Multi-screen connecting device for software development

Through the combination of lift seat, shock absorbing components and clamping components, the problem of displacement and loosening of multi-screen connection devices under external force is solved, and the stable clamping and shock absorption of different display screens is achieved, improving connection stability and visual experience.

CN120231940AInactive Publication Date: 2025-07-01HUBEI SAIYUN INTELLIGENT MANUFACTURING TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510379525.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-28
Publication Date
2025-07-01
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing multi-screen connection devices are easily displaced or loosened under external forces, and cannot adapt to display screens of different brands and models, and have poor connection stability in vibrating environments.

Method used

A multi-screen connection device including a lifting seat, a shock absorbing assembly, a load-bearing plate, a vertical plate, a first clamping assembly and a second clamping assembly are adopted. By using the cooperation of the first clamping assembly and the second clamping assembly, the slider, a drive assembly, a lifting assembly and a shock absorbing assembly, the display screen is achieved through the slide chute, a slider, a drive assembly, a lifting assembly and a shock absorbing assembly, and the display screen is adapted to different sizes and brands.

Benefits of technology

It improves the clamping stability and adaptability of the display, reduces shaking and jitter, extends the service life of the display, improves visual experience and work efficiency, and reduces neck and eye fatigue.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of display screen connection, in particular to a multi-screen connecting device for software development, which comprises a bottom plate and second clamping assemblies mounted on two sides of a bearing plate respectively, moving frames in the second clamping assemblies are fixedly connected to the tops of corresponding first sliding blocks respectively, and first rotating rods are rotatably connected to the inner walls of first connecting blocks. The first clamping blocks are rotationally connected to the corresponding sliding plates, the first bidirectional lead screws are rotationally connected to the inner walls of the second sliding grooves and are in threaded connection with the second sliding blocks, the first clamping assemblies and the second clamping assemblies are matched with each other, and a display screen can be clamped and fixed in different directions; the first clamping assembly is used for primarily clamping the display screen, the clamping position can be adjusted according to actual requirements, the clamping precision is ensured, the second clamping assembly is suitable for display screens of different sizes, and the clamping flexibility and adaptability are improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of display screen connection, and particularly provides a multi-screen connection device for software development. Background Art

[0002] As is well known, with the rapid development of technology, our demand for the use of computers has also increased. In the normal use of a computer, it is necessary to use the computer's display screen to display data. The display screen is usually also called a monitor, and it is a display tool that displays a certain electronic file onto a screen through a specific transmission device and then reflects it into the human eye.

[0003] Existing multi-screen connection devices generally adopt mechanical connection methods, such as clips or card slots. When subjected to external force impacts or slight vibrations, the display screen may shift, which may cause the multi-screen display layout to be disrupted and affect the use effect. Especially in the case of shared use by multiple people or an unstable use environment, some devices connected by simple bolts and nuts may have the bolts loosen due to vibrations and other reasons during long-term use, thereby affecting the connection stability of the display screen. There are differences in the size, thickness, and border design of display screens of different brands and models. Some mechanical connection devices may not be able to adapt to various types of display screens. For example, a connection device designed for a specific model of display screen may not be used for other brands or display screens with different sizes. To solve the above problems, therefore, a multi-screen connection device for software development is needed. Summary of the Invention

[0004] The present invention provides a multi-screen connection device for software development in view of the technical problems existing in the prior art.

[0005] The technical solution of the present invention to solve the above technical problems is as follows: A multi-screen connection device for software development includes a bottom plate, and also includes a lifting seat, a shock absorption component, a bearing plate, vertical plates, a first clamping component, and a second clamping component. Each of the lifting seats is installed around the bottom of the bottom plate, and the shock absorption component is installed around the top of the bottom plate to reduce the vibration generated during the use of the display screen. The bearing plate is fixedly connected to the top of the shock absorption component. Each of the vertical plates is fixedly connected to both sides of the bearing plate. The first clamping component is installed on the bearing plate to initially clamp the display screen. Each of the second clamping components is installed on both sides of the bearing plate to cooperate with the first clamping component to clamp the display screen. The second clamping component includes a first chute, a first slider, a moving frame, a driving component, a lifting rod, a lifting component, a first connecting block, a first rotating rod, a second chute, a second slider, a sliding plate, a first clamping block, a first rubber sheet, and a first bidirectional lead screw. The first chute is opened on the side surface of the bearing plate. Each of the first sliders is slidably connected to the inner walls on both sides of the first chute. Each of the moving frames is fixedly connected to the top of the corresponding first slider, and each of the moving frames is also slidably connected to the top of the bearing plate. The driving component is installed on the bearing plate to drive the moving frame to move. The lifting rod is slidably connected to the inner wall of the moving frame. The lifting component is installed on the inner wall of the moving frame to drive the lifting rod to lift and lower. The first connecting block is fixedly connected to the side surface of the lifting rod. The first rotating rod is rotatably connected to the inner wall of the first connecting block. The second chute is opened on the first rotating rod. Each of the second sliders is slidably connected to the inner walls on both sides of the first chute. Each of the sliding plates is fixedly connected to the bottom of the corresponding second slider. Each of the first clamping blocks is rotatably connected to the corresponding sliding plate. Each of the first rubber sheets is fixedly connected to the corresponding first clamping block. The first bidirectional lead screw is rotatably connected to the inner wall of the second chute, and the first bidirectional lead screw is threadedly connected to each of the second sliders.

[0006] Preferably, the first clamping assembly includes a third chute, a third slider, a sliding block, a sliding groove, a clamping plate, a second clamping block, a second bidirectional lead screw, a pulley, a mounting groove, a first motor, and a transmission belt. Each of the third chutes is respectively formed on the corresponding vertical plate. Each of the third sliders is respectively slidably connected to the inner walls on both sides of the third chute. Each of the sliding blocks is respectively slidably connected to both sides of the top of the bearing plate, and each of the sliding blocks is fixedly connected to the corresponding third slider. Each of the sliding grooves is respectively formed on both sides of the sliding block. Each of the clamping plates is respectively slidably connected to the inner wall of the corresponding sliding groove. Each of the second clamping blocks is respectively rotatably connected to the corresponding clamping plate. Each of the second bidirectional lead screws is respectively rotatably connected to the inner wall of the corresponding sliding groove, and each of the second bidirectional lead screws is threadedly connected to the corresponding clamping plate. Each of the pulleys is respectively fixedly connected to one end of the corresponding second bidirectional lead screw. The mounting groove is formed at the bottom of the sliding block. The first motor is mounted on the inner wall of the mounting groove. The transmission belt is connected between the pulley and the output shaft of the first motor.

[0007] Further, the driving assembly includes a square groove, a sliding column, a first rotating plate, a connecting frame, a threaded block, and an auxiliary assembly. The square groove is formed on the side of the bearing plate, and the square groove communicates with the first chute. Each of the sliding columns is respectively slidably connected to the inner walls on both sides of the square groove, and each of the sliding columns is fixedly connected to the corresponding first slider. Each of the first rotating plates is respectively rotatably connected to the corresponding sliding column. The connecting frame is rotatably connected between each of the first rotating plates. The threaded block is fixedly connected to the side of the connecting frame. The auxiliary assembly is mounted on the bearing plate for driving the connecting frame to move.

[0008] Still further, the lifting assembly includes a rack, a circular shaft, a first gear, a worm gear, and a worm. The rack is fixedly connected to the lifting rod. The circular shaft is rotatably connected to the inner wall of the moving frame. The first gear is fixedly connected to the circular shaft, and the first gear meshes with the rack. The worm gear is fixedly connected to the circular shaft. The worm is rotatably connected to the inner wall of the moving frame, and the worm meshes with the worm gear.

[0009] For a further solution, the auxiliary component includes a threaded post, a mounting plate, a first bevel gear, a second motor and a second bevel gear. One end of the threaded post is rotatably connected to the bottom of the bearing plate, and the threaded post is threadedly connected to the threaded block. The mounting plate is fixedly connected between the lifting seats on one side, and the other end of the threaded post is rotatably connected to the mounting plate. The first bevel gear is fixedly connected to the threaded post. The second motor is mounted on the mounting plate. The second bevel gear is fixedly connected to the output shaft of the second motor, and the first bevel gear meshes with the second bevel gear.

[0010] On the basis of the foregoing solution, the shock-absorbing component includes shock-absorbing columns, moving rings and shock-absorbing springs. Each of the shock-absorbing columns is fixedly connected to the periphery of the top of the bottom plate, and each of the shock-absorbing columns is slidably connected to the bearing plate. Each of the moving rings is slidably connected to the corresponding shock-absorbing column, and each of the moving rings is fixedly connected to the bottom of the bearing plate. Each of the shock-absorbing springs is fixedly connected to the periphery of the bottom plate, and the other end of each of the shock-absorbing springs is fixedly connected to the corresponding moving ring.

[0011] Beneficial effects:

[0012] 1. For the multi-screen connection device for software development, the first clamping component and the second clamping component cooperate with each other to clamp and fix the display screen from different directions. Among them, the first clamping component slides the third slider in the third chute of the vertical plate to drive the sliding block to move, and then uses the second bidirectional lead screw to drive the second clamping block on the clamping plate to initially clamp the display screen. The clamping position can be adjusted according to actual needs to ensure the accuracy of clamping. The driving component in the second clamping component can drive the moving frame to move, so that the first clamping block approaches the side of the display screen, and the height of the first clamping block is adjusted through the lifting component to adapt to display screens of different sizes, improving the flexibility and adaptability of clamping. The first rubber sheet is fixedly connected to the first clamping block, increasing the friction with the display screen, preventing the display screen from sliding during use, improving the stability of clamping. At the same time, the rubber sheet can also play a buffering role to avoid damage to the display screen caused by excessive clamping force.

[0013] 2. The shock-absorbing component is installed between the bottom plate and the bearing plate. When the display screen is vibrated during use, the moving ring on the shock-absorbing column will compress the shock-absorbing spring, and the elastic deformation of the shock-absorbing spring is used to absorb and reduce the vibration, thereby protecting the display screen from the influence of vibration and extending the service life of the display screen. The shock-absorbing function can reduce the shaking and jitter of the display screen, make the display picture more stable, improve the visual experience of software developers when using the multi-screen connection device, and help improve work efficiency.

[0014] 3. The lifting seat is installed around the bottom of the base plate and can adjust the height of the entire multi-screen connection device according to the needs of the user, facilitating software developers of different heights to use. At the same time, the lifting seat can also adjust the display screen to a suitable height to adapt to different working scenarios and usage requirements. Reasonable height adjustment can reduce the neck and eye fatigue of software developers and improve the comfort and efficiency of work.

[0015] 4. The first motor in the first clamping component drives the pulley to rotate through the transmission belt, thereby driving the second bidirectional lead screw to rotate, realizing the automatic movement and clamping of the clamping plate. The second motor in the second clamping component drives the threaded column to rotate through the meshing of the second bevel gear and the first bevel gear, and then drives the connecting frame to move, realizing the automatic movement of the moving frame. These automated operations reduce the complexity of manual operations and improve work efficiency. The first bidirectional lead screw can adjust the position of the second slider in the second chute, thereby changing the spacing of the first clamping blocks to adapt to display screens of different widths. The rotation of the worm can drive the worm wheel and the round shaft to rotate, enabling the first gear to drive the rack to move up and down, thereby adjusting the height of the lifting rod and the first clamping blocks. These adjustment functions are convenient to operate and can quickly adapt to display screens of different sizes. Description of the Drawings

[0016] Figure 1 It is a schematic side view structure diagram of the present invention;

[0017] Figure 2 It is a schematic structure diagram of the first rotating plate of the present invention;

[0018] Figure 3 It is a schematic structure diagram of the moving frame of the present invention;

[0019] Figure 4 It is a schematic structure diagram of the rack of the present invention;

[0020] Figure 5 It is a schematic structure diagram of the sliding plate of the present invention;

[0021] Figure 6 It is a schematic structure diagram of the first motor of the present invention.

[0022] In the drawings, the list of components represented by each reference numeral is as follows:

[0023] 1. Bottom plate; 2. Lifting seat; 3. Bearing plate; 4. Vertical plate; 5. First slider; 6. Moving frame; 7. Lifting rod; 8. First connecting block; 9. First rotating rod; 10. Second slider; 11. Sliding plate; 12. First clamping block; 13. First rubber sheet; 14. First double lead screw; 15. Third slider; 16. Sliding block; 17. Clamping plate; 18. Second clamping block; 19. Second double lead screw; 20. Pulley; 21. First motor; 22. Transmission belt; 23. Sliding column; 24. First rotating plate; 25. Connecting frame; 26. Threaded block; 27. Rack; 28. Round shaft; 29. First gear; 30. Worm gear; 31. Worm; 32. Threaded column; 33. Mounting plate; 34. First bevel gear; 35. Second motor; 36. Second bevel gear; 37. Shock-absorbing column; 38. Moving ring; 39. Shock-absorbing spring. Detailed implementation manners

[0024] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative efforts belong to the scope of protection of the present invention.

[0025] In the description of the present invention, the terms "first" and "second" are only used for descriptive purposes, and cannot be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of the described features. In the description of the present invention, "a plurality" means two or more, unless otherwise specifically defined.

[0026] In the description of the present invention, the term "for example" is used to mean "serving as an example, illustration, or explanation". Any embodiment described as "for example" in the present invention is not necessarily construed as being more preferred or more advantageous than other embodiments. The following description is given to enable any person skilled in the art to make and use the present invention. In the following description, details are set forth for the purpose of explanation. It should be understood that those skilled in the art can recognize that the present invention can be implemented without these specific details. In other instances, well-known structures and processes are not described in detail to avoid unnecessary details from obscuring the description of the present invention. Therefore, the present invention is not intended to be limited to the embodiments shown, but is to be accorded the widest scope consistent with the principles and features disclosed herein.

[0027] Refer to Figures 1 to 6A multi-screen connection device for software development includes a base plate 1, a lifting seat 2, a shock absorbing assembly, a bearing plate 3, a vertical plate 4, a first clamping assembly and a second clamping assembly. Each lifting seat 2 is respectively installed around the bottom of the base plate 1, and the shock absorbing assembly is installed around the top of the base plate 1 to reduce the vibration generated when the display screen is in use. The bearing plate 3 is fixedly connected to the top of the shock absorbing assembly. Each vertical plate 4 is respectively fixedly connected to both sides of the bearing plate 3. The first clamping assembly is installed on the bearing plate 3 for preliminarily clamping the display screen. The first clamping assembly includes a third slide groove, a third slider 15, a sliding block 16, a sliding groove, a clamping plate 17, a second clamping block 18, a second bidirectional lead screw 19, a pulley 20, a mounting groove, a first motor 21 and a transmission belt 22. Each third slide groove is respectively opened on the corresponding vertical plate 4, each third slider 15 is respectively slidably connected to the inner walls on both sides of the third slide groove, and each sliding block 16 They are respectively slidably connected to the two sides of the top of the supporting plate 3, and each sliding block 16 is fixedly connected to the corresponding third sliding block 15, each sliding groove is respectively opened on both sides of the sliding block 16, each clamping plate 17 is respectively slidably connected to the inner wall of the corresponding sliding groove, each second clamping block 18 is respectively rotatably connected to the corresponding clamping plate 17, each second bidirectional lead screw 19 is respectively rotatably connected to the inner wall of the corresponding sliding groove, and each second bidirectional lead screw 19 is respectively connected to the corresponding clamping plate 17 by a thread, each pulley 20 is respectively fixedly connected to one end of the corresponding second bidirectional lead screw 19, the mounting groove is opened at the bottom of the sliding block 16, the first motor 21 is installed on the inner wall of the mounting groove, the transmission skin is transmission connected between the pulley 20 and the output shaft of the first motor 21, the second clamping assembly, each second clamping assembly is respectively installed on both sides of the supporting plate 3, and is used to cooperate with the first clamping assembly to clamp the display screen.

[0028] The base plate 1 serves as the bottom supporting structure of the entire multi-screen connection device, bearing the weight of various components and display screens from above. When placed on a desktop or other flat surface, the base plate 1 has sufficient area and strength to ensure stability. For example, in a multi-screen office environment, after multiple display screens are connected to the device, the base plate 1 can evenly distribute the weight to prevent the device from tilting or being damaged due to excessive local force.

[0029] The lifting seats 2 installed around the bottom also rely on the bottom plate 1 to provide a stable connection foundation, ensuring the stability of the entire device when the lifting seats 2 adjust the height. The lifting seats 2 are installed around the bottom of the bottom plate 1, enabling the adjustment of the overall height of the device. In different usage scenarios, users can adjust the height of the display screen according to their own line of sight height or operating habits. For example, in a conference room, in order for the speaker to allow the audience in the back row to clearly see the content of the display screen, the display screen can be raised through the lifting seats 2. When used on a desk, the user can adjust the display screen to a suitable height according to the height of their seat and sitting posture to relieve neck fatigue. The lifting seats 2 can also be used to adapt to different desktop heights or uneven ground conditions. By adjusting the height of each lifting seat 2 respectively, the device can remain level on an uneven support surface, ensuring the normal use of the display screen.

[0030] The bearing plate 3 is fixedly connected to the top of the shock-absorbing component and is the basic platform for installing the vertical plates 4, the first clamping component, and the second clamping component. The bearing plate 3 has sufficient strength and rigidity to bear the weight of multiple display screens. In actual use, the bearing plate 3 can ensure the relative positions of each component are stable, enabling the first clamping component and the second clamping component to accurately clamp the display screen. At the same time, the surface flatness of the bearing plate 3 is also very important. A flat surface can ensure that the display screen is placed stably, avoiding damage caused by uneven clamping or uneven force on the display screen due to uneven placement.

[0031] The vertical plates 4 are fixedly connected to both sides of the bearing plate 3, providing a sliding guide track for the third sliders 15. Their height and strength design can adapt to the clamping requirements of different-sized display screens. During the operation of the first clamping component, the vertical plates 4 can ensure that the third sliders 15 slide up and down stably along the third chutes, thereby driving the sliding blocks 16 to adjust their positions. For example, when clamping display screens of different thicknesses, the vertical plates 4 can withstand the lateral force generated by the clamping force, ensuring the stability of the entire clamping process. At the same time, the vertical plates 4 also play a role in connecting the bearing plate 3 and other clamping components, enhancing the structural stability of the entire device.

[0032] The third chutes are opened on the vertical plates 4, providing sliding tracks for the third sliders 15. The third sliders 15 slide within the third chutes and can be adjusted up and down according to the size and position requirements of the display screen. When it is necessary to clamp display screens of different heights, the third sliders 15 can drive the sliding blocks 16 and the clamping plates 17 to move to appropriate positions. For example, when connecting multiple display screens of different sizes, by adjusting the position of the third sliders 15 within the chutes, the clamping plates 17 can be aligned with the edges of the display screens, preparing for subsequent clamping operations.

[0033] The sliding block 16 slides on the top of the supporting plate 3 and adjusts its position by connecting with the third slider 15. The sliding groove provides a space for the clamping plate 17 to be installed and slide. The sliding block 16 can drive the clamping plate 17 to approach the edge of the display screen during movement. During operation, the sliding block 16 can be adjusted laterally according to the placement position of the display screen to ensure that the clamping plate 17 can accurately contact the display screen. For example, when the display screen is placed with a certain offset, the sliding block 16 can be fine-tuned to align the clamping plate 17 with the display screen.

[0034] The clamping plate 17 slides in the sliding groove, and the clamping and loosening operations are achieved by rotating the second bidirectional lead screw 19. The second clamping block 18 is rotatably connected to the clamping plate 17. When clamping the display screen, the second clamping block 18 can be adjusted to a certain angle according to the surface shape of the display screen, thereby increasing the contact area with the display screen and improving the clamping stability. For example, when clamping a curved display screen, the second clamping block 18 can adaptively adjust the angle to fit the surface of the display screen so that the clamping force is more evenly distributed.

[0035] The second bidirectional lead screw 19 is rotatably connected to the inner wall of the sliding groove, and drives the clamping plate 17 to move toward or in the opposite direction by rotating. Its bidirectional thread design can realize the synchronous opening and closing movement of the clamping plate 17. The pulley 20 is fixed to one end of the second bidirectional lead screw 19 for transmitting power. When the first motor 21 drives the pulley 20 to rotate through the transmission belt 22, the pulley 20 transmits the power to the second bidirectional lead screw 19, so that the second bidirectional lead screw 19 rotates, thereby accurately controlling the moving distance and clamping force of the clamping plate 17. For example, when clamping display screens with frames of different materials, the rotation speed of the second bidirectional lead screw 19 can be adjusted according to the strength of the frame. The mounting groove provides an installation space for the first motor 21 to ensure the stability of the first motor 21 during operation. The first motor 21 serves as a power source to provide power for the movement of the clamping plate 17. The transmission belt 22 is connected between the pulley 20 and the output shaft of the first motor 21 to transmit the power of the first motor 21 to each pulley 20, thereby realizing the synchronous rotation of multiple second bidirectional lead screws 19. For example, when clamping multiple display screens at the same time, the transmission belt 22 can ensure the consistency of the movements of each clamping plate 17, thereby improving the clamping efficiency and stability.

[0036] The second clamping assembly includes a first sliding groove, first sliders 5, moving frames 6, a driving assembly, lifting rods 7, a lifting assembly, first connecting blocks 8, first rotating rods 9, second sliding grooves, second sliders 10, sliding plates 11, first clamping blocks 12, first rubber sheets 13 and a first bidirectional lead screw 14. The first sliding groove is formed on the side surface of the bearing plate 3. Each of the first sliders 5 is slidably connected to the inner walls on both sides of the first sliding groove. Each of the moving frames 6 is fixedly connected to the top of the corresponding first slider 5, and each of the moving frames 6 is also slidably connected to the top of the bearing plate 3. The driving assembly is installed on the bearing plate 3 and is used to drive the moving frame 6 to move. The lifting rod 7 is slidably connected to the inner wall of the moving frame 6. The lifting assembly is installed on the inner wall of the moving frame 6 and is used to drive the lifting rod 7 to move up and down. The first connecting block 8 is fixedly connected to the side surface of the lifting rod 7. The first rotating rod 9 is rotatably connected to the inner wall of the first connecting block 8. The second sliding groove is formed on the first rotating rod 9. Each of the second sliders 10 is slidably connected to the inner walls on both sides of the first sliding groove. Each of the sliding plates 11 is fixedly connected to the bottom of the corresponding second slider 10. Each of the first clamping blocks 12 is rotatably connected to the corresponding sliding plate 11. Each of the first rubber sheets 13 is fixedly connected to the corresponding first clamping block 12. The first bidirectional lead screw 14 is rotatably connected to the inner wall of the second sliding groove, and the first bidirectional lead screw 14 is threadedly connected to each of the second sliders 10.

[0037] The first sliding groove is formed on the side surface of the bearing plate 3, providing a track for the first sliders 5 to move. During the operation of the device, the first sliders 5 can smoothly slide along the inner walls of the first sliding groove. This sliding function enables the associated moving frames 6 to adjust their positions as needed. For example, when clamping the sides of display screens of different sizes, the first sliders 5 can move within the first sliding groove, driving the moving frames 6 to move to appropriate horizontal positions to adapt to the width of the display screen, ensuring that the clamping assembly can accurately act on the display screen. The close cooperation between the first sliders 5 and the first sliding groove can also ensure the stability of the moving frames 6 during movement, preventing them from shaking or shifting, thereby improving the accuracy of the clamping operation. In long-term use, the structures of the first sliding groove and the first sliders 5 can withstand frequent friction and certain external force impacts, ensuring the reliability of their functions.

[0038] The moving frame 6 is fixedly connected to the top of the first slider 5 and is slidably connected to the top of the bearing plate 3. It serves to carry other components and connect various components, providing an installation space and a support structure for the lifting rod 7, the lifting assembly, etc. Under the action of the driving assembly, the moving frame 6 can drive the internal components to move horizontally on the bearing plate 3, realizing the clamping operation at different positions of the display screen. For example, in the scenario of multi-screen splicing, the moving frame 6 can adjust its position according to the arrangement layout of the display screens, enabling the first clamping assembly and the second clamping assembly to accurately clamp and fix each display screen, ensuring the tightness and stability of the connection between multiple screens. The structural strength of the moving frame 6 needs to be able to withstand the weight of the internal components and various forces generated during movement and clamping, preventing deformation or damage.

[0039] The lifting rod 7 is slidably connected to the inner wall of the moving frame 6, and its height can be adjusted through the lifting assembly. When clamping the display screen, the lifting rod 7 can be lifted or lowered according to the height and installation angle of the display screen, enabling the clamping component connected to it to accurately contact the display screen and apply an appropriate clamping force. For example, for some inclined-mounted display screens or combinations of display screens with different thicknesses, the lifting rod 7 can be adjusted to an appropriate height so that the first clamping block 12 can closely fit the side of the display screen, ensuring the clamping effect. The sliding of the lifting rod 7 in the moving frame 6 needs to be smooth and stable, and the connection structure between it and the moving frame 6 can withstand a certain amount of friction and pressure, ensuring that there is no jamming or shaking during the lifting process.

[0040] The first connecting block 8 is fixedly connected to the side of the lifting rod 7, providing a connection point for the first rotating rod 9. The first rotating rod 9 is rotatably connected to the inner wall of the first connecting block 8, enabling the first rotating rod 9 to be adjusted by a certain angle according to the actual installation angle and shape of the display screen. For example, when clamping a curved display screen, the first rotating rod 9 can rotate to adapt to the curvature of the display screen, enabling the first clamping block 12 to better fit the surface of the display screen, improving the stability and reliability of clamping. The rotating connection structure between the first connecting block 8 and the first rotating rod 9 has a certain degree of flexibility and strength, being able to ensure smooth rotation and withstand a certain amount of torque and tensile force during clamping, preventing loosening or breaking.

[0041] The second sliding groove is formed on the first rotating rod 9, providing a sliding track for the second slider 10. The second slider 10 slides within the second sliding groove, capable of driving the sliding plate 11 to adjust its position. During the process of clamping the display screen, this fine-tuning function enables the first clamping block 12 to more accurately align with the edge or corner of the display screen, ensuring uniform distribution of the clamping force. The sliding plate 11 is fixedly connected to the bottom of the second slider 10, serving to connect the second slider 10 and the first clamping block 12. The structural design of the sliding plate 11 needs to ensure that it will not deform or break when transmitting the clamping force and can cooperate with the first rotating rod 9 and the second slider 10 to achieve precise clamping of the display screen.

[0042] The first clamping block 12 is rotatably connected to the sliding plate 11 and can be adaptively adjusted according to the shape and angle of the display screen surface, increasing the contact area with the display screen and improving the clamping effect. The first rubber sheet 13 is fixedly connected to the first clamping block 12, playing a role in protecting the display screen during the clamping process. The soft material of the rubber sheet can prevent the first clamping block 12 from directly contacting the display screen and causing scratches or damage. At the same time, it can also increase the friction force to make the clamping more firm. At different ambient temperatures, the first rubber sheet 13 can maintain good elasticity and friction force, ensuring that the protective effect on the display screen is not affected during long-term use.

[0043] The first bidirectional lead screw 14 is rotatably connected to the inner wall of the second sliding groove. By means of threaded connection with the second slider 10, it can control the forward or reverse movement of the second slider 10. When the first bidirectional lead screw 14 is rotated, the two second sliders 10 can move closer to or away from each other synchronously, thereby driving the first clamping block 12 to adjust the clamping width and the magnitude of the clamping force. For example, when clamping display screen frames of different thicknesses, the distance between the first clamping blocks 12 can be precisely adjusted by rotating the first bidirectional lead screw 14, enabling it to tightly clamp the display screen without damaging the display screen frame due to excessive clamping force. The thread accuracy and transmission efficiency of the first bidirectional lead screw 14 are crucial for the accuracy and efficiency of the clamping operation.

[0044] First, refer to Figure 2 , in this embodiment, the driving assembly includes a square groove, sliding columns 23, first rotating plates 24, a connecting frame 25, threaded blocks 26, and an auxiliary assembly. The square groove is formed on the side surface of the bearing plate 3 and is communicated with the first sliding groove. Each sliding column 23 is respectively slidably connected to the inner walls on both sides of the square groove, and each sliding column 23 is respectively fixedly connected to the corresponding first slider 5. Each first rotating plate 24 is respectively rotatably connected to the corresponding sliding column 23. The connecting frame 25 is rotatably connected between the first rotating plates 24. The threaded block 26 is fixedly connected to the side surface of the connecting frame 25. The auxiliary assembly is installed on the bearing plate 3 and is used to drive the connecting frame 25 to move.

[0045] The square groove is formed on the side of the bearing plate 3 and communicates with the first sliding groove, providing a sliding space for the sliding column 23. The sliding column 23 slides in the square groove, and the sliding column 23 is fixedly connected to the first slider 5. When the sliding column 23 moves, it can drive the first slider 5 to slide in the first sliding groove, thereby realizing the position adjustment of the moving frame 6. For example, when clamping display screens of different sizes, the sliding column 23 can move in the square groove according to the width of the display screen, so that the moving frame 6 can accurately move to the appropriate position to prepare for clamping the display screen. The cooperation between the square groove and the sliding column 23 needs to ensure the smoothness and stability of sliding, preventing jamming or shaking during the movement. The first rotating plate 24 is respectively rotatably connected to the sliding column 23, and the connecting frame 25 is rotatably connected between the first rotating plates 24. This connection method enables the connecting frame 25 to adjust the angle within a certain range, so as to adapt to different force conditions and movement trajectories. For example, when the driving component works, the connecting frame 25 may be subjected to forces from different directions. The rotating function of the first rotating plate 24 can make the connecting frame 25 rotate within a certain angle, so as to better transmit power and avoid component damage caused by uneven force. As an intermediate link for power transmission, the connecting frame 25 transmits the power generated by the auxiliary component to the sliding column 23 and the first slider 5, driving the moving frame 6 to move. The threaded block 26 is fixedly connected to the side of the connecting frame 25 and is threadedly connected to the threaded column 32 in the auxiliary component. The auxiliary component drives the threaded column 32 to rotate, causing the threaded block 26 to move on the threaded column 32, thereby driving the connecting frame 25 and the sliding column 23 to move. The design of the threaded block 26 makes the power transmission more accurate and stable, and the moving speed and position of the moving frame 6 can be adjusted as needed. The auxiliary component can provide power for the driving component and accurately control the position of the moving frame 6 to ensure that the display screen can be accurately clamped.

[0046] Then, refer to Figure 4 In this embodiment, the lifting component includes a rack 27, a round shaft 28, a first gear 29, a worm gear 30 and a worm 31. The rack 27 is fixedly connected to the lifting rod 7. The round shaft 28 is rotatably connected to the inner wall of the moving frame 6. The first gear 29 is fixedly connected to the round shaft 28, and the first gear 29 meshes with the rack 27. The worm gear 30 is fixedly connected to the round shaft 28. The worm 31 is rotatably connected to the inner wall of the moving frame 6, and the worm 31 meshes with the worm gear 30.

[0047] The rack 27 is fixedly connected to the lifting rod 7. The first gear 29 is fixedly connected to the circular shaft 28 and meshes with the rack 27. When the circular shaft 28 rotates, the first gear 29 rotates accordingly. Through the meshing action with the rack 27, the lifting rod 7 is driven to move up and down. The transmission mode of the first gear 29 and the rack 27 has the characteristics of high precision and strong load-bearing capacity. For example, when adjusting the height of the first clamping block 12 to adapt to display screens of different heights, the cooperation of the first gear 29 and the rack 27 can accurately control the lifting distance of the lifting rod 7, ensuring that the first clamping block 12 can accurately contact the display screen and apply an appropriate clamping force. The circular shaft 28 is rotatably connected to the inner wall of the moving frame 6. On the one hand, it provides support for the installation and rotation of the first gear 29. On the other hand, it is connected to the worm 31 through the transmission of the worm gear 30 and the worm 31. The worm gear 30 is fixedly connected to the circular shaft 28, and the worm 31 is rotatably connected to the inner wall of the moving frame 6 and meshes with the worm gear 30. The transmission of the worm gear 30 and the worm 31 has self-locking property, which can keep stable after the lifting rod 7 is adjusted to the appropriate position and prevent the lifting rod 7 from accidentally descending due to external force. For example, after clamping the display screen, the self-locking function of the worm gear 30 and the worm 31 can ensure that the lifting rod 7 will not loosen, guaranteeing the reliability of clamping. At the same time, the transmission of the worm gear 30 and the worm 31 can also achieve a large transmission ratio, making the lifting operation of the lifting rod 7 more accurate and labor-saving.

[0048] Secondly, referring to Figure 2 , in this embodiment, the auxiliary assembly includes a threaded column 32, a mounting plate 33, a first bevel gear 34, a second motor 35 and a second bevel gear 36. One end of the threaded column 32 is rotatably connected to the bottom of the bearing plate 3, and the threaded column 32 is threadedly connected to the threaded block 26. The mounting plate 33 is fixedly connected between the lifting seats 2 on one side, and the other end of the threaded column 32 is rotatably connected to the mounting plate 33. The first bevel gear 34 is fixedly connected to the threaded column 32. The second motor 35 is installed on the mounting plate 33. The second bevel gear 36 is fixedly connected to the output shaft of the second motor 35, and the first bevel gear 34 meshes with the second bevel gear 36.

[0049] One end of the threaded column 32 is rotatably connected to the bottom of the bearing plate 3, and the other end is rotatably connected to the mounting plate 33. The mounting plate 33 is fixedly connected between the lifting seats 2 on one side, providing stable support for the threaded column 32. The threaded column 32 is threadedly connected to the threaded block 26. When the threaded column 32 rotates, the threaded block 26 moves on the threaded column 32, thereby driving the connection frame 25 and the sliding column 23 to move, realizing the drive of the moving frame 6. The rotation of the threaded column 32 can be controlled by the motor in the auxiliary component. According to different working requirements, the position of the moving frame 6 can be adjusted. For example, when clamping display screens of different sizes, the rotation of the threaded column 32 can be precisely controlled by the second motor 35, so that the moving frame 6 moves to a suitable position. The first bevel gear 34 is fixedly connected to the threaded column 32, and the second bevel gear 36 is fixedly connected to the output shaft of the second motor 35, and the first bevel gear 34 meshes with the second bevel gear 36. The second motor 35 serves as a power source, driving the first bevel gear 34 to rotate through the second bevel gear 36, thereby driving the threaded column 32 to rotate. Bevel gear transmission can change the direction of the power, enabling the second motor 35 to be installed in a more suitable position, improving the space utilization rate of the entire device. For example, in the layout of the device, the motor can be installed on the mounting plate 33 between the lifting seats 2, and the power is transmitted to the threaded column 32 through bevel gear transmission to realize the drive of the moving frame 6. The second motor 35 is installed on the mounting plate 33, providing power for the auxiliary component. It can adjust the rotation speed and direction as needed, precisely controlling the rotation of the threaded column 32, thereby realizing the precise adjustment of the position of the moving frame 6. For example, during the process of clamping the display screen, the second motor 35 can automatically adjust the position of the moving frame 6 according to the size and position information of the display screen, improving the efficiency and accuracy of the clamping operation.

[0050] Finally, refer to Figure 1 In this embodiment, the shock absorption component includes shock absorption columns 37, moving rings 38 and shock absorption springs 39. Each shock absorption column 37 is fixedly connected to the top periphery of the bottom plate 1, and each shock absorption column 37 is slidably connected to the bearing plate 3. Each moving ring 38 is slidably connected to the corresponding shock absorption column 37, and each moving ring 38 is fixedly connected to the bottom of the bearing plate 3. Each shock absorption spring 39 is fixedly connected to the periphery of the bottom plate 1, and the other end of each shock absorption spring 39 is fixedly connected to the corresponding moving ring 38.

[0051] The shock-absorbing columns 37 are fixedly connected to the periphery of the top of the bottom plate 1 and are slidably connected to the bearing plate 3. The moving ring 38 is slidably connected to the shock-absorbing columns 37 and is fixedly connected to the bottom of the bearing plate 3. During the use of the display screen, when it is subjected to external vibration or impact, the bearing plate 3 will have a slight displacement relative to the shock-absorbing columns 37, and the moving ring 38 slides on the shock-absorbing columns 37, playing a role of buffering and guiding. For example, when the device is running or people are walking and generating vibrations, the cooperation of the shock-absorbing columns 37 and the moving ring 38 can reduce the impact of vibrations on the display screen, ensuring the display effect and stability of the display screen. The shock-absorbing springs 39 are fixedly connected to the periphery of the bottom plate 1, and the other ends are fixedly connected to the moving ring 38. The shock-absorbing springs 39 will undergo elastic deformation when subjected to vibrations, absorbing and reducing the vibration energy. For example, when the display screen is suddenly impacted, the shock-absorbing springs 39 can quickly deform, converting the impact energy into the elastic potential energy of the springs, and then gradually releasing it, thereby reducing the impact on the display screen. The elastic coefficient of the shock-absorbing springs 39 can be selected according to actual needs to adapt to different vibration intensities and the weight of the display screen. During long-term use, the shock-absorbing springs 39 need to maintain good elasticity and stability to ensure that the shock-absorbing effect remains consistent.

[0052] Working principle:

[0053] When using the multi-screen connection device for software development, first place the multi-screen connection device for software development at the required position, and then the worker adjusts the overall height of the device to a suitable operating height through the lifting seat 2. Place the display screen on the bearing plate 3 so that the bottom of the display screen is in full contact with the bearing plate 3 and is located between the two vertical plates 4. When it is necessary to clamp the display screen, first the worker places the display screen on the bearing plate 3 so that the bottom of the display screen is in full contact with the bearing plate 3 and is located between the two vertical plates 4. Then start the first motor 21. The output shaft of the first motor 21 rotates, driving the pulley 20 to rotate through the transmission belt 22. Since the pulley 20 is fixedly connected to the second bidirectional lead screw 19, the second bidirectional lead screw 19 rotates accordingly. The second bidirectional lead screw 19 is threadedly connected to the clamping plate 17. When the second bidirectional lead screw 19 rotates, the two clamping plates 17 slide relatively closer in the sliding grooves. The second clamping blocks 18 on the clamping plates 17 move along with the clamping plates 17. The second clamping blocks 18 contact the edges of the display screen and initially clamp the two side edges of the display screen, achieving preliminary fixed positioning.

[0054] Then, the worker starts the second motor 35. The output shaft of the second motor 35 drives the second bevel gear 36 to rotate. The second bevel gear 36 meshes with the first bevel gear 34, and the first bevel gear 34 drives the threaded column 32 to rotate. The threaded column 32 is threadedly connected to the threaded block 26, and the threaded block 26 moves horizontally as the threaded column 32 rotates. The threaded block 26 is fixed to the connecting frame 25, and the movement of the connecting frame 25 drives the first rotating plate 24 to rotate. The first rotating plate 24 is rotatably connected to the sliding column 23. The sliding column 23 is fixedly connected to the first slider 5 and slides in the square groove. The first slider 5 slides in the first sliding groove, driving the moving frame 6 to slide on the top of the bearing plate 3. When the moving frame 6 moves to a suitable position, the first clamping block 12 is aligned with the other two side edges of the display screen. Then, the lifting assembly is operated, the worm 31 is rotated, the worm 31 drives the worm wheel 30 to rotate. The worm wheel 30 is fixedly connected to the round shaft 28, and the round shaft 28 drives the first gear 29 to rotate. The first gear 29 meshes with the rack 27 on the lifting rod 7, causing the lifting rod 7 to move up and down in the moving frame 6 to a suitable height. Then, the first bidirectional lead screw 14 is rotated, the second slider 10 slides in the second sliding groove, driving the sliding plate 11 to move. The first clamping block 12 on the sliding plate 11 moves as the sliding plate 11 moves, and the first clamping block 12 contacts the edge of the display screen and clamps it, further clamping the display screen in cooperation with the first clamping assembly.

[0055] When the display screen vibrates during use, the vibration is transmitted to the bearing plate 3. The bearing plate 3 transmits the force to the moving ring 38. The moving ring 38 slides on the shock-absorbing column 37 and compresses the shock-absorbing spring 39. The shock-absorbing spring 39 absorbs and buffers the vibration energy by its own elastic deformation, reducing the vibration transmitted to the bottom plate 1 and the outside, and providing a stable working environment for the display screen.

[0056] Although the preferred embodiments of the present invention have been described, those skilled in the art can make additional changes and modifications once they learn the basic creative concept. Therefore, the appended claims are intended to be construed to include the preferred embodiments as well as all changes and modifications falling within the scope of the present invention.

[0057] Obviously, those skilled in the art can make various changes and modifications to the present invention without departing from the spirit and scope of the present invention. Thus, if these modifications and variations of the present invention fall within the scope of the claims of the present invention and their equivalent technologies, the present invention is also intended to include these modifications and variations.

Claims

1. A multi-screen connection device for software development, comprising a base plate (1), characterized in that: Also includes: Lifting seats (2), each of the lifting seats (2) is respectively installed around the bottom of the base plate (1); A shock absorbing component, which is installed around the top of the base plate (1) and is used to reduce the vibration generated when the display screen is in use; A bearing plate (3), the bearing plate (3) being fixedly connected to the top of the shock absorbing assembly; Vertical plates (4), each of the vertical plates (4) being fixedly connected to two sides of the bearing plate (3); A first clamping assembly, the first clamping assembly being mounted on the bearing plate (3) and being used for preliminarily clamping the display screen; Second clamping assemblies, each of which is mounted on two sides of the bearing plate (3) and is used to cooperate with the first clamping assemblies to clamp the display screen; The second clamping assembly comprises: A first slide groove, the first slide groove being arranged on a side surface of the carrying plate (3); First sliding blocks (5), each of the first sliding blocks (5) being slidably connected to the inner walls on both sides of the first sliding groove; A movable frame (6), each movable frame (6) is respectively fixedly connected to the top of the corresponding first sliding block (5), and each movable frame (6) is slidably connected to the top of the carrying plate (3); A driving assembly, the driving assembly being mounted on the carrying plate (3) and being used for driving the moving frame (6) to move; A lifting rod (7), wherein the lifting rod (7) is slidably connected to the inner wall of the moving frame (6); A lifting component, the lifting component is installed on the inner wall of the moving frame (6) and is used to drive the lifting rod (7) to move up and down; A first connecting block (8), the first connecting block (8) being fixedly connected to a side surface of the lifting rod (7); a first rotating rod (9), the first rotating rod (9) being rotatably connected to the inner wall of the first connecting block (8); a second slide groove, the second slide groove being arranged on the first rotating rod (9); Second sliding blocks (10), each of the second sliding blocks (10) being slidably connected to the inner walls on both sides of the first sliding groove; Sliding plates (11), each of the sliding plates (11) being fixedly connected to the bottom of the corresponding second sliding block (10); First clamping blocks (12), each of the first clamping blocks (12) being rotatably connected to the corresponding sliding plate (11); First rubber sheets (13), each of the first rubber sheets (13) being fixedly connected to a corresponding first clamping block (12); A first bidirectional lead screw (14), wherein the first bidirectional lead screw (14) is rotatably connected to the inner wall of the second slide groove, and the first bidirectional lead screw (14) is connected to each of the second sliding blocks (10) via threads.

2. A multi-screen connection device for software development according to claim 1, characterized in that: The first clamping assembly comprises: A third slide groove, each of the third slide grooves is respectively arranged on the corresponding vertical plate (4); Third sliding blocks (15), each of the third sliding blocks (15) being slidably connected to the inner walls on both sides of the third sliding groove; Sliding blocks (16), each of the sliding blocks (16) being slidably connected to both sides of the top of the carrying plate (3), and each of the sliding blocks (16) being fixedly connected to the corresponding third sliding block (15); Sliding grooves, each of which is respectively arranged on two sides of the sliding block (16); Clamping plates (17), each of the clamping plates (17) being slidably connected to the inner wall of the corresponding sliding groove; Second clamping blocks (18), each of the second clamping blocks (18) being rotatably connected to the corresponding clamping plate (17); A second bidirectional lead screw (19), each of the second bidirectional lead screws (19) being rotatably connected to the inner wall of the corresponding sliding groove, and each of the second bidirectional lead screws (19) being connected to the corresponding clamping plate (17) via a thread; A pulley (20), each of the pulleys (20) being fixedly connected to one end of the corresponding second bidirectional lead screw (19); A mounting groove, the mounting groove being arranged at the bottom of the sliding block (16); A first motor (21), the first motor (21) being mounted on an inner wall of the mounting groove; A transmission belt (22) is drivingly connected between the pulley (20) and the output shaft of the first motor (21).

3. A multi-screen connection device for software development according to claim 2, characterized in that: The drive assembly comprises: A square groove, the square groove is opened on the side of the carrying plate (3), and the square groove is connected to the first sliding groove; Sliding columns (23), each of the sliding columns (23) is slidably connected to the inner walls of both sides of the square groove, and each of the sliding columns (23) is fixedly connected to the corresponding first sliding block (5); First rotating plates (24), each of the first rotating plates (24) being rotatably connected to the corresponding sliding column (23); A connecting frame (25), the connecting frame (25) being rotatably connected between the first rotating plates (24); A threaded block (26), the threaded block (26) being fixedly connected to a side surface of the connecting frame (25); An auxiliary component is mounted on the carrying plate (3) and is used to drive the connection frame (25) to move.

4. A multi-screen connection device for software development according to claim 3, characterized in that: The lifting assembly comprises: A rack (27), wherein the rack (27) is fixedly connected to the lifting rod (7); A circular shaft (28), the circular shaft (28) being rotatably connected to the inner wall of the moving frame (6); A first gear (29), the first gear (29) is fixedly connected to the circular shaft (28), and the first gear (29) is meshed with the rack (27); A worm gear (30), wherein the worm gear (30) is fixedly connected to the circular shaft (28); A worm (31), the worm (31) is rotatably connected to the inner wall of the moving frame (6), and the worm (31) is meshed with the worm wheel (30).

5. A multi-screen connection device for software development according to claim 4, characterized in that: The auxiliary components include: A threaded column (32), one end of which is rotatably connected to the bottom of the bearing plate (3), and the threaded column (32) is connected to the threaded block (26) via threads; A mounting plate (33), wherein the mounting plate (33) is fixedly connected between the lifting seats (2) on one side, and the other end of the threaded column (32) is rotatably connected to the mounting plate (33); A first bevel gear (34), the first bevel gear (34) being fixedly connected to the threaded column (32); a second motor (35), the second motor (35) being mounted on the mounting plate (33); A second bevel gear (36), wherein the second bevel gear (36) is fixedly connected to the output shaft of the second motor (35), and the first bevel gear (34) is meshed with the second bevel gear (36).

6. A multi-screen connection device for software development according to claim 5, characterized in that: The shock absorbing assembly comprises: Shock-absorbing columns (37), each of the shock-absorbing columns (37) is fixedly connected to the top of the bottom plate (1) and each of the shock-absorbing columns (37) is slidably connected to the bearing plate (3); Moving rings (38), each of the moving rings (38) is slidably connected to the corresponding shock absorbing column (37), and each of the moving rings (38) is fixedly connected to the bottom of the bearing plate (3); Shock-absorbing springs (39), each of the shock-absorbing springs (39) is fixedly connected to the four sides of the base plate (1), and the other end of each of the shock-absorbing springs (39) is fixedly connected to the corresponding moving ring (38).