509 drives the threaded rod 506 to rotate synchronously, thereby causing the internal threaded cylinder 507 to move the dust cover 6 downward. By setting several sets of telescopic columns 505 between the top plate 502 and the dust cover 6, the internal threaded cylinder 507 is prevented from rotating with the threaded rod 506, while the dust cover 6 is made more stable during its descent or ascent. When the dust cover 6 descends, the sealing strip 601 at the bottom of the dust cover 6 fits against the upper surface of the cabinet 1, covering several sets of experimental panels 7 inside the dust cover 6, effectively preventing dust accumulation on the experimental panels 7 and achieving protection for the experimental panels 7.

[0036] The first motor 504 is controlled by the control button 2 to drive the lead screw 5032 to rotate, which causes the telescopic part 5034 to drive the transmission box 5035 to move up and down, thereby making the experimental panel 7 move synchronously. By setting two sets of limit posts 5031, the stability of the experimental panel 7 moving up and down is improved, and the height of the experimental panel 7 can be adjusted according to the height of the operator.

[0037] The third motor 50343 drives the bidirectional lead screw 50342 to rotate, causing the two sets of internal threaded blocks 50344 to move synchronously in opposite directions or synchronously in opposite directions. This causes the two sets of first linkage rods 50346 and second linkage rods 50347 to rotate synchronously. Since the two sets of sliding bolts 50348 slide in the two sets of limiting grooves 50351, the telescopic part 5034 can drive the transmission box 5035 to move, thereby realizing the telescopic adjustment of the experimental panel 7. When it is necessary to conduct electrical testing experiments on electronic components on the experimental panel 7, the telescopic part 5034 is controlled by the control button 2 to drive the experimental panel 7 to extend for easy wiring, control, and data observation. After the experiment is completed, the experimental panel 7 is retracted by the telescopic part 5034 to facilitate the lowering of the dust cover 6 for protection.

[0038] Based on the aforementioned batch electrical testing platform for electronic components, this embodiment of the invention also proposes an operating method for the electrical testing platform. For example, the operating method includes: Pull the handle to move the sliding partition into the storage slot; The electronic components to be tested are placed into the conductive tank through the loading slot; Press the control button to start the first motor and adjust the height of the experimental panel to a suitable position; Press the control button to turn on the third motor, so that the experimental panel extends outward to a suitable position to facilitate electrical measurement experiments; Use the probes on the corresponding set of experimental panels to conduct batch electrical testing experiments on electronic components in sequence. After completing the electrical test, the third motor is turned in reverse to retract the test panel, and the second motor is turned to move the dust cover downward to protect the test panel. When it is necessary to conduct electrical tests on different types and categories of electronic components, the fourth motor is turned on to drive the synchronous switching of the experimental panel and the loading box position.

[0039] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. An electronic component batch measurement experiment platform, comprising a cabinet (1), characterized in that: The cabinet (1) is provided with an adjusting assembly (5), a plurality of experimental panels (7) are drivenly connected to the adjusting assembly (5), and the electric measurement modules in the plurality of experimental panels (7) are different; The inner wall top end of the cabinet (1) is rotatably connected with a rotating disc (11), the top end of the rotating disc (11) is fixedly connected with a transmission shaft (14), and the top end of the transmission shaft (14) is fixedly connected with the adjusting assembly (5); The bottom end of the cabinet (1) is provided with a bottom plate (13), the center of the bottom plate (13) is rotatably connected with a worm gear (15), the worm gear (15) is provided with a rotating shaft (16), and the rotating shaft (16) is fixedly connected with the center of the rotating disc (11); By arranging a plurality of experimental panels (7) on the cabinet (1), the electric measurement experiment platform can simultaneously meet the electric measurement experiments of different types and categories of electronic components by different operators, the worm gear (15) drives the rotating disc (11) to rotate synchronously, the transmission shaft (14) drives the adjusting assembly (5) to rotate synchronously, and the adjusting assembly (5) drives the experimental panel (7) to rotate synchronously, so that the position switching of the experimental panel (7) is realized; A plurality of loading grooves (3) are formed in the cabinet (1), a plurality of sliding partitions (4) are arranged in the plurality of loading grooves (3), a handle (401) is arranged on the sliding partition (4), clamping plates (402) are arranged on the two side walls of the sliding partition (4), clamping grooves (8) are formed in the two side walls of the loading groove (3), two groups of clamping grooves (8) are respectively and movably attached to two groups of clamping plates (402), a receiving groove (9) is formed at one end of the loading groove (3), the receiving groove (9) and the two groups of clamping grooves (8) are in communication with each other, and the receiving groove (9) is movably attached to the sliding partition (4); A plurality of loading boxes (10) are arranged in the cabinet (1), the opening of the loading box (10) is in communication with the loading groove (3), a plurality of connecting blocks (12) are fixedly connected to the side wall of the rotating disc (11), the other end of each of the plurality of connecting blocks (12) is fixedly connected with a corresponding loading box (10), the bottom end of each of the plurality of loading boxes (10) is provided with a protruding block (20), an annular groove (1301) is formed in the bottom plate (13), and the annular groove (1301) is movably attached to the protruding block (20). The adjusting assembly (5) comprises a bottom disc (501) and a top disc (502), a plurality of groups of telescopic columns (505) are arranged on the top disc (502), the top ends of the plurality of groups of telescopic columns (505) are fixedly connected with the inner wall top end of a dust cover (6), a threaded rod (506) is rotatably connected at the center of the bottom disc (501), an internally threaded cylinder (507) is threadedly connected on the threaded rod (506), the top end of the internally threaded cylinder (507) is fixedly connected with the inner wall top end of the dust cover (6), a through hole (508) is formed at the center of the top disc (502), the through hole (508) is movably attached to the internally threaded cylinder (507), an external gear ring (509) is sleeved on the threaded rod (506), a second motor (5010) is installed on the bottom disc (501), the output end of the second motor (5010) is drivingly connected with a drive gear (5011), and the drive gear (5011) is meshingly connected with the external gear ring (509).

2. The electronic device batch electrical test platform of claim 1, wherein: The bottom plate (13) is provided with two groups of fixed plates (17), the two groups of fixed plates (17) are rotatably connected with a worm (18), the worm (18) is meshingly connected with the worm gear (15), one group of the fixed plates (17) is provided with a fourth motor (19), and the output end of the fourth motor (19) is drivingly connected with one end of the worm (18).

3. The electronic device batch electrical test platform of claim 1, wherein: The adjusting assembly (5) is provided with a dust cover (6), and the bottom end of the dust cover (6) is provided with a sealing strip (601).

4. The electronic device batch electrical test platform of claim 1, wherein: A plurality of groups of lifting mechanisms (503) are arranged between the bottom disc (501) and the top disc (502), the plurality of groups of lifting mechanisms (503) are respectively drivingly connected with corresponding one group of experimental panels (7), and a plurality of groups of first motors (504) are installed on the top disc (502), the output ends of the plurality of groups of first motors (504) are respectively drivingly connected with corresponding one group of lifting mechanisms (503).

5. The electronic device batch electrical test platform of claim 4, wherein The lifting mechanism (503) comprises two groups of limiting columns (5031), the two groups of limiting columns (5031) are fixedly connected between the bottom disc (501) and the top disc (502), a lead screw (5032) is arranged between the two groups of limiting columns (5031), the top end of the lead screw (5032) is drivingly connected with the output end of the first motor (504), the lead screw (5032) is rotatably connected between the bottom disc (501) and the top disc (502), a linkage block (5033) is threadedly connected on the lead screw (5032), the linkage block (5033) is movably attached to the two groups of limiting columns (5031), a telescopic part (5034) is fixedly connected on the linkage block (5033), a transmission box (5035) is drivingly connected on the telescopic part (5034), the transmission box (5035) is fixedly connected with the experimental panel (7), a main controller is arranged in the bottom disc (501), and a plurality of groups of wires (5012) are arranged on the bottom disc (501).

6. The electronic device batch electrical test platform of claim 5, wherein: The telescopic part (5034) comprises a driving box (50341), a bidirectional screw rod (50342) is rotationally connected in the driving box (50341), a third motor (50343) is arranged on one side outer wall of the driving box (50341), and an output end of the third motor (50343) is in transmission connection with one end of the bidirectional screw rod (50342).

7. The electronic device batch electrical test platform of claim 6, wherein: Two groups of inner threaded blocks (50344) are symmetrically distributed with the central axis of the bidirectional screw rod (50342) as the center. Two groups of the inner threaded blocks (50344) are provided with hinged frames (50345), two groups of the hinged frames (50345) are rotationally connected with first linkage rods (50346), the centers of two groups of the first linkage rods (50346) are rotationally connected, the other ends of two groups of the first linkage rods (50346) are rotationally connected with second linkage rods (50347), the centers of two groups of the second linkage rods (50347) are rotationally connected, the other ends of two groups of the second linkage rods (50347) are rotationally connected with slide bolts (50348) after extending into a transmission box (5035), and the inner wall bottom end and the inner wall top end of the transmission box (5035) are both provided with limiting grooves (50351), and the upper and lower ends of the slide bolt (50348) are respectively movably attached to the inner walls of the two groups of limiting grooves (50351).

Citation Information

Patent Citations

  • Conductive probe test bench and test method thereof

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