A curtain wall fixing structure and an installation device thereof

CN122589151APending Publication Date: 2026-08-18HUNAN MEIMEI CURTAIN WALL DECORATION CO LTD
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Patent Information

Application Number
CN202610782530.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-06-02
Publication Date
2026-08-18

AI Technical Summary

Technical Problem

[0004]然而,上述固定结构中,卡接件对石材板的卡紧位置相对较少,长久使用后容易松动、破损等

Benefits of technology

[0016] Compared with the prior art, the beneficial effects of this application are that the curtain wall fixing structure includes a stone slab, at least two metal parts and a vibration damping component. The stone slab is divided into a first section and a second section in sequence from the front to the back. The outer perimeter of the second section is smaller than that of the first section, and a circumferential groove is provided on the second section. The metal parts include a connected side plate and a back plate. The side plate covers the perimeter of the second section and does not protrude from the first section. The side plate has a raised edge that is inserted into the circumferential groove. The back plate abuts against a portion of the back of the stone slab. Adjacent back plates are fixedly connected. The back plate also has a connecting part for connecting to the wall. The vibration damping component is disposed between the side plate and the second section, between the back plate and a portion of the back of the stone slab, and between the raised edge and the circumferential groove.

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Abstract

The application discloses a curtain wall fixing structure and mounting equipment thereof, and relates to the technical field of curtain walls.The curtain wall fixing structure comprises a stone plate, at least two metal pieces and a damping piece.The stone plate is sequentially divided into a first plate section and a second plate section along a front-to-back direction.The peripheral size of the second plate section is smaller than that of the first plate section, and a circumferential groove is formed in the second plate section.The metal piece comprises a side plate and a back plate connected to each other.The side plate is wrapped around the side of the second plate section, and the side plate is provided with a raised edge which is inserted into the circumferential groove.The back plate is in abutment with part of the back surface of the stone plate, and adjacent back plates are fixedly connected.The back plate is also provided with a connecting portion which is used for being connected to a wall body.The damping piece is arranged between the side plate and the second plate section, between the back plate and part of the back surface of the stone plate, and between the raised edge and the circumferential groove.According to the curtain wall fixing structure provided by the application, the stability of the stone plate on the curtain wall can be improved, and hidden installation can be realized, so that the curtain wall is more beautiful.
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Description

Technical Field

[0001] This application belongs to the field of curtain wall technology, specifically a curtain wall fixing structure and its installation equipment. Background Technology

[0002] A curtain wall is a lightweight wall structure with decorative effects commonly used in modern large and high-rise buildings. Based on its use, it can be divided into: architectural curtain walls, component-type architectural curtain walls, unitized curtain walls, glass curtain walls, stone curtain walls, metal panel curtain walls, all-glass curtain walls, point-supported glass curtain walls, etc.

[0003] Stone curtain walls are building envelope systems composed of natural stone panels and supporting structures (beams, columns, steel structures, etc.). In related technologies, the stone panels are secured to the wall or frame using snap-fit ​​connectors on both sides.

[0004] However, in the aforementioned fixing structures, the number of clamping points for the stone slabs is relatively small, making them prone to loosening and damage after prolonged use. Furthermore, since some clamping parts protrude from the edges of the stone slabs, they create an unsightly appearance. Therefore, how to stably fix the stone slabs while ensuring a seamless appearance becomes a pressing issue. Summary of the Invention

[0005] In view of this, the purpose of this application is to provide a curtain wall fixing structure and its installation equipment, which can at least to some extent improve the stability of the stone panels on the curtain wall and avoid visual obtrusiveness.

[0006] To achieve the above objectives, this application provides the following technical solution: In a first aspect, this application provides a curtain wall fixing structure, including a stone slab, at least two metal parts and a vibration damping part. The stone slab is divided into a first section and a second section in sequence from the front to the back. The outer perimeter of the second section is smaller than that of the first section, and a circumferential groove is provided on the second section. The metal component includes connected side plates and back plates. The side plates cover the periphery of the second plate segment and have raised edges that are inserted into circumferential grooves. The back plates abut against a portion of the back of the stone slab, and adjacent back plates are fixedly connected. The back plates also have connecting parts for connecting to the wall. Vibration damping components are installed between the side plate and the second plate section, between the back plate and part of the back of the stone slab, and between the raised edge and the circumferential groove.

[0007] As a further embodiment of this application, the two side walls of the circumferential groove are respectively inclined and steep, with the inclined surface close to the back of the stone slab and the steep surface close to the front of the stone slab. The distance between the inclined and steep surfaces gradually decreases towards the bottom of the circumferential groove, and the damping components are bonded to the inner wall of the side plate, the inner wall of the back plate, and the surface of the raised edge.

[0008] As a further embodiment of this application, the back plate also has a positioning protrusion, on which a tapered hole facing the corresponding side plate is opened, and the tapered hole is used for insertion and positioning with the tapered protrusion on the mounting device.

[0009] Secondly, this application also provides an installation device for any of the curtain wall fixing structures provided in the first aspect, including a main body of the device and a conveying device, a lifting device, multiple edge-wrapping devices and multiple welding devices disposed on the main body of the device, and the main body of the device has an installation station; The conveying device is used to transport the stone slabs laterally to the installation position with the front of the stone slabs facing down; the lifting device is located below the installation position and is used to lift the stone slabs to a first preset height. Each edge-sealing device is located above the installation station and surrounds the installation station. It is used to push the metal parts toward the stone slab, so that the side plate abuts against the second plate section, and the protruding edge is inserted into the circumferential groove, and the back plate abuts against part of the back of the stone slab. Each welding device is surrounded around the installation station and is used to weld the joints of adjacent back plates.

[0010] As a further embodiment of this application, the edge-sealing device includes a support base, a mounting base, a triggering mechanism, and a first driving mechanism. The support base moves in a horizontal direction near or away from the installation position, and the first driving mechanism is connected to the support base in a transmission manner. The mounting base is used to place metal parts and move obliquely towards or away from the installation position. The triggering mechanism is set on the support base and is connected to the mounting base for transmission. When the first drive mechanism drives the support seat to approach the installation position, and the trigger mechanism contacts the peripheral wall of the corresponding first plate segment, it drives the installation seat to move diagonally downwards towards the installation position.

[0011] As a further embodiment of this application, the triggering mechanism includes a trigger rod, a support rod, a transmission assembly, and an elastic reset component. The trigger rod is positioned below the support base and moves horizontally towards or away from the installation position. The support rod is mounted on the support base at an angle that moves towards or away from the installation position and is fixed to the installation base. It is also connected to the trigger rod via a transmission assembly. The elastic reset component is connected to both the trigger rod and the support base to reset the trigger rod in a direction away from the installation position.

[0012] As a further embodiment of this application, the side of the mounting base facing the installation station is used to abut against the side plate, and the mounting base is provided with a magnetic suction element and a conical protrusion. The magnetic suction element is used to attract the side plate, and the conical protrusion is used to insert and position with the conical hole.

[0013] As a further embodiment of this application, the lifting device includes a lifting frame and a second drive mechanism. The lifting frame has multiple lifting parts for contacting the front of the stone slab. The second drive mechanism is connected to the lifting frame to drive the lifting frame to move vertically.

[0014] As a further embodiment of this application, a pre-positioning mechanism is also provided on the main body of the equipment. The pre-positioning mechanism is located below the installation station and is used to lift the stone slab to a second preset height before the lifting device lifts it, and to position and adjust the periphery of the stone slab. The second preset height is lower than the first preset height.

[0015] As a further embodiment of this application, the pre-positioning mechanism includes a lifting frame and a third drive mechanism. The lifting frame is mounted on the main body of the device and has multiple guide grooves. Each guide groove is used for sliding contact with the edges and corners of the stone slab. The second drive mechanism is installed on the lifting frame.

[0016] Compared with the prior art, the beneficial effects of this application are that the curtain wall fixing structure includes a stone slab, at least two metal parts and a vibration damping component. The stone slab is divided into a first section and a second section in sequence from the front to the back. The outer perimeter of the second section is smaller than that of the first section, and a circumferential groove is provided on the second section. The metal parts include a connected side plate and a back plate. The side plate covers the perimeter of the second section and does not protrude from the first section. The side plate has a raised edge that is inserted into the circumferential groove. The back plate abuts against a portion of the back of the stone slab. Adjacent back plates are fixedly connected. The back plate also has a connecting part for connecting to the wall. The vibration damping component is disposed between the side plate and the second section, between the back plate and a portion of the back of the stone slab, and between the raised edge and the circumferential groove.

[0017] Therefore, according to the curtain wall fixing structure provided in this application, by opening a circumferential groove on the second section of the stone panel, the protruding edge is inserted into the circumferential groove, the side panel covers the second section, and the back panel abuts against the back of the stone panel, forming a fully enclosed fastening structure. In addition, there are vibration damping components between the metal parts and the stone panel, making the stone panel less prone to loosening during use, with strong vibration resistance and greater reliability. At the same time, since the outer perimeter of the side panel does not protrude from the first section, the connection structure on the back cannot be seen from the front of the stone panel, achieving a hidden fixing. Visually, this avoids a jarring feeling, meets the design requirements of a minimalist style, and is more beautiful and grand.

[0018] Moreover, the installation equipment provided in this application can simultaneously move metal parts and vibration damping parts to the corresponding stone slab side positions, and then weld them together using a welding device. This can replace manual fixing of various metal parts, greatly reduce labor intensity, facilitate mass production, increase efficiency, ensure product consistency, and guarantee quality. Attached Figure Description

[0019] To facilitate understanding by those skilled in the art, the present application will be further described below with reference to the accompanying drawings.

[0020] Figure 1 A top view of the curtain wall fixing structure provided in this application; Figure 2 for Figure 1 A sectional view along section AA in the middle; Figure 3 for Figure 2 A magnified view of a section at point B in the middle; Figure 4 A schematic diagram illustrating the connection relationship between the curtain wall fixing structure and the wall provided in this application; Figure 5 A main sectional view of the first state of the installed equipment provided in this application; Figure 6 A main sectional view of the second state of the installation equipment provided in this application; Figure 7 A master sectional view of the third state of the installed equipment provided in this application; Figure 8 for Figure 7 A magnified view of a section at point C; Figure 9 for Figure 8 A schematic diagram of another state; Figure 10 for Figure 5 A sectional view along section DD.

[0021] Figure label: 10. Wall; 20. Angle iron; 100. Stone slab; 110. First slab segment; 120. Second slab segment; 121. Circumferential groove; 200. Metal part; 210. Side plate; 211. Raised edge; 220. Back plate; 221. Connecting part; 222. Tapered hole; 300. Vibration damping components; 400. Main body of the equipment; 500. Conveying device; 600. Lifting device; 610. Lifting frame; 611. Lifting section; 620. Second drive mechanism; 700. Edge binding device; 710. Support base; 720. Mounting base; 721. Magnetic suction element; 722. Conical protrusion; 730. Triggering mechanism; 731. Trigger rod; 732. Support rod; 733. Transmission assembly; 734. Elastic reset element; 740. First drive mechanism; 800, Pre-positioning mechanism; 810, Lifting frame; 811, Guide groove; 820, Third drive mechanism. Detailed Implementation

[0022] The embodiments of this application are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this application, and should not be construed as limiting this application.

[0023] In the description of this application, it should be understood that the orientation descriptions, such as up, down, front, back, left, right, etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

[0024] In the description of this application, "several" means one or more, "more than" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. The use of "first" and "second" in the description is merely for distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.

[0025] In the description of this application, unless otherwise expressly defined, terms such as "setup," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this application in conjunction with the specific content of the technical solution.

[0026] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of this application and are not intended to limit this application; that is, the described embodiments are only a part of the embodiments of this application, and not all of them. The components of the embodiments of this application described and shown in the accompanying drawings can typically be arranged and designed in various different configurations.

[0027] Therefore, the following detailed description of the embodiments of this application provided in the accompanying drawings is not intended to limit the scope of the claimed application, but merely to illustrate selected embodiments of the application. All other embodiments obtained by those skilled in the art based on the embodiments of this application without inventive effort are within the scope of protection of this application.

[0028] Firstly, please refer to Figures 1 to 4As shown, this application provides a curtain wall fixing structure, including a stone slab 100, at least two metal parts 200 and a vibration damping part 300. The stone slab 100 is divided into a first section 110 and a second section 120 in sequence from the front to the back. The outer dimensions of the second section 120 are smaller than the outer dimensions of the first section 110, and a circumferential groove 121 is provided on the second section 120.

[0029] The metal component 200 includes a connected side plate 210 and a back plate 220. The side plate 210 covers the periphery of the second plate segment 120 and has a raised edge 211 that inserts into a circumferential groove 121. The back plate 220 abuts against a portion of the back of the stone slab 100, and adjacent back plates 220 are fixedly connected. The back plate 220 also has a connecting portion 221 for connecting to the wall 10.

[0030] The vibration damper 300 is disposed between the side plate 210 and the second plate segment 120, between the back plate 220 and part of the back side of the stone plate 100, and between the protruding edge 211 and the circumferential groove 121.

[0031] In this embodiment, the stone slab 100 is generally a thin slab structure in the shape of a cuboid, such as... Figure 1 As shown, it has a front and a back, and along the direction from the front to the back, as... Figure 3 As shown, the stone slab 100 is divided into a first segment 110 and a second segment 120 forming a stepped shape. The outer dimensions of the second segment 120 are smaller than those of the first segment 110, facilitating edge wrapping without creating an abrupt appearance. Furthermore, a circumferential groove 121 is formed on the second segment 120, located at the junction of the first and second segments 110, for interlocking. It should be noted that the thickness of the second segment 120 should be as greater as possible than the thickness of the first segment 110 to ensure more of the stone slab 100's perimeter is covered.

[0032] In this embodiment, the metal part 200 can be a stainless steel plate, an aluminum alloy plate, etc. Figure 3 As shown, it includes a side plate 210 and a back plate 220. The back plate 220 is connected to one end of the side plate 210, forming a right angle. The side plate 210 covers the periphery of the second plate segment 120. The side plate 210 has a protruding edge 211 facing the second plate segment 120 at the end opposite to the back plate 220. The protruding edge 211 is inserted into the circumferential groove 121. The back plate 220 abuts against the back of the slab 100 near the edge, thus forming a fully enclosed fastening structure that can firmly hold the second plate segment 120. Adjacent back plates 220 can be fixed by welding, snap-fitting, etc. In addition, the side of the back plate 220 opposite to the stone slab 100 also has a connecting part 221, such as... Figure 2As shown, the connecting part 221 can be a connecting lug, a connecting strip, etc., for direct or indirect connection to the wall 10.

[0033] In this embodiment, the damping component 300 can be a damping strip, a damping adhesive layer, etc. Figure 3 As shown, it has a certain elasticity. When the damping component 300 fills the space between the side plate 210 and the second plate segment 120, between the back plate 220 and part of the back side of the stone plate 100, and between the protruding edge 211 and the circumferential groove 121, it can, on the one hand, play a damping role between the stone plate 100 and the metal part 200 to avoid rigid contact, and on the other hand, it can fill the gap between the stone plate 100 and the metal part 200 to prevent loosening between them.

[0034] Specifically, such as Figure 4 As shown, a frame, angle iron 20, etc. can be pre-installed on the wall 10. The connecting part 221 can be hung on the angle iron 20 and locked with bolts. The joint between adjacent stone slabs 100 can be treated with glue or not.

[0035] Therefore, the application of the curtain wall fixing structure provided in this application embodiment, by opening a circumferential groove 121 on the second plate segment 120 around the stone slab 100, the protruding edge 211 is inserted into the circumferential groove 121, the side plate 210 covers the second plate segment 120, and the back plate 220 abuts against the back of the stone slab 100, forming a fully enclosed fastening structure. In addition, there is a vibration damping component 300 between the metal part 200 and the stone slab 100, making the stone slab 100 less prone to loosening during use, with strong vibration resistance and greater reliability. At the same time, since the outer periphery of the side plate 210 does not protrude from the first plate segment 110, the connection structure on the back cannot be seen from the front of the stone slab 100, achieving a hidden fixing, avoiding abruptness from a visual perspective, meeting the design requirements of a minimalist style, and being more beautiful and grand.

[0036] In some embodiments, the inner side walls of the circumferential groove 121 are respectively inclined and steep, with the inclined surface close to the back of the stone slab 100 and the steep surface close to the front of the stone slab 100.

[0037] In the direction of the bottom of the circumferential groove 121, the distance between the inclined surface and the steep surface gradually decreases, and the damping component 300 is bonded to the inner wall of the side plate 210, the inner wall of the back plate 220 and the surface of the raised edge 211.

[0038] In this way, such as Figure 3As shown, the vibration damping component 300 is first bonded to the inner wall of the side plate 210, the inner wall of the back plate 220, and the surface of the protruding edge 211. Then, the metal component 200 and the corresponding vibration damping component 300 are moved together along a downward slope, gradually bringing the metal component 200 into contact with the stone slab 100. This avoids the vibration damping component 300 from falling off due to friction, making installation easy and ensuring installation quality. The slope of the slope can be determined according to actual needs.

[0039] Furthermore, in this embodiment, the back plate 220 also has a positioning protrusion, and the positioning protrusion has a tapered hole 222 facing the corresponding side plate 210. The tapered hole 222 is used to be inserted and positioned with the tapered protrusion 722 on the mounting device.

[0040] Specifically, such as Figure 3 As shown, the back plate 220 has a positioning protrusion with a tapered hole 222 facing the adjacent side plate 210. For example, it is formed by stamping from the back plate 220 in a direction away from the stone slab 100. Multiple tapered holes 222 can be spaced apart along the length of the back plate 220. When they are inserted and positioned with the tapered protrusion 722 on the mounting device, they are easy to press-fit using the equipment. The specific size of the tapered hole 222 can be determined according to actual needs, and is not specifically limited in this embodiment.

[0041] Secondly, please refer to Figures 5 to 10 As shown, this application embodiment also provides an installation device applied to the curtain wall fixing structure provided in any of the above embodiments, including a device body 400 and a conveying device 500, a lifting device 600, a plurality of edge-wrapping devices 700 and a plurality of welding devices disposed on the device body 400, and the device body 400 has an installation station.

[0042] The conveying device 500 is used to convey the stone slab 100 laterally to the installation position, with the front of the stone slab 100 facing down. The lifting device 600 is located below the installation position and is used to lift the stone slab 100 to a first preset height.

[0043] Each edge-sealing device 700 is located above the installation station and surrounds the installation station. It is used to push the metal part 200 towards the stone slab 100, causing the side plate 210 to abut against the second plate segment 120, and the protruding edge 211 to be inserted into the circumferential groove 121. It also causes the back plate 220 to abut against a portion of the back surface of the stone slab 100. Each welding device is located around the installation station and is used to weld the joints of adjacent back plates 220.

[0044] In this embodiment, the main body 400 of the equipment can be a frame, bracket, shell structure, etc., and has an installation station, that is, a position for installing metal parts 200 and vibration damping parts 300 on the stone slab 100.

[0045] In this embodiment, the conveying device 500 can be composed of multiple conveying rollers and a drive motor, such as... Figure 5 , Figure 10 As shown, each conveyor roller is spaced laterally along the main body 400 of the equipment. Adjacent conveyor rollers can be connected via chain drive components or gear drive components. One of the conveyor rollers is connected to the output shaft of the drive motor. The conveying device 500 is used to laterally convey the stone slab 100 to be edged to the installation station and then remove the edged stone slab 100 from the installation station. The conveying device 500 can also be composed of multiple conveyor belts, which can be arranged laterally at intervals. However, when the conveying device 500 conveys the stone slab 100, the front side of the stone slab 100 needs to be facing down for the next step of edge wrapping.

[0046] In this embodiment, the lifting device 600 can be composed of a device with lifting function, located below the installation position. Part of the lifting device 600 can pass upward through the gap in the conveying device 500. The conveying device 500 stops after conveying the stone slab 100 to the predetermined position. Figure 7 As shown, the stone slab 100 is lifted to the first preset height by the lifting device 600 to facilitate the edge wrapping process.

[0047] In this embodiment, the number of edge-sealing devices 700 corresponds one-to-one with the number of metal parts 200. They are arranged around the perimeter of the installation station. The metal parts 200 can be fixed on the side of the edge-sealing device 700 facing the installation station. Thus, the edge-sealing device 700 can push the metal parts 200 toward the stone slab 100, so that the side plate 210 abuts against the second plate segment 120, and the protruding edge 211 is inserted into the circumferential groove 121, and the back plate 220 abuts against part of the back of the stone slab 100, which facilitates the next welding operation.

[0048] In this embodiment, the welding device can be replaced by a welding robot (not shown in the figure). Each welding device is positioned around the installation station and is used to weld the joints of adjacent back plates 220, ensuring that the metal parts 200 and vibration damping parts 300 are securely wrapped around the stone slab 100. The effect after welding is as follows: Figure 1 As shown, the edge-binding device 700 then retracts to its original position, and the lifting device 600 descends to its original position, so that the stone slab 100 returns to the conveying device 500 for conveying to the next work station.

[0049] Therefore, the installation equipment provided in this application embodiment can simultaneously move the metal parts 200 and the vibration damping parts 300 to the corresponding side positions of the stone slab 100, and then weld them together using a welding device. This can replace manual fixing of each metal part 200, greatly reducing labor intensity, facilitating mass production, increasing efficiency, ensuring product consistency, and guaranteeing quality.

[0050] In some embodiments, the edging device 700 includes a support base 710, a mounting base 720, a triggering mechanism 730, and a first driving mechanism 740. The support base 710 moves along a horizontal direction close to or away from the mounting position, and the first driving mechanism 740 is connected to the support base 710 in a transmission manner.

[0051] The mounting base 720 is used to place the metal part 200 and move obliquely towards or away from the installation position. The triggering mechanism 730 is set on the support base 710 and is connected to the mounting base 720 in a transmission manner.

[0052] When the first drive mechanism 740 drives the support base 710 to approach the installation position, and the trigger mechanism 730 contacts the peripheral wall of the corresponding first plate segment 110, it drives the installation base 720 to move diagonally downward towards the installation position.

[0053] Specifically, the support 710 has a roughly shell-like or block-like structure, such as... Figure 5 As shown, it can be installed on the main body 400 of the equipment by means of guide rails, guide rods and other guiding components. The support base 710 moves in the horizontal direction near or away from the installation position. The first drive mechanism 740 can be a cylinder, electric push rod, etc., which is connected to the support base 710 to drive its movement.

[0054] Furthermore, the mounting base 720 is generally plate-shaped or block-shaped, with the side facing the installation position for placing the metal part 200. The mounting base 720 can be connected to the support base 710 on the side facing the installation position via a guide structure or component, and can move diagonally downwards towards the installation position. In addition, a triggering mechanism 730 is provided on the support base 710 and is connected to the mounting base 720 for transmission, and is used to trigger the movement of the mounting base 720 when the support base 710 moves to a preset position.

[0055] In this way, such as Figure 8 , Figure 9 As shown, when the first drive mechanism 740 drives the support base 710 to approach the installation position to a preset position, and the trigger mechanism 730 contacts the peripheral wall of the corresponding first plate segment 110, it drives the installation base 720 to move diagonally downwards towards the installation position, such as along... Figure 8 The hollow arrow moves in the direction of movement, which can basically ensure that the damping element 300 at each position can simultaneously abut against the corresponding surface, thereby avoiding wrinkles caused by shear friction between the damping element 300 and the corresponding surface, and further ensuring the quality of the product. The slope of the moving direction of the mounting base 720 is related to the slope of the inner wall of the circumferential groove 121, and can be determined according to actual needs. In this embodiment, no excessive restrictions are imposed.

[0056] Furthermore, in this embodiment, the triggering mechanism 730 includes a trigger rod 731, a support rod 732, a transmission assembly 733, and an elastic reset member 734. The trigger rod 731 is movably disposed below the support base 710 along a horizontal direction that is close to or away from the installation position.

[0057] The support rod 732 is mounted on the support base 710 in an oblique direction that moves closer to or further away from the installation position, and is fixedly connected to the mounting base 720. It is also connected to the trigger rod 731 via the transmission assembly 733. The elastic reset member 734 is connected to the trigger rod 731 and the support base 710 respectively, so that the trigger rod 731 is reset in the direction away from the installation position.

[0058] Specifically, such as Figure 8 As shown, the trigger rod 731 can be installed below the support base 710 through guide holes, guide grooves, etc., and can move horizontally towards or away from the installation position. The support rod 732 can also be installed on the support base 710 through guide holes, guide grooves, etc., with its end facing the installation position fixed to the mounting base 720. The transmission assembly 733 can be composed of a first rack, a gear, and a second rack. The first rack is connected to the trigger rod 731 and extends in the same direction. The second rack is connected to the support rod 732 and extends in the same direction. The gear can be installed on the support base 710 through a rotating shaft and is connected to the first rack and the second rack respectively.

[0059] In this way, when the trigger rod 731 contacts and is pressed against the peripheral wall of the first plate segment 110, the first rack moves to the right and the second rack moves to the lower left, thereby pushing the mounting base 720 to move diagonally downward towards the installation position. Alternatively, the elastic reset element 734 can be a compression spring, which is sleeved on the trigger rod 731, with one end abutting against the stop pin of the trigger rod 731 and the other end abutting against the support base 710, thereby enabling the trigger rod 731 to reset away from the installation position.

[0060] Furthermore, the side of the mounting base 720 facing the mounting station is used to abut against the side plate 210, and the mounting base 720 is provided with a magnetic suction member 721 and a conical protrusion 722. The magnetic suction member 721 is used to attract the side plate 210, and the conical protrusion 722 is used to insert and position with the conical hole 222.

[0061] Specifically, such as Figure 8 As shown, the magnetic attractor 721 can be an electromagnet or a conventional magnet, used to attract the side plate 210, and the tapered protrusion 722 is used for insertion and positioning with the tapered hole 222. This facilitates the quick and accurate placement of the metal part 200 onto the mounting base 720, ensuring accurate positioning. Multiple magnetic attractors 721 and tapered protrusions 722 can be arranged at intervals along the length of the mounting base 720, depending on actual needs; this embodiment does not impose excessive restrictions.

[0062] In some embodiments, the lifting device 600 includes a lifting frame 610 and a second drive mechanism 620. The lifting frame 610 has a plurality of lifting portions 611 for contacting the front of the stone slab 100.

[0063] The second drive mechanism 620 is connected to the lifting frame 610 to drive the lifting frame 610 to move in the vertical direction.

[0064] For example, such as Figure 5 , Figure 7 As shown, the lifting frame 610 has four lifting sections 611, which can be arranged in a rectangle. The lifting sections 611 are used to support the front of the stone slab 100, and anti-slip pads can also be provided at their upper ends. The second drive mechanism 620 can be composed of a cylinder and a guide rod, which are arranged vertically. The upper ends of the cylinder and the guide rod are connected to the lifting frame 610, so that when the cylinder extends, the stone slab 100 can be lifted to the first preset height through the lifting frame 610. Of course, the second drive mechanism 620 can also be replaced by other types of mechanisms. The specific structure and type of the lifting frame 610 and the second drive mechanism 620 can be determined according to actual needs, and no excessive restrictions are imposed in this embodiment.

[0065] Furthermore, in this embodiment, a pre-positioning mechanism 800 is also provided on the main body 400 of the equipment. The pre-positioning mechanism 800 is located below the installation station and is used to lift the stone slab 100 to a second preset height before the lifting device 600 lifts it, and to position and adjust the periphery of the stone slab 100. The second preset height is lower than the first preset height.

[0066] Specifically, such as Figure 5 , Figure 6 As shown, the pre-positioning mechanism 800 is located below the installation station. Before the lifting device 600 lifts, it lifts the stone slab 100 to the second preset height. During this process, the periphery of the stone slab 100 is positioned and adjusted to prevent the conveying device 500 from failing to deliver the stone slab 100 to the accurate position, thus ensuring the smooth progress of the edging. The second preset height is lower than the first preset height.

[0067] Furthermore, in this embodiment, the pre-positioning mechanism 800 includes a lifting frame 810 and a third drive mechanism 820. The lifting frame 810 is mounted on the main body 400 and has multiple guide grooves 811. Each guide groove 811 is used to slide in contact with the edges and corners of the stone slab 100. The second drive mechanism 620 is mounted on the lifting frame 810.

[0068] For example, such as Figure 5As shown, the lifting frame 810 has four guide grooves 811, which can be arranged in a rectangle, corresponding to the corners of the stone slab 100. The cross-section formed by each guide groove 811 gradually narrows in the vertically downward direction. The guide grooves 811 are used for sliding contact with the corners of the stone slab 100, allowing the stone slab 100 to self-align during the lifting process. The third drive mechanism 820 can also be composed of a cylinder and a guide rod, which are arranged vertically. The upper ends of the cylinder and the guide rod are connected to the lifting frame 810, and the lower ends are connected to the main body 400 of the equipment. The second drive mechanism 620 is installed on the lifting frame 810, resulting in a more reasonable and compact structure. Of course, the third drive mechanism 820 can also be replaced by other types of mechanisms. The specific structure and type of the lifting frame 810 and the third drive mechanism 820 can be determined according to actual needs, and this embodiment does not impose too many restrictions.

[0069] The above content is merely an example and illustration of the structure of this application. Those skilled in the art can make various modifications or additions to the specific embodiments described or use similar methods to replace them, as long as they do not deviate from the structure of this application, they should all fall within the protection scope of this application.

Claims

1. A curtain wall fixing structure, characterized in that, The device includes a stone slab (100), at least two metal parts (200) and a vibration damping part (300). The stone slab (100) is divided into a first section (110) and a second section (120) in sequence from the front to the back. The outer dimensions of the second section (120) are smaller than the outer dimensions of the first section (110), and a circumferential groove (121) is provided on the second section (120). The metal component (200) includes a connected side plate (210) and a back plate (220). The side plate (210) covers the periphery of the second plate segment (120). The side plate (210) has a raised edge (211) that is inserted into the circumferential groove (121). The back plate (220) abuts against a portion of the back of the stone slab (100). Adjacent back plates (220) are fixedly connected. The back plate (220) also has a connecting part (221) for connecting to the wall (10). The vibration damper (300) is disposed between the side plate (210) and the second plate segment (120), between the back plate (220) and part of the back side of the stone plate (100), and between the raised edge (211) and the circumferential groove (121).

2. The curtain wall fixing structure according to claim 1, characterized in that, The inner two side walls of the circumferential groove (121) are respectively inclined and steep, the inclined surface is close to the back of the stone slab (100), and the steep surface is close to the front of the stone slab (100); Towards the bottom of the circumferential groove (121), the distance between the inclined surface and the steep surface gradually decreases, and the damping element (300) is bonded to the inner wall of the side plate (210), the inner wall of the back plate (220), and the surface of the protruding edge (211).

3. The curtain wall fixing structure according to claim 2, characterized in that, The back plate (220) also has a positioning protrusion, and the positioning protrusion has a tapered hole (222) facing the corresponding side plate (210). The tapered hole (222) is used to be inserted and positioned with the tapered protrusion (722) on the mounting device.

4. An installation device applied to the curtain wall fixing structure as described in claim 3, characterized in that, It includes a main body (400) and a conveying device (500), a lifting device (600), multiple edge-wrapping devices (700) and multiple welding devices disposed on the main body (400), and the main body (400) has an installation station; The conveying device (500) is used to convey the stone slab (100) laterally to the installation station, with the front of the stone slab (100) facing down; the lifting device (600) is located below the installation station and is used to lift the stone slab (100) to a first preset height; Each of the edge-sealing devices (700) is located above the installation station and surrounds the perimeter of the installation station. It is used to push the metal part (200) toward the stone slab (100), so that the side plate (210) abuts against the second plate segment (120), and the protruding edge (211) is inserted into the circumferential groove (121), and the back plate (220) abuts against a portion of the back side of the stone slab (100). Each of the welding devices is surrounded around the perimeter of the installation station and is used to weld the joints of adjacent back plates (220).

5. The installation equipment according to claim 4, characterized in that, The edge-binding device (700) includes a support base (710), a mounting base (720), a triggering mechanism (730), and a first driving mechanism (740). The support base (710) moves along a horizontal direction close to or away from the mounting position, and the first driving mechanism (740) is connected to the support base (710) in a transmission manner. The mounting base (720) is used to place the metal part (200) and move obliquely towards or away from the installation position. The triggering mechanism (730) is disposed on the support base (710) and is connected to the mounting base (720) in a transmission manner. When the first driving mechanism (740) drives the support base (710) to approach the installation station, and the triggering mechanism (730) contacts the peripheral wall of the corresponding first plate segment (110), it drives the installation base (720) to move diagonally downward toward the installation station.

6. The installation equipment according to claim 5, characterized in that, The triggering mechanism (730) includes a trigger rod (731), a support rod (732), a transmission assembly (733), and an elastic reset member (734). The trigger rod (731) is moved along the horizontal direction near or away from the installation position and is located below the support base (710). The support rod (732) is mounted on the support base (710) at an angle that moves toward or away from the installation position and is fixed to the installation base (720). It is also connected to the trigger rod (731) via the transmission assembly (733). The elastic reset member (734) is connected to the trigger rod (731) and the support base (710) respectively, so that the trigger rod (731) resets in a direction away from the installation position.

7. The installation equipment according to claim 6, characterized in that, The side of the mounting base (720) facing the mounting station is used to abut against the side plate (210), and the mounting base (720) is provided with a magnetic suction element (721) and a conical protrusion (722). The magnetic suction element (721) is used to attract the side plate (210), and the conical protrusion (722) is used to insert and position with the conical hole (222).

8. The installation equipment according to any one of claims 4 to 7, characterized in that, The lifting device (600) includes a lifting frame (610) and a second drive mechanism (620). The lifting frame (610) has a plurality of lifting parts (611) for contacting the front of the stone slab (100). The second drive mechanism (620) is connected to the lifting frame (610) to drive the lifting frame (610) to move in the vertical direction.

9. The installation equipment according to claim 8, characterized in that, It also includes a pre-positioning mechanism (800) disposed on the main body of the equipment (400), the pre-positioning mechanism (800) being located below the installation station, for lifting the stone slab (100) to a second preset height before the lifting device (600) lifts it, and for positioning and adjusting the periphery of the stone slab (100), the second preset height being lower than the first preset height.

10. The installation equipment according to claim 9, characterized in that, The pre-positioning mechanism (800) includes a lifting frame (810) and a third drive mechanism (820). The lifting frame (810) is mounted on the main body of the equipment (400) and has multiple guide grooves (811). Each guide groove (811) is used to slide in contact with the corner of the stone slab (100). The second drive mechanism (620) is mounted on the lifting frame (810).