Cambered glass stable adsorption device
By using a second bidirectional screw and a servo motor-driven rotating mechanism in the curved glass adsorption device, combined with a gas spring support rod, the suction cup spacing can be flexibly adjusted, solving the problem of the adsorption system's adaptability to different curved glass surfaces and improving the stability and efficiency of adsorption.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGXI JIAN ALUMINUM CONSTRUCTION ENGINEERING CO LTD
- Filing Date
- 2025-05-31
- Publication Date
- 2026-04-17
AI Technical Summary
In existing curved glass adsorption devices, the suction cup spacing is difficult to adjust, resulting in a decrease in adsorption effect and adaptability. It is difficult to effectively adsorb curved glass that is too long or too short, and it may also damage the stability of the adsorption system and reduce work efficiency.
The second bidirectional screw drives the sliding block and connecting rod to adjust the spacing. Combined with the servo motor-driven rotation mechanism and the gas spring support rod, the suction cup spacing can be flexibly adjusted and the suction cup can be stably adsorbed.
This system enables flexible adaptation of the adsorption system to curved glass of different lengths, ensuring adsorption stability and operational efficiency while avoiding damage to the adsorption system.
Smart Images

Figure CN224132230U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of curved glass adsorption technology, and in particular to a stable adsorption device for curved glass. Background Technology
[0002] Curved glass, with its curved shape and optical properties, combines functional and aesthetic value in multiple fields, breaking through traditional designs: Curved surfaces / hyperbolic surfaces are created through hot bending, giving architecture a dynamic rhythm; light and shadow interaction design: the curved surface refracts and reflects light, creating dynamic visual layers; optimized spatial performance: the curved surface expands the lighting area and guides natural light to diffuse evenly (e.g., curved ceilings in shopping malls / airports); curved glass separates spaces while maintaining transparency, weakening the sense of boundaries (suitable for office / hotel scenarios); acoustics and insulation: laminated curved glass reduces noise through a multi-layered structure, and the curved surface reduces heat retention, improving insulation (e.g., curtain walls of high-rise buildings); structural and safety enhancement: the curved structure distributes loads, improving wind pressure / earthquake resistance (e.g., the impact resistance of curved glass railings); safety upgrade: tempered curved glass breaks into obtuse-angled particles, and the lamination process enhances impact resistance (suitable for high-rise exterior windows / glass walkways).
[0003] Patent publication number "CN221836252U" discloses "An Adsorption Device for Curved Glass," comprising an adsorption component with multiple connecting rods rotatably connected to it. Each connecting rod has a suction cup fixedly connected to its end, and each connecting rod is also connected to an air tube. Each connecting rod has an air passage communicating with the suction cup and the air tube respectively. The adsorption component includes an adsorption plate and a driving mechanism, with the connecting rods rotatably mounted on the driving mechanism. The driving mechanism includes a gear rotatably mounted within the adsorption plate. A motor is fixedly connected to the adsorption plate, and the motor's output end is fixedly connected to the gear. The gear meshes with two opposing transmission components, which are slidably connected within the adsorption plate. The connecting rods are rotatably mounted on the transmission components. Through the suction cups, the suction cups contact the curved glass, causing the connecting rods to rotate. When the suction cups close to the curved glass, activating the air pump allows the curved glass to be adsorbed.
[0004] The device in the aforementioned patent closes with the curved glass using suction cups, and the curved glass can be adsorbed by starting the air pump. If the spacing between the multiple suction cups is difficult to adjust, the adsorption effect and adaptability may be significantly reduced, making it difficult to effectively adsorb curved glass that is too long or too short. It may also directly damage the stability of the adsorption system and reduce work efficiency. Utility Model Content
[0005] (a) Technical problems to be solved
[0006] To address the problems existing in the prior art, this utility model provides a curved glass stable adsorption device.
[0007] (II) Technical Solution
[0008] To achieve the above objectives, this utility model is implemented through the following technical solution: a curved glass stabilizing adsorption device, including a base plate, a rotating mechanism is provided on one side of the base plate, and adsorption mechanisms are respectively provided on the top of the base plate;
[0009] The adsorption mechanism includes a second servo motor and a second bidirectional screw. One end of the second bidirectional screw is fixedly installed at the output end of the second servo motor. Sliding blocks are screwed onto the outer side of the second bidirectional screw. Connecting rods are hinged to the surface of the sliding blocks. Suction cups are fixedly installed at the top of the connecting rods. Connecting tubes are fixedly installed on one side surface of the connecting rods. One end of the connecting tube passes through one side surface and the top of the connecting rod. The bottom surface and bottom wall of the suction cups pass through one end of the connecting tube.
[0010] By adopting the above technical solution, the rotating second bidirectional screw drives the sliding blocks screwed to the outside to move at different distances. During the movement, the sliding blocks drive the connecting rods hinged to the surface to move synchronously, thereby driving the suction cups to adjust their spacing synchronously. This allows the system to adapt to curved glass of different lengths, ensuring the flexibility and stability of the adsorption system. It solves the problems that if the spacing of multiple suction cups is difficult to adjust, the adsorption effect and adaptability may be significantly reduced, making it difficult to effectively adsorb curved glass that is too long or too short. It may also directly damage the stability of the adsorption system and reduce work efficiency.
[0011] In a preferred embodiment of the curved glass stabilizing adsorption device of this utility model, the rotating mechanism includes a first servo motor and a first bidirectional screw. One end of the first bidirectional screw is fixedly installed at the output end of the first servo motor, and movable blocks are screwed to the outer side of the first bidirectional screw. Movable frames are fixedly installed on the top surface of each movable block.
[0012] By adopting the above technical solution, the first servo motor can drive the first bidirectional screw installed at the output end to rotate, and the rotating first bidirectional screw can drive the movable blocks screwed to the outside to generate displacement, and the displaced movable blocks can drive the movable frames installed on the top surface to adjust the left and right spacing.
[0013] As a preferred embodiment of the curved glass stabilizing adsorption device of this utility model, the bottom plate has a slot that penetrates the bottom surface, and the output end of the first servo motor of the rotating mechanism is rotatably connected to one side surface of the bottom plate and penetrates the inner wall of one end of the slot.
[0014] By adopting the above technical solution, the base plate can be provided with a slot that penetrates the bottom surface, providing a stable opening position.
[0015] In a preferred embodiment of the curved glass stabilizing adsorption device of this utility model, the other end of the first bidirectional screw of the rotating mechanism is rotatably connected to the inner wall of the groove on both sides of the moving block, and the bottom surface of the moving frame is slidably connected to the surface of the base plate.
[0016] By adopting the above technical solution, the base plate can provide a stable sliding effect for the sliding frame that is slidably connected to the surface.
[0017] In a preferred embodiment of the curved glass stabilizing adsorption device of this utility model, the output end of the second servo motor of the adsorption mechanism is rotatably connected to one end surface of the moving frame of the rotating mechanism and penetrates the inner wall of one end, and the other end of the second bidirectional screw is rotatably connected to the inner wall of the other end of the moving frame.
[0018] By adopting the above technical solution, the movable frame that adjusts the left and right spacing can provide a stable rotation position for the second bidirectional screw that is rotatably connected to the inner wall of the other end.
[0019] In a preferred embodiment of the curved glass stabilizing adsorption device of this utility model, the sliding block of the adsorption mechanism is slidably connected to the inner walls of the moving frame of the rotating mechanism on both sides, and a gas spring support rod is fixedly installed on the front and rear surfaces of the connecting rod.
[0020] By adopting the above technical solution, when the adsorption mechanism is subjected to the pressure of the curved glass, the connecting rods will be displaced respectively. At this time, the support end of the gas spring support rod simultaneously abuts against the surface of the sliding block, achieving a dual function through elastic deformation: on the one hand, it provides stable support for the connecting rod to counteract the displacement trend caused by the glass pressure; on the other hand, it effectively absorbs impact energy by utilizing the buffering characteristics of the gas spring, avoiding structural damage caused by rigid contact, thereby ensuring the stability and reliability of the adsorption process.
[0021] (III) Beneficial Effects
[0022] This invention provides a stable adsorption device for curved glass. It has the following beneficial effects:
[0023] 1. By adding an adsorption mechanism, the rotating second bidirectional screw drives the sliding blocks screwed to the outside to move at different distances. During the movement, the sliding blocks drive the connecting rods hinged to the surface to move synchronously, thereby the connecting rods drive the suction cups to adjust their spacing synchronously. This allows the system to adapt to curved glass of different lengths, ensuring the flexibility and stability of the adsorption system. This solves the problem that if the spacing of multiple suction cups is difficult to adjust, the adsorption effect and adaptability may be significantly reduced, making it difficult to effectively adsorb curved glass that is too long or too short. It may also directly damage the stability of the adsorption system and reduce work efficiency.
[0024] 2. By adding a rotating mechanism, the first servo motor can drive the first bidirectional screw installed at the output end to rotate. The rotating first bidirectional screw can drive the movable blocks screwed to the outside to move, and the moved blocks can drive the movable frames installed on the top surface to adjust the left and right spacing. Attached Figure Description
[0025] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments 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.
[0026] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0027] Figure 2 This is a front view structural diagram of the entire utility model.
[0028] Figure 3 This is a schematic diagram of the overall structure of this utility model from the right side.
[0029] Figure 4 This is a schematic diagram of the overall left-side half-section structure of this utility model.
[0030] Figure 5 This is an enlarged structural diagram of point A of the entire utility model.
[0031] In the diagram, 1 is the base plate; 2 is the slot; 3 is the rotating mechanism; 31 is the first bidirectional screw; 32 is the first servo motor; 33 is the moving block; 34 is the moving frame; 4 is the adsorption mechanism; 41 is the second bidirectional screw; 42 is the second servo motor; 43 is the sliding block; 44 is the connecting rod; 45 is the suction cup; 46 is the connecting pipe; and 5 is the gas spring support rod. Detailed Implementation
[0032] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention.
[0033] Example 1
[0034] Reference Figures 1 to 5 This is the first embodiment of the present utility model. This embodiment provides a curved glass stabilizing adsorption device including a base plate 1, a rotating mechanism 3 is provided on one side of the base plate 1, and adsorption mechanisms 4 are respectively provided on the top of the base plate 1.
[0035] The adsorption mechanism 4 includes a second servo motor 42 and a second bidirectional screw 41. One end of the second bidirectional screw 41 is fixedly installed at the output end of the second servo motor 42. Sliding blocks 43 are screwed onto the outer side of the second bidirectional screw 41. Connecting rods 44 are hinged to the surface of the sliding blocks 43. Suction cups 45 are fixedly installed at the top of the connecting rods 44. Connecting tubes 46 are fixedly installed on one side surface of the connecting rods 44. One end of the connecting tubes 46 passes through one side surface and the top of the connecting rods 44. The bottom surface and bottom wall of the suction cups 45 pass through one end of the connecting tubes 46.
[0036] Specifically, the rotating mechanism 3 includes a first servo motor 32 and a first bidirectional screw 31. One end of the first bidirectional screw 31 is fixedly installed at the output end of the first servo motor 32. Moving blocks 33 are screwed to the outer side of the first bidirectional screw 31. Moving frames 34 are fixedly installed on the top surface of the moving blocks 33. A slot 2 penetrating the bottom surface is opened on the surface of the base plate 1. The output end of the first servo motor 32 of the rotating mechanism 3 is rotatably connected to one side surface of the base plate 1 and penetrates the inner wall of one end of the slot 2.
[0037] Furthermore, the adsorption mechanism 4, through the rotation of the second servo motor 42, can drive the second bidirectional screws 41 installed at the output end to rotate. The rotating second bidirectional screws 41 drive the sliding blocks 43 screwed to the outside to move at a distance. During the displacement, the sliding blocks 43 drive the connecting rods 44 hinged to the surface to move synchronously. Thus, the connecting rods 44 drive the suction cups 45 to adjust the distance synchronously, thereby adapting to curved glass of different lengths and ensuring the flexibility and stability of the adsorption system. After placement, the external air pump connection end is connected to the other end interface of the connecting pipe 46. Starting the air pump can effectively enable the suction cups 45 to adsorb the curved glass.
[0038] The rotating mechanism 3 can drive the first bidirectional screw 31 installed at the output end to rotate through the first servo motor 32. The rotating first bidirectional screw 31 can drive the movable blocks 33 screwed on the outside to move, and the moved blocks 33 can drive the movable frames 34 installed on the top surface to adjust the left and right spacing. The output end of the first servo motor 32 is rotatably connected to one side surface of the base plate 1 and passes through the inner wall of one end of the slot 2.
[0039] Example 2
[0040] Reference Figures 1 to 5This is the first embodiment of the present invention. This embodiment is based on the previous embodiment. The other end of the first bidirectional screw 31 of the rotating mechanism 3 is rotatably connected to the inner wall of the moving block 33 at the other end of the slot 2 and is slidably connected to the inner walls of the two sides of the slot 2 respectively. The bottom surface of the moving frame 34 is slidably connected to the surface of the base plate 1 respectively. The output end of the second servo motor 42 of the adsorption mechanism 4 is rotatably connected to one end surface of the moving frame 34 of the rotating mechanism 3 and passes through one end inner wall. The other end of the second bidirectional screw 41 is rotatably connected to the inner wall of the other end of the moving frame 34 respectively.
[0041] Specifically, the two sides of the sliding block 43 of the adsorption mechanism 4 are slidably connected to the inner walls of the two sides of the moving frame 34 of the rotating mechanism 3, and the front and rear surfaces of the connecting rod 44 are respectively fixedly installed with gas spring support rods 5.
[0042] Furthermore, the base plate 1 can provide a stable sliding effect for the sliding frame 34 that is slidably connected to the surface, and the sliding frame 34, which is adjusted for left and right spacing, can provide a stable rotation position for the second bidirectional screw 41 that is rotatably connected to the inner wall of the other end.
[0043] When the adsorption mechanism 4 is subjected to the pressure of the curved glass, the connecting rod 44 will be displaced. At this time, the support end of the gas spring support rod 5 simultaneously abuts against the surface of the sliding block 43, achieving a dual function through elastic deformation. On the one hand, it provides stable support for the connecting rod 44 to counteract the displacement trend caused by the glass pressure; on the other hand, it effectively absorbs impact energy by utilizing the buffering characteristics of the gas spring, avoiding structural damage caused by rigid contact, thereby ensuring the stability and reliability of the adsorption process.
[0044] Working principle: The rotating mechanism 3 drives the first bidirectional screw 31 installed at the output end to rotate via the first servo motor 32. The rotating first bidirectional screw 31 drives the movable blocks 33 screwed to the outside to move, and the moved blocks 33 can drive the movable frames 34 installed on the top surface to adjust the left and right distance. The output end of the first servo motor 32 is rotatably connected to one side surface of the base plate 1 and passes through the inner wall of one end of the slot 2. The base plate 1 can provide a stable sliding effect for the movable frames 34 slidably connected to the surface. The movable frames 34 that adjust the left and right distance can provide a stable rotation position for the second bidirectional screw 41 rotatably connected to the inner wall of the other end.
[0045] The adsorption mechanism 4, through the rotation of the second servo motor 42, can drive the second bidirectional screw 41 installed at the output end to rotate. The rotating second bidirectional screw 41 drives the sliding block 43 screwed to the outside to move at a distance. During the displacement, the sliding block 43 drives the connecting rod 44 hinged to the surface to move synchronously. Thus, the connecting rod 44 drives the suction cup 45 to adjust the distance synchronously, thereby adapting to curved glass of different lengths and ensuring the flexibility and stability of the adsorption system. After placement, the external air pump connection end is connected to the other end interface of the connecting pipe 46. Starting the air pump can effectively enable the suction cup 45 to adsorb the curved glass.
[0046] When the adsorption mechanism 4 is subjected to the pressure of the curved glass, the connecting rod 44 will be displaced. At this time, the support end of the gas spring support rod 5 simultaneously abuts against the surface of the sliding block 43, achieving a dual function through elastic deformation. On the one hand, it provides stable support for the connecting rod 44 to counteract the displacement trend caused by the glass pressure; on the other hand, it effectively absorbs impact energy by utilizing the buffering characteristics of the gas spring, avoiding structural damage caused by rigid contact, thereby ensuring the stability and reliability of the adsorption process.
[0047] It should be noted that in this paper, relational terms such as first and second are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations.
Claims
1. A cambered glass stable adsorption device, comprising a bottom plate (1), characterized in that: A rotating mechanism (3) is provided on one side of the base plate (1), and an adsorption mechanism (4) is provided on the top of the base plate (1); The adsorption mechanism (4) includes a second servo motor (42) and a second bidirectional screw (41). One end of the second bidirectional screw (41) is fixedly installed at the output end of the second servo motor (42). Sliding blocks (43) are screwed onto the outer side of the second bidirectional screw (41). A connecting rod (44) is hinged to the surface of the sliding block (43). A suction cup (45) is fixedly installed at the top of the connecting rod (44). A connecting tube (46) is fixedly installed on one side surface of the connecting rod (44). One end of the connecting tube (46) passes through one side surface and the top of the connecting rod (44). The bottom surface and bottom wall of the suction cup (45) pass through one end of the connecting tube (46).
2. The stable adsorption device of the curved glass according to claim 1, wherein: The rotating mechanism (3) includes a first servo motor (32) and a first bidirectional screw (31). One end of the first bidirectional screw (31) is fixedly installed at the output end of the first servo motor (32). Moving blocks (33) are screwed to the outside of the first bidirectional screw (31). Moving frames (34) are fixedly installed on the top surface of the moving blocks (33).
3. The stable adsorption device of the curved glass according to claim 2, characterized in that: The base plate (1) has a slot (2) that penetrates the bottom surface. The output end of the first servo motor (32) of the rotating mechanism (3) is rotatably connected to one side surface of the base plate (1) and penetrates the inner wall of one end of the slot (2).
4. The stable adsorption device of the curved glass according to claim 2, characterized in that: The other end of the first bidirectional screw (31) of the rotating mechanism (3) is rotatably connected to the inner wall of the groove (2) on the other end. The two sides of the moving block (33) are slidably connected to the inner walls of the groove (2) on both sides respectively. The bottom surface of the moving frame (34) is slidably connected to the surface of the base plate (1).
5. The stable adsorption device of the curved glass according to claim 2, characterized in that: The output end of the second servo motor (42) of the adsorption mechanism (4) is rotatably connected to one end surface of the moving frame (34) of the rotating mechanism (3) and passes through the inner wall of one end. The other end of the second bidirectional screw (41) is rotatably connected to the inner wall of the other end of the moving frame (34).
6. The stable adsorption device of the glass with the cambered surface according to claim 2, characterized in that: The sliding block (43) of the adsorption mechanism (4) is slidably connected to the inner walls of the moving frame (34) of the rotating mechanism (3) on both sides. Gas spring support rods (5) are fixedly installed on the front and rear surfaces of the connecting rod (44).
Citation Information
Patent Citations
Cambered glass adsorption device
CN221836252U