Color glass buckle type rapid splicing structure
The snap-fit quick-assembly structure of colored glass uses quick-release modules and auxiliary connection modules to achieve quick assembly and unlocking by rotating a knob. This solves the problems of time-consuming, labor-intensive, and unstable traditional bolt and nut connections, improving efficiency and enhancing stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- TIANHE COLLEGE GUANGDONG POLYTECHNIC NORMAL UNIV
- Filing Date
- 2025-06-06
- Publication Date
- 2026-04-28
AI Technical Summary
Traditional bolt and nut connections are time-consuming, labor-intensive, and complex to install and remove. They are especially inefficient in confined spaces or in scenarios requiring frequent installation and removal, and are prone to connection failure due to precision deviations.
It adopts a color glass snap-on quick splicing structure, including quick-release modules and auxiliary connection modules. Utilizing the design of lead screws, snap-on mechanisms and transmission mechanisms, it can quickly splice and unlock by rotating the knob, and provides multiple locking and support through the cooperation of locking screws and locking plates.
It enables a fast and convenient splicing and separation process, improves work efficiency, and enhances the overall stability and safety of the spliced parts, solving the problems of low efficiency and stability of traditional connection methods.
Smart Images

Figure CN224174377U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of colored glass, and in particular to a snap-fit quick splicing structure for colored glass. Background Technology
[0002] In many fields such as architectural decoration, advertising display, and industrial equipment installation, it is often necessary to assemble different components to meet diverse usage needs. Taking the splicing of glass decorative components as an example, in order to achieve a combination of aesthetics and practicality, it is necessary to quickly and stably splice multiple glass frame structures. At present, the common splicing structures mainly include the traditional bolt and nut connection structure.
[0003] Traditional bolt and nut connections require individual operation of each bolt and nut, which is not only time-consuming and laborious to disassemble and assemble, and complex to operate, but also extremely inefficient in confined spaces or frequent disassembly and assembly scenarios. Furthermore, the connection is prone to failure due to precision deviations. The disassembly and assembly process involves multiple steps and the use of tools. Each bolt and nut requires a certain amount of time and operating space to tighten. Moreover, it is necessary to ensure that the tightening force of each bolt is uniform during the tightening process, otherwise it will lead to uneven stress on the components and affect the stability of the connection. Utility Model Content
[0004] To overcome the problems of traditional bolt and nut connection methods being time-consuming, labor-intensive, and complex to disassemble and assemble, especially in confined spaces or when disassembling and assembling frequently, which are extremely inefficient.
[0005] The technical solution of this utility model is as follows: a quick-assembly structure for colored glass snap-fit, including an outer frame one and an outer frame two, as well as a quick-release module and an auxiliary connection module; the quick-release module includes a first connection unit disposed on the outer frame one and a second connection unit disposed on the outer frame two; the first connection unit includes a fixing box, the inner wall of the fixing box is provided with a bearing seat, a lead screw is rotatably connected inside the bearing seat, and the outer wall of the lead screw is threadedly connected with a snap-fit mechanism adapted to the second connection unit, the snap-fit mechanism is connected to the inner wall of the fixing box through a guide mechanism, and the fixing box is also provided with an adjusting shaft, the upper end of the adjusting shaft being provided with There is a first knob, and the adjusting shaft is connected to the lead screw through a transmission mechanism. The second connecting unit includes a connecting shell set on the second outer frame. The connecting shell has a sliding groove adapted to the adjusting shaft. The connecting shell is also equipped with a locking screw. One end of the locking screw is equipped with the second knob, and the other end of the locking screw is equipped with a locking plate adapted to the buckle mechanism. The auxiliary connecting module includes grooves set on the first and second outer frames. The groove on the first outer frame is equipped with a rotating shaft, and the rotating shaft is equipped with a rotating plate. The groove on the second outer frame is equipped with a connecting seat, and the rotating plate is equipped with a connecting part adapted to the connecting seat.
[0006] Preferably, the latching mechanism includes a movable seat mounted on a lead screw, a receiving block adapted to the guide structure is provided on the side end of the movable seat, a fixing rod is provided on the surface of the movable seat, and a locking head is provided at the end of the fixing rod.
[0007] Preferably, the guiding mechanism includes a slide rail disposed on the inner wall of the fixed box, a slider slidably connected on the slide rail, and the end face of the slider being connected to the surface of the receiving block.
[0008] Preferably, the transmission mechanism includes a driving bevel gear mounted on an adjusting shaft, a driven bevel gear mounted on the outer wall of the lead screw, and the driving bevel gear and the driven bevel gear meshing with each other.
[0009] Preferably, the connecting part includes a reinforcing screw mounted on the rotating plate, with a No. 3 knob at the end of the reinforcing screw, and the reinforcing screw is threadedly connected to the connecting seat.
[0010] Preferably, the locking plate has a locking groove, and an elastic pad is provided in the locking groove.
[0011] As a preferred embodiment, the surfaces of knobs No. 1, No. 2, and No. 3 are all covered with rubber skin, and the surface of the rubber skin is provided with anti-slip texture.
[0012] The beneficial effects of this utility model are:
[0013] The quick-release module and auxiliary connection module enable a fast and convenient assembly and disassembly process. The design of the lead screw, buckle mechanism, and transmission mechanism in the quick-release module allows operators to complete assembly and disassembly simply by rotating a knob, improving work efficiency. At the same time, the cooperation between the locking screw and the locking plate, as well as the design of the rotating plate and connecting seat in the auxiliary connection module, provide multiple locking and support for the assembly structure, enhancing the overall stability and safety of the assembled structure. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of one embodiment of the color glass snap-on quick splicing structure of this utility model;
[0015] Figure 2 for Figure 1 Schematic diagram of the structure of the No. 1 connecting unit;
[0016] Figure 3 for Figure 2 Schematic diagram of the guide mechanism;
[0017] Figure 4 for Figure 1 Schematic diagram of the structure of the No. 2 connecting unit;
[0018] Figure 5 for Figure 1 A schematic diagram of the auxiliary connection module.
[0019] Explanation of reference numerals in the attached drawings: 1. Outer frame one; 2. Outer frame two; 3. Fixing box; 4. Bearing seat; 5. Lead screw; 6. Adjusting shaft; 7. No. 1 knob; 8. Connecting shell; 9. Slide groove; 10. Locking screw; 11. No. 2 knob; 13. Groove; 14. Rotating shaft; 15. Rotating plate; 16. Connecting seat; 17. Moving seat; 18. Receiving block; 19. Fixing rod; 20. Locking head; 21. Slide rail; 22. Slider; 23. Driving bevel gear; 24. Driven bevel gear; 25. Reinforcing screw; 26. No. 3 knob; 27. Locking groove; 28. Locking plate. Detailed Implementation
[0020] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0021] Please see Figure 1 - Figure 5This utility model provides an embodiment of a quick-connect structure for colored glass snap-fit, including an outer frame 1 and an outer frame 2, as well as a quick-release module and an auxiliary connection module. The quick-release module includes a first connection unit on the outer frame 1 and a second connection unit on the outer frame 2. The first connection unit includes a fixing box 3, with a bearing seat 4 on the inner wall of the fixing box 3. A lead screw 5 is rotatably connected inside the bearing seat 4, and a snap-fit mechanism adapted to the second connection unit is threaded onto the outer wall of the lead screw 5. The snap-fit mechanism is connected to the inner wall of the fixing box 3 through a guide mechanism. The fixing box 3 also has an adjusting shaft 6, with a first knob 7 at the upper end of the adjusting shaft 6. The adjusting shaft 6 is connected to the lead screw 5 through a transmission mechanism. The second connection unit includes a first connection unit on the outer frame 1 and a second connection unit on the outer frame 2. The connecting shell 8 on the outer frame 2 has a groove 9 adapted to the adjusting shaft 6. The connecting shell 8 also has a locking screw 10, with a second knob 11 at one end and a locking plate 28 adapted to the latching mechanism at the other end. The auxiliary connecting module includes grooves 13 on the outer frames 1 and 2. A rotating shaft 14 is located in the groove 13 on the outer frame 1, and a rotating plate 15 is mounted on the rotating shaft 14. A connecting seat 16 is located in the groove 13 on the outer frame 2, and a connecting part adapted to the connecting seat 16 is mounted on the rotating plate 15. The fixing box 3 serves as the main support structure for the first connecting unit. The bearing seat 4 supports the lead screw 5 and allows it to rotate freely within it. When the lead screw 5 rotates, due to the meshing of the threads, the locking mechanism moves along the axis of the lead screw 5, realizing the extension and retraction of the locking mechanism, thereby completing the connection and separation with the second connecting unit. The locking mechanism is used to cooperate with the locking plate 28 of the second connecting unit to realize the locking and unlocking of the outer frame 1 and the outer frame 2. The guide mechanism plays a role in guiding the movement direction of the locking mechanism, ensuring that the locking mechanism can only move in a straight line along the axis of the lead screw 5 when the lead screw 5 rotates, preventing the locking mechanism from deflecting or shaking. When the first knob 7 is turned, the adjusting shaft 6 rotates accordingly, which in turn drives the lead screw 5 to rotate through the transmission mechanism, providing an operating interface for the operator, allowing the operator to easily control the movement of the locking mechanism. The connecting shell 8 provides an installation platform for other components of the second connecting unit. The slide groove 9 on the connecting shell 8 is adapted to the adjusting shaft 6, allowing the adjusting shaft 6 to move within the slide groove 9. When the second knob 11 is rotated, the locking screw 10 can move along its own axis, causing the locking plate 28 to move closer to or away from the latching mechanism. When the locking plate 28 cooperates with the latching mechanism, a reliable locking state is formed, ensuring the overall stability of the outer frame 1 and the outer frame 2 after splicing. During the splicing process, the rotating plate 15 can be rotated to the position corresponding to the connecting seat 16 on the outer frame 2. Through the cooperation between the connecting part on the rotating plate 15 and the connecting seat 16, additional support and connection points are provided for the splicing of the outer frame 1 and the outer frame 2, enhancing the stability of the splicing.
[0022] Please see Figure 2 - Figure 3 In this embodiment, the latching mechanism includes a movable seat 17 mounted on the lead screw 5, a receiving block 18 adapted to the guide structure is provided on the side end of the movable seat 17, a fixing rod 19 is provided on the surface of the movable seat 17, and a locking head 20 is provided at the end of the fixing rod 19. The guide mechanism includes a slide rail 21 mounted on the inner wall of the fixed box 3, a slider 22 is slidably connected on the slide rail 21, and the end face of the slider 22 is connected to the surface of the receiving block 18. The transmission mechanism includes a drive bevel gear 23 mounted on the adjusting shaft 6, and the outer wall of the lead screw 5... A driven bevel gear 24 is provided, and a driving bevel gear 23 meshes with the driven bevel gear 24. Since the outer wall of the lead screw 5 has threads, the moving seat 17 is threadedly connected to the lead screw 5 through a matching threaded structure. When the lead screw 5 rotates under the drive of the transmission mechanism, according to the principle of threaded transmission, the moving seat 17 will move linearly along the axis of the lead screw 5. A receiving block 18 is provided on the side end of the moving seat 17 for adaptation to the guide mechanism. A fixing rod 19 is provided on the surface of the moving seat 17, serving as a connecting component to lock the head 20. Connected to the movable seat 17, the locking head 20 is located at the end of the fixed rod 19 and is used to cooperate with the locking plate 28 of the second connecting unit. When the movable seat 17 moves to the appropriate position under the drive of the lead screw 5, the locking head 20 can accurately enter the locking plate 28. Through the tight engagement with the locking plate 28, the outer frame 1 and the outer frame 2 are locked, preventing relative displacement between the two after splicing and ensuring the stability of the splicing structure. The slide rail 21 provides a movement track for the slider 22. The existence of the slide rail 21 restricts the movement direction of the slider 22, so that the slider 22 can only move in a straight line along the extension direction of the slide rail 21, thereby guiding the movement direction of the movable seat 17 and ensuring the straightness of the buckling mechanism during the movement. When the driving bevel gear 23 rotates, it drives the driven bevel gear 24 to rotate through the meshing action between the gears, thereby causing the lead screw 5 to rotate. The driven bevel gear 24 converts the power transmitted from the driving bevel gear 23 into the rotational power of the lead screw 5. The power transmission between the adjusting shaft 6 and the lead screw 5 is realized through gear transmission.
[0023] Please see Figure 2 , Figure 4 and Figure 5In this embodiment, the connecting part includes a reinforcing screw 25 mounted on the rotating plate 15. A third knob 26 is located at the end of the reinforcing screw 25. The reinforcing screw 25 is threadedly connected to the connecting seat 16. A locking groove 27 is provided in the locking plate 28, and an elastic pad is provided within the locking groove 27. Rubber sheets are provided on the surfaces of the first knob 7, the second knob 11, and the third knob 26, and the surface of the rubber sheets has anti-slip textures. When it is necessary to enhance the stability of the splicing between the outer frame 1 and the outer frame 2, the operator rotates the third knob 26, causing the reinforcing screw 25 to rotate. Since the reinforcing screw 25 is threadedly connected to the connecting seat 16... According to the principle of threaded transmission, the reinforcing screw 25 will gradually screw into the connecting seat 16, making the connection between the rotating plate 15 and the connecting seat 16 tighter, further increasing the connection force between the outer frame 1 and the outer frame 2. The locking plate 28 has a locking groove 27. The function of the locking groove 27 is to provide a space for the locking head 20. When the locking head 20 enters the locking groove 27, the two cooperate to lock the outer frame 1 and the outer frame 2. The elastic pad set in the locking groove 27 has elastic deformation capability. When the locking head 20 enters the locking groove 27, the elastic pad will be elastically compressed, generating a certain elastic force. This elasticity allows for a tighter fit between the locking head 20 and the locking plate 28, reducing the gap between them. The surfaces of knobs 7, 11, and 26 are all covered with rubber sheets with anti-slip textures. The rubber sheets have good softness and elasticity, which increases the friction between the operator's hand and the knob, making it easier and less strenuous for the operator to turn the knobs, and allowing for a better sense of feedback from the knob rotation. The anti-slip textures further increase the coefficient of friction of the rubber sheet surface, preventing the operator from slipping when turning the knobs.
[0024] Working principle: First, the operator rotates the first knob 7 to drive the adjustment shaft 6 to rotate. The driving bevel gear 23 on the adjustment shaft 6 meshes with the driven bevel gear 24 on the lead screw 5, thereby transmitting the rotational power to the lead screw 5, allowing the lead screw 5 to rotate freely in the bearing seat 4. Since the outer wall of the lead screw 5 has threads, the moving seat 17, which is threaded to the lead screw 5, will move linearly along the axis of the lead screw 5. The receiving block 18 on the side of the moving seat 17 is connected to the slider 22 of the guide mechanism. The slider 22 slides on the slide rail 21 to ensure that the moving seat 17 moves linearly without deflection or shaking.
[0025] As the movable seat 17 moves, the locking head 20 at the end of the fixed rod 19 gradually approaches the locking plate 28 of the second connecting unit. At this time, the operator rotates the second knob 11 to move the locking screw 10 along its own axis, causing the locking plate 28 to approach the locking head 20. When the locking head 20 is engaged in the locking groove 27 of the locking plate 28, it fits tightly with the elastic pad to lock the outer frame 1 and the outer frame 2.
[0026] Meanwhile, during the assembly process, the operator rotates knob 26 to drive the reinforcing screw 25 into the connecting seat 16. Through the threaded connection between the reinforcing screw 25 and the connecting seat 16, the connection stability between outer frame 1 and outer frame 2 is further enhanced.
[0027] Through the above steps, the quick-release module and auxiliary connection module enable convenient splicing and separation. The quick-release module allows operators to complete the splicing and unlocking by simply rotating the knob, improving efficiency. The auxiliary connection module provides additional locking support for the structure, enhancing stability and safety. This solves the problems of time-consuming and laborious disassembly and assembly, complex operation, and extremely low efficiency, especially in confined spaces or when frequent disassembly and assembly, that are common with traditional bolt and nut connection methods.
Claims
1. A snap-fit quick-assembly structure for colored glass, comprising an outer frame one (1) and an outer frame two (2); characterized in that: It also includes a quick-release module and an auxiliary connection module; the quick-release module includes a first connection unit set on the outer frame one (1) and a second connection unit set on the outer frame two (2); the first connection unit includes a fixed box (3), the inner wall of the fixed box (3) is provided with a bearing seat (4), a lead screw (5) is rotatably connected inside the bearing seat (4), the outer wall of the lead screw (5) is threadedly connected with a buckling mechanism adapted to the second connection unit, the buckling mechanism is connected to the inner wall of the fixed box (3) through a guide mechanism, the fixed box (3) is also provided with an adjustment shaft (6), the upper end of the adjustment shaft (6) is provided with a first knob (7), the adjustment shaft (6) is connected to the lead screw (5) through a transmission mechanism, the second connection unit includes a first connection unit set on the outer frame two (2) The connecting shell (8) is provided with a sliding groove (9) adapted to the adjusting shaft (6). The connecting shell (8) is also provided with a locking screw (10). One end of the locking screw (10) is provided with a second knob (11), and the other end of the locking screw (10) is provided with a locking plate (28) adapted to the buckle mechanism. The auxiliary connecting module includes a groove (13) opened on the outer frame one (1) and the outer frame two (2). A rotating shaft (14) is provided in the groove (13) on the outer frame one (1). A rotating plate (15) is provided on the rotating shaft (14). A connecting seat (16) is provided in the groove (13) on the outer frame two (2). A connecting part adapted to the connecting seat (16) is provided on the rotating plate (15).
2. The color glass snap-on quick splicing structure according to claim 1, characterized in that: The latching mechanism includes a movable seat (17) mounted on a lead screw (5), a receiving block (18) adapted to the guide structure is provided on the side end of the movable seat (17), a fixing rod (19) is provided on the surface of the movable seat (17), and a locking head (20) is provided at the end of the fixing rod (19).
3. The color glass snap-on quick splicing structure according to claim 2, characterized in that: The guiding mechanism includes a slide rail (21) set on the inner wall of the fixed box (3), a slider (22) slidably connected on the slide rail (21), and the end face of the slider (22) is connected to the surface of the receiving block (18).
4. The color glass snap-on quick splicing structure according to claim 3, characterized in that: The transmission mechanism includes a driving bevel gear (23) mounted on the adjusting shaft (6), and a driven bevel gear (24) mounted on the outer wall of the lead screw (5). The driving bevel gear (23) and the driven bevel gear (24) are meshed together.
5. The color glass snap-on quick splicing structure according to claim 4, characterized in that: The connecting part includes a reinforcing screw (25) set on the rotating plate (15), and a No. 3 knob (26) is provided at the end of the reinforcing screw (25). The reinforcing screw (25) is threadedly connected to the connecting seat (16).
6. The color glass snap-on quick splicing structure according to claim 5, characterized in that: The locking plate (28) has a locking groove (27) and an elastic pad is provided in the locking groove (27).
7. The color glass snap-on quick splicing structure according to claim 6, characterized in that: The surfaces of knobs 1 (7), 2 (11) and 3 (26) are all covered with rubber skin, and the surface of the rubber skin is covered with anti-slip texture.