Positioning jacking assembly and server test connection table

Through the design of positioning the jacking component and server test connection table, the precise positioning and automatic transfer of the server are achieved, solving the problem of inefficient testing in the existing technology and improving production efficiency.

CN223205515UActive Publication Date: 2025-08-08XIONGAN BAIXIN INFORMATION TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422035733.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-21
Publication Date
2025-08-08
Estimated Expiration
2034-08-21

AI Technical Summary

Technical Problem

The existing server test is inefficient and mainly relies on manpower handling and connection, which consumes time and effort and affects production efficiency.

Method used

The positioning jacking component and the server test connection table are used to accurately locate the server position through the positioning cone, and the server is separated from the production line by using the jacking effect, combining the transplanting component and probe component to achieve automated transfer, positioning and connection.

Benefits of technology

It realizes automation and efficient transfer of server testing, reduces manual intervention, and improves production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of server testing equipment, in particular to a positioning and jacking assembly and a server testing connection platform, according to the positioning and jacking assembly disclosed by the embodiment of the utility model, the position of a server is accurately positioned through two positioning cones, and the server is separated from a production line by virtue of a jacking effect, so that the production efficiency is improved, and the production cost is reduced. The connection between the terminal of the test equipment and the test contact of the server is facilitated, and the server test efficiency is improved. According to the server test connection table disclosed by the embodiment of the utility model, the server is transferred from a production line through the transfer effect of the transplanting assembly, the server is accurately positioned and lifted through the positioning and jacking assembly, and the contact and the probe of the server are connected through the probe assembly, so that the test efficiency of the server is improved, and the service life of the server is prolonged. The servers are transferred from the production line, the servers are lifted and positioned, and the test probes are connected at one step without manual intervention, so that the production efficiency is high.
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Description

Technical Field

[0001] The utility model relates to the technical field of server testing equipment, in particular to a positioning jacking component and a server testing docking station. Background Art

[0002] The server needs to undergo rigorous testing before it can be subsequently transferred to the hands of users.

[0003] Existing servers are usually produced and transferred through assembly lines. Currently, server testing is mainly done by manpower by removing the server from the assembly line and connecting it to the test equipment through the socket to complete the server testing.

[0004] This method has low production efficiency, is time-consuming and labor-intensive, and has become a key point affecting server production efficiency.

[0005] Based on this, it is necessary to develop a positioning jacking component and a server test docking station. Utility Model Content

[0006] The embodiment of the present utility model provides a positioning jacking component and a server test docking station, which are used to solve the problem of low efficiency of server testing in the prior art.

[0007] In a first aspect, an embodiment of the present utility model provides a positioning jacking assembly, comprising: a jacking plate, a first positioning cone, a second positioning cone, a bottom plate, and a first power telescopic device;

[0008] The first positioning cone and the second positioning cone are both cylindrical with a cone at the front end, and the first positioning cone and the second positioning cone are respectively vertically fixed to the upper surface of the lifting plate;

[0009] The fixed end of the first power telescopic device is fixedly connected to the bottom plate, and the telescopic end of the first power telescopic device is fixedly connected to the center of the lower surface of the lifting plate;

[0010] When the positioning plate supporting the server is located above the lifting plate, and the lifting plate approaches the positioning plate under the drive of the first power telescopic device, the column part of the first positioning cone and the column part of the second positioning cone are respectively inserted into the positioning hole of the positioning plate through the guiding action of the front end cone.

[0011] In some possible implementations, the positioning and lifting assembly further includes: a first sliding sleeve and a first guide column;

[0012] A hole is provided on the bottom plate, the first sliding sleeve is fixedly connected to the surface of the bottom plate, one end of the first guide column is fixedly connected to the lower surface of the lifting plate, and the first guide column passes through the hole of the bottom plate and is slidably connected to the first sliding sleeve.

[0013] In a second aspect, an embodiment of the present invention provides a server test docking station, comprising a positioning and lifting assembly as described in any one of the first aspects, and further comprising a main frame, a transplanting assembly, a second power telescopic device, and a probe assembly;

[0014] The transplanting assembly and the positioning jacking assembly are respectively fixed to the upper surface of the main frame, the fixed end of the second power telescopic device is fixedly connected to the main frame, the telescopic end of the second power telescopic device is fixedly connected to the lower end of the probe assembly, and the positioning jacking assembly surrounds the transplanting assembly; the probe of the probe assembly is arranged vertically upward;

[0015] When the lifting plate rises, the first positioning cone and the second positioning cone are inserted into the positioning hole of the positioning plate to complete the positioning of the positioning plate; when the positioning plate is positioned, the second power telescopic device drives the probe assembly to rise so that the probe of the probe assembly abuts the test contact of the server supported by the positioning plate.

[0016] In some possible implementations, the transplanting assembly includes: a first power device, a first belt, a second belt, a synchronous roller, a first tensioning roller, and a second tensioning roller;

[0017] The synchronous roller shaft, the first tensioning roller, and the second tensioning roller are respectively rotatably connected to the main frame, the first belt surrounds the first tensioning roller and the roller body at the first end of the synchronous roller shaft, the second belt surrounds the second tensioning roller and the roller body at the second end of the synchronous roller shaft, and the first power device is driven by the synchronous roller shaft; the positioning jacking assembly is arranged between the first belt and the second belt;

[0018] When the telescopic end of the first power telescopic device and the telescopic end of the second power telescopic device are extended and retracted, the lifting plate and the probe assembly are respectively driven above or below the conveying plane, wherein the conveying plane is the conveying plane of the first belt and the second belt.

[0019] In some possible implementations, the transplanting assembly further includes a plurality of weight-bearing rollers;

[0020] The multiple weight-supporting rollers are respectively rotatably connected to the main frame, and the multiple weight-supporting rollers are divided into two groups, one group of weight-supporting rollers is arranged between the first tensioning roller and the roller body of the first end of the synchronous roller shaft, and the other group of weight-supporting rollers is arranged between the second tensioning roller and the roller body of the second end of the synchronous roller shaft.

[0021] In some possible implementations, the transplanting assembly further includes a support plate, which is disposed between the first belt and the second belt on a side close to the conveying entrance and fixedly connected to the main frame, and the upper surface of the support plate is lower than the conveying surface.

[0022] In some possible implementations, the server test docking station further includes: a limit switch, wherein a fixed end of the limit switch is fixedly connected to the main frame, and a movable end of the limit switch is higher than the conveying plane;

[0023] When the positioning plate transported by the transfer assembly abuts against the movable end of the limit switch, the movable end of the limit switch is forced to move.

[0024] In some possible implementations, the server test dock further includes: a fence;

[0025] The fence is fixedly arranged above the main frame, and the fence opening is arranged on one side of the entrance of the transplanting component. The fence is higher than the height of the lifting plate when it is raised and higher than the height of the probe component when it is raised.

[0026] In some possible implementations, the open end of the fence is provided with a guide block that expands in the opposite direction of the transplanting assembly.

[0027] In some possible implementations, the first power telescopic device and the second power telescopic device are both cylinders.

[0028] Compared with the prior art, the present invention has the following beneficial effects:

[0029] The embodiment of the present utility model discloses a positioning and lifting assembly, which accurately locates the position of the server through two positioning cones, and relies on the lifting effect to separate the server from the production line, making it easier for the terminals of the test equipment to be connected with the test contacts of the server without the need for human intervention and positioning, thereby improving the efficiency of server testing.

[0030] An embodiment of the present utility model discloses a server test docking station, which is provided with a transplanting component, a second power telescopic device, a probe component and a positioning jacking component. The server is transferred from the production line through the transfer action of the transplanting component, the server is accurately positioned and lifted by the positioning jacking component, and the server contacts and the probes are connected by the probe component. Therefore, the server can be transferred from the production line, lifted and positioned, and the test probes can be connected in one go without human intervention, thereby achieving high production efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0031] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly introduces the drawings required for use in the embodiments or descriptions of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative labor.

[0032] Figure 1 This is a first stereoscopic view of the positioning and lifting assembly provided by an embodiment of the present utility model;

[0033] Figure 2 This is a second perspective view of the positioning and lifting assembly provided by an embodiment of the present utility model;

[0034] Figure 3 This is a first stereoscopic view of the server test docking station provided by an embodiment of the present utility model;

[0035] Figure 4 This is a second stereoscopic view of the server test docking station provided by an embodiment of the present utility model;

[0036] Figure 5 This is a third perspective view of the server test docking station provided by an embodiment of the present utility model;

[0037] Figure 6 This is a first stereoscopic view of a transplanting assembly provided by an embodiment of the present utility model;

[0038] Figure 7 This is a second stereoscopic view of the transplanting assembly provided in an embodiment of the present utility model.

[0039] In the picture:

[0040] 110 jacking plate;

[0041] 120 first positioning cone;

[0042] 130 second positioning cone;

[0043] 140 base plate;

[0044] 150 first power telescopic device;

[0045] 160 first slide;

[0046] 170 first guide post;

[0047] 210 body frame;

[0048] 220 second power retractable device;

[0049] 230 probe assembly;

[0050] 310 First Belt;

[0051] 320 2nd belt;

[0052] 330 Synchronous roller;

[0053] 340 first tensioning roller;

[0054] 350 second tensioning roller;

[0055] 360 heavy rollers;

[0056] 370 pallet;

[0057] 410 limit switch;

[0058] 510 Fence. DETAILED DESCRIPTION

[0059] In the following description, specific details such as particular system structures and techniques are provided for purposes of illustration, not limitation, to facilitate a thorough understanding of the embodiments of the present invention. However, it will be apparent to those skilled in the art that the present invention may be implemented in other embodiments without these specific details. In other cases, detailed descriptions of well-known systems, devices, and methods are omitted to avoid obscuring the description of the present invention with unnecessary detail.

[0060] In order to make the purpose, technical solutions and advantages of the present invention clearer, the following will be described through specific implementation methods in conjunction with the accompanying drawings.

[0061] The following is a detailed description of an embodiment of the present invention. This example is implemented based on the technical solution of the present invention, and provides a detailed implementation method and specific operation process. However, the protection scope of the present invention is not limited to the following embodiment.

[0062] like Figure 1-2 As shown, it shows a three-dimensional view of the positioning and lifting assembly provided by the first aspect of the embodiment of the utility model, which is described in detail as follows:

[0063] A positioning jacking assembly includes: a jacking plate 110, a first positioning cone 120, a second positioning cone 130, a bottom plate 140 and a first power telescopic device 150;

[0064] The first positioning cone 120 and the second positioning cone 130 are both cylindrical with a cone at the front end. The first positioning cone 120 and the second positioning cone 130 are respectively vertically fixed to the upper surface of the lifting plate 110;

[0065] The fixed end of the first power telescopic device 150 is fixedly connected to the base plate 140 , and the telescopic end of the first power telescopic device 150 is fixedly connected to the center of the lower surface of the lifting plate 110 ;

[0066] When the positioning plate supporting the server is located above the lifting plate 110, and the lifting plate 110 approaches the positioning plate under the drive of the first power telescopic device 150, the column part of the first positioning cone 120 and the column part of the second positioning cone 130 are respectively inserted into the positioning hole of the positioning plate through the guiding action of the front end cone.

[0067] For example, the positioning and lifting assembly of the present invention is primarily used to position a positioning plate and remove it from a conveyor. A positioning plate is a piece of tooling that supports servers; in other words, servers rely on this tooling to move along the production line. Before testing a server, it must be removed from the production line and properly positioned to facilitate connection between the test terminals and the server's test contacts.

[0068] In order to achieve the above-mentioned purpose, the positioning and lifting assembly of the embodiment of the present utility model includes two positioning cones, a lifting plate 110, a base plate 140 and a power telescopic device. The two positioning cones are fixedly arranged on the upper surface of the lifting plate 110 with the conical end facing upward. The main body of the first power telescopic device 150 is fixed on the base plate 140, and the telescopic end is fixed to the lifting plate 110. The positioning cone is a cylinder with a conical front end, and the cylinder protrudes from the lifting plate 110. The corresponding positioning plate is provided with two positioning holes, the aperture of which is adapted to the diameter of the cylindrical part of the positioning cone. When the positioning plate reaches above the lifting plate 110, if the lifting plate 110 rises, the guiding effect of the conical end of the positioning cone causes the hole of the positioning plate to be sleeved on the cylindrical part of the positioning cone, thereby completing the positioning of the positioning plate. Since the lifting plate 110 lifts the positioning plate, the positioning plate is separated from the production line, which is convenient for connecting the test terminal and conducting the test.

[0069] The positioning and lifting assembly of the utility model accurately locates the position of the server through two positioning cones, and relies on the lifting effect to separate the server from the production line, making it easier to connect the terminals of the test equipment with the test contacts of the server without the need for human intervention and positioning, thereby improving the efficiency of server testing.

[0070] In some embodiments, the positioning and lifting assembly further includes: a first sliding sleeve 160 and a first guide column 170;

[0071] The base plate 140 is provided with a hole, the first sleeve 160 is fixedly connected to the surface of the base plate 140 , one end of the first guide column 170 is fixedly connected to the lower surface of the lifting plate 110 , and the first guide column 170 passes through the hole of the base plate 140 and is slidably connected to the first sleeve 160 .

[0072] For example, in some application scenarios, a first guide column 170 is vertically fixed to the lower surface of the lifting plate 110, and a hole is opened on the bottom plate 140 and a first sliding sleeve 160 is fixed thereon. Through the sliding cooperation between the first guide column 170 and the first sliding sleeve 160, the smoothness of the lifting and lowering of the lifting plate 110 is ensured, unnecessary shaking is reduced, and the positioning accuracy is improved.

[0073] like Figure 3-5 As shown, it shows a three-dimensional diagram of the server test docking station provided by the second aspect of the embodiment of the present utility model, which is described in detail as follows:

[0074] A server test docking station, comprising the positioning and lifting assembly according to any one of the first aspects, further comprising a main frame 210, a transplanting assembly, a second power telescopic device 220, and a probe assembly 230;

[0075] The transplanting assembly and the positioning jacking assembly are respectively fixed to the upper surface of the main frame 210, the fixed end of the second power telescopic device 220 is fixedly connected to the main frame 210, and the telescopic end of the second power telescopic device 220 is fixedly connected to the lower end of the probe assembly 230. The positioning jacking assembly surrounds the transplanting assembly; the probe of the probe assembly 230 is arranged vertically upward;

[0076] When the lifting plate 110 rises, the first positioning cone 120 and the second positioning cone 130 are inserted into the positioning hole of the positioning plate to complete the positioning of the positioning plate; when the positioning plate is positioned, the second power telescopic device 220 drives the probe assembly 230 to rise so that the probe of the probe assembly 230 abuts the test contact of the server supported by the positioning plate.

[0077] Illustratively, a server test docking station equipped with any of the positioning and lifting assemblies of the first aspect further includes a transfer assembly, a second power retractable device 220, and a probe assembly 230. The positioning and lifting assembly is surrounded by the transfer assembly, and the probe assembly 230 is disposed on one side of the positioning and lifting assembly and is driven by the second power retractable device 220 to achieve lifting and lowering.

[0078] As previously mentioned, the positioning plate holding the servers needs to be transported to the testing area. This embodiment of the utility model relies on a transfer assembly to receive the positioning plate holding the servers to be tested from the production line. When the positioning plate moves above the positioning and lifting assembly, the first powered retractable device 150 extends, and through the positioning action of the lifting plate 110, the positioning plate is released from the transfer assembly, completing the positioning of the positioning plate. Following this, the second powered retractable device 220 extends, and the probe assembly 230 rises, making contact (electrical connection) with the exposed contacts of the server, preparing for server testing.

[0079] The server test docking station of the present invention is provided with a transfer component, a second power telescopic device 220, a probe component 230 and a positioning jacking component. The server is transferred from the production line through the transfer function of the transfer component, and the server is accurately positioned and lifted through the positioning jacking component. The server contacts and the probes are connected through the probe component 230. Therefore, the server can be transferred from the production line, lifted and positioned, and the test probes can be connected in one go without human intervention, thereby achieving high production efficiency.

[0080] In some embodiments, the transplanting assembly includes: a first power device, a first belt 310, a second belt 320, a synchronous roller 330, a first tensioning roller 340, and a second tensioning roller 350;

[0081] The synchronous roller shaft 330, the first tensioning roller 340, and the second tensioning roller 350 are respectively rotatably connected to the main frame 210. The first belt 310 surrounds the first tensioning roller 340 and the roller body at the first end of the synchronous roller shaft 330. The second belt 320 surrounds the second tensioning roller 350 and the roller body at the second end of the synchronous roller shaft 330. The first power device is driven by the synchronous roller shaft 330. The positioning jacking assembly is arranged between the first belt 310 and the second belt 320.

[0082] When the telescopic end of the first power telescopic device 150 and the telescopic end of the second power telescopic device 220 are telescoped, the lifting plate 110 and the probe assembly 230 are respectively driven above or below the conveying plane, wherein the conveying plane is the conveying plane of the first belt 310 and the second belt 320.

[0083] In some embodiments, the transplanting assembly further includes a plurality of weight-bearing rollers 360;

[0084] The multiple supporting rollers 360 are respectively rotatably connected to the main frame 210, and the multiple supporting rollers 360 are divided into two groups, one group of supporting rollers 360 is arranged between the first tensioning roller 340 and the roller body of the first end of the synchronous roller shaft 330, and the other group of supporting rollers 360 is arranged between the second tensioning roller 350 and the roller body of the second end of the synchronous roller shaft 330.

[0085] In some embodiments, the transplanting assembly further includes a support plate 370, which is disposed between the first belt 310 and the second belt 320 on a side close to the conveying entrance and fixedly connected to the main frame 210, and the upper surface of the support plate 370 is lower than the conveying surface.

[0086] For example, Figure 6-7 , which shows a three-dimensional view of the transplanting assembly provided by an embodiment of the present invention. The transplanting assembly of the present invention comprises two synchronously operating belts, with the positioning and lifting assembly disposed between the two belts, thereby making the overall equipment more compact. The two belts are tensioned by a tensioning roller and supported by multiple rollers. Under the dual effects of tensioning and supporting weight, the transplanting assembly operates stably and reliably. Furthermore, the transplanting assembly is also provided with a support plate 370, which can partially share the weight of the server, reducing the pressure on the belt transmission and improving the durability of vulnerable parts such as the belt.

[0087] In some embodiments, the server test docking station further includes: a limit switch 410, wherein a fixed end of the limit switch 410 is fixedly connected to the main frame 210, and a movable end of the limit switch 410 is higher than the transmission plane;

[0088] When the positioning plate transported by the transfer assembly abuts against the movable end of the limit switch 410 , the movable end of the limit switch 410 is forced to operate.

[0089] In some embodiments, the server test dock further includes: a fence 510;

[0090] The fence 510 is fixedly arranged above the main frame 210, and the opening of the fence 510 is arranged on one side of the entrance of the transplanting component. The fence 510 is higher than the height of the lifting plate 110 when it is raised and higher than the height of the probe component 230 when it is raised.

[0091] In some embodiments, the open end of the fence 510 is provided with a guide block that expands in the opposite direction of the transplanting assembly.

[0092] For example, in some application scenarios, a limit switch 410 is provided. When the positioning plate supporting the server is transported by the transfer assembly, it abuts the movable end of the limit switch 410, causing the limit switch 410 to send a switching signal, which can be used as a basis for controlling the positioning and lifting assembly. In addition, in some scenarios, a fence 510 is also provided to prevent the server from being dislodged during severe vibration, ensuring safety.

[0093] In some embodiments, the first power telescopic device 150 and the second power telescopic device 220 are both cylinders.

[0094] For example, using a cylinder as a telescopic device can increase the lifting speed and improve production efficiency.

[0095] It should be understood that the size of the serial numbers of each step in the above embodiment does not mean the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiment of the present utility model.

[0096] The following is an embodiment of the device of the present invention. For details not described in detail, please refer to the corresponding method embodiment described above.

Claims

1. A positioning jacking assembly, characterized in that: include: A lifting plate (110), a first positioning cone (120), a second positioning cone (130), a bottom plate (140), and a first power telescopic device (150); The first positioning cone (120) and the second positioning cone (130) are both cylindrical bodies with a cone at the front end, and the first positioning cone (120) and the second positioning cone (130) are respectively vertically fixed to the upper surface of the lifting plate (110); The fixed end of the first power telescopic device (150) is fixedly connected to the bottom plate (140), and the telescopic end of the first power telescopic device (150) is fixedly connected to the center of the lower surface of the lifting plate (110); When the positioning plate supporting the server is located above the lifting plate (110), and the lifting plate (110) approaches the positioning plate under the drive of the first power telescopic device (150), the column part of the first positioning cone (120) and the column part of the second positioning cone (130) are respectively inserted into the positioning hole of the positioning plate through the guiding action of the front end cone.

2. The positioning and lifting assembly according to claim 1, characterized in that: The positioning and lifting assembly further comprises: a first sliding sleeve (160) and a first guide column (170); The bottom plate (140) is provided with a hole, the first sliding sleeve (160) is fixedly connected to the surface of the bottom plate (140), one end of the first guide column (170) is fixedly connected to the lower surface of the lifting plate (110), and the first guide column (170) passes through the hole of the bottom plate (140) and is slidably connected to the first sliding sleeve (160).

3. A server test docking station, characterized in that: It comprises the positioning and lifting assembly according to any one of claims 1 to 2, and further comprises a main frame (210), a transplanting assembly, a second power telescopic device (220), and a probe assembly (230); The transplanting assembly and the positioning jacking assembly are respectively fixed to the upper surface of the main frame (210); the fixed end of the second power telescopic device (220) is fixedly connected to the main frame (210); the telescopic end of the second power telescopic device (220) is fixedly connected to the lower end of the probe assembly (230); the positioning jacking assembly surrounds the transplanting assembly; the probe of the probe assembly (230) is arranged vertically upward; When the lifting plate (110) rises, the first positioning cone (120) and the second positioning cone (130) are inserted into the positioning hole of the positioning plate to complete the positioning of the positioning plate; when the positioning plate is positioned, the second power telescopic device (220) drives the probe assembly (230) to rise so that the probe of the probe assembly (230) abuts against the test contact of the server supported by the positioning plate.

4. The server test docking station according to claim 3, characterized in that: The transplanting assembly comprises: a first power device, a first belt (310), a second belt (320), a synchronous roller shaft (330), a first tensioning roller (340), and a second tensioning roller (350); The synchronous roller shaft (330), the first tensioning roller (340) and the second tensioning roller (350) are respectively rotatably connected to the main frame (210); the first belt (310) surrounds the first tensioning roller (340) and the roller body of the first end of the synchronous roller shaft (330); the second belt (320) surrounds the second tensioning roller (350) and the roller body of the second end of the synchronous roller shaft (330); the first power device is driven by the synchronous roller shaft (330); the positioning jacking component is arranged between the first belt (310) and the second belt (320); When the telescopic end of the first power telescopic device (150) and the telescopic end of the second power telescopic device (220) are extended or retracted, the lifting plate (110) and the probe assembly (230) are respectively driven to be higher or lower than a conveying plane, wherein the conveying plane is the conveying plane of the first belt (310) and the second belt (320).

5. The server test docking station according to claim 4, characterized in that: The transplanting assembly further includes a plurality of weight-bearing rollers (360); The plurality of weight-supporting rollers (360) are respectively rotatably connected to the main body frame (210), and the plurality of weight-supporting rollers (360) are divided into two groups, wherein one group of weight-supporting rollers (360) is arranged between the first tensioning roller (340) and the roller body of the first end of the synchronous roller shaft (330), and the other group of weight-supporting rollers (360) is arranged between the second tensioning roller (350) and the roller body of the second end of the synchronous roller shaft (330).

6. The server test docking station according to claim 4, characterized in that: The transplanting assembly further comprises a supporting plate (370), the supporting plate (370) being arranged between the first belt (310) and the second belt (320) on a side close to the conveying entrance and fixedly connected to the main frame (210), the upper surface of the supporting plate (370) being lower than the conveying plane.

7. The server test docking station according to claim 4, characterized in that: The server test docking station further comprises: a limit switch (410), wherein a fixed end of the limit switch (410) is fixedly connected to the main frame (210), and a movable end of the limit switch (410) is higher than the transmission plane; When the positioning plate transported by the transfer assembly abuts against the movable end of the limit switch (410), the movable end of the limit switch (410) is forced to move.

8. The server test docking station according to claim 3, characterized in that: The server test docking station further includes: a fence (510); The fence (510) is fixedly arranged above the main frame (210), and the opening of the fence (510) is arranged on one side of the inlet of the transplanting component. The fence (510) is higher than the height of the lifting plate (110) when it is raised and higher than the height of the probe component (230) when it is raised.

9. The server test docking station according to claim 8, characterized in that: The open end of the fence (510) is provided with a guide block that expands in the opposite direction to the direction of the transplanting assembly.

10. The server test docking station according to any one of claims 3 to 9, characterized in that: The first power telescopic device (150) and the second power telescopic device (220) are both cylinders.