Glass curtain wall splicing device

By designing a glass curtain wall splicing device that includes a moving seat, a rotating seat, a lifting seat, and clamping components, the problem of insufficient accuracy and safety of traditional splicing devices in high-altitude environments is solved, and efficient and precise glass panel installation is achieved.

CN223991594UActive Publication Date: 2026-03-13GUANGZHOU ANDSUN CURTAIN WALL CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-27
Publication Date
2026-03-13

AI Technical Summary

Technical Problem

Traditional glass curtain wall splicing operations are difficult to control with millimeter-level precision in high-altitude environments, lack the ability to coordinate and adjust rotation, lifting, and clamping spacing, and have weak safety mechanisms, posing a risk of panel falling.

Method used

The device employs a moving base, a rotating base, a lifting base, and a clamping assembly. Through the cooperation of the rotating assembly, the hydraulic telescopic cylinder, and the clamping assembly, it enables horizontal movement, large-angle rotation, vertical lifting, and spacing adjustment of the glass panels. It is equipped with a negative pressure suction cup and a positioning system to improve accuracy and safety.

Benefits of technology

It enables high-precision splicing of glass panels, improves construction efficiency, reduces labor intensity, and enhances safety in complex environments.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a glass curtain wall splicing device, which belongs to the field of curtain wall mounting equipment and comprises a moving seat, a rotating seat, a lifting seat and a clamping component, the rotating seat is connected onto the moving seat through a rotating component, the lifting seat is connected onto the rotating seat through a hydraulic telescopic cylinder, and the clamping component is mounted on the lifting seat. A forward nut seat and a reverse nut seat are arranged on the adjusting screw rod, a clamping rod is hinged to the forward nut seat, an adjusting rod is hinged to the reverse nut seat, the other end of the adjusting rod is hinged to the middle of the clamping rod, and a negative pressure suction cup is installed at the tail end of the clamping rod; according to the utility model, horizontal movement, large-angle rotation, vertical lifting and spacing adjustment of the glass plate are realized, and the requirements of complex mounting angles and positions are met; the glass plate splicing device is suitable for glass plates of different sizes, manual adjustment errors are avoided, splicing precision and installation efficiency are improved, and labor intensity is reduced.
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Description

Technical fields:

[0001] This utility model relates to the field of curtain wall installation equipment, specifically to a glass curtain wall splicing device. Background technology:

[0002] In the field of architectural decoration, glass curtain walls have become the mainstream facade form for modern high-rise buildings due to their advantages such as transparency, aesthetics, and high spatial integration. With the development of building intelligence and personalization, curtain wall structures are gradually evolving towards large-size panel splicing, complex curved surface shapes, and high-precision installation standards, which places higher demands on the multi-dimensional adjustment capabilities, automated control precision, and adaptability of splicing devices.

[0003] Traditional glass curtain wall splicing operations mainly rely on manual labor combined with simple mechanical tools, which presents significant technical bottlenecks: First, positioning and adjustment depend on manual visual inspection and calibration, making it difficult to achieve millimeter-level precision control in complex high-altitude environments, easily leading to quality problems such as uneven panel gaps and excessive flatness deviations; Second, the equipment has limited functionality, lacking the ability to coordinate the adjustment of rotation, lifting, and clamping spacing, resulting in insufficient adaptability to irregularly shaped curtain walls or variable-angle splicing scenarios, often requiring frequent disassembly and reassembly, leading to low construction efficiency; Third, the safety mechanism is weak, with traditional clamping devices mostly using single mechanical clamps or simple vacuum adsorption, lacking dynamic load balancing and position locking functions, posing a risk of panel falling in strong winds or vibration environments. Therefore, this utility model proposes a glass curtain wall splicing device to address the shortcomings and deficiencies of existing technologies. Utility model content:

[0004] The purpose of this utility model is to overcome the shortcomings of the existing technology and provide a glass curtain wall splicing device.

[0005] The technical solution adopted in this utility model is as follows:

[0006] A glass curtain wall splicing device includes a movable base, a rotating base, a lifting base, and a clamping assembly. The rotating base is connected to the movable base via a rotating assembly, and the lifting base is connected to the rotating base via a hydraulic telescopic cylinder. The clamping assembly is installed on the lifting base and consists of a clamping motor, a clamping reduction motor, an adjusting screw, a forward nut seat, a reverse nut seat, a clamping rod, a negative pressure suction cup, and an adjusting rod. The lifting base has an installation cavity, in which the clamping motor is installed. The clamping motor is connected to the clamping reduction motor, and the output end of the clamping reduction motor is fixedly connected to the adjusting screw. The adjusting screw has a forward nut seat and a reverse nut seat. The clamping rod is hinged to the forward nut seat, and the adjusting rod is hinged to the reverse nut seat. The other end of the adjusting rod is hinged to the middle of the clamping rod, and the negative pressure suction cup is installed at the end of the clamping rod.

[0007] Preferably, the rotating assembly comprises a bearing, a driven gear, a rotating motor, a rotating reduction motor, a speed-changing shaft, and a driving gear. The top of the movable seat is fixedly connected to the bottom of the rotating seat via the bearing. The driven gear is mounted on the rotating seat. The movable seat has a second mounting cavity. The rotating motor is mounted in the second mounting cavity. The rotating reduction motor is connected to the rotating motor. The output end of the rotating reduction motor is fixedly connected to the speed-changing shaft. The end of the speed-changing shaft is fixed with the driving gear that meshes with the driven gear.

[0008] Preferably, a positioning telescopic cylinder is installed inside the second mounting cavity, and a positioning block is provided at the output end of the positioning telescopic cylinder.

[0009] Preferably, the lifting platform is equipped with a counterweight.

[0010] Preferably, the top of the lifting seat is equipped with an infrared positioning probe.

[0011] The beneficial effects of this utility model are: by cooperating with the rotating component, the hydraulic telescopic cylinder and the clamping component, this utility model can realize the horizontal movement, large-angle rotation, vertical lifting and lowering and spacing adjustment of the glass plate, and adapt to complex installation angle and position requirements; this utility model is compatible with glass plates of different sizes, avoids manual adjustment errors, improves splicing accuracy and installation efficiency, and reduces labor intensity. Attached image description:

[0012] Figure 1 : A schematic diagram of the structure of this utility model.

[0013] Figure 2 : A schematic diagram of the structure of the clamping assembly of this utility model.

[0014] Figure 3 : A schematic diagram of the structure of the rotating assembly of this utility model. Detailed implementation method:

[0015] The accompanying drawings are for illustrative purposes only and should not be construed as limiting the scope of this patent. To better illustrate this embodiment, some components in the drawings may be omitted, enlarged, or reduced, and do not represent the actual dimensions of the product. It is understandable to those skilled in the art that some well-known structures and their descriptions may be omitted in the drawings.

[0016] like Figure 1-3As shown, a glass curtain wall splicing device includes a movable base 001, a rotating base 002, a lifting base 003, and a clamping assembly 004. The rotating base 002 is connected to the movable base 001 via a rotating assembly 005. The lifting base 003 is connected to the rotating base 002 via a hydraulic telescopic cylinder 006. The clamping assembly 004 is installed on the lifting base 003 and consists of a clamping motor 410, a clamping reduction motor 420, an adjusting screw 430, a forward nut seat 440, a reverse nut seat 450, a clamping rod 460, a negative pressure suction cup 470, and an adjusting rod 480. The lifting base 003 has an installation cavity 301, in which the clamping motor 410 is installed. The clamping motor 410 is connected to the clamping reduction motor 420. The output end of the high-speed motor 420 is fixedly connected to the adjusting screw 430. The adjusting screw 430 is provided with a forward nut seat 440 and a reverse nut seat 450. A clamping rod 460 is hinged to the forward nut seat 440, and an adjusting rod 480 is hinged to the reverse nut seat 450. The other end of the adjusting rod 480 is hinged to the middle of the clamping rod 460. A negative pressure suction cup 470 is installed at the end of the clamping rod 460. The clamping motor 410 drives the adjusting screw 430 through the reduction motor 420, so that the forward nut seat 440 and the reverse nut seat 450 move relative to each other or in opposite directions along the screw. The adjusting rod 480 is hinged to the middle of the reverse nut seat and the clamping rod 460, forming a linkage mechanism to realize the adjustment of the distance between the two negative pressure suction cups 470, which can adapt to the clamping and installation of curtain walls of different sizes.

[0017] Further optimizations to this solution include: Figure 1-3 As shown, the rotating assembly 005 consists of a bearing 510, a driven gear 520, a rotating motor 530, a rotating reduction motor 540, a speed change shaft 550, and a driving gear 560. The top of the movable seat 001 is fixedly connected to the bottom of the rotating seat 002 via the bearing 510. The driven gear 520 is mounted on the rotating seat 002. The movable seat 001 has a second mounting cavity 101. The rotating motor 530 is installed in the second mounting cavity 101. The rotating reduction motor 540 is connected to the rotating motor 530. The output end of the rotating reduction motor 540 is fixedly connected to the speed change shaft 550. The end of the speed change shaft 550 is fixed with a driving gear 560 that meshes with the driven gear 520.

[0018] Further optimizations to this solution include: Figure 1-3 As shown, a positioning telescopic cylinder 007 is installed in the second mounting cavity 101. A positioning block 008 is provided at the output end of the positioning telescopic cylinder 007. Pushing the positioning block 008 downwards prevents external forces such as wind from causing the angle of the moving seat 001 to shift.

[0019] Further optimizations to this solution include: Figure 1-3As shown, the lifting seat 003 is equipped with a counterweight 009, which is symmetrically distributed on both sides of the lifting seat 003 to counteract the torque generated by the weight of the glass plate and ensure that the hydraulic telescopic cylinder 006 is stable and tilt-free during the lifting process.

[0020] Further optimizations to this solution include: Figure 1-3 As shown, the top of the lifting platform 003 is equipped with an infrared positioning probe 010, which emits infrared signals, receives the reflected signals from the curtain wall installation reference point, and provides real-time feedback of position deviation to the control system.

[0021] The positional relationships described in the figures are for illustrative purposes only and should not be construed as limiting this patent. Clearly, the above embodiments of this utility model are merely examples to clearly illustrate the present utility model, and are not intended to limit the implementation of the present utility model. Those skilled in the art can make other variations or modifications based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations here. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this utility model should be included within the scope of protection of the claims of this utility model.

Claims

1. A glass curtain wall splicing device, characterized in that: Including mobile seat (001), rotating seat (002), lifting seat (003) and clamping assembly (004), rotating seat (002) is connected on mobile seat (001) through rotating assembly (005), lifting seat (003) is connected on rotating seat (002) through hydraulic telescopic cylinder (006), clamping assembly (004) is installed on lifting seat (003), clamping assembly (004) is composed of clamping motor (410), clamping reduction motor (420), adjusting screw (430), positive nut base (440), reverse nut base (450), clamping rod (460), negative pressure suction cup (470) and adjusting rod (480), lifting seat (003) is equipped with installation cavity one (301), installation cavity one (301) is equipped with clamping motor (410), clamping motor (410) is connected with clamping reduction motor (420), the output end of clamping reduction motor (420) is fixedly connected with adjusting screw (430), adjusting screw (430) is equipped with positive nut base (440) and reverse nut base (450), positive nut base (440) is hingedly provided with clamping rod (460), reverse nut base (450) is hingedly provided with adjusting rod (480), the other end of adjusting rod (480) is hingedly connected in the middle of clamping rod (460), the end of clamping rod (460) is provided with negative pressure suction cup (470).

2. The glass curtain wall splicing device according to claim 1, characterized in that: Rotating assembly (005) is composed of shaft seat (510), driven gear (520), rotating motor (530), rotating reduction motor (540), variable speed shaft (550) and driving gear (560), the top of mobile seat (001) is fixedly connected with the bottom of rotating seat (002) through shaft seat (510), rotating seat (002) is installed with driven gear (520), mobile seat (001) is equipped with installation cavity two (101), rotating motor (530) is installed in installation cavity two (101), rotating reduction motor (540) is connected with rotating motor (530), the output end of rotating reduction motor (540) is fixedly connected with variable speed shaft (550), the end of variable speed shaft (550) is fixed with driving gear (560) engaged with driven gear (520).

3. The glass curtain wall splicing device according to claim 2, characterized in that: The installation cavity two (101) is equipped with positioning telescopic cylinder (007), and the output end of the positioning telescopic cylinder (007) is provided with a positioning block (008).

4. The glass curtain wall splicing device according to claim 1, characterized in that: The lifting seat (003) is equipped with a counterweight (009).

5. The glass curtain wall splicing device according to claim 1, characterized in that: The top of lifting seat (003) is equipped with an infrared positioning probe (010).