A conveying device for glass curtain wall processing

The glass curtain wall conveying device, with its mechanical linkage and anti-clogging design, solves the problems of discontinuous conveying and easy clogging of suction cups, achieving efficient and stable glass curtain wall conveying and meeting the needs of industrialized mass production.

CN121247459BActive Publication Date: 2026-04-14GUANGZHOU HONGKE CURTAIN WALL ENG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-12-05
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Existing glass curtain wall conveying devices suffer from problems such as discontinuous conveying process and easy blockage of suction cup mechanism by external impurities, resulting in low production efficiency and frequent equipment maintenance.

Method used

It adopts a linkage design of base, vertical plate, electric guide rail, slide table, rotating shaft, connecting arm, swing arm, pulley and guide groove, combined with the bottom tube, top cover, sealing sleeve, air seal head, inner air cover and annular protrusion structure of suction cup mechanism to achieve mechanical linkage continuous conveying and anti-blocking.

Benefits of technology

It enables continuous and stable conveying of glass curtain walls, reduces manual intervention, lowers the risk of equipment blockage, and improves production efficiency and equipment lifespan.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application belongs to the technical field of glass curtain wall conveying, and particularly relates to a conveying device for glass curtain wall processing, which comprises a base, a vertical plate is welded to the top outer wall of the base, an electric guide rail is fixedly connected to the bottom of the outer wall of one side of the vertical plate through screws, a sliding table is installed on the sliding block of the electric guide rail, a rotating shaft is rotatably connected to the outer wall of one side of the sliding table through a bearing, and a connecting arm is welded to the outer wall of one end of the rotating shaft. The conveying structure of mechanical linkage and the anti-blocking suction cup mechanism are integrated, efficient and stable glass curtain wall conveying is realized, the mechanical linkage structure ensures the continuity and smoothness of the conveying process, reduces the manual participation and the risk of glass breakage, the anti-blocking suction cup mechanism ensures reliable adsorption and is not easy to block, and the maintenance cost is reduced, the conveying device has continuity, stability and durability due to the synergistic effect of the two, and helps to meet the industrialized batch production demand, improve the automation level of the processing flow and the product qualification rate.
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Description

Technical Field

[0001] This invention relates to the field of glass curtain wall conveying technology, and in particular to a conveying device for glass curtain wall processing. Background Technology

[0002] A glass curtain wall is a building envelope composed of glass panels and a supporting structure. It offers advantages such as aesthetics, excellent light transmission, sound insulation, and heat insulation, and is widely used in modern high-rise buildings, commercial complexes, and other similar locations. The manufacturing process of a glass curtain wall involves multiple steps, including cutting, edge grinding, tempering, and coating. The transport of the glass curtain wall between these steps is crucial for ensuring production efficiency and product quality. Due to the large area, heavy weight, and susceptibility to scratches and damage, the stability, safety, and continuity of the transport device are extremely important. During transport, it is essential not only to prevent damage to the glass curtain wall but also to ensure smooth transitions between processes to meet the demands of industrialized mass production.

[0003] In practice, the conveying devices used in glass curtain wall processing have some shortcomings:

[0004] First, existing conveying devices mostly employ manual assistance or segmented mechanical conveying methods. The conveying process is discontinuous, requiring manual transfer of glass curtain walls from the placement rack to the conveyor line, or transshipment between different conveying sections. This is not only labor-intensive but also prone to causing collisions and scratches to the glass curtain walls during transshipment, reducing product qualification rates. Furthermore, the large gaps between segmented conveying sections prevent continuous conveying, resulting in low production efficiency. Second, the suction cup mechanisms used to adsorb glass curtain walls in existing conveying devices often maintain negative pressure through continuous air extraction. During extraction, dust and impurities from the outside air are easily drawn in. These impurities can clog the extraction pipes and the internal structure of the suction cups, affecting their adsorption stability and lifespan. Frequent cleaning and maintenance are required, further increasing production costs and downtime. Summary of the Invention

[0005] In view of the shortcomings of the prior art, the present invention provides a conveying device for glass curtain wall processing, which overcomes the shortcomings of the prior art and effectively solves the problems of discontinuous conveying process and easy blockage of suction cup mechanism by external impurities in the existing conveying device.

[0006] To achieve the above objectives, the present invention adopts the following technical solution:

[0007] A conveying device for glass curtain wall processing includes a base. A vertical plate is welded to the top outer wall of the base. An electric guide rail is fixedly connected to the bottom of one side of the outer wall of the vertical plate by screws. A slide table is installed on the slider of the electric guide rail. A rotating shaft is rotatably connected to one side of the outer wall of the slide table via a bearing. A connecting arm is welded to the outer wall of one end of the rotating shaft. An array of mounting plates is provided on one side of the outer wall of the connecting arm. A suction cup mechanism is provided through the outer wall of the mounting plates. A swing arm is fixedly connected to the outer wall of the other end of the rotating shaft. A connecting shaft is provided on the outer wall of one end of the swing arm. A pulley is rotatably connected to the outer wall of one end of the connecting shaft. A guide groove is provided on one side of the outer wall of the vertical plate, and the pulley slides in cooperation with the guide groove.

[0008] Preferably, the suction cup mechanism includes a bottom tube, a top cover, a sealing sleeve, a connecting frame, an air seal head, an inner air hood, and an extraction pipe. The bottom tube is installed through the inner wall of the mounting plate, the top cover is installed on the top of the bottom tube, the sealing sleeve is fitted on the top outer wall of the top cover, the connecting frame is welded to the inner wall of the sealing sleeve, the air seal head is welded to the bottom outer wall of the connecting frame, the inner air hood is installed inside the top cover, and the air seal head is in contact with the top inner wall of the inner air hood. The extraction pipe is inserted into the bottom outer wall of the bottom tube.

[0009] Preferably, an annular protrusion is provided on the inner circumference of the outer wall of the top of the inner air hood, and an annular groove is provided on the outer circumference of the air seal head, with the annular protrusion fitting against the inner wall of the annular groove.

[0010] Preferably, mounting plates are provided at the top and bottom of the outer wall of the bottom tube, and the mounting plates are fixedly connected to the outer wall of the mounting plate by screws.

[0011] Preferably, the guide groove includes an inclined sliding groove and a smooth groove, wherein the inclined sliding groove and the smooth groove are connected to each other, and the rotating shaft rotates 90° when the pulley slides from the inclined sliding groove into the smooth groove.

[0012] Preferably, a guide rod is provided on one side of the outer wall of the vertical plate below the electric guide rail, and the guide rod is slidably engaged with the slide table.

[0013] Preferably, one side of the outer wall of the top of the base is provided with adjacent racks, and a conveyor frame is provided between the two racks. One end of the outer wall of the conveyor frame is provided with equally spaced drive wheels, and the other end of the outer wall of the conveyor frame is provided with equally spaced driven wheels. A conveyor belt is provided between the drive wheels and the driven wheels. A main shaft is installed through the inner wall of the drive wheels, and a servo motor is fixedly connected to the outer wall of one end of the main shaft through a coupling.

[0014] Preferably, the spindle is rotatably coupled to one of the frames, and the servo motor is fixedly connected to the outer wall of one side of the frame by screws.

[0015] Preferably, a glass curtain wall mounting bracket is fixedly connected to the other side of the top outer wall of the base by screws, and glass curtain walls are placed on the inner wall of the glass curtain wall mounting bracket at equal intervals.

[0016] The beneficial effects of this invention are as follows:

[0017] 1. The glass curtain wall processing conveying device of the present invention effectively solves the problem of discontinuous conveying process through the linkage of base, vertical plate, electric guide rail, slide table, rotating shaft, connecting arm, swing arm, pulley and guide groove. When the electric guide rail drives the slide table to move, the pulley slides along the inclined groove of the guide groove, driving the swing arm to drive the rotating shaft to rotate 90°, realizing the direction switching of the connecting arm and suction cup mechanism. The glass curtain wall can be transferred from the glass curtain wall placement rack to the conveyor belt without manual intervention. The smooth groove ensures that the suction cup mechanism moves stably after adsorbing the glass curtain wall. The whole process is mechanically linked and continuous, realizing continuous conveying and greatly improving production efficiency.

[0018] 2. The glass curtain wall processing conveying device of the present invention, with the structural design of the suction cup mechanism including the bottom tube, top cover, sealing sleeve, gas seal head, inner gas cover, annular protrusion and annular groove, effectively avoids the problem of external impurities clogging. When the sealing sleeve contacts the glass curtain wall, it is squeezed and drives the gas seal head away from the inner gas cover, so that the suction pipe draws air to form a negative pressure to adsorb the glass. When separating, the gas seal head fits into the inner gas cover, and the annular protrusion and annular groove fit tightly to achieve gas sealing. Air is only allowed to pass through during adsorption, reducing the intake of impurities. The sealing sleeve can also prevent impurities from approaching the adsorption area, further reducing the risk of clogging and extending the service life of the equipment.

[0019] 3. The glass curtain wall processing conveying device of the present invention integrates a mechanically linked conveying structure with an anti-clogging suction cup mechanism, realizing efficient and stable glass curtain wall conveying. The mechanically linked structure ensures a smooth and continuous conveying process, reducing manual intervention and the risk of glass breakage; the anti-clogging suction cup mechanism ensures reliable adsorption and is not prone to clogging, reducing maintenance costs; the synergistic effect of the two makes the conveying device continuous, stable and durable, which helps to meet the needs of industrial mass production, improve the automation level of the processing flow and the product qualification rate. Attached Figure Description

[0020] Figure 1 This is a schematic diagram of the overall structure of a conveying device for glass curtain wall processing proposed in this invention. Figure 1 ;

[0021] Figure 2 This is a schematic diagram of the overall structure of a conveying device for glass curtain wall processing proposed in this invention. Figure 2 ;

[0022] Figure 3This is a schematic diagram of the suction cup mechanism of a glass curtain wall processing conveying device proposed in this invention adsorbing a glass curtain wall;

[0023] Figure 4 This is a schematic diagram of the vertical plate connection structure of a conveying device for glass curtain wall processing proposed in this invention. Figure 1 ;

[0024] Figure 5 This is a schematic diagram of the vertical plate connection structure of a conveying device for glass curtain wall processing proposed in this invention. Figure 2 ;

[0025] Figure 6 This is a schematic diagram of the connection structure of the bottom pipe, top cover, and sealing sleeve of a conveying device for glass curtain wall processing proposed in this invention.

[0026] Figure 7 This is a schematic diagram of the internal structure of the bottom pipe, top cover, and sealing sleeve of a conveying device for glass curtain wall processing proposed in this invention.

[0027] Figure 8 for Figure 7 Enlarged schematic diagram of part A of the structure;

[0028] Figure 9 This is a schematic diagram of the frame connection structure of a conveying device for glass curtain wall processing proposed in this invention.

[0029] In the diagram: 1. Base; 2. Vertical plate; 3. Electric guide rail; 4. Slide table; 5. Rotating shaft; 6. Connecting arm; 7. Mounting plate; 8. Suction cup mechanism; 81. Bottom tube; 82. Top cover; 83. Sealing sleeve; 84. Connecting frame; 85. Air seal head; 86. Inner air cover; 87. Air extraction pipe; 9. Swing arm; 10. Connecting shaft; 11. Pulley; 12. Guide groove; 121. Inclined slide groove; 122. Smooth groove; 13. Annular protrusion; 14. Annular groove; 15. Mounting plate; 16. Guide rod; 17. Frame; 18. Conveyor frame; 19. Drive wheel; 20. Driven wheel; 21. Conveyor belt; 22. Main shaft; 23. Servo motor; 24. Glass curtain wall placement rack. Detailed Implementation

[0030] 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. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0031] Reference Figures 1-9Example 1: A conveying device for glass curtain wall processing includes a base 1. A vertical plate 2 is welded to the top outer wall of the base 1. An electric guide rail 3 is fixedly connected to the bottom of one side outer wall of the vertical plate 2 by screws. A slide table 4 is installed on the slider of the electric guide rail 3. A rotating shaft 5 is rotatably connected to one side outer wall of the slide table 4 by bearings. A connecting arm 6 is welded to the outer wall of one end of the rotating shaft 5. An array of mounting plates 7 is provided on one side outer wall of the connecting arm 6. A suction cup mechanism 8 is provided through the outer wall of the mounting plate 7. A swing arm 9 is fixedly connected to the outer wall of the other end of the rotating shaft 5. A connecting shaft 10 is provided on the outer wall of one end of the swing arm 9. A pulley 11 is rotatably connected to the outer wall of one end of the connecting shaft 10. A guide groove 12 is opened on one side outer wall of the vertical plate 2, and the pulley 11 slides with the guide groove 12.

[0032] Through the above scheme, the base 1 provides stable support for the entire device, ensuring the stability of the equipment during operation; the vertical plate 2 serves as the mounting carrier, providing fixed positions for components such as the electric guide rail 3 and guide rod 16; the electric guide rail 3 provides power for the movement of the sliding table 4, realizing reciprocating motion in the horizontal direction; the sliding table 4 is connected to the rotating shaft 5 through bearings, ensuring that the rotating shaft 5 can rotate flexibly and move synchronously with the electric guide rail 3; the connecting arm 6 connects the rotating shaft 5 to the mounting plate 7 to realize power transmission, and the mounting plate 7 provides evenly distributed mounting points for the suction cup mechanism 8, ensuring balanced force when adsorbing the glass curtain wall; the swing arm 9, the connecting shaft 10, and the pulley 11 form a transmission structure, converting the linear motion of the sliding table 4 into the rotational motion of the rotating shaft 5; the guide groove 12 provides a sliding path for the pulley 11, and the rotation angle of the rotating shaft 5 is controlled by the groove design, realizing the direction switching of the suction cup mechanism 8, providing a mechanical linkage basis for the transfer of the glass curtain wall.

[0033] In this embodiment, the problem of discontinuous conveying is effectively solved by the linkage of the base 1, vertical plate 2, electric guide rail 3, slide table 4, rotating shaft 5, connecting arm 6, swing arm 9, pulley 11 and guide groove 12. When the electric guide rail 3 drives the slide table 4 to move, the pulley 11 slides along the inclined slide groove 121 of the guide groove 12, driving the swing arm 9 to drive the rotating shaft 5 to rotate 90°, realizing the direction switching of the connecting arm 6 and the suction cup mechanism 8. The glass curtain wall can be transferred from the glass curtain wall placement rack 24 to the conveyor belt 21 without manual intervention. The smooth groove 122 ensures that the suction cup mechanism 8 moves stably after adsorbing the glass curtain wall. The whole process is mechanically linked and continuous, realizing continuous conveying and greatly improving production efficiency.

[0034] In embodiment 2, the suction cup mechanism 8 includes a bottom tube 81, a top cover 82, a sealing sleeve 83, a connecting frame 84, an air seal head 85, an inner air cover 86, and an extraction pipe 87. The bottom tube 81 is disposed through the inner wall of the mounting plate 7. The top cover 82 is disposed on the top of the bottom tube 81. The sealing sleeve 83 is sleeved on the top outer wall of the top cover 82. The connecting frame 84 is welded to the inner wall of the sealing sleeve 83. The air seal head 85 is welded to the bottom outer wall of the connecting frame 84. The inner air cover 86 is disposed inside the top cover 82, and the air seal head 85 is in contact with the top inner wall of the inner air cover 86. The extraction pipe 87 is inserted into the bottom outer wall of the bottom tube 81. An annular protrusion 13 is provided on the inner circumference of the top outer wall of the inner air cover 86, and an annular groove 14 is provided on the outer circumference of the air seal head 85. The annular protrusion 13 fits against the inner wall of the annular groove 14.

[0035] Through the above scheme, the bottom pipe 81 serves as an airflow channel, connecting the top cover 82 and the extraction pipe 87 to achieve air suction and discharge; the top cover 82 provides protection and installation space for internal components, and the sealing sleeve 83 is made of elastic material, which not only ensures the sealing effect when in contact with the glass curtain wall, but also allows for displacement during compression; the connecting frame 84 achieves a fixed connection between the sealing sleeve 83 and the gas seal head 85, so that the displacement of the sealing sleeve 83 can synchronously drive the movement of the gas seal head 85; the inner air cover 86 cooperates with the gas seal head 85 to achieve airflow cut-off control, and the fitting design of the annular protrusion 13 and the annular groove 14 enhances the sealing performance, ensuring that the gas seal head 85 can effectively block the gas channel when in contact with the inner air cover 86, preventing the extraction pipe 87 from sucking in external impurities; the extraction pipe 87 connects to external extraction equipment to provide negative pressure power for the adsorption process, and only allows air to pass through when the gas seal head 85 is far away from the inner air cover 86, reducing the chance of impurities being sucked in.

[0036] In this embodiment, the structural design of the suction cup mechanism 8, including the bottom tube 81, top cover 82, sealing sleeve 83, gas seal head 85, inner gas cover 86, annular protrusion 13, and annular groove 14, effectively avoids the problem of external impurities clogging the glass. When the sealing sleeve 83 contacts the glass curtain wall, it is squeezed and drives the gas seal head 85 away from the inner gas cover 86, causing the suction pipe 87 to draw in air and form a negative pressure to adsorb the glass. When separating, the gas seal head 85 fits into the inner gas cover 86, and the annular protrusion 13 and the annular groove 14 fit tightly to achieve gas sealing. Air is only allowed to pass through during adsorption, reducing the intake of impurities. The sealing sleeve 83 can also prevent impurities from approaching the adsorption area, further reducing the risk of clogging and extending the service life of the equipment.

[0037] Mounting plates 15 are provided at the top and bottom of the outer wall of the bottom tube 81, and the mounting plates 15 are fixedly connected to the outer wall of the mounting plate 7 by screws.

[0038] Through the above solution, the mounting plate 15 increases the contact area between the bottom tube 81 and the mounting plate 7, and the screw fixing method ensures a firm and reliable connection, preventing the suction cup mechanism 8 from loosening or falling off during the adsorption and transportation of the glass curtain wall, thereby improving the adsorption stability and equipment operation safety; at the same time, it facilitates the subsequent disassembly, maintenance or replacement of the suction cup mechanism 8, reducing the difficulty of equipment maintenance.

[0039] The guide groove 12 includes an inclined slide groove 121 and a smooth groove 122, wherein the inclined slide groove 121 and the smooth groove 122 are connected to each other, and the rotating shaft 5 rotates 90° when the pulley 11 slides from the inclined slide groove 121 into the smooth groove 122.

[0040] Through the above scheme, the inclined design of the inclined slide 121 causes the pulley 11 to generate vertical displacement during the sliding process, thereby driving the swing arm 9 to drive the rotating shaft 5 to rotate, and precisely controlling the rotation angle to 90°, realizing the switching of the suction cup mechanism 8 from the direction of the conveyor frame 18 to the direction of the glass curtain wall placement frame 24; the smooth groove 122 ensures that the pulley 11 can maintain horizontal movement after sliding to the top, so that the suction cup mechanism 8 can stably adhere to the glass curtain wall and avoid the glass curtain wall from shaking or falling off during the rotation; the connection design of the two realizes the smooth transition of the motion state and ensures the continuity of mechanical linkage.

[0041] A guide rod 16 is provided on one side of the outer wall of the vertical plate 2 below the electric guide rail 3, and the guide rod 16 slides in conjunction with the slide table 4.

[0042] With the above scheme, the guide rod 16 is set parallel to the electric guide rail 3, which plays an auxiliary support and guiding role for the slide table 4, preventing the slide table 4 from tilting or shaking due to uneven force or excessive load during movement, and ensuring the straightness and stability of the slide table 4 movement; the sliding fit design reduces frictional resistance, making the slide table 4 move more smoothly, improving the stability of the entire conveying process, and indirectly protecting the glass curtain wall from collision damage.

[0043] One side of the top outer wall of the base 1 is provided with adjacent racks 17, and a conveyor frame 18 is provided between the two racks 17. One end of the outer wall of the conveyor frame 18 is provided with equally spaced drive wheels 19, and the other end of the outer wall of the conveyor frame 18 is provided with equally spaced driven wheels 20. A conveyor belt 21 is provided between the drive wheels 19 and the driven wheels 20. A main shaft 22 is installed through the inner wall of the drive wheels 19, and a servo motor 23 is fixedly connected to one end of the outer wall of the main shaft 22 by a coupling. The main shaft 22 is rotatably engaged with one of the racks 17, and the servo motor 23 is fixedly connected to one side of the outer wall of one of the racks 17 by screws.

[0044] Through the above scheme, the frame 17 provides a stable installation support for components such as the conveyor frame 18 and the servo motor 23, ensuring the stability of the conveying structure; the conveyor frame 18 connects the drive wheel 19 and the driven wheel 20 to form a complete conveying track; the servo motor 23 drives the main shaft 22 to rotate through the coupling, the main shaft 22 drives the drive wheel 19 to rotate, and then drives the conveyor belt 21 to move. The driven wheel 20 rotates synchronously with the conveyor belt 21 to realize the horizontal conveying of the glass curtain wall; the servo motor 23 can precisely control the speed, so that the conveying speed of the conveyor belt 21 matches the transfer speed of the suction cup mechanism 8, ensuring smooth connection and meeting the speed requirements of different processing procedures.

[0045] The other side of the top outer wall of the base 1 is fixedly connected to the glass curtain wall mounting bracket 24 by screws, and glass curtain walls are placed on the inner wall of the glass curtain wall mounting bracket 24 at equal intervals.

[0046] Through the above solution, the glass curtain wall placement rack 24 provides an orderly storage space for the glass curtain walls to be transported. The glass curtain walls distributed at equal intervals are easy for the suction cup mechanism 8 to accurately adsorb, avoiding the difficulty of adsorption or damage caused by the stacking of glass curtain walls.

[0047] Working principle: First, the glass curtain wall to be transported is placed in an orderly manner on the glass curtain wall placement rack 24. After the equipment is started, the electric guide rail 3 drives the slide table 4 to move along the guide rod 16 towards the glass curtain wall placement rack 24. At this time, the pulley 11 at the other end of the rotating shaft 5 enters the inclined slide groove 121 of the guide groove 12. As the slide table 4 continues to move, the pulley 11 slides along the inclined slide groove 121 and generates vertical displacement, driving the swing arm 9 to drive the rotating shaft 5 to rotate. When the pulley 11 slides from the bottom to the top of the inclined slide groove 121, the rotating shaft 5 rotates precisely 90°, and the connecting arm 6 rotates accordingly, causing the suction cup mechanism 8 on the mounting plate 7 to switch from the direction of the conveyor rack 18 to the side of the glass curtain wall placement rack 24.

[0048] After pulley 11 enters smooth groove 122, slide table 4 continues to move. The sealing sleeve 83 in suction cup mechanism 8 first contacts the glass curtain wall surface and is compressed. The sealing sleeve 83 drives the air seal head 85 to move downward through connecting frame 84, causing the air seal head 85 to separate from the inner air cover 86. At this time, the airflow channel opens. After the external air extraction equipment is connected and fixed to the air extraction pipe 87, air is drawn through air extraction pipe 87 and bottom pipe 81, forming a negative pressure inside top cover 82, which then firmly adheres to the glass curtain wall.

[0049] After adsorption is complete, the electric guide rail 3 reverses its direction, driving the slide table 4 to move towards the conveyor frame 18. The pulley 11 slides in the opposite direction along the smooth groove 122 and the inclined groove 121, driving the rotating shaft 5 to rotate 90° in the opposite direction. The connecting arm 6 drives the suction cup mechanism 8 with the glass curtain wall adsorbed to rotate above the conveyor belt 21. As the slide table 4 moves to the designated position, the glass curtain wall is placed on the conveyor belt 21. Then, as the sealing sleeve 83 continues to move downward, the sealing sleeve 83 will separate from the glass curtain wall. After the sealing sleeve 83 resets, it will drive the air seal head 85 to move upward, so that the air seal head 85 re-contacts the inner air cover 86. The annular protrusion 13 is embedded in the annular groove 14 to achieve a seal, closing the airflow channel and preventing the suction pipe 87 from sucking in external impurities.

[0050] At this point, the glass curtain wall is stably placed on the conveyor belt 21. The servo motor 23 starts and drives the drive wheel 19 to rotate via the main shaft 22, which in turn drives the conveyor belt 21 and the driven wheel 20 to move, transporting the glass curtain wall to the next processing step. Afterward, the electric guide rail 3 drives the slide table 4 to move towards the glass curtain wall placement rack 24, entering the next conveying cycle, realizing continuous and automated conveying of the glass curtain wall.

[0051] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. A conveying device for glass curtain wall processing, comprising a base (1), characterized in that, The base (1) has a vertical plate (2) welded to the top outer wall, and an electric guide rail (3) is fixedly connected to the bottom of one side outer wall of the vertical plate (2) by screws. A slide table (4) is installed on the slider of the electric guide rail (3). A rotating shaft (5) is rotatably connected to one side outer wall of the slide table (4) by bearings. A connecting arm (6) is welded to one end outer wall of the rotating shaft (5). An array of mounting plates (7) is provided on one side outer wall of the connecting arm (6). A suction cup mechanism (8) is provided through the outer wall of the mounting plate (7). A swing arm (9) is fixedly connected to the other end outer wall of the rotating shaft (5). A connecting shaft (10) is provided on one end outer wall of the swing arm (9). A pulley (11) is rotatably connected to one end outer wall of the connecting shaft (10). A guide groove (12) is opened on one side outer wall of the vertical plate (2). The pulley (11) and the guide groove (12) slide together. The suction cup mechanism (8) includes a bottom tube (81), a top cover (82), a sealing sleeve (83), a connecting frame (84), an air seal head (85), an inner air cover (86), and an air extraction pipe (87). The bottom tube (81) is installed through the inner wall of the mounting plate (7), the top cover (82) is installed on the top of the bottom tube (81), the sealing sleeve (83) is fitted on the top outer wall of the top cover (82), the connecting frame (84) is welded to the inner wall of the sealing sleeve (83), the air seal head (85) is welded to the bottom outer wall of the connecting frame (84), the inner air cover (86) is installed inside the top cover (82), and the air seal head (85) is in contact with the top inner wall of the inner air cover (86). The air extraction pipe (87) is inserted into the bottom outer wall of the bottom tube (81). An annular protrusion (13) is provided on the inner circumference of the top outer wall of the inner air hood (86), and an annular groove (14) is provided on the outer circumference of the air seal head (85). The annular protrusion (13) fits against the inner wall of the annular groove (14).

2. The conveying device for glass curtain wall processing according to claim 1, characterized in that, Mounting plates (15) are provided at the top and bottom of the outer wall of the bottom tube (81), and the mounting plates (15) are fixedly connected to the outer wall of the mounting plate (7) by screws.

3. The conveying device for glass curtain wall processing according to claim 1, characterized in that, The guide groove (12) includes an inclined slide groove (121) and a smooth groove (122), wherein the inclined slide groove (121) and the smooth groove (122) are connected to each other, and the rotating shaft (5) rotates 90° when the pulley (11) slides from the inclined slide groove (121) into the smooth groove (122).

4. The conveying device for glass curtain wall processing according to claim 1, characterized in that, A guide rod (16) is provided on one side of the outer wall of the vertical plate (2) below the electric guide rail (3), and the guide rod (16) slides in cooperation with the slide table (4).

5. A conveying device for glass curtain wall processing according to claim 1, characterized in that, The base (1) has adjacent racks (17) on one side of the top outer wall, and a conveyor (18) is provided between the two racks (17). One end of the conveyor (18) has drive wheels (19) distributed at equal distances on its outer wall, and the other end of the conveyor (18) has passive wheels (20) distributed at equal distances on its outer wall. A conveyor belt (21) is provided between the drive wheels (19) and the passive wheels (20). A main shaft (22) is installed through the inner wall of the drive wheel (19), and a servo motor (23) is fixedly connected to the outer wall of one end of the main shaft (22) through a coupling.

6. A conveying device for glass curtain wall processing according to claim 5, characterized in that, The spindle (22) is rotatably coupled to one of the frames (17), and the servo motor (23) is fixedly connected to one side of the outer wall of one of the frames (17) by screws.

7. The conveying device for glass curtain wall processing according to claim 1, characterized in that, The other side of the top outer wall of the base (1) is fixedly connected to a glass curtain wall placement rack (24) by screws, and glass curtain walls are placed on the inner wall of the glass curtain wall placement rack (24) at equal intervals.

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