Server moving device for software testing
By designing a server moving device with a buffer installation structure and a positioning structure, the problem of equipment damage caused by the bulkiness of traditional server racks was solved, achieving stable server movement and reliable test data.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JINAN HOTZ INFORMATION TECH CO LTD
- Filing Date
- 2025-03-25
- Publication Date
- 2026-04-21
AI Technical Summary
Traditional server racks are bulky and lack professional moving aids, making them prone to collisions and loose connections during manual handling, which affects equipment stability and the reliability of test data.
A server moving device for software testing was designed, which adopts a buffer installation structure and a positioning structure, including components such as damping springs, buffer pads, moving wheels, motors, and lead screws, to achieve stable buffering, positioning, and movement of the server.
This avoids equipment collisions and loose connections, ensuring server stability and test data continuity, and improving the reliability of the testing cycle.
Smart Images

Figure CN224145984U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of server equipment technology, specifically to a mobile server device for software testing. Background Technology
[0002] In the field of software testing, servers are one of the core infrastructures used to deploy test environments, run automated test scripts, and manage test data.
[0003] In current software testing, servers need to be physically relocated frequently according to different testing scenarios. However, traditional server racks are bulky and lack professional moving aids, making them prone to mechanical damage such as collisions and loose connections during manual handling. This not only increases the equipment failure rate but also causes test data distortion due to unstable hardware, ultimately affecting the reliability and continuity of the testing cycle. In view of this, existing technologies may already have solutions to the above problems, but this case aims to provide an alternative or replacement technical solution. Utility Model Content
[0004] To achieve the above objectives, this utility model is implemented through the following technical solution: a server mobile device for software testing, including a base plate, four moving wheels installed at the four corners of the lower wall of the base plate, a buffer mounting structure provided at the center of the upper end of the base plate, positioning structures installed on both sides of the upper wall of the base plate, and an adjustment and storage structure movably embedded inside the positioning structure;
[0005] The buffer mounting structure includes: four damping springs, a mounting plate, a buffer pad, and the server body;
[0006] The four damping springs are all installed on both sides of the wall of the base plate, the mounting plate is fixedly installed on the upper end of the four damping springs, the buffer pad is fixedly installed on the upper end of the mounting plate, and the server body is placed on the upper end of the buffer pad.
[0007] Preferably, the positioning structure includes: two side plates, two motors, two lead screws, two mounting blocks, two guide sleeves, two threaded moving blocks, and two support frames;
[0008] Two side plates are respectively installed on the upper sides of the base plate, two motors are respectively installed on the outer walls of the two side plates, one end of each of the two lead screws is connected to the drive end of each of the two motors, two mounting blocks are respectively installed at the center of the outer walls on both sides of the base plate, two guide sleeves are respectively fixedly embedded in the two mounting blocks, two threaded moving blocks are respectively movably embedded in the two guide sleeves, the top ends of the two threaded moving blocks are respectively movably fitted onto the other ends of the two lead screws, and two support frames are respectively installed at the bottom ends of the two threaded moving blocks.
[0009] Preferably, the adjustable storage structure includes: two positioning slots, two positioning rods, two positioning blocks, two positioning bolts, a connecting plate, a storage box, and three compression airbags;
[0010] Two positioning slots are respectively opened at the center of the two side plates, two positioning rods are respectively installed in the two positioning slots, two positioning blocks are respectively movably embedded in the two positioning slots and respectively movably fitted onto the upper end of the two positioning rods, two positioning bolts are respectively movably embedded in the side wall of the two positioning blocks, the connecting plate is fixedly installed between the two positioning blocks, the storage box is fixedly installed on the upper end of the connecting plate, and the three compression airbags are all installed on the lower wall of the connecting plate.
[0011] Preferably, a push-pull handle is installed at one end of each of the two side plates.
[0012] Preferably, the movable wheels are omnidirectional movable wheels.
[0013] Beneficial effects
[0014] This utility model provides a server moving device for software testing, which has the following beneficial effects: The buffer installation structure adopted in this invention, through the cooperation of the damping spring and the buffer pad, can achieve buffer placement of the server body, and in conjunction with the set adjustment and storage structure, can achieve stable installation of the server body, avoiding mechanical damage such as equipment collision and loosening of connectors caused by manual handling. Moreover, through the cooperation of the set moving wheels and the positioning structure, the server body can be moved quickly, while the motor and lead screw can be used to achieve stable support for the server body in the use position, ensuring the stability of the server body in use. Attached Figure Description
[0015] Figure 1 This is a front-view three-dimensional structural diagram of a mobile server device for software testing according to the present invention.
[0016] Figure 2 This is a rear-view three-dimensional structural diagram of a mobile server device for software testing according to the present invention.
[0017] Figure 3 This is a front view structural diagram of a mobile server device for software testing according to the present invention.
[0018] In the diagram: 1. Base plate, 2. Casters, 3. Damping spring, 4. Mounting plate, 5. Buffer pad, 6. Server body, 7. Side plate, 8. Motor, 9. Lead screw, 10. Mounting block, 11. Guide sleeve, 12. Threaded moving block, 13. Support frame, 14. Positioning groove, 15. Positioning rod, 16. Positioning block, 17. Positioning bolt, 18. Connecting plate, 19. Storage box, 20. Compression airbag, 21. Push-pull handle. Detailed Implementation
[0019] Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.
[0020] Example: Please refer to Figure 1-3 A software testing server mobile device includes a base plate 1, four moving wheels 2 installed at the four corners of the lower wall of the base plate 1, a buffer mounting structure provided at the center of the upper end of the base plate 1, positioning structures installed on both sides of the upper wall of the base plate 1, and an adjustable storage structure movably embedded inside the positioning structure.
[0021] The buffer mounting structure includes: four damping springs 3, a mounting plate 4, a buffer pad 5, and the server body 6;
[0022] Four damping springs 3 are installed on both sides of the upper wall of the base plate 1. The mounting plate 4 is fixedly installed on the upper end of the four damping springs 3. The buffer pad 5 is fixedly installed on the upper end of the mounting plate 4. The server body 6 is placed on the upper end of the buffer pad 5.
[0023] When using the software testing server, the staff first places the server body 6 on the buffer pad 5. The four damping springs 3 at the lower end of the mounting plate 4 work in conjunction with the buffer pad 5 to move and buffer the server body 6, ensuring the stability of the server body 6. Then, the position of the storage structure is changed to buffer and limit the top of the server body 6, achieving stable installation of the server body 6. The four moving wheels 2 at the lower end of the base plate 1 can be used to move the server body 6. The positioning structure can be used to move and position the server body 6, ensuring the stability of the server body 6 during use.
[0024] In the specific implementation process, the positioning structure includes: two side plates 7, two motors 8, two lead screws 9, two mounting blocks 10, two guide sleeves 11, two threaded moving blocks 12, and two support frames 13;
[0025] Two side plates 7 are respectively installed on the upper sides of the base plate 1. Two motors 8 are respectively installed on the outer walls of the two side plates 7. One end of each of the two lead screws 9 is connected to the drive end of the two motors 8. Two mounting blocks 10 are respectively installed at the center of the outer walls on both sides of the base plate 1. Two guide sleeves 11 are respectively fixedly embedded in the two mounting blocks 10. Two threaded moving blocks 12 are respectively movably embedded in the two guide sleeves 11. The top ends of the two threaded moving blocks 12 are respectively movably fitted onto the other ends of the two lead screws 9. Two support frames 13 are respectively installed at the bottom ends of the two threaded moving blocks 12.
[0026] When positioning the server body 6, two motors 8 on the outer side of the two side plates 7 are driven to work. The two motors 8 drive the two lead screws 9 to rotate. Since the threaded moving blocks 12 are limited to rotation by the two guide sleeves 11, the two threaded moving blocks 12 are raised and lowered within the two guide sleeves 11 under the meshing action of the lead screws 9 and the threaded moving blocks 12 until the two support frames 13 at the bottom of the two threaded moving blocks 12 contact the ground, thereby positioning the server body 6 in its usage position.
[0027] In the specific implementation process, the adjustable storage structure includes: two positioning slots 14, two positioning rods 15, two positioning blocks 16, two positioning bolts 17, a connecting plate 18, a storage box 19, and three compression airbags 20.
[0028] Two positioning slots 14 are respectively opened at the center of the two side plates 7. Two positioning rods 15 are respectively installed in the two positioning slots 14. Two positioning blocks 16 are respectively movably embedded in the two positioning slots 14 and respectively movably fitted onto the upper end of the two positioning rods 15. Two positioning bolts 17 are respectively movably embedded in the side wall of the two positioning blocks 16. A connecting plate 18 is fixedly installed between the two positioning blocks 16. A storage box 19 is fixedly installed on the upper end of the connecting plate 18. Three compression airbags 20 are all installed on the lower wall of the connecting plate 18.
[0029] During the installation of the server body 6, the positions of the two positioning blocks 16 within the two positioning slots 14 are changed so that the three compression airbags 20 at the bottom of the connecting plate 18 contact the top of the server. Then, the two positioning bolts 17 are tightened to fix the two positioning blocks 16 to the upper ends of the two positioning rods 15, thereby limiting the height of the connecting plate 18. The three compression airbags 20, in conjunction with the damping spring 3 and the buffer pad 5, clamp and fix the server body 6. The storage box 19 at the top of the connecting plate 18 can be used to store tools and cables used in software testing for easy access by personnel.
[0030] In the specific implementation process, push-pull handles 21 are installed at one end of the two side panels 7.
[0031] In the specific implementation process, the movable wheel 2 adopts the omnidirectional movable wheel 2.
[0032] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A server mobile device for software testing, comprising a base plate (1), characterized in that, Four moving wheels (2) are installed at the four corners of the lower wall of the base plate (1). A buffer installation structure is provided at the center of the upper end of the base plate (1). Positioning structures are installed on both sides of the upper wall of the base plate (1). An adjustment and storage structure is movably embedded inside the positioning structure. The buffer mounting structure includes: four damping springs (3), a mounting plate (4), a buffer pad (5), and a server body (6); The four damping springs (3) are installed on both sides of the upper wall of the base plate (1), the mounting plate (4) is fixedly installed on the upper end of the four damping springs (3), the buffer pad (5) is fixedly installed on the upper end of the mounting plate (4), and the server body (6) is placed on the upper end of the buffer pad (5).
2. The server mobile device for software testing of claim 1, wherein, The positioning structure includes: two side plates (7), two motors (8), two lead screws (9), two mounting blocks (10), two guide sleeves (11), two threaded moving blocks (12), and two support frames (13). Two side plates (7) are respectively installed on the upper sides of the base plate (1), two motors (8) are respectively installed on the outer walls of the two side plates (7), one end of each of the two lead screws (9) is connected to the driving end of each of the two motors (8), two mounting blocks (10) are respectively installed at the center of the outer walls on both sides of the base plate (1), two guide sleeves (11) are respectively fixedly embedded in the two mounting blocks (10), two threaded moving blocks (12) are respectively movably embedded in the two guide sleeves (11), the top ends of the two threaded moving blocks (12) are respectively movably fitted onto the other end of each of the two lead screws (9), and two support frames (13) are respectively installed at the bottom of the two threaded moving blocks (12).
3. The server mobile device for software testing of claim 2, wherein, The adjustable storage structure includes: two positioning slots (14), two positioning rods (15), two positioning blocks (16), two positioning bolts (17), a connecting plate (18), a storage box (19), and three compression airbags (20). Two positioning slots (14) are respectively opened at the center of the two side plates (7), two positioning rods (15) are respectively installed in the two positioning slots (14), two positioning blocks (16) are respectively movably embedded in the two positioning slots (14) and respectively movably fitted on the upper end of the two positioning rods (15), two positioning bolts (17) are respectively movably embedded in the side wall of the two positioning blocks (16), the connecting plate (18) is fixedly installed between the two positioning blocks (16), the storage box (19) is fixedly installed on the upper end of the connecting plate (18), and the three compression airbags (20) are all installed on the lower wall of the connecting plate (18).
4. The server mobile device for software testing of claim 2, wherein, Push-pull handles (21) are installed at one end of the two side panels (7).
5. The server mobile device for software testing of claim 1, wherein, The movable wheel (2) is an omnidirectional movable wheel (2).