Full-function test platform
By introducing vertical and horizontal socket connection devices and monitoring meters into PCBA motherboard testing, the problem of reliance on manual operation in traditional testing methods has been solved, achieving efficient and accurate automated testing.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN ZHUOZE TECH CO LTD
- Filing Date
- 2025-01-09
- Publication Date
- 2026-05-08
AI Technical Summary
Traditional PCBA test fixtures rely on manual operation when testing external sockets, resulting in high labor costs, mistesting or missed tests, and affecting test accuracy and efficiency.
By employing vertical and horizontal socket connection devices, combined with monitoring meters, comprehensive automated testing of PCBA motherboards can be achieved, including interface testing in both vertical and horizontal directions.
It improves the accuracy and efficiency of testing, reduces human intervention, expands the scope of testing, and achieves comprehensive automated testing.
Smart Images

Figure CN224216816U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of motherboard testing technology and relates to a full-function testing platform. Background Technology
[0002] In today's electronics manufacturing industry, PCBA motherboard testing is a crucial step. Traditional PCBA test fixtures primarily use a vertical pressing method, where test probes contact test points on the PCBA. While this method can handle some internal socket functional testing, it still relies on manual operation for external sockets that require frequent plugging and unplugging. When dealing with PCBA motherboards with numerous external interfaces, this testing method not only increases labor costs but also, under prolonged working conditions, is prone to errors or omissions due to operator fatigue, severely impacting testing accuracy and efficiency. Summary of the Invention
[0003] The present invention provides a full-function testing platform that achieves comprehensive and automated testing of PCBA motherboards through vertical and horizontal socket connection devices.
[0004] To achieve the above objectives, the present invention adopts the following technical solution:
[0005] A full-featured testing platform for PCBA motherboard testing, characterized in that it includes:
[0006] A test rack is provided, and a motherboard mounting platform is provided on the test rack for fixing the PCBA motherboard;
[0007] A vertical socket connection device is installed on the test rack platform to move vertically for interface contact testing of PCBA motherboards.
[0008] A horizontal socket connection device is provided on the test rack platform for moving horizontally to perform external socket testing on PCBA motherboards.
[0009] A monitoring meter is electrically connected to the vertical socket connection device and the horizontal socket connection device to obtain test data of the PCBA motherboard.
[0010] Furthermore, the test stand is provided with an upper support frame, and a vertical guide post is provided inside the upper support frame. The guide post is arranged around the motherboard fixing platform, and the vertical socket connecting device is slidably connected to the guide post.
[0011] Furthermore, the vertical socket connection device includes a first connecting socket head, a first fixing plate, a first driven rod, and a first driving member;
[0012] The first connecting socket head and the first driven rod are respectively installed on the lower and upper sides of the first fixing plate;
[0013] The guide post passes through the first fixing plate and is slidably connected to it;
[0014] The first driving member and the first driven rod are connected in a transmission connection on the side away from the first fixed plate.
[0015] Furthermore, the test rack is provided with a guide rail facing the motherboard mounting platform, and the horizontal socket connecting device is slidably connected to the guide rail.
[0016] Furthermore, the transverse socket connection device includes a second connecting socket head, a second fixing plate, a second driven plate, and a second driving member;
[0017] The second connector head and the second driven plate are respectively installed on both sides of the second fixing plate, with the second connector head on the side of the second fixing plate facing the main board fixing platform;
[0018] The bottom of the second fixing plate is slidably connected to the guide rail;
[0019] The second driving member and the second driven plate are connected in a transmission connection on the side away from the second fixed plate.
[0020] Furthermore, the test frame is provided with an outwardly extending drive component mounting bracket, on which the second drive component is mounted.
[0021] Furthermore, the monitoring meter includes an ammeter and a voltmeter, both of which are electrically connected to the vertical socket connection device and the horizontal socket connection device.
[0022] Furthermore, a display screen is installed on the test rack, and the display screen is electrically connected to the monitoring meter to display data of the PCBA board.
[0023] Furthermore, the motherboard mounting platform includes a mounting bracket and a mounting platform;
[0024] The lower side of the fixed bracket is fixedly connected to the test frame machine base, and the upper side of the fixed bracket is detachably connected to the fixed platform.
[0025] Furthermore, the test stand is made of acrylic material.
[0026] The beneficial effects of this utility model are as follows: By integrating multiple testing devices and monitoring systems, this application significantly improves the efficiency and accuracy of PCBA motherboard testing. The motherboard fixing platform on the test rack ensures the stability of the PCBA motherboard during testing, providing a foundation for accurate testing. Simultaneously, the combination of vertical and horizontal socket connection devices allows the test platform to comprehensively test both the vertical and horizontal interfaces of the PCBA motherboard. This multi-dimensional testing capability is not available in traditional test fixtures, greatly improving the testing coverage and efficiency. It achieves comprehensive and automated testing of PCBA motherboards, from motherboard fixing and automatic interface contact testing to real-time monitoring and display of test data. Every aspect of the design aims to improve the accuracy, efficiency, and convenience of testing. Attached Figure Description
[0027] Figure 1 This is a schematic diagram of the structure of this utility model.
[0028] Figure 2 This is an exploded view of the vertical socket connection device of this utility model.
[0029] Figure 3 This is an exploded view of the horizontal socket connection device of this utility model.
[0030] Figure 4 This is an exploded view of the motherboard mounting platform of this utility model.
[0031] The reference numerals in the attached drawings are explained as follows: 1-Test stand; 2-Main board mounting platform; 3-Vertical socket connection device; 4-Horizontal socket connection device; 5-Monitoring meter; 6-Display screen; 11-Upper platform support frame; 12-Guide column; 13-Driver component mounting frame; 21-Fixed bracket; 22-Fixed platform; 31-First connecting socket head; 32-First fixed plate; 33-First driven rod; 34-First drive component; 41-Second connecting socket head; 42-Second fixed plate; 43-Second driven plate; 44-Second drive component; 51-Ammeter; 52-Voltmeter. Detailed Implementation
[0032] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. It should be understood that this application is not limited to the exemplary embodiments disclosed herein. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of this application.
[0033] In the description of this utility model, it should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0034] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.
[0035] In the embodiments of this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. For those skilled in the art, the specific meaning of the above terms in this utility model can be understood according to the specific circumstances.
[0036] This utility model provides an appendix. Figures 1-4 In this embodiment of the invention, a full-function testing platform is used for the testing of PCBA motherboards, including:
[0037] Test rack 1, the test rack 1 is provided with a motherboard fixing platform 2, the motherboard fixing platform 2 is used to fix the PCBA motherboard;
[0038] Vertical socket connection device 3, which is installed on the test rack 1, is used to move in the vertical direction to perform interface contact test of PCBA motherboard;
[0039] A horizontal socket connection device 4 is provided on the test rack platform 1 and is used to move in the horizontal direction to perform external socket testing on the PCBA motherboard.
[0040] The monitoring meter 5 is electrically connected to the vertical socket connection device 3 and the horizontal socket connection device 4 to obtain test data of the PCBA motherboard.
[0041] Specifically, the test rack 1, serving as the foundation of the entire test platform, provides stable support and a working platform. A motherboard mounting platform 2 is installed on the test rack 1 to secure the PCBA motherboard under test, ensuring its stable position during testing and avoiding testing errors caused by movement. The vertical socket connection device 3 is designed to achieve automatic contact testing of vertical interfaces on the PCBA motherboard. This device, mounted on the test rack 1, can move vertically to precisely align with the interfaces on the PCBA motherboard. This design not only reduces the need for manual operation but also improves testing accuracy and efficiency through automated vertical movement. The introduction of the horizontal socket connection device 4, compared to existing technologies, adds external socket testing, allowing simultaneous interface contact testing and external socket testing. The horizontal socket connection device 4, also mounted on the test rack 1, can move horizontally to test the external sockets of the PCBA motherboard. This horizontal movement design allows the test platform to adapt to external sockets in different positions, further expanding the applicability of the test platform. The integration of monitoring meter 5 provides real-time data feedback for the testing platform. Electrically connected to the vertical socket connection device 3 and the horizontal socket connection device 4, monitoring meter 5 acquires voltage and current data of the PCBA motherboard during testing. This data is crucial for evaluating the PCBA motherboard's performance. The real-time feedback function of monitoring meter 5 allows testers to understand the testing situation promptly and respond quickly to potential problems. More specifically, this technical solution achieves comprehensive and automated testing of PCBA motherboards, from motherboard fixation and automatic interface contact testing to real-time monitoring and display of test data. Each step is designed to ensure accuracy, efficiency, and convenience. This innovative testing platform not only meets the current electronics manufacturing industry's demand for efficient and accurate testing but also has broad application prospects and market potential.
[0042] The test stand 1 is provided with an upper support frame 11, and a vertical guide post 12 is provided inside the upper support frame 11. The guide post 12 is arranged around the motherboard fixing platform 2, and the vertical socket connecting device 3 is slidably connected to the guide post 12.
[0043] Specifically, the upper platform support frame 11 is mounted on the test rack 1. Its main function is to provide a stable support structure for the vertical socket connection device 3. Inside the upper platform support frame 11, vertical guide posts 12 are provided. These guide posts 12 are key components for achieving precise movement of the vertical socket connection device 3. The guide posts 12 are arranged vertically and surround the perimeter of the motherboard mounting platform 2, forming a stable guide path. The design and arrangement of the guide posts 12 ensure the stability and accuracy of the vertical socket connection device 3 during movement, avoiding test errors caused by friction or offset. The vertical socket connection device 3 and the guide posts 12 are connected by a sliding connection. This connection method allows the vertical socket connection device 3 to slide freely on the guide posts 12 while maintaining good guidance. During testing, the vertical socket connection device 3, through its sliding connection with the guide posts 12, can accurately position each interface of the PCBA motherboard, achieving fast and accurate contact testing. Furthermore, to further improve the movement efficiency and accuracy of the vertical socket connection device 3, a precision drive mechanism can be used to control its vertical movement. For example, a stepper motor or servo motor can be used as the drive source, and precise control of the motor's rotation can achieve precise control of the position of the vertical socket connection device 3. This drive method not only improves the automation level of the test but also reduces human error, thereby improving the consistency and reliability of the test.
[0044] The vertical socket connection device 3 includes a first connection socket head 31, a first fixing plate 32, a first driven rod 33, and a first driving member 34;
[0045] The first connecting socket head 31 and the first driven rod 33 are respectively installed on the lower and upper sides of the first fixing plate 32;
[0046] The guide post 12 passes through the first fixing plate 32 and is slidably connected to it;
[0047] The first driving member 34 and the first driven rod 33 are connected in a transmission connection on the side away from the first fixed plate 32.
[0048] Specifically, the first connecting socket head 31 is the part of the vertical socket connecting device 3 that directly contacts the PCBA motherboard interface. Its design must ensure compatibility and connection stability with the PCBA motherboard interface. Therefore, the first connecting socket head 31 is installed on the lower side of the first fixing plate 32. This layout allows the socket head to be directly aligned and contacted with the PCBA motherboard interface during testing. The first fixing plate 32, as the main structure of the vertical socket connecting device 3, supports the first connecting socket head 31 and the first driven rod 33. The first driven rod 33 is installed on the upper side of the first fixing plate 32, and its function is to transmit the driving force of the first driving member 34 to the first connecting socket head 31, realizing its vertical movement on the guide post 12. The design of the first driven rod 33 needs to consider the efficiency of force transmission and the need to reduce friction to ensure the smoothness and accuracy of movement. The guide post 12 passes through the first fixing plate 32 and is slidably connected to it. This design allows the first fixing plate 32 to move stably vertically along the guide post 12 while maintaining good guidance and avoiding deviation or shaking during movement. The sliding connection between the guide post 12 and the first fixed plate 32 requires precise machining and fitting to ensure smooth and accurate movement. Specifically, the first fixed plate 32 can have several openings, the size of which matches the guide post 12. The guide post 12 slides through these openings into the first fixed plate 32. The first driving component 34 is the power source for the vertical socket connection device 3, and it is connected to the side of the first driven rod 33 away from the first fixed plate 32. The first driving component 34 can be a motor, cylinder, or other type of driving device, the choice of which depends on the specific requirements of the test fixture and the test environment. The design of the first driving component 34 must consider the magnitude of the driving force, the precision of control, and the connection method with the first driven rod 33 to ensure effective control of the movement of the first connecting socket head 31. In practical applications, the control of the first driving component 34 can be achieved through an electronic control system to ensure the automation and accuracy of the testing process. The electronic control system can precisely control the start, stop, and speed of the first driving component 34, thereby achieving precise control of the position of the first connecting socket head 31. In addition, the electronic control system can be integrated with other components on the test stand 1 (such as monitoring meter 5, display screen 6, etc.) to achieve coordination and optimization of the entire testing process.
[0049] Through the above design, the vertical socket connection device 3 can achieve precise vertical movement on the test rack 1, making stable contact with the PCBA motherboard interface, thereby completing efficient testing. This technical solution not only improves the automation level of testing but also reduces manual intervention during the testing process, improving the consistency and reliability of testing. At the same time, the modular design facilitates maintenance and upgrades, further enhancing the practicality and economy of the test rack.
[0050] The test rack 1 is provided with a guide rail facing the motherboard mounting platform 2, and the horizontal socket connecting device 4 is slidably connected to the guide rail.
[0051] Specifically, the guide rail is mounted on the test rack 1 and faces the motherboard mounting platform 2. This layout allows the horizontal socket connection device 4 to directly align with and contact the external sockets on the PCBA motherboard. The guide rail design must ensure sufficient rigidity and stability. The guide rail can be made of metal or other rigid materials to support the weight and dynamic load of the horizontal socket connection device 4 during movement, while maintaining smooth and precise movement. The sliding connection between the horizontal socket connection device 4 and the guide rail can be achieved by installing sliding parts at the bottom of the horizontal socket connection device 4, which can slide freely on the guide rail. To achieve precise movement of the horizontal socket connection device 4, a precision drive mechanism can be used to control its sliding along the guide rail. For example, a stepper motor, servo motor, or other types of linear drivers can be used as the drive source. These drive mechanisms can precisely control the moving distance and speed of the horizontal socket connection device 4, ensuring that it can accurately position itself to the various external sockets on the PCBA motherboard.
[0052] The horizontal socket connection device 4 includes a second connection socket head 41, a second fixing plate 42, a second driven plate 43, and a second driving member 44;
[0053] The second connector 41 and the second driven plate 43 are respectively installed on both sides of the second fixing plate 42, with the second connector 41 on the side of the second fixing plate 42 facing the main board fixing platform 2;
[0054] The bottom of the second fixing plate 42 is slidably connected to the guide rail;
[0055] The second driving member 44 and the second driven plate 43 are connected in a transmission connection on the side away from the second fixed plate 42.
[0056] Specifically, the second connecting socket head 41 is the part of the horizontal socket connecting device 4 that directly contacts the external socket of the PCBA motherboard. Its design must ensure compatibility and connection stability with the external socket of the PCBA motherboard. The second connecting socket head 41 is installed on the side of the second fixing plate 42 facing the motherboard mounting platform 2. This layout allows the socket head to be directly aligned and contacted with the external socket of the PCBA motherboard during testing. The second fixing plate 42, as the main structure of the horizontal socket connecting device 4, supports the second connecting socket head 41 and the second driven plate 43. The second driven plate 43 is installed on the other side of the second fixing plate 42, and its function is to transmit the driving force of the second driving member 44 to the second connecting socket head 41, realizing its horizontal movement on the guide rail. The bottom of the second fixing plate 42 is slidably connected to the guide rail. This design allows the second fixing plate 42 to move stably horizontally along the guide rail. The sliding connection between the guide rail and the second fixing plate 42 can be achieved by sliding within the guide rail using pulleys or sliders. The second driving component 44 is the power source for the transverse socket connection device 4. It is connected to the side of the second driven plate 43 away from the second fixed plate 42. The second driving component 44 can be a motor, cylinder, or other type of driving device, or it can be a handle, etc., depending on the specific requirements of the test fixture and the test environment. In practical applications, the control of the second driving component 44 can be achieved through an electronic control system to ensure the automation and accuracy of the test process. The electronic control system can precisely control the start, stop, and speed of the second driving component 44, thereby achieving precise control of the position of the second connection socket head 41. In addition, the electronic control system can also be integrated with other components on the test fixture 1 (such as the monitoring meter 5, display screen 6, etc.) to achieve coordination and optimization of the entire test process.
[0057] Through the above design, the horizontal socket connection device 4 can achieve precise horizontal movement on the test rack platform 1 and make stable contact with the external socket of the PCBA motherboard, thereby completing efficient testing. This technical solution not only improves the automation level of testing, but also reduces manual intervention in the testing process, and improves the consistency and reliability of testing. At the same time, the modular design also facilitates maintenance and upgrades, further enhancing the practicality and economy of the test rack.
[0058] The test stand 1 is provided with an outwardly extending drive component fixing frame 13, and the second drive component 44 is mounted on the drive component fixing frame 13.
[0059] Specifically, the second drive component 44 is mounted on the drive component mounting bracket 13. This mounting method provides a stable foundation to ensure the stability and reliability of the second drive component 44 during operation. The drive component mounting bracket 13 is L-shaped. The L-shaped bracket allows the second drive component 44 to be installed in the corner or edge of the test rack 1, so as not to occupy the space in the central area of the test rack 1, leaving more space in the central area for the installation of other key components, such as the motherboard mounting bracket 2 or other test equipment.
[0060] The monitoring meter 5 includes an ammeter 51 and a voltmeter 52, and both the ammeter 51 and the voltmeter are electrically connected to the vertical socket connection device 3 and the horizontal socket connection device 4.
[0061] The above technical solution is implemented to monitor the electrical performance of the PCBA motherboard in real time during the test, ensuring the accuracy and reliability of the test. By integrating ammeter 51 and voltmeter 52 into the test rack 1 and electrically connecting them to the vertical socket connection device 3 and the horizontal socket connection device 4, the test platform can comprehensively monitor the current and voltage changes of the PCBA motherboard during the test. As components of the monitoring meter 5, ammeter 51 and voltmeter 52 are used to measure the current and voltage parameters of the PCBA motherboard during the test, respectively. These parameters are crucial for evaluating the performance of the PCBA motherboard because they can reflect the electrical characteristics of the motherboard under working conditions, such as power consumption, stability, and response speed.
[0062] The test stand 1 is equipped with a display screen 6, which is electrically connected to the monitoring meter 5 and is used to display data of the PCBA board.
[0063] By installing a display screen 6 on the test rack 1 and electrically connecting it to the monitoring meters 5, the test platform can display the data monitored by the ammeters 51 and voltmeters 52 in digital or graphical form. Specifically, the display screen 6 is installed in an easily observable location on the test rack 1, typically within the tester's line of sight, for easy viewing during testing. The electrical connection between the display screen 6 and the monitoring meters 5 is achieved through internal wiring, which transmits the output signals from the ammeters 51 and voltmeters 52 to the display screen 6. During testing, the display screen 6 receives data from the ammeters 51 and voltmeters 52 in real time and converts it into easily understandable digital or graphical displays. This allows testers to directly read the current and voltage values of the PCBA motherboard from the display screen 6 without directly observing the meters, thus improving testing efficiency and accuracy. The display screen 6 can also display other test data as needed, such as test time, test status, and error messages, further enhancing the completeness of the test information.
[0064] The motherboard mounting platform 2 includes a mounting bracket 21 and a mounting platform 22;
[0065] The lower side of the fixed bracket 21 is fixedly connected to the test frame 1, and the upper side of the fixed bracket 21 is detachably connected to the fixed platform 22.
[0066] Specifically, this embodiment provides a stable and flexible motherboard mounting platform 2 to securely fix the PCBA motherboard on the test rack 1 and allows for quick replacement or adjustment of the mounting platform 22 according to different testing needs. The motherboard mounting platform 2 consists of two parts: a mounting bracket 21 and a mounting platform 22. The mounting bracket 21 serves as the base of the motherboard mounting platform 2, with its lower side fixedly connected to the test rack 1, providing stability and support. The mounting platform 22 is the part that directly contacts the PCBA motherboard, and its upper side is detachably connected to the mounting bracket 21. This detachable connection design allows testers to quickly replace or adjust the mounting platform 22 according to the specific size and shape of the PCBA motherboard to accommodate different models. The detachable connection can be achieved through bolts, clips, magnetic adsorption, or other quick-connect mechanisms. During testing, the PCBA motherboard is placed on the mounting platform 22 and is stably fixed to the test rack 1 through the connection between the mounting platform 22 and the mounting bracket 21. In this way, both the vertical socket connection device 3 and the horizontal socket connection device 4 can accurately contact the interfaces on the motherboard for testing.
[0067] The test rack 1 is made of acrylic material. The use of acrylic as the material for the test rack 1 is based on several advantages of acrylic and the specific material performance requirements of the test rack 1 in the electronics manufacturing field. Acrylic's high transparency allows for a more intuitive structural design of the test rack 1. Testers can clearly observe the operation of internal components, such as the motherboard mounting platform 2 and socket connection devices, through the acrylic material. This facilitates monitoring the testing process and quickly identifying potential problems.
[0068] It should also be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0069] The above description of the disclosed embodiments enables those skilled in the art to make or use this application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of this application. Therefore, this application is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. A full-function testing platform for PCBA motherboard testing, characterized in that, include: A test rack is provided, and a motherboard mounting platform is provided on the test rack for fixing the PCBA motherboard; A vertical socket connection device is installed on the test rack platform to move vertically for interface contact testing of PCBA motherboards. A horizontal socket connection device is provided on the test rack platform for moving horizontally to perform external socket testing on PCBA motherboards. A monitoring meter is electrically connected to the vertical socket connection device and the horizontal socket connection device to obtain test data of the PCBA motherboard.
2. The full-function testing platform according to claim 1, characterized in that, The test stand is equipped with an upper support frame, and a vertical guide post is provided inside the upper support frame. The guide post is arranged around the motherboard fixing platform, and the vertical socket connection device is slidably connected to the guide post.
3. A full-function testing platform according to claim 2, characterized in that, The vertical socket connection device includes a first connection socket head, a first fixing plate, a first driven rod, and a first driving member; The first connector head is installed on the lower side of the first fixed plate, and the first driven rod is installed on the upper side of the first fixed plate; The guide post passes through the first fixing plate and is slidably connected to it; The first driving member and the first driven rod are connected in a transmission connection on the side away from the first fixed plate.
4. A full-function testing platform according to claim 1, characterized in that, The test rack is equipped with a guide rail facing the motherboard mounting platform, and the horizontal socket connection device is slidably connected to the guide rail.
5. A full-function testing platform according to claim 4, characterized in that, The horizontal socket connection device includes a second connection socket head, a second fixing plate, a second driven plate, and a second driving component; The second connector head and the second driven plate are respectively installed on both sides of the second fixing plate, with the second connector head on the side of the second fixing plate facing the main board fixing platform; The bottom of the second fixing plate is slidably connected to the guide rail; The second driving member and the second driven plate are connected in a transmission connection on the side away from the second fixed plate.
6. A full-function testing platform according to claim 5, characterized in that, The test frame is equipped with an outwardly extending drive component mounting bracket, and the second drive component is mounted on the drive component mounting bracket.
7. A full-function testing platform according to any one of claims 1 to 6, characterized in that, The monitoring meter includes an ammeter and a voltmeter, both of which are electrically connected to the vertical socket connection device and the horizontal socket connection device.
8. A full-function testing platform according to claim 1, characterized in that, The test rack is equipped with a display screen, which is electrically connected to the monitoring meter to display data of the PCBA board.
9. A full-function testing platform according to claim 1, characterized in that, The motherboard mounting platform includes a mounting bracket and a mounting platform; The lower side of the fixed bracket is fixedly connected to the test frame machine base, and the upper side of the fixed bracket is detachably connected to the fixed platform.
10. A full-function testing platform according to claim 1, characterized in that, The test stand is made of acrylic material.