Server blanking device

By designing a server unloading device, the horizontal and vertical movement of the server is achieved using the power unit of the first frame and the support platform. This solves the problem of insufficient manpower during the transfer from the production line to the packaging production line, and improves production efficiency and continuity.

CN224160025UActive Publication Date: 2026-04-24XIONGAN BAIXIN INFORMATION TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
XIONGAN BAIXIN INFORMATION TECHNOLOGY CO LTD
Filing Date
2025-06-11
Publication Date
2026-04-24

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Abstract

The utility model relates to the technical field of server production equipment, in particular to a server blanking device, which comprises a first frame body, a first bearing table and a second bearing table. The first rack body is a rectangular frame; the first bearing table comprises a first bearing plate, a first power device and a second power device; the first bearing plate stretches across the two long edges of the first frame body and is in sliding connection with the two long edges of the first frame body, and the second bearing table comprises a second bearing plate; the first bearing plate is provided with a hole, the second bearing plate penetrates through the hole of the first bearing plate, and the second bearing plate is perpendicular to the first bearing plate and is in sliding connection with the first bearing plate. According to the server discharging device, the rectangular first frame body serves as a main body of the two bearing tables, vertical and horizontal translational motion is achieved so as to drive the clamping mechanism to transfer servers from an assembling production line to a packaging production line, manual intervention is little, and production efficiency is high.
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Description

Technical Field

[0001] This utility model relates to the field of server production equipment technology, and in particular to a server unloading device. Background Technology

[0002] Server packaging is crucial for protecting servers during transportation, storage, and handling. Typically, server packaging involves placing the server in a box with cushioning material and sealing the box with strapping, tape, or protective film.

[0003] Currently, servers that come off the production line need to be transferred to the packaging production line. During this process, manual labor is required to move the servers off the production line, and after stacking, a transfer vehicle is used to move them to the packaging process or packaging production line for packaging.

[0004] It can be seen that from the production line to the packaging line, a lot of manpower is needed to transfer the servers that are about to be taken off the production line, resulting in low production efficiency.

[0005] Therefore, it is necessary to develop a server unloading device. Utility Model Content

[0006] This invention provides a server unloading device to solve the problem that the transfer from the server production line to the packaging production line in the prior art requires a large amount of human intervention.

[0007] In a first aspect, embodiments of the present invention provide a server unloading device for driving a clamping mechanism to transfer a server clamped from a server assembly line to a server packaging production line. The server unloading device includes:

[0008] The first frame, the first support platform, and the second support platform;

[0009] The first frame is a rectangular frame;

[0010] The first support platform includes a first support plate, a first power unit, and a second power unit;

[0011] The first support plate spans the two long sides of the first frame and is slidably connected to the two long sides of the first frame; the fixed end of the first power device is fixedly connected to the first support plate.

[0012] The second support platform includes a second support plate;

[0013] The first support plate has a hole, and the second support plate passes through the hole in the first support plate. The second support plate is perpendicular to the first support plate and is slidably connected to the first support plate.

[0014] When the moving end of the first power device is activated, the first support plate and the second support plate slide along the two long sides of the first frame.

[0015] When the moving end of the second power device moves, the second support plate slides vertically.

[0016] In some possible implementations, the first power unit includes: a first motor, a first gear, and a first rack laid along the long side of the first frame;

[0017] The body of the first motor is fixedly connected to the first support plate, the first gear is fixedly connected to the output shaft of the first motor, and the first gear meshes with the first rack.

[0018] In some possible implementations, the first support platform further includes: a plurality of first sliders, the first frame is provided with first guide rails laid along two long sides and first buffer blocks fixedly disposed at both ends of the first guide rails and higher than the first guide rails;

[0019] The plurality of first sliders are respectively fixedly disposed on the lower surface of the first support plate, and the first support plate is slidably connected to the first guide rail through the plurality of first sliders.

[0020] In some possible implementations, the second power unit includes: a second motor, a second gear, and a second rack perpendicular to the first support plate and fixedly mounted on the second support plate;

[0021] The body of the second motor is fixedly mounted on the first support plate, the second gear is rotatably connected to the first support plate and drives the second motor, and the second gear meshes with the second rack.

[0022] In some possible implementations, the first support plate has two first vertical plates arranged in parallel;

[0023] The two ends of the axle of the second gear are rotatably connected to the two first upright plates, respectively.

[0024] In some possible implementations, the first support platform further includes: a plurality of second sliders, the second support plate being provided with a second guide rail perpendicular to the first support plate and a second buffer block higher than the second guide rail;

[0025] The plurality of second sliders are respectively fixedly connected to the first support plate, and the second support plate is slidably connected to the plurality of second sliders through the second guide rail.

[0026] In some possible implementations, the first support platform is provided with a second upright plate, and the plurality of second sliders are fixedly disposed on the second upright plate.

[0027] In some possible implementations, the second support plate is provided with a first aluminum profile perpendicular to the first support plate and a plurality of photoelectric switches disposed on the first aluminum profile, and the first support plate is provided with a baffle plate.

[0028] When the second support plate slides, the baffle blocks the sensing end of one or more of the plurality of photoelectric switches.

[0029] In some possible implementations, the second support plate is provided with a plurality of weight-reducing holes.

[0030] In some possible implementations, the first power unit and the second power unit are each equipped with an electric motor, which is a servo motor or a stepper motor.

[0031] The beneficial effects of this utility model embodiment compared with the prior art are:

[0032] This utility model discloses a server unloading device, comprising a first frame, a first support platform, and a second support platform. The first frame is a rectangular frame. The first support platform includes a first support plate, a first power device, and a second power device. The first support plate spans two long sides of the first frame and is slidably connected to the two long sides of the first frame. The fixed end of the first power device is fixedly connected to the first support plate. The second support platform includes a second support plate. The first support plate has a hole, and the second support plate passes through the hole in the first support plate. The second support plate is perpendicular to the first support plate and is slidably connected to the first support plate. This server unloading device has two support platforms, which, with the rectangular first frame as the main body, achieve vertical and horizontal translational movements to drive a clamping mechanism to transfer the server from the assembly line to the packaging line, ensuring continuous production, minimizing manual intervention, and increasing production efficiency. The vertically moving support platform slides with the horizontal support platform through holes in the horizontal support platform, ensuring that its center of gravity is located inside the horizontal support platform, thus avoiding uneven wear and jamming that may be caused by uneven loading during use. Attached Figure Description

[0033] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0034] Figure 1 This is an application scenario diagram of the server unloading device provided in this utility model embodiment;

[0035] Figure 2 This is a perspective view of a feeding device with a clamping mechanism provided in an embodiment of the present invention.

[0036] Figure 3 This is a front view of the feeding device provided in this embodiment of the utility model;

[0037] Figure 4 This is a first perspective view of the feeding device provided in the embodiment of this utility model;

[0038] Figure 5 This is a second perspective view of the feeding device provided in the embodiment of this utility model;

[0039] Figure 6 This is a rear view of the feeding device provided in this embodiment of the utility model;

[0040] Figure 7 This is a third perspective view of the feeding device provided in the embodiment of this utility model;

[0041] Figure 8 This is a fourth perspective view of the feeding device provided in the embodiment of this utility model.

[0042] In the picture:

[0043] 100 assembly lines;

[0044] 200 packaging production lines;

[0045] 210 servers;

[0046] 220 boxes;

[0047] 230 Gripping mechanism;

[0048] 300 Server Unloading Device;

[0049] 310 First frame;

[0050] 320 First support platform;

[0051] 321 First support plate;

[0052] 322 First slider;

[0053] 323 First guide rail;

[0054] 324 First buffer block;

[0055] 325 First upright board;

[0056] 326 Second upright board;

[0057] 331 First Motor;

[0058] 332 First gear;

[0059] 333 First rack;

[0060] 341 Second motor;

[0061] 342 Second gear;

[0062] 343 Second rack;

[0063] 351 Second slider;

[0064] 360 Second support plate;

[0065] 361 Second guide rail;

[0066] 362 Second buffer block;

[0067] 363 First Aluminum Profiles;

[0068] 364 photoelectric switch;

[0069] 365 Weight Reduction Hole. Detailed Implementation

[0070] In the following description, specific details such as particular system structures and techniques are set forth for illustrative purposes and not for limitation, in order to provide a thorough understanding of the embodiments of the present invention. However, those skilled in the art will understand that the present invention can also be implemented in other embodiments without these specific details. In other instances, detailed descriptions of well-known systems, apparatuses, and methods have been omitted so as not to obscure the description of the present invention with unnecessary detail.

[0071] To make the objectives, technical solutions, and advantages of this utility model clearer, the following description will be provided in conjunction with the accompanying drawings and specific embodiments.

[0072] The embodiments of this utility model are described in detail below. This example is implemented based on the technical solution of this utility model, and provides detailed implementation methods and specific operation processes. However, the protection scope of this utility model is not limited to the following embodiments.

[0073] A first aspect of this utility model provides a server unloading device 300 for driving a clamping mechanism 230 to transfer a server 210 clamped from a server assembly line 100 to a server packaging production line 200. The server unloading device 300 includes:

[0074] The first frame 310, the first support platform 320, and the second support platform;

[0075] The first frame 310 is a rectangular frame;

[0076] The first support platform 320 includes a first support plate 321, a first power device, and a second power device;

[0077] The first support plate 321 spans the two long sides of the first frame 310 and is slidably connected to the two long sides of the first frame 310, and the fixed end of the first power device is fixedly connected to the first support plate 321.

[0078] The second support platform includes a second support plate 360;

[0079] The first support plate 321 has a hole, and the second support plate 360 ​​passes through the hole of the first support plate 321. The second support plate 360 ​​is perpendicular to the first support plate 321 and is slidably connected to the first support plate 321.

[0080] When the moving end of the first power device is activated, the first support plate 321 and the second support plate 360 ​​slide along the two long sides of the first frame 310.

[0081] When the moving end of the second power device is activated, the second support plate slides vertically by 360 degrees.

[0082] For example, such as Figure 1-8 As shown, this utility model provides a server unloading device 300, which is used to drive the clamping mechanism 230 to transfer the assembled server 210 from the server assembly line 100 to the server 210 packaging line. In some scenarios, the device can directly put the server 210 into the packaging box 220 through the clamping mechanism 230, thereby ensuring the continuity of production, reducing the manual intervention process during the transfer process, and improving production efficiency.

[0083] The server unloading device 300 provided by this utility model has the function of driving the server 210 to move horizontally and vertically, and can stop at a predetermined position as needed.

[0084] The server unloading device 300 consists of three parts in terms of its overall structure: a first frame 310, a first support platform 320, and a second support platform. The first support platform 320 moves horizontally based on the first frame 310, and the second support platform moves vertically based on the first support platform 320. The clamping mechanism 230 is connected to the second support platform and drives the server 210 to move.

[0085] The first frame 310 is a rectangular frame, and its two long sides are the support for the first support platform 320 to achieve horizontal translation.

[0086] The first support platform 320 is an assembly based on the first support plate 321. The first support plate 321 has a hole, and the main body of the second support platform, the second support plate 360, passes through the hole and is vertically slidably connected to the first support plate 321.

[0087] The first support platform 320 is equipped with two sets of power devices, which are used to drive itself to complete horizontal translation and to drive the second support platform to complete vertical translation.

[0088] The server unloading device 300 of this utility model has two support platforms. The two support platforms are based on a rectangular first frame 310, which realizes vertical and horizontal translational movements to drive the clamping mechanism 230 to complete the transfer of the server 210 from the assembly line 100 to the packaging line, ensuring the continuity of production, minimizing manual intervention, and increasing production efficiency. The vertically moving support platform slides with the horizontal support platform through holes, ensuring that its center of gravity is located inside the horizontal support platform, avoiding uneven wear and jamming that may be caused by uneven loading during use.

[0089] In some embodiments, the first power unit includes: a first motor 331, a first gear 332, and a first rack 333 laid along the long side of the first frame 310;

[0090] The body of the first motor 331 is fixedly connected to the first support plate 321, the first gear 332 is fixedly connected to the output shaft of the first motor 331, and the first gear 332 meshes with the first rack 333.

[0091] In some embodiments, the first support platform 320 further includes: a plurality of first sliders 322, and the first frame 310 is provided with first guide rails 323 laid along two long sides and first buffer blocks 324 fixedly disposed at both ends of the first guide rails 323 and higher than the first guide rails 323.

[0092] The plurality of first sliders 322 are respectively fixedly disposed on the lower surface of the first support plate 321, and the first support plate 321 is slidably connected to the first guide rail 323 through the plurality of first sliders 322.

[0093] For example, in order to achieve long-distance and efficient transmission, this utility model adopts a gear and rack transmission structure. In this structure, the first support plate 321 is slidably connected to the first guide rail 323 set on the long side of the first frame 310 through multiple sliders set on its lower surface. At the same time, the first rack 333 is also set on the long side of the first frame 310. The first motor 331 used to drive the first gear 332 is set on the first support plate 321. The first gear 332 meshes with the first rack 333. When the first motor 331 rotates, it drives the first support plate 321 to move horizontally along the long side of the first frame 310.

[0094] This utility model features guide rails and sliders to ensure smooth movement of the first support plate 321. Power is transmitted via a gear and rack mechanism, achieving higher movement speeds and improving production efficiency.

[0095] In some embodiments, the second power device includes: a second motor 341, a second gear 342, and a second rack 343 that is perpendicular to the first support plate 321 and fixedly mounted on the second support plate 360.

[0096] The body of the second motor 341 is fixedly mounted on the first support plate 321. The second gear 342 is rotatably connected to the first support plate 321 and drives the second motor 341. The second gear 342 meshes with the second rack 343.

[0097] In some embodiments, the first support plate 321 is provided with two first upright plates 325 arranged in parallel;

[0098] The two ends of the axle of the second gear 342 are rotatably connected to the two first vertical plates 325 respectively.

[0099] In some embodiments, the first support platform 320 further includes: a plurality of second sliders 351, and the second support plate 360 ​​is provided with a second guide rail 361 perpendicular to the first support plate 321 and a second buffer block 362 higher than the second guide rail 361.

[0100] The plurality of second sliders 351 are fixedly connected to the first support plate 321 respectively, and the second support plate 360 ​​is slidably connected to the plurality of second sliders 351 through the second guide rail 361.

[0101] In some embodiments, the first support platform 320 is provided with a second upright plate 326, and the plurality of second sliders 351 are fixedly disposed on the second upright plate 326.

[0102] Exemplarily, the second support plate 360 ​​of this utility model also adopts a gear and rack transmission form. Since the second support plate 360 ​​is relatively heavy and needs to support the clamping mechanism 230 and the server 210, two first upright plates 325 are provided for the installation of the second gear 342. The two first upright plates 325 are vertically parallel to form a gantry frame. The second gear 342 is supported by the two upright plates and rotatably connected to them. The second gear 342 meshes with the second rack 343. When the second motor 341 drives the second gear 342 to rotate, the second support plate 360 ​​rises or falls. Because the second support plate 360 ​​is relatively heavy, its weight is transmitted to the second gear 342 through the second rack 343. Since the second gear 342 is supported by the two first upright plates 325, its load-bearing capacity is better and more reliable than a form fixed to the motor shaft.

[0103] A second guide rail 361 is provided on the back of the second support plate 360. Correspondingly, a second upright plate 326 is provided on the first support plate 321. Multiple second sliders 351 are fixed by the second upright plate 326. The second guide rail 361 is slidably connected to the second sliders 351 to complete the guiding function when the second support plate 360 ​​moves up and down.

[0104] The second gear 342 of this utility model is rotatably mounted on the first support plate 321 via two vertical plates. It has a strong load-bearing capacity and can ensure the long-term reliability of the system when the second support plate 360 ​​is driven to rise and fall by the second motor 341.

[0105] In some embodiments, the second support plate 360 ​​is provided with a first aluminum profile 363 perpendicular to the first support plate 321 and a plurality of photoelectric switches 364 disposed on the first aluminum profile 363, and the first support plate 321 is provided with a baffle.

[0106] When the second support plate 360 ​​slides, the baffle blocks the sensing end of one or more of the plurality of photoelectric switches 364.

[0107] In some embodiments, the second support plate 360 ​​is provided with a plurality of weight-reducing holes 365.

[0108] In some embodiments, the first power unit and the second power unit are each equipped with an electric motor, which is a servo motor or a stepper motor.

[0109] For example, in some application scenarios, a first aluminum profile 363 with a T-slot is provided on the second support plate 360, and multiple photoelectric switches 364 are fixed by the first aluminum profile 363, and their positions can be freely adjusted.

[0110] Accordingly, a baffle is provided on the first support plate 321 to block the signal of the photoelectric switch 364. When the photoelectric switch 364 moves to the position of the baffle, the photoelectric switch 364 sends a signal due to the blocking effect of the baffle. If the electrical part of this utility model is connected to a controller, the movement position of the second support plate 360 ​​can be controlled according to the feedback signal.

[0111] In order to precisely control the first support plate 321 and the second support plate 360, the motors used to drive the two support plates are servo motors or stepper motors. These motors can precisely control the sliding position and sliding speed of the support plates.

[0112] In addition, in some scenarios, the second support plate 360 ​​is provided with multiple weight reduction holes 365, which can reduce the weight while ensuring the strength of the second support plate 360, thereby reducing the load on the system and ensuring the long-term reliable operation of the system.

[0113] It should be understood that the sequence number of each step in the above embodiments does not imply 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 this utility model.

[0114] The following are embodiments of the device of this utility model. For details not described in detail, please refer to the corresponding method embodiments described above.

Claims

1. A server unloading device, characterized in that, The server unloading device includes a drive mechanism (230) to transfer a server (210) gripped from the server assembly line (100) to the server packaging line (200). The first frame (310), the first support platform (320), and the second support platform; The first frame (310) is a rectangular frame; The first support platform (320) includes a first support plate (321), a first power unit, and a second power unit; The first support plate (321) spans the two long sides of the first frame (310) and is slidably connected to the two long sides of the first frame (310), and the fixed end of the first power device is fixedly connected to the first support plate (321). The second support platform includes a second support plate (360). The first support plate (321) has a hole, and the second support plate (360) passes through the hole of the first support plate (321). The second support plate (360) is perpendicular to the first support plate (321) and is slidably connected to the first support plate (321). When the moving end of the first power device is activated, the first support plate (321) and the second support plate (360) slide along the two long sides of the first frame (310); When the moving end of the second power device is activated, the second support plate (360) slides vertically.

2. The server unloading device according to claim 1, characterized in that, The first power unit includes: a first motor (331), a first gear (332), and a first rack (333) laid along the long side of the first frame (310). The body of the first motor (331) is fixedly connected to the first support plate (321), the first gear (332) is fixedly connected to the output shaft of the first motor (331), and the first gear (332) meshes with the first rack (333).

3. The server unloading device according to claim 1, characterized in that, The first support platform (320) further includes: a plurality of first sliders (322); the first frame (310) is provided with first guide rails (323) laid along the two long sides and first buffer blocks (324) fixedly disposed at both ends of the first guide rails (323) and higher than the first guide rails (323); The plurality of first sliders (322) are respectively fixedly disposed on the lower surface of the first support plate (321), and the first support plate (321) is slidably connected to the first guide rail (323) through the plurality of first sliders (322).

4. The server unloading device according to claim 1, characterized in that, The second power device includes: a second motor (341), a second gear (342), and a second rack (343) that is perpendicular to the first support plate (321) and fixedly mounted on the second support plate (360). The body of the second motor (341) is fixedly mounted on the first support plate (321), the second gear (342) is rotatably connected to the first support plate (321) and drives the second motor (341), and the second gear (342) meshes with the second rack (343).

5. The server unloading device according to claim 4, characterized in that, The first support plate (321) is provided with two first vertical plates (325) arranged in parallel. The two ends of the axle of the second gear (342) are rotatably connected to the two first vertical plates (325).

6. The server unloading device according to claim 4, characterized in that, The first support platform (320) further includes: a plurality of second sliders (351), and the second support plate (360) is provided with a second guide rail (361) perpendicular to the first support plate (321) and a second buffer block (362) higher than the second guide rail (361). The plurality of second sliders (351) are fixedly connected to the first support plate (321) respectively, and the second support plate (360) is slidably connected to the plurality of second sliders (351) through the second guide rail (361).

7. The server unloading device according to claim 6, characterized in that, The first support platform (320) is provided with a second upright plate (326), and the plurality of second sliders (351) are fixedly disposed on the second upright plate (326).

8. The server unloading device according to any one of claims 1-7, characterized in that, The second support plate (360) is provided with a first aluminum profile (363) perpendicular to the first support plate (321) and a plurality of photoelectric switches (364) provided on the first aluminum profile (363). The first support plate (321) is provided with a baffle. When the second support plate (360) slides, the baffle blocks the sensing end of one or more of the plurality of photoelectric switches (364).

9. The server unloading device according to any one of claims 1-7, characterized in that, The second support plate (360) is provided with multiple weight-reducing holes (365).

10. The server unloading device according to any one of claims 1-7, characterized in that, The first power unit and the second power unit are each equipped with an electric motor, which is a servo motor or a stepper motor.