Large-span glass curtain wall assembly device

By designing the conveying mechanism, gluing mechanism and displacement drive mechanism, and using rolling bodies and elastic displacement components to realize the rotation of the glass panel and its close proximity to the joint plate, the problem of difficult assembly of large-span glass curtain walls is solved, and lossless assembly and tight connection are achieved.

CN116876850BActive Publication Date: 2025-10-10WUHU JIACHENG DECORATION CO LTD
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Patent Information

Application Number
CN202310844817.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-07-11
Publication Date
2025-10-10
Estimated Expiration
2043-07-11

AI Technical Summary

Technical Problem

The assembly of a large-span glass curtain wall in a limited space is difficult and fragile. In the prior art, the glass panel cannot be placed between the clamping member and the bottom groove by horizontal movement.

Method used

A large-span glass curtain wall assembly device was designed, which includes a conveying mechanism, a gluing mechanism, a displacement drive mechanism and a connecting support structure. Rolling bodies and elastic displacement components are used to realize the rotation of the glass panel and its proximity to the joint plate. The vertical positioning and fixation of the glass panel are achieved through a rotatable bottom groove and support frame.

Benefits of technology

It realizes the non-destructive assembly of large-span glass curtain walls in a limited space, ensures the close connection between the glass panels and the joint plates, and improves the assembly efficiency and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to glass curtain wall assembly technical field, specifically to a kind of large-span glass curtain wall assembly device, the large-span glass curtain wall includes glass panel, bottom groove, cable and connecting support component;Connecting support component is equipped with joint plate;The device includes conveying mechanism, conveying mechanism includes rack, and hinge is equipped with support panel on rack, and first rolling body is equipped on support panel, and advancing mechanism is also equipped on rack;Gluing mechanism is equipped on the rack;The device also includes displacement drive mechanism, and displacement drive mechanism includes guide and elastic displacement component;In the present application, by controlling glass panel to rotate along the pivot of bottom groove, when glass panel forms vertical state, the bottom end of elastic displacement component will enter the displacement channel of guide, while the top end of elastic displacement component will drive joint plate on the both sides of bottom groove to contact with glass panel, to realize the non-destructive assembly of large-span glass curtain wall in limited space.
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Description

TECHNICAL FIELD

[0001] The present application relates to glass curtain wall assembly technical field, specifically is a kind of large-span glass curtain wall assembly device. BACKGROUND

[0002] Glass curtain wall assembly refers to the process of installing glass panels and related components on the building structure to form an exterior wall system.

[0003] As shown in Figure 1 Chinese patent: CN104790571B discloses single cable support large glass curtain, uses flexible single cable to realize the support to single block through height glass panel, is a kind of large-span full glass curtain wall, cable makes the present application itself have certain flexibility, has the effect of reducing for impact load, good safety.

[0004] But in the above curtain wall, glass panel needs to be installed between two joint plates, since the joint plate is fixedly connected with the cable, and the cable is also in a taut state, which requires the glass panel to be accurately placed in the position between the two joint plates;In addition, the top and bottom of the glass panel are fixed by clamping members and supported by a bottom groove, respectively, since the distance between the clamping member and the bottom groove is equal to the height of the glass panel, and the bottom groove is a U-shaped groove structure, the bottom of the glass panel is nested with the bottom groove, so the glass panel cannot be placed between the clamping member and the bottom groove by horizontal movement. SUMMARY

[0005] Therefore, the purpose of the present application is to provide a large-span glass curtain wall assembly device to solve the technical problems of difficult assembly and easy damage of large-span glass curtain wall in limited space.

[0006] To achieve the above purpose, the present application provides a large-span glass curtain wall assembly device for assembling glass panels of a large-span glass curtain wall;The large-span glass curtain wall includes glass panels, clamping members for fixing the upper ends of the glass panels, and bottom grooves for supporting the lower ends of the glass panels, and a cable is arranged between every two glass panels, and a connecting support member is arranged on the cable for bonding with the side wall of the glass panel.

[0007] The connecting support member is provided with a joint plate that can bond with the side wall of the glass panel.

[0008] The bottom of the bottom groove is provided with a support frame, and the bottom groove is rotatably connected with the support frame through a rotating shaft, and the rotating angle range is controllable.

[0009] The device includes a conveying mechanism for transferring the glass panel, the conveying mechanism includes a frame, a support panel is hingedly provided on the frame, the support panel is provided with a first rolling body for supporting the glass panel, and the frame is also provided with a propulsion mechanism for driving the support panel to rotate an angle. When the bottom end of the glass panel is nested in the bottom groove, the support panel can drive the glass panel to rotate along the rotation axis of the bottom groove through the first rolling body.

[0010] The frame is provided with a gluing mechanism for gluing the seam plates;

[0011] The device also includes a displacement drive mechanism for driving the joint plate to approach the side wall of the glass panel. The displacement drive mechanism includes a guide member provided on a frame, and an elastic displacement component provided on the support panel for driving the joint plate to move. One end of the elastic displacement component is always in contact with the outer edge surface of the guide member. A displacement channel is provided on the guide member. When the glass panel is located between the bottom groove and the clamping member, one end of the elastic displacement component will fall into the displacement channel, and the other end will drive the joint plate to approach the side wall of the glass panel.

[0012] Preferably, a first gear is fixedly provided on the rotating shaft of the bottom groove, and a unidirectionally rotatable protruding tooth is provided inside the supporting frame, and the protruding tooth is engaged with the first gear.

[0013] Preferably, the connecting support member includes a vertical plate, the vertical plate is fixedly mounted on the cable by a clamp, the joint plate is slidably mounted on the vertical plate, the joint plate is provided with a boss, the boss is sleeved with a nut, the nut is threadedly connected to the boss, and the nut is rotatably connected to the vertical plate, the nut is sleeved with a second gear, and the second gear is fixedly connected to the nut;

[0014] The connecting support member further includes a propulsion assembly for driving the second gear to rotate.

[0015] Preferably, the propulsion assembly includes a rack slidably arranged on the vertical plate, and the rack is engaged with the second gear. The rack is elastically connected to the vertical plate through a second elastic element. When the second elastic element is in an extended state, the seam plate is in a contracted state.

[0016] Preferably, the propulsion mechanism includes a sliding block slidably arranged on the frame, a connecting rod is provided between the frame and the support panel, both ends of the connecting rod are hinged to the sliding block and the support panel respectively, and a linear driver for driving the sliding block is provided on the frame.

[0017] Preferably, the gluing mechanism includes a lifting mechanism symmetrically arranged on the frame, a gluing head is provided at the output end of the lifting mechanism, and the lifting mechanism is slidably connected to the frame through a support block;

[0018] A first driving rod is rotatably provided on the frame, and two sections of threads are provided on the first driving rod in opposite directions, and the support block is threadedly connected to the first driving rod;

[0019] The frame is also provided with a rotation driver for controlling the rotation of the first driving rod. When the first driving rod is in a rotating state, the two lifting mechanisms will move away from or closer to each other.

[0020] Preferably, the lifting mechanism includes a stand fixedly mounted on the support block, with third gears rotatably mounted at both ends of the stand, the two third gears being connected via a chain transmission, and an outer ring being mounted on the side wall of the stand, and surrounding the chain;

[0021] A movable block is provided on the stand, and the movable block is slidably connected to the stand through a limit rod. A fourth gear is rotatably provided on the movable block. The fourth gear is located between the outer ring and the chain. A plurality of teeth are distributed on the inner edge surface of the outer ring. The fourth gear is engaged with the outer ring and the chain respectively. The glue applying head is installed on the movable block.

[0022] The frame is provided with a rotation linkage part for driving the third gear at the same end of the two vertical frames to rotate.

[0023] Preferably, the rotary linkage portion includes a second drive rod rotatably arranged on the frame, and the second drive rod is hexagonal, the second drive rod passes through the two vertical frames, and the second drive rod is transmission-connected to a third gear at the same end of the two vertical frames;

[0024] And a speed-increasing gear set is arranged on the frame, the input end of the speed-increasing gear set is connected to the rotating shaft of the supporting panel, and the output end thereof is connected to the second driving rod.

[0025] Preferably, the elastic displacement assembly includes a second sliding member slidably arranged on the support panel, a second rolling body is provided at the bottom end of the second sliding member, and a top end of the second sliding member is elastically connected to the support panel via a fourth elastic element;

[0026] The guide is disc-shaped, and the displacement channel includes a falling channel and a return channel. The inlet of the return channel is connected to the outlet of the falling channel. The outlet of the return channel is provided with a cover plate for blocking, and the cover plate can be opened in one direction.

[0027] When the support panel is in a vertical state, the fourth elastic element pushes the second rolling body at the bottom end of the second sliding member into the falling path, causing the second sliding member to move;

[0028] A sliding rod is provided on one side of the frame. During the assembly of the glass curtain wall, one end of the sliding rod faces the rack. A third rolling body is provided on the other end of the sliding rod. A fifth elastic element is sleeved on the sliding rod to drive the sliding rod away from the rack.

[0029] The second sliding member is provided with a slope block for driving the sliding rod to move. When the third rolling body contacts the slope block, the change of the contact point between the third rolling body and the slope block will control the displacement of the sliding rod.

[0030] Beneficial effects of the present invention:

[0031] The present invention drives the glass panel to rotate along the rotating axis of the bottom groove through the first rolling body on the supporting panel. When the glass panel forms a vertical state, the bottom end of the elastic displacement component will enter the displacement channel of the guide member. At the same time, the top end of the elastic displacement component will drive the joint plates on both sides of the bottom groove to contact the glass panel, thereby realizing non-destructive assembly of large-span glass curtain walls in a limited space. BRIEF DESCRIPTION OF THE DRAWINGS

[0032] In order to more clearly illustrate the technical solutions in the present invention or the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only for the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0033] Figure 1 This is a schematic diagram of the three-dimensional structure of the glass curtain wall before improvement;

[0034] Figure 2 This is a schematic diagram of the improved three-dimensional structure of the glass curtain wall;

[0035] Figure 3 This is a front view of the first working state of the present invention;

[0036] Figure 4 This is a schematic diagram of the three-dimensional structure of the first working state of the present invention Figure 1 ;

[0037] Figure 5 This is a front view of the second working state of the present invention;

[0038] Figure 6 This is a schematic diagram of the three-dimensional structure of the present invention in the second working state;

[0039] Figure 7 This is a front view of the third working state of the present invention;

[0040] Figure 8 This is a schematic diagram of the three-dimensional structure of the present invention in the third working state;

[0041] Figure 9 It is a schematic diagram of the three-dimensional structure of the bottom tank of the present invention;

[0042] Figure 10 Schematic diagram of the internal structure of the bottom tank of the present invention;

[0043] Figure 11 This is a schematic diagram of the three-dimensional structure of the first working state of the present invention Figure 2 ;

[0044] Figure 12It is a schematic diagram of the three-dimensional structure of the lifting mechanism of the present invention;

[0045] Figure 13 for Figure 11 A magnified view of point A;

[0046] Figure 14 It is a schematic diagram of the three-dimensional exploded structure of the connecting support member of the present invention;

[0047] Figure 15 for Figure 14 Enlarged view of point B;

[0048] Figure 16 A schematic diagram of the internal structure of the connecting support member of the present invention;

[0049] Figure 17 for Figure 8 Enlarged view of point C;

[0050] Figure 18 It is a schematic diagram of the three-dimensional structure of the guide member and the second rolling body in the first working state of the present invention;

[0051] Figure 19 A schematic diagram of the internal structure of the guide member and the second rolling element in the first working state of the present invention;

[0052] Figure 20 Schematic diagram of the internal structure of the guide member and the second rolling body in the third working state of the present invention.

[0053] The numbers in the figure are:

[0054] 1-Glass panel;

[0055] 2- Clamping member;

[0056] 3-bottom groove; 3a-support frame; 3b-first gear; 3c-convex tooth; 3d-first sliding member; 3e-first elastic element; 3f-bolt;

[0057] 4- Cable;

[0058] 5-connecting support member; 5a-jointing plate; 5a1-boss; 5a2-nut; 5a3-second gear; 5b-vertical plate; 5c-propulsion assembly; 5c1-rack; 5c2-second elastic element; 5c3-block; 5c4-third elastic element;

[0059] 6- conveying mechanism; 6a- frame; 6b- support panel; 6b1- first rolling element; 6c- propulsion mechanism; 6c1- sliding block; 6c2- connecting rod; 6c3- linear drive;

[0060] 7-gluing mechanism; 7a-gluing head; 7b-lifting mechanism; 7b1-stand; 7b2-third gear; 7b3-chain; 7b4-outer ring; 7b5-movable block; 7b6-limiting rod; 7b7-fourth gear; 7c-support block; 7d-first driving rod; 7e-rotational driver; 7f-rotational linkage; 7f1-second driving rod; 7f2-speed-increasing gear set;

[0061] 8-displacement drive mechanism; 8a-guide; 8a1-falling path; 8a2-return path; 8a3-covering plate; 8a4-torsion spring; 8b-elastic displacement assembly; 8b1-second sliding member; 8b2-second rolling element; 8b3-fourth elastic element; 8b4-slope block; 8c-sliding rod; 8d-third rolling element; 8e-fifth elastic element. DETAILED DESCRIPTION

[0062] In order to make the objectives, technical solutions and advantages of the present invention more clearly understood, the present invention is further described in detail below with reference to specific embodiments.

[0063] It should be noted that, unless otherwise defined, the technical or scientific terms used in the present invention should have the usual meanings understood by people with ordinary skills in the field to which the present invention belongs. The "first", "second" and similar words used in the present invention do not indicate any order, quantity or importance, but are only used to distinguish different components. "Include" or "comprise" and similar words mean that the elements or objects appearing before the word include the elements or objects listed after the word and their equivalents, without excluding other elements or objects. "Connect" or "connected" and similar words are not limited to physical or mechanical connections, but may include electrical connections, whether direct or indirect. "Up", "down", "left", "right" and the like are only used to indicate relative positional relationships. When the absolute position of the object being described changes, the relative positional relationship may also change accordingly.

[0064] Example 1

[0065] In order to solve the technical problems of difficulty in assembling large-span glass curtain walls and their fragility in limited space, such as Figures 2 to 9 As shown, the following preferred technical solutions are provided:

[0066] A large-span glass curtain wall assembly device is used to assemble glass panels 1 of the large-span glass curtain wall. The large-span glass curtain wall includes glass panels 1, clamping members 2 for fixing the upper ends of the glass panels 1, and bottom grooves 3 for supporting the lower ends of the glass panels 1. A cable 4 is provided between each two glass panels 1, and the cable 4 is provided with a connecting support member 5 for bonding to the side walls of the glass panels 1.

[0067] The connecting support member 5 is provided with a joint plate 5a which can be bonded to the side wall of the glass panel 1. There are two joint plates 5a, and the two joint plates 5a are symmetrically arranged along the longitudinal line of the connecting support member 5.

[0068] A support frame 3a is provided at the bottom of the bottom groove 3. The bottom groove 3 is rotatably connected to the support frame 3a via a rotating shaft, and the rotation angle range is controllable. The bottom groove 3 has a U-shaped groove structure. Before the glass panel 1 is prepared for installation, the groove opening of the bottom groove 3 faces the position of the glass panel 1.

[0069] The device includes a conveying mechanism 6 for transferring the glass panel 1, the conveying mechanism 6 includes a frame 6a, a support panel 6b is hingedly provided on the frame 6a, and a first rolling body 6b1 for supporting the glass panel 1 is provided on the support panel 6b. The first rolling body 6b1 is a roller but not limited to this. The frame 6a is also provided with a propulsion mechanism 6c for driving the support panel 6b to rotate angularly, and the propulsion mechanism 6c includes a sliding block 6c1 slidably provided on the frame 6a, and a connecting rod 6c2 is provided between the frame 6a and the support panel 6b. The two ends of the connecting rod 6c2 are respectively hinged to the sliding block 6c1 and the support panel 6b, and a linear drive 6c3 for driving the sliding block 6c1 is provided on the frame 6a. The linear drive 6c3 is a cylinder or an electric push rod but not limited to this. When the bottom end of the glass panel 1 is nested in the bottom groove 3, the support panel 6b can drive the glass panel 1 to rotate along the rotating axis of the bottom groove 3 through the first rolling body 6b1;

[0070] The frame 6a is provided with a gluing mechanism 7 for gluing the joint plates 5a. The gluing mechanism 7 is used to gluing the joint plates 5a on both sides of the glass curtain wall.

[0071] The device also includes a displacement drive mechanism 8 for driving the joint plate 5a to approach the side wall of the glass panel 1. The displacement drive mechanism 8 is respectively arranged on both sides of the frame 6a and controls the joint plates 5a on both sides of the glass panel 1 respectively. The displacement drive mechanism 8 includes a guide 8a provided on the frame 6a, and an elastic displacement component 8b for driving the joint plate 5a to move is provided on the support panel 6b. One end of the elastic displacement component 8b is always in contact with the outer edge surface of the guide 8a. The guide 8a is provided with a displacement channel. When the glass panel 1 is located between the bottom groove 3 and the clamping member 2, one end of the elastic displacement component 8b will fall into the displacement channel, and the other end will drive the joint plate 5a to approach the side wall of the glass panel 1.

[0072] Specifically, the staff uses the glue coating mechanism 7 to apply glue to the joint plates 5a on both sides of the glass panel 1 to be placed. After the glue coating is completed, the staff inserts the bottom end of the glass panel 1 into the U-shaped recess of the bottom groove 3. The bottom of the glass panel 1 is mounted on the outer edge of the first rolling element 6b1. Then the pushing mechanism 6c starts to work. The output end of the linear actuator 6c3 pushes the sliding block 6c1, thereby causing one end of the connecting rod 6c2 to move. As the connecting rod 6c2 gradually turns to a vertical state, its other end pushes the supporting panel 6b to stand up. During the rotation of the supporting panel 6b, the first rolling element 6b1 rotatably mounted on the supporting panel 6b will drive the glass panel 1 to rotate along the rotating axis of the bottom groove 3. When the glass panel 1 forms a vertical state, the bottom end of the elastic displacement component 8b will enter the displacement channel of the guide 8a. At the same time, the top end of the elastic displacement component 8b will drive the joint plates 5a on both sides of the bottom groove 3 to contact the glass panel 1. Finally, the top of the glass panel 1 is fixed by the clamping member 2 to complete the assembly task of the large-span glass curtain wall.

[0073] Example 2

[0074] In order to ensure that the seam plate 5a can be closely connected with the glass panel 1 placement process after being glued, Figures 10 to 13 As shown, it is basically the same as the first embodiment, and further:

[0075] A first gear 3b is fixedly provided on the rotating shaft of the bottom groove 3, and a unidirectionally rotatable convex tooth 3c is provided inside the support frame 3a, and the convex tooth 3c is meshed with the first gear 3b. A slideway is opened inside the bottom groove 3, and the first sliding member 3d is slidably arranged inside the slideway. A bolt 3f is provided on the outside of the bottom groove 3 for controlling the position of the first sliding member 3d, and the bolt 3f is threadedly connected to the bottom groove 3, and the bolt 3f is rotatably connected to the first sliding member 3d. The convex tooth 3c is specifically hingedly mounted on the first sliding member 3d, and a first elastic element 3e is provided on the first sliding member 3d for pushing the convex tooth 3c. When the first sliding member 3d approaches the first gear 3b, the first elastic element 3e will always mesh with the first gear 3b when the first elastic element 3e is in an extended state. The first gear 3b only pushes the convex tooth 3c to deflect in a small range when it rotates in one direction. The first elastic element 3e is a spring but is not limited to this.

[0076] The gluing mechanism 7 includes a lifting mechanism 7b symmetrically arranged on the frame 6a, and a gluing head 7a is provided at the output end of the lifting mechanism 7b. The lifting mechanism 7b is slidably connected to the frame 6a through a support block 7c.

[0077] A first driving rod 7d is rotatably provided on the frame 6a. Two threads are provided on the first driving rod 7d in opposite directions. The support block 7c is threadedly connected to the first driving rod 7d.

[0078] The frame 6a is further provided with a rotation driver 7e for controlling the rotation of the first drive rod 7d. The rotation driver 7e is a servo motor, but is not limited thereto. The servo motor is connected to the first drive rod 7d via a synchronous pulley set. When the first drive rod 7d is in a rotating state, the two lifting mechanisms 7b will move away from or closer to each other.

[0079] The lifting mechanism 7b includes a stand 7b1 fixed to a support block 7c. A third gear 7b2 is rotatably mounted at each end of the stand 7b1. The two third gears 7b2 are connected by a chain 7b3. An outer ring 7b4 is mounted on the sidewall of the stand 7b1, surrounding the chain 7b3.

[0080] A movable block 7b5 is provided on the stand 7b1, and the movable block 7b5 is slidably connected to the stand 7b1 via a limiting rod 7b6. A fourth gear 7b7 is rotatably provided on the movable block 7b5. The fourth gear 7b7 is located between the outer ring 7b4 and the chain 7b3. A plurality of teeth are distributed on the inner edge surface of the outer ring 7b4. The fourth gear 7b7 is respectively engaged with the outer ring 7b4 and the chain 7b3. The glue coating head 7a is mounted on the movable block 7b5.

[0081] The frame 6a is provided with a rotation linkage portion 7f for driving the third gear 7b2 at the same end of the two upright frames 7b1 to rotate.

[0082] The rotating linkage part 7f includes a second driving rod 7f1 rotatably arranged on the frame 6a, and the second driving rod is hexagonal, the second driving rod 7f1 passes through the two vertical frames 7b1, and the second driving rod 7f1 is rotatably connected to the vertical frame 7b1, and the second driving rod 7f1 is transmission-connected to the third gear 7b2 at the same end of the two vertical frames 7b1. Specifically, the hexagonal shape of the second driving rod 7f1 can be slidingly connected to the third gear 7b2, but since the third gear 7b2 is rotatably connected to the vertical frame 7b1, the second driving rod 7f1 can drive the third gear 7b2 when rotating; and an increasing gear set 7f2 arranged on the frame 6a, the input end of the increasing gear set 7f2 is connected to the rotating shaft of the support panel 6b, and its output end is connected to the second driving rod 7f1.

[0083] Specifically, before the bottom end of the glass panel 1 is inserted into the bottom groove 3, the gluing mechanism 7 starts working. The rotary driver 7e drives the first driving rod 7d to rotate. The first driving rod 7d controls the two lifting mechanisms 7b to move to both sides through the support block 7c until the gluing heads 7a on the lifting mechanisms 7b contact the surface of the joint plate 5a.

[0084] Then the staff inserts the bottom end of the glass panel 1 into the U-shaped recess of the bottom groove 3. When the support panel 6b rotates and stands up along its axis, the axis of the support panel 6b will drive the second driving rod 7f1 to rotate through the speed-increasing gear set 7f2. The second driving rod 7f1 drives the chain 7b3 around the stand 7b1 through the third gear 7b2 to start rotating. Since the fourth gear 7b7 is between the chain 7b3 and the outer ring and meshes with both at the same time, the chain 7b3 will drive the movable block 7b5 to move along the path of the outer ring 7b4 during the rotation. A straight section of the path of the outer ring 7b4 will prompt the movable block 7b5 to drive the glue coating head 7a to pass through the surface of the joint plate 5a, thereby completing the glue coating task on the joint plate 5a. This gluing process is carried out simultaneously with the placement process of the glass panel 1, so it is necessary to set the speed-increasing gear set 7f2 to speed up the movement process of the glue coating head 7a, so as to ensure that the glue coating process has been completed before the glass panel 1 is completed vertically.

[0085] Example 3

[0086] In order to ensure that the glass panel 1 can be closely connected with the seam plate 5a and the side wall of the glass panel 1 after the glass panel 1 is placed, the lamination process is as follows: Figures 14 to 20 As shown, it is basically the same as the first embodiment, and further:

[0087] The connecting support member 5 includes a vertical plate 5b, which is fixedly mounted on the cable 4 by a clamp. The joint plate 5a is slidably mounted on the vertical plate 5b. The joint plate 5a is provided with a boss 5a1, which is sleeved with a nut 5a2. The nut 5a2 is threadedly connected to the boss 5a1 and the nut 5a2 is rotatably connected to the vertical plate 5b. The nut 5a2 is sleeved with a second gear 5a3, and the second gear 5a3 is fixedly connected to the nut 5a2.

[0088] The connecting support member 5 further includes a propulsion assembly 5c for driving the second gear 5a3 to rotate.

[0089] The propulsion assembly 5c includes a rack 5c1 slidably provided on the vertical plate 5b, and the rack 5c1 is meshed with the second gear 5a3. The rack 5c1 is elastically connected to the vertical plate 5b via a second elastic element 5c2. The second elastic element 5c2 is a spring but not limited to this. When the second elastic element 5c2 is in an extended state, the joint plate 5a is in a contracted state. A notch is provided at one end of the rack 5c1 close to the vertical plate 5b. A clamping block 5c3 is slidably provided on the back side of the vertical plate 5b. The clamping block 5c3 is elastically connected to the vertical plate 5b via a third elastic element 5c4. The third elastic element 5c4 is a spring but not limited to this. When the joint plate 5a is in an expanded state, the third elastic element 5c4 pushes the clamping block 5c3 to fit into the notch of the rack 5c1, so that the rack 5c1 cannot continue to move.

[0090] The elastic displacement assembly 8b includes a second sliding member 8b1 slidably disposed on the support panel 6b. The bottom end of the second sliding member 8b1 is provided with a second rolling body 8b2, which is a roller but not limited to this. The top end of the second sliding member 8b1 is elastically connected to the support panel 6b via a fourth elastic element 8b3, which is a spring but not limited to this.

[0091] The guide member 8a is disc-shaped, and the displacement channel includes a falling path 8a1 and a return path 8a2. The inlet of the return path 8a2 is connected to the outlet of the falling path 8a1. The outlet of the return path 8a2 is provided with a cover plate 8a3 for blocking. The cover plate 8a3 can be opened in one direction. The second rolling body 8b2 can enter the return path 8a2 from the falling path 8a1 and finally push the cover plate 8a3 open at the outlet of the return path 8a2. The outside of the guide member 8a is provided with a torsion spring 8a4 for controlling the cover plate 8a3 to block the outlet of the return path 8a2.

[0092] When the support panel 6b is in a vertical state, the fourth elastic element 8b3 pushes the second rolling body 8b2 at the bottom end of the second sliding member 8b1 into the falling path 8a1, causing the second sliding member 8b1 to move;

[0093] A sliding rod 8c is slidably mounted on one side of the frame 6a. The sliding rod 8c is specifically slidably mounted on the outside of the vertical frame 7b1. During assembly of the glass curtain wall, one end of the sliding rod 8c faces the rack 5c1. The other end of the sliding rod 8c is provided with a third rolling element 8d. A fifth elastic element 8e is sleeved on the sliding rod 8c for driving the sliding rod 8c away from the rack 5c1. The fifth elastic element 8e is a spring, but is not limited thereto.

[0094] The second sliding member 8b1 is provided with a slope block 8b4 for driving the displacement of the sliding rod 8c. When the third rolling body 8d contacts the slope block 8b4, the change of the contact point between the third rolling body 8d and the slope block 8b4 will control the displacement of the sliding rod 8c. The third rolling body 8d is a roller but is not limited to this.

[0095] Specifically, when the support panel 6b is in the initial state, the second rolling body 8b2 contacts the outer edge surface of the guide member 8a. When the elastic displacement component 8b rotates with the support panel 6b, the second rolling body 8b2 will roll along the outer edge surface of the guide member 8a, and the second rolling body 8b2 will pass through the outer surface of the cover plate 8a3. When the support panel 6b is in the vertical state, the narrow flat surface of the slope block 8b4 will contact the third rolling body 8d, and then the second rolling body 8b2 will be at the entrance of the falling path 8a1 of the guide member 8a. Under the push of the fourth elastic element 8b3, the second sliding member 8b1 moves downward and causes the second rolling body 8b2 is located inside the falling path 8a1; due to the downward displacement of the second sliding member 8b1, the ramp block 8b4 will also descend with it. During the descent of the ramp block 8b4, the narrow flat surface in contact with the third rolling element 8d will gradually be guided to the inclined surface, and finally the wide flat surface of the ramp block 8b4 will contact the third rolling element 8d; at this time, the third rolling element 8d is also pushed by the pressure to push the rack 5c1 through the sliding rod 8c to cause displacement; the displacement of the rack 5c1 in turn drives the second gear 5a3 and the nut 5a2 to rotate, and finally drives the joint plate 5a through the boss 5a1 to complete the movement of approaching the side wall of the glass panel 1;

[0096] During the resetting process of the support panel 6b, it is necessary to ensure that the second rolling body 8b2 returns to its initial position. During the process of the support panel 6b driving the second rolling body 8b2 in the elastic displacement assembly 8b to rotate with it, the second rolling body 8b2 will move from the falling path 8a1 to the return path 8a2, and then push open the cover plate 8a3 and contact the outer edge surface of the guide member 8a, and the outer edge surface is parallel to the support panel 6b.

[0097] It should be understood by those skilled in the art that the discussion of any of the above embodiments is merely illustrative and is not intended to imply that the scope of the present invention (including the claims) is limited to these examples. Within the scope of the present invention, the technical features in the above embodiments or different embodiments may be combined, the steps may be implemented in any order, and there are many other variations of the different aspects of the present invention as described above, which are not provided in detail for the sake of simplicity.

[0098] The present invention is intended to cover all such substitutions, modifications and variations that fall within the broad scope of the appended claims. Therefore, any omissions, modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included within the scope of protection of the present invention.

Claims

1. A large-span glass curtain wall assembly device, which is used for assembling glass panels (1) of the large-span glass curtain wall; the large-span glass curtain wall comprises glass panels (1), a clamping member (2) for fixing the upper end of the glass panel (1), and a bottom groove (3) for supporting the lower end of the glass panel (1); a cable (4) is provided between each two glass panels (1); and a connecting support member (5) is provided on the cable (4) for bonding to the side wall of the glass panel (1); It is characterized in that A joint plate (5a) capable of bonding to the side wall of the glass panel (1) is provided on the connecting support member (5); A support frame (3a) is provided at the bottom of the bottom trough (3), and the bottom trough (3) is rotatably connected to the support frame (3a) via a rotating shaft, and the rotation angle range is controllable; The device comprises a conveying mechanism (6) for transferring the glass panel (1), the conveying mechanism (6) comprising a frame (6a), a support panel (6b) hingedly provided on the frame (6a), a first rolling body (6b1) for supporting the glass panel (1) provided on the support panel (6b), and a propulsion mechanism (6c) for driving the support panel (6b) to rotate at an angle provided on the frame (6a); when the bottom end of the glass panel (1) is nested in the bottom groove (3), the support panel (6b) can drive the glass panel (1) to rotate along the rotation axis of the bottom groove (3) through the first rolling body (6b1); The frame (6a) is provided with a gluing mechanism (7) for gluing the joint plate (5a); The device further comprises a displacement driving mechanism (8) for driving the joint plate (5a) to be close to the side wall of the glass panel (1), the displacement driving mechanism (8) comprising a guide member (8a) provided on the frame (6a), an elastic displacement component (8b) for driving the joint plate (5a) to move provided on the support panel (6b), one end of the elastic displacement component (8b) always being in contact with the outer edge surface of the guide member (8a), a displacement channel being provided on the guide member (8a), and when the glass panel (1) is located between the bottom groove (3) and the clamping member (2), one end of the elastic displacement component (8b) will fall into the displacement channel, and the other end will drive the joint plate (5a) to be close to the side wall of the glass panel (1); The connecting support member (5) includes a vertical plate (5b), the vertical plate (5b) is fixedly mounted on the cable (4) by a clamp, the joint plate (5a) is slidably mounted on the vertical plate (5b), the joint plate (5a) is provided with a boss (5a1), the boss (5a1) is sleeved with a nut (5a2), the nut (5a2) is threadedly connected to the boss (5a1), and the nut (5a2) is rotatably connected to the vertical plate (5b), the nut (5a2) is sleeved with a second gear (5a3), and the second gear (5a3) is fixedly connected to the nut (5a2); The connecting support member (5) further includes a propulsion assembly (5c) for driving the second gear (5a3) to rotate; The propulsion assembly (5c) includes a rack (5c1) slidably arranged on the vertical plate (5b), and the rack (5c1) is meshed with the second gear (5a3). The rack (5c1) is elastically connected to the vertical plate (5b) via a second elastic element (5c2). When the second elastic element (5c2) is in an extended state, the joint plate (5a) is in a contracted state.

2. The large-span glass curtain wall assembly device according to claim 1, characterized in that: A first gear (3b) is fixedly provided on the rotating shaft of the bottom groove (3), and a unidirectionally rotatable protruding tooth (3c) is provided inside the support frame (3a), and the protruding tooth (3c) is meshed with the first gear (3b).

3. The large-span glass curtain wall assembly device according to claim 1, characterized in that: The propulsion mechanism (6c) includes a sliding block (6c1) slidably arranged on the frame (6a), a connecting rod (6c2) is provided between the frame (6a) and the support panel (6b), two ends of the connecting rod (6c2) are respectively hinged to the sliding block (6c1) and the support panel (6b), and a linear driver (6c3) for driving the sliding block (6c1) is provided on the frame (6a).

4. The large-span glass curtain wall assembly device according to claim 1, characterized in that: The gluing mechanism (7) includes a lifting mechanism (7b) symmetrically arranged on the frame (6a), a gluing head (7a) is provided at the output end of the lifting mechanism (7b), and the lifting mechanism (7b) is slidably connected to the frame (6a) via a support block (7c); A first driving rod (7d) is rotatably provided on the frame (6a), two sections of threads are provided on the first driving rod (7d) in opposite directions, and the support block (7c) is threadedly connected to the first driving rod (7d); The frame (6a) is also provided with a rotation driver (7e) for controlling the rotation of the first driving rod (7d). When the first driving rod (7d) is in a rotating state, the two lifting mechanisms (7b) will move away from or closer to each other.

5. The large-span glass curtain wall assembly device according to claim 4, characterized in that: The lifting mechanism (7b) includes a stand (7b1) fixedly mounted on a support block (7c); third gears (7b2) are rotatably mounted at both ends of the stand (7b1); the two third gears (7b2) are connected to each other via a chain (7b3); an outer ring (7b4) is mounted on a side wall of the stand (7b1), and the outer ring (7b4) surrounds the chain (7b3); A movable block (7b5) is provided on the stand (7b1), and the movable block (7b5) is slidably connected to the stand (7b1) via a limiting rod (7b6). A fourth gear (7b7) is rotatably provided on the movable block (7b5), and the fourth gear (7b7) is located between the outer ring (7b4) and the chain (7b3). A plurality of teeth are distributed on the inner edge surface of the outer ring (7b4). The fourth gear (7b7) is respectively engaged with the outer ring (7b4) and the chain (7b3). The glue coating head (7a) is installed on the movable block (7b5); The frame (6a) is provided with a rotating linkage part (7f) for driving the third gear (7b2) at the same end of the two vertical frames (7b1) to rotate.

6. The large-span glass curtain wall assembly device according to claim 5, characterized in that: The rotating linkage part (7f) includes a second driving rod (7f1) rotatably arranged on the frame (6a), and the second driving rod is hexagonal. The second driving rod (7f1) passes through the two vertical frames (7b1), and the second driving rod (7f1) is transmission-connected to a third gear (7b2) at the same end of the two vertical frames (7b1); And a speed-increasing gear set (7f2) is arranged on the frame (6a), the input end of the speed-increasing gear set (7f2) is connected to the rotating shaft of the supporting panel (6b), and the output end thereof is connected to the second driving rod (7f1).

7. The large-span glass curtain wall assembly device according to claim 1, characterized in that: The elastic displacement component (8b) includes a second sliding member (8b1) slidably arranged on the support panel (6b), a second rolling body (8b2) is arranged at the bottom end of the second sliding member (8b1), and the top end of the second sliding member (8b1) is elastically connected to the support panel (6b) via a fourth elastic element (8b3); The guide member (8a) is disc-shaped, and the displacement channel includes a falling path (8a1) and a return path (8a2). The inlet of the return path (8a2) is connected to the outlet of the falling path (8a1). The outlet of the return path (8a2) is provided with a covering plate (8a3) for blocking, and the covering plate (8a3) can be opened in one direction. When the supporting panel (6b) is in a vertical state, the fourth elastic element (8b3) pushes the second rolling body (8b2) at the bottom end of the second sliding member (8b1) into the falling path (8a1), causing the second sliding member (8b1) to be displaced; A sliding rod (8c) is provided on one side of the frame (6a) for sliding movement. During the assembly of the glass curtain wall, one end of the sliding rod (8c) faces the rack (5c1). The other end of the sliding rod (8c) is provided with a third rolling body (8d). A fifth elastic element (8e) is sleeved on the sliding rod (8c) for driving the sliding rod (8c) away from the rack (5c1). The second sliding member (8b1) is provided with a slope block (8b4) for driving the displacement of the sliding rod (8c). When the third rolling body (8d) contacts the slope block (8b4), the change in the contact point between the third rolling body (8d) and the slope block (8b4) controls the displacement of the sliding rod (8c).

Citation Information

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