Assembling type mounting structure of aluminum plate large line on facade of large-scale high-rise building
By combining the installation body, control buttons, forward and reverse motors, rotating structure and foot-operated structure, the stability and flexibility issues of the assembled installation structure are solved, stable positioning and convenient adjustment during the aluminum plate assembly process are achieved, and assembly efficiency is improved.
Patent Information
- Application Number
- CN202510978759.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-16
- Publication Date
- 2025-09-26
AI Technical Summary
The existing assembled installation structure cannot guarantee stability and flexibility during the assembly and installation process, and is prone to assembly deviation. At the same time, it is impossible to adjust the operator's operation direction in real time according to actual needs, which affects the convenience of adjusting the installation direction during aluminum plate assembly and reduces assembly and installation efficiency.
It adopts a combined design including the installation body, control buttons, forward and reverse motors, rotating structure, foot structure and mobile structure. The forward and reverse motors drive the connecting rod to rotate, driving the gears and tapered tube to rotate. Combined with the movement of the lifting plate and pressing plate of the foot structure and mobile structure, flexible adjustment and stable positioning of the installation plate are achieved, ensuring the stability and flexibility of the assembly process.
The stability and flexibility of the assembled installation structure are improved, assembly deviation is prevented, the convenience of the constructor in adjusting the operation direction according to actual needs is enhanced, and the assembly and installation efficiency is improved.
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Figure CN120701082A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of building installation, and in particular to an assembled installation structure for large lines of aluminum plates on the facades of large high-rise buildings. Background Art
[0002] Large aluminum cladding lines are ultra-large, continuous aluminum decorative and structural components used on the facades of supertall buildings (150 meters or more). Their exaggerated linear language reshapes the architectural silhouette, embodying the triple value of aesthetic expression, functional support, and technological integration. In supertall buildings, large aluminum cladding lines have evolved from a decorative element to a key component of performance-based cladding. Their technological development signals the comprehensive evolution of the construction industry toward precision, intelligence, and sustainability. In the future, they will be deeply integrated with BIPV and intelligent dimming technologies, becoming the "technological epidermis" of supertall buildings.
[0003] At present, an assembled installation structure is required for assembling large lines of aluminum panels on building facades. The existing assembled installation structure cannot guarantee stability and flexibility during the assembly and installation process, and is prone to assembly offset. At the same time, it is impossible to adjust the operator's operating direction in real time according to actual needs, which affects the convenience of adjusting the installation direction during aluminum panel assembly and further reduces assembly and installation efficiency.
[0004] Therefore, a new type of assembled installation structure for large lines of aluminum panels on the facades of large high-rise buildings is proposed. Summary of the Invention
[0005] The purpose of the present invention is to provide an assembled installation structure for large aluminum plate strips on the facade of a large high-rise building to solve the problems raised in the above background technology: The existing assembled installation structure cannot guarantee stability and flexibility during the assembly and installation process, and is prone to assembly deviation. At the same time, it is impossible to adjust the operator's operating direction in real time according to actual needs, which affects the convenience of adjusting the installation direction during aluminum plate assembly and further reduces assembly and installation efficiency.
[0006] In order to achieve the above object, the present invention provides the following technical solutions: An assembled mounting structure for large lines of aluminum plates on the facades of large high-rise buildings, comprising a mounting body, a control button fixedly connected to the middle of the right end of the mounting body, two connecting frames fixedly connected on both sides of the lower end of the mounting body, a group of threaded holes formed at the upper ends of the four connecting frames, a device slot formed at the upper end of the mounting body, a forward and reverse motor fixedly connected to the middle of the lower end of the mounting body, the output ends of the forward and reverse motors passing through the mounting body and fixedly connected to a rotating structure, a foot structure and a support frame provided at the middle of the upper end of the mounting body, the foot structure being located inside the support frame, and the foot structure being rotatably connected to the support frame, a movable structure being slidably connected to both sides of the upper end of the mounting body, and the two movable structures being mounted in opposite directions to each other.
[0007] Preferably, a through groove and a circular groove are opened in the middle of the upper end of the installation body, the through groove is located in the circular groove, and movable grooves are opened on both sides of the upper end of the installation body. The interior of the installation body is opened with a conical groove, a connecting groove, a limiting groove, two inclined grooves and two L-shaped grooves, the limiting groove is set to be circular, and the limiting groove is connected to the conical groove, the conical groove, the connecting groove and the limiting groove are all connected to the through groove, the two movable grooves are respectively connected to the two L-shaped grooves, and the two inclined grooves are installed in opposite directions to each other.
[0008] By adopting the above technical solution, the inclined groove enables the assembled installation structure to move toward each other during adjustment, thereby increasing the flexibility and practicality of the installation structure.
[0009] Preferably, the rotating structure includes a connecting rod, the upper end of the connecting rod is provided with a cross groove, the outer surface of the connecting rod is fixedly connected to a conical tube and a gear, the conical tube is located below the gear, and one side of the outer surface of the conical tube is rotatably connected to a number of number one pulleys, and one side of the upper end of the conical tube is rotatably connected to a number of number one rollers.
[0010] By adopting the above technical solution, the conical tube rotates in the conical groove through the No. 1 pulley and the No. 1 roller, which can drive the mounting plate to adjust the installation position. The No. 1 pulley and the No. 1 roller increase the flexibility and stability of the conical tube rotation.
[0011] Preferably, the connecting rod is rotatably connected to the mounting body through a through groove, and the bottom end of the connecting rod is fixedly connected to the output end of the forward and reverse motors, the gear is located in the connecting groove, the conical tube is located in the conical groove, several of the No. 1 pulleys and No. 1 rollers are rotatably connected to the mounting body, and several No. 1 rollers are located in the limit groove.
[0012] By adopting the above technical solution, the stability and flexibility during the assembly and installation process are guaranteed, and the assembly deviation is avoided during the assembly installation process.
[0013] Preferably, the foot structure includes a T-tube, a plurality of evenly distributed lifting plates are fixedly connected to the lower portion of the outer surface of the T-tube, and a cross plate is fixedly connected to the bottom end of the T-tube, and a pressing plate is fixedly connected to the end of each of the lifting plates away from the T-tube.
[0014] By adopting the above technical solution, the rotation of the connecting rod drives the gear and the rack engaged with it to move toward each other, thereby adjusting the installation position of the mounting plate. At the same time, if the constructor needs to adjust the distance from the building wall, he steps on the T-tube to drive the lifting plate and the pressing plate to move downward.
[0015] Preferably, a lifting slot is opened in the middle of the upper end of the support frame, square frames are provided on both sides of the lower end of the support frame, a circular tube is fixedly connected to the middle of the lower end of the support frame, and the lower end of the circular tube is rotatably connected to two No. 3 rollers.
[0016] By adopting the above technical solution, the rising plate moves down into the square frame, the cross plate is clamped into the cross slot, and the rotation of the connecting rod can drive the support frame to adjust its direction, allowing the construction workers to adjust the operation direction and the distance from the building wall in real time according to actual needs.
[0017] Preferably, the T-shaped tube is slidably connected to the support frame through a lifting groove, several lifting plates and pressing plates are slidably connected to the support frame through the lifting groove, the position of the cross plate corresponds to the position of the cross groove, the circular tube is rotatably connected to the installation body through the No. 3 roller, and the circular tube and the No. 3 roller are both located in the circular groove.
[0018] By adopting the above technical solution, the foot is lifted, and the rising plate rises and is inserted into the support frame through the squeezing of the support spring. At this time, the support frame is limited, the cross plate is disengaged from the cross slot, and the support frame no longer rotates when the connecting rod rotates, making it more convenient to adjust the installation direction when assembling the aluminum plate.
[0019] Preferably, two supporting springs are fixedly connected to the bottom of the inner surface of the square frame, and the upper ends of the two supporting springs are commonly fixedly connected to a rising plate. Both ends of the rising plate are rotatably connected to the No. 4 roller. The bottom end of the square frame is fixedly connected to the mounting body, and the upper part of the outer surface of the rising plate penetrates and is slidably connected to the square frame, and the lower part of the outer surface of the rising plate is slidably connected to the square frame through two No. 4 rollers. The position of the rising plate corresponds to the position of the pressing plate.
[0020] By adopting the above technical solution, the support frame no longer rotates when the connecting rod rotates, making it more convenient to adjust the installation direction when assembling the aluminum plate, and increasing the practicality of the assembled installation structure.
[0021] Preferably, the movable structure includes an L-shaped plate, one end of the L-shaped plate is rotatably connected to two second pulleys, and the other end of the L-shaped plate is fixedly connected to a rack, the inner surface of the L-shaped plate is fixedly connected to a fixed tube, the outer surface of the fixed tube is sleeved and slidably connected to a spring column, one side of the outer surface of the movable end of the spring column is rotatably connected to a sliding rod, and both sides of the movable end of the spring column are fixedly connected to anti-deflection plates, the end of the sliding rod away from the spring column is rotatably connected to a support plate, and the lower part of the end of the support plate away from the sliding rod is rotatably connected to the No. 2 roller, two anti-deflection grooves are opened inside the L-shaped plate, and the upper end of the support plate is fixedly connected to the mounting plate.
[0022] By adopting the above technical solution, the rotation of the gear can drive the rack meshing with it to move. When the rack moves left and right, the No. 2 roller moves up and down in the inclined groove, and the support plate realizes the movement state of moving up and horizontally through the upward movement of the No. 2 roller.
[0023] Preferably, the two L-shaped plates are respectively connected to the mounting body in a sliding manner through two L-shaped grooves, the four No. 2 pulleys are all connected to the mounting body in a sliding manner, the four anti-deflection plates are respectively located in the four anti-deflection grooves, the two No. 2 rollers are respectively located in the two inclined grooves, the two racks are respectively located in the two movable grooves, and the two racks are both meshed with the gears.
[0024] By adopting the above technical solution, the slide rod is driven to tilt when the support plate moves up, and the slide rod can drive the spring column located on the outer surface of the fixed tube to expand and contract up and down, thereby increasing the stability of the support plate's up and down movement and preventing the support plate from tilting during the synchronous operation of translation and upward movement. When the spring column expands and contracts, it drives the anti-deflection plate located in the anti-deflection groove to move up and down.
[0025] Compared with the prior art, the present invention has the following beneficial effects: In the present invention, by providing a rotating structure, when performing assembly-type installation of large aluminum plate lines on the facade of a large high-rise building, the forward and reverse rotation of the motor is controlled to drive the connecting rod to rotate, driving the gear to rotate in the connecting groove. At the same time, the tapered tube rotates in the tapered groove through the No. 1 pulley and the No. 1 roller, which can drive the mounting plate to adjust the installation position. The No. 1 pulley and the No. 1 roller increase the flexibility and stability of the tapered tube rotation, thereby better ensuring the stability and flexibility of the assembly and installation process and preventing the occurrence of assembly deviation during the assembly and installation process. The present invention provides a foot-operated structure, and when assembling and installing large lines of aluminum panels on the facades of large high-rise buildings, if the constructor needs to adjust the distance from the building wall, the foot-operated T-tube drives the lifting plate and the pressing plate to move downward, so that the rising plate moves down and enters the square frame, and the cross plate is locked in the cross slot. The rotation of the connecting rod can drive the support frame to adjust the direction, and the operation direction and the distance from the building wall can be adjusted in real time according to actual needs. When the corresponding operation direction is adjusted to the corresponding operation direction, the foot is lifted, and the rising plate is lifted up and inserted into the support frame by the compression of the supporting spring. At this time, the support frame is limited, and the cross plate is disengaged from the cross slot. When the connecting rod rotates, the support frame no longer rotates with it, which makes it more convenient to adjust the installation direction during the assembly of the aluminum panel, thereby increasing the practicality of the assembled installation structure. In the present invention, by setting a movable structure, when assembling and installing large lines of aluminum plates on the facades of large high-rise buildings, the rotation of the gear can drive the rack meshed with it to move. When the rack moves left and right, the No. 2 roller moves up and down in the inclined groove, realizing a motion state of moving up and down at the same time. When the support plate moves up, it drives the slide bar to tilt, which can drive the spring column located on the outer surface of the fixed tube to stretch up and down, thereby increasing the stability of the support plate's up and down movement. When the spring column stretches and contracts, it drives the anti-deflection plate located in the anti-deflection groove to move up and down, further increasing the stability and flexibility of the operation of the assembled installation structure and improving the assembly and installation efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 This is a schematic diagram of the overall cross-sectional structure of an assembled installation structure for large aluminum plate strips on the facade of a large high-rise building according to the present invention; Figure 2 This is a schematic diagram of the overall working state of an assembled installation structure for large aluminum plate strips on the facade of a large high-rise building according to the present invention; Figure 3 This is a cross-sectional schematic diagram of the installation body of an assembled installation structure for large aluminum plate strips on the facade of a large high-rise building according to the present invention; Figure 4 This is a structural schematic diagram of a rotating structure of an assembled installation structure for large aluminum plate strips on the facade of a large high-rise building according to the present invention; Figure 5 This is a schematic diagram of the connection structure of the footrest structure and the support frame of an assembled installation structure for large lines of aluminum panels on the facade of a large high-rise building according to the present invention; Figure 6 This is a structural schematic diagram of a movable structure of an assembled installation structure for large aluminum plate strips on the facade of a large high-rise building according to the present invention; Figure 7 This is a structural schematic diagram of a square frame of an assembled installation structure for large aluminum plate lines on the facade of a large high-rise building according to the present invention; Figure 8The present invention is a schematic diagram of the connection structure of the rotating structure, the foot structure, the supporting frame and the moving structure of the assembled installation structure of the large lines of the aluminum plate on the facade of a large high-rise building.
[0027] Figure: 1. Mounting body; 2. Control button; 3. Connecting frame; 4. Threaded hole; 5. Mounting slot; 6. Forward and reverse motor; 7. Rotating structure; 8. Foot-operated structure; 9. Support frame; 10. Moving structure; 11. Through slot; 12. Circular slot; 13. Conical slot; 14. Connecting slot; 15. Limiting slot; 16. Inclined slot; 17. Moving slot; 18. L-shaped slot; 71. Connecting rod; 72. Cross slot; 73. Conical tube; 74. Gear; 75. Pulley No. 1; 76. Roller No. 1; 101 , L-shaped plate; 102, pulley No. 2; 103, fixed tube; 104, spring column; 105, slide bar; 106, support plate; 107, roller No. 2; 108, anti-skewness plate; 109, anti-skewness groove; 1011, mounting plate; 1012, rack; 81, T-shaped tube; 82, cross plate; 83, lifting plate; 84, pressing plate; 91, square frame; 92, lifting groove; 93, round tube; 94, roller No. 3; 911, support spring; 912, rising plate; 913, roller No. 4. DETAILED DESCRIPTION
[0028] For example 1, please refer to Figures 1 to 4 , an assembled installation structure for large lines of aluminum plates on the facade of a large high-rise building, including an installation body 1, a control button 2 is fixedly connected to the middle part of the right end of the installation body 1, and the control button 2 is used to control the operation of the forward and reverse motor 6, which is a switch device in the prior art. Two connecting frames 3 are fixedly connected on both sides of the lower end of the installation body 1, and a group of threaded holes 4 are opened on the upper ends of the four connecting frames 3. The threaded holes 4 are used to connect the installation body 1 with construction equipment for use. A device slot 5 is opened on the upper end of the installation body 1, and the middle part of the lower end of the installation body 1 is fixedly connected to the forward and reverse motor 6. The forward and reverse motor 6 is an existing device. The output end of the forward and reverse motor 6 passes through the installation body 1 and is fixedly connected to a rotating structure 7. A foot structure 8 and a support frame 9 are provided in the middle part of the upper end of the installation body 1. The foot structure 8 is located in the support frame 9, and the foot structure 8 is rotatably connected to the support frame 9. Both sides of the upper end of the installation body 1 are slidably connected to a moving structure 10. The two moving structures 10 are installed in opposite directions to realize the relative movement of the aluminum plate.
[0029] A through groove 11 and a circular groove 12 are provided in the middle of the upper end of the installation body 1. The through groove 11 is located in the circular groove 12. Movable grooves 17 are provided on both sides of the upper end of the installation body 1. A conical groove 13, a connecting groove 14, a limiting groove 15, two inclined grooves 16 and two L-shaped grooves 18 are provided inside the installation body 1. The limiting groove 15 is set to be circular, and the limiting groove 15 is connected to the conical groove 13. The conical groove 13, the connecting groove 14 and the limiting groove 15 are all connected to the through groove 11. The two movable grooves 17 are respectively connected to the two L-shaped grooves 18, and the two inclined grooves 16 are installed in opposite directions to each other.
[0030] The rotating structure 7 includes a connecting rod 71, the upper end of which is provided with a cross groove 72, and the outer surface of the connecting rod 71 is fixedly connected to a tapered tube 73 and a gear 74, the tapered tube 73 is located below the gear 74, and one side of the outer surface of the tapered tube 73 is rotatably connected to a number of number one pulleys 75, and one side of the upper end of the tapered tube 73 is rotatably connected to a number of number one rollers 76, and the tapered tube 73 is rotated in the tapered groove 13 through the number one pulley 75 and the number one roller 76, which can drive the mounting plate 1011 to adjust the mounting position, and the number one pulley 75 and the number one roller 76 increase the flexibility and stability of the rotation of the tapered tube 73.
[0031] The connecting rod 71 is rotatably connected to the installation body 1 through the through groove 11, and the bottom end of the connecting rod 71 is fixedly connected to the output end of the forward and reverse motor 6, the gear 74 is located in the connecting groove 14, the tapered tube 73 is located in the tapered groove 13, several number one pulleys 75 and number one rollers 76 are rotatably connected to the installation body 1, and several number one rollers 76 are located in the limiting groove 15, and the number one rollers 76 are located in the limiting groove 15 to further distinguish the installation positions of the number one pulley 75 and the number one roller 76, thereby increasing the flexible area of the tapered tube 73 when rotating.
[0032] Steps for using the present invention: According to the present invention, when assembling and installing large lines of aluminum plates on the facades of large high-rise buildings, the construction worker stands on the support frame 9, places the aluminum plates on the mounting plate 1011, and limits and fixes the mounting plate 1011 by the limiting structure provided on the mounting plate 1011. The connecting rod 71 is driven to rotate by controlling the rotation of the forward and reverse motor 6, and the gear 74 is driven to rotate in the connecting groove 14. At the same time, the conical tube 73 is rotated in the conical groove 13 through the No. 1 pulley 75 and the No. 1 roller 76, which can drive the mounting plate 1011 to adjust the installation position. The No. 1 pulley 75 and the No. 1 roller 76 increase the flexibility and stability of the rotation of the conical tube 73, thereby better ensuring the stability and flexibility during the assembly and installation process, and preventing the occurrence of assembly offset during the assembly and installation process.
[0033] For example 2, please refer to Figures 5 to 7The difference between the embodiment and the foot structure 8 is that the foot structure 8 includes a T-tube 81, and a plurality of evenly distributed lifting plates 83 are fixedly connected to the lower part of the outer surface of the T-tube 81, and a cross plate 82 is fixedly connected to the bottom end of the T-tube 81. The ends of the plurality of lifting plates 83 away from the T-tube 81 are fixedly connected to a pressing plate 84, and the lifting plates 83 and the pressing plates 84 are both connected to the support frame 9 for upward sliding, and the pressing plates 84 penetrate and slide through the bottom of the support frame 9. When the lifting plates 83 move downward, they can drive the pressing plates 84 to slide out of the support frame 9. When the T-tube 81 is not under force, the rising plate 912 moves upward through the support spring 911 to press the pressing plate 84, and the rising plate 912 is inserted into the support frame 9 to realize the limiting effect on the support frame 9. The support frame 9 does not contact the mounting plate 1011 when turning.
[0034] A lifting groove 92 is provided in the middle of the upper end of the support frame 9, and square frames 91 are provided on both sides of the lower end of the support frame 9. A circular tube 93 is fixedly connected to the middle of the lower end of the support frame 9, and the lower end of the circular tube 93 is rotatably connected to two No. 3 rollers 94. When the support frame 9 rotates, the No. 3 rollers 94 are used to increase the flexibility and stability of the rotation of the support frame 9 and prevent the support frame 9 from tilting or offsetting during rotation.
[0035] The T-shaped tube 81 is slidably connected to the support frame 9 through the lifting groove 92, and several lifting plates 83 and pressing plates 84 are slidably connected to the support frame 9 through the lifting groove 92. The position of the cross plate 82 corresponds to the position of the cross groove 72. When the rising plate 912 is inserted into the support frame 9, the cross plate 82 is disengaged from the cross groove 72. At this time, the connecting rod 71 and the cross plate 82 are not in contact. The circular tube 93 is rotatably connected to the installation body 1 through the No. 3 roller 94, and the circular tube 93 and the No. 3 roller 94 are both located in the circular groove 12, which increases the flexibility and stability of the rotation of the support frame 9.
[0036] Two supporting springs 911 are fixedly connected to the bottom of the inner surface of the square frame 91, and the upper ends of the two supporting springs 911 are fixedly connected to a rising plate 912. Both ends of the rising plate 912 are rotatably connected to the fourth roller 913. The bottom end of the square frame 91 is fixedly connected to the mounting body 1, and the upper outer surface of the rising plate 912 penetrates and is slidably connected to the square frame 91, and the lower outer surface of the rising plate 912 is slidably connected to the square frame 91 through two fourth rollers 913. The position of the rising plate 912 corresponds to the position of the pressing plate 84. The fourth roller 913 contacts the inner surface of the square frame 91 and is embedded and slides, so that the fourth roller 913 not only increases the flexibility of the rising plate 912 moving up and down, but also increases the stability of the rising plate 912 moving up and down. The position of the rising plate 912 when rising corresponds to the position of the pressing plate 84.
[0037] When the support frame 9 is in a position to limit the cross plate 82, the support frame 9 no longer rotates with the rotation of the connecting rod 71, which makes it more convenient to adjust the installation direction when the aluminum plate is assembled, thereby increasing the practicality of the assembled installation structure.
[0038] For example three, please refer to Figures 1 to 8 , combined with the basis of the embodiment, the difference is that the mobile structure 10 includes an L-shaped plate 101, one end of the L-shaped plate 101 is rotatably connected to two second pulleys 102, the other end of the L-shaped plate 101 is fixedly connected to a rack 1012, the inner surface of the L-shaped plate 101 is fixedly connected to a fixed tube 103, the outer surface of the fixed tube 103 is sleeved and slidably connected to a spring column 104, one side of the outer surface of the movable end of the spring column 104 is rotatably connected to a sliding rod 105, both sides of the movable end of the spring column 104 are fixedly connected to anti-deflection plates 108, and the end of the sliding rod 105 away from the spring column 104 is rotatably connected to a support The lower part of one end of the support plate 106 away from the slide bar 105 is rotatably connected to the No. 2 roller 107. Two anti-deflection grooves 109 are opened inside the L-shaped plate 101. The upper end of the support plate 106 is fixedly connected to the mounting plate 1011. The rotation of the gear 74 can drive the rack 1012 meshed with it to move. When the rack 1012 moves left and right, the No. 2 roller 107 moves up and down in the inclined groove 16. The support plate 106 realizes the movement state of moving up and horizontally at the same time through the upward movement of the No. 2 roller 107, ensuring the flexibility and high efficiency of the assembled mounting structure during the assembly and installation of aluminum plates.
[0039] The two L-shaped plates 101 are slidingly connected to the installation body 1 through two L-shaped grooves 18 respectively, the four No. 2 pulleys 102 are all slidingly connected to the installation body 1, the four anti-deflection plates 108 are respectively located in the four anti-deflection grooves 109, the two No. 2 rollers 107 are respectively located in the two inclined grooves 16, the two racks 1012 are respectively located in the two movable grooves 17, and the two racks 1012 are both meshed with the gear 74. When the spring column 104 is extended and retracted, it drives the anti-deflection plate 108 located in the anti-deflection groove 109 to move up and down, and the side end of the anti-deflection plate 108 is provided with a roller, which further increases the stability and flexibility of the operation of the assembled installation structure.
[0040] The steps of using the present invention are as follows: When assembling and installing the large lines of the aluminum plate on the facade of a large high-rise building, the rotation of the gear 74 can drive the rack 1012 meshed with it to move. When the rack 1012 moves left and right, the second roller 107 moves up and down in the inclined groove 16, and the support plate 106 realizes the movement state of moving up and translationally by the upward movement of the second roller 107, and drives the slide bar 105 to tilt when the support plate 106 moves up, and the slide bar 105 can drive the spring column 104 located on the outer surface of the fixed tube 103 to stretch up and down, thereby increasing the stability of the support plate 106 moving up and down, and preventing the support plate 106 from tilting when performing synchronous translation and upward movement operations. When the spring column 104 stretches and contracts, it drives the anti-deflection plate 108 located in the anti-deflection groove 109 to move up and down, and the side end of the anti-deflection plate 108 is provided with a roller, which further increases the stability and flexibility of the operation of the assembled installation structure and improves the assembly and installation efficiency.
[0041] The above shows and describes the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely preferred examples of the present invention and are not intended to limit the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and improvements fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.
Claims
1. An assembled installation structure for large aluminum plate lines on the facade of a large high-rise building, comprising an installation body (1), characterized in that: The middle part of the right end of the installation body (1) is fixedly connected to a control button (2), and two connecting frames (3) are fixedly connected to both sides of the lower end of the installation body (1), and a group of threaded holes (4) are opened at the upper ends of the four connecting frames (3). The upper end of the installation body (1) is opened with a device slot (5), and the middle part of the lower end of the installation body (1) is fixedly connected to a forward and reverse motor (6), and the output end of the forward and reverse motor (6) passes through the installation body (1) and is fixedly connected to a rotating structure (7). The middle part of the upper end of the installation body (1) is provided with a foot structure (8) and a support frame (9), and the foot structure (8) is located in the support frame (9), and the foot structure (8) is rotatably connected to the support frame (9). Both sides of the upper end of the installation body (1) are slidably connected to a moving structure (10), and the two moving structures (10) are installed in opposite directions to each other.
2. The assembled installation structure for large aluminum plate strips on the facade of a large high-rise building according to claim 1 is characterized by: A through groove (11) and a circular groove (12) are provided in the middle of the upper end of the installation body (1), the through groove (11) is located in the circular groove (12), and movable grooves (17) are provided on both sides of the upper end of the installation body (1). A conical groove (13), a connecting groove (14), a limiting groove (15), two inclined grooves (16) and two L-shaped grooves (18) are provided inside the installation body (1), the limiting groove (15) is set to be circular, and the limiting groove (15) is connected to the conical groove (13), the conical groove (13), the connecting groove (14) and the limiting groove (15) are all connected to the through groove (11), the two movable grooves (17) are respectively connected to the two L-shaped grooves (18), and the two inclined grooves (16) are installed in opposite directions to each other.
3. The assembled installation structure for large aluminum plate strips on the facade of a large high-rise building according to claim 1 is characterized by: The rotating structure (7) includes a connecting rod (71), the upper end of the connecting rod (71) is provided with a cross groove (72), the outer surface of the connecting rod (71) is fixedly connected to a tapered tube (73) and a gear (74), the tapered tube (73) is located below the gear (74), and one side of the outer surface of the tapered tube (73) is rotatably connected to a plurality of first pulleys (75), and one side of the upper end of the tapered tube (73) is rotatably connected to a plurality of first rollers (76).
4. The assembled installation structure for large aluminum plate strips on the facade of a large high-rise building according to claim 3 is characterized by: The connecting rod (71) is rotatably connected to the installation body (1) through the through slot (11), and the bottom end of the connecting rod (71) is fixedly connected to the output end of the forward and reverse motor (6), the gear (74) is located in the connecting slot (14), the tapered tube (73) is located in the tapered slot (13), and the plurality of the number one pulleys (75) and the number one rollers (76) are rotatably connected to the installation body (1), and the plurality of number one rollers (76) are located in the limiting slot (15).
5. The assembled installation structure for large aluminum plate strips on the facade of a large high-rise building according to claim 1 is characterized by: The footrest structure (8) comprises a T-shaped tube (81), a plurality of evenly distributed lifting plates (83) are fixedly connected to the lower portion of the outer surface of the T-shaped tube (81), a cross plate (82) is fixedly connected to the bottom end of the T-shaped tube (81), and a pressing plate (84) is fixedly connected to the ends of the plurality of lifting plates (83) away from the T-shaped tube (81).
6. The assembled installation structure for large aluminum plate strips on the facade of a large high-rise building according to claim 5, characterized in that: A lifting slot (92) is provided in the middle of the upper end of the support frame (9), square frames (91) are provided on both sides of the lower end of the support frame (9), a circular tube (93) is fixedly connected to the middle of the lower end of the support frame (9), and the lower end of the circular tube (93) is rotatably connected to two No. 3 rollers (94).
7. The assembled installation structure for large aluminum plate strips on the facade of a large high-rise building according to claim 6, characterized in that: The T-shaped tube (81) is slidably connected to the support frame (9) through the lifting groove (92), and the plurality of lifting plates (83) and the pressing plate (84) are slidably connected to the support frame (9) through the lifting groove (92). The position of the cross plate (82) corresponds to the position of the cross groove (72). The circular tube (93) is rotatably connected to the installation body (1) through the third roller (94), and the circular tube (93) and the third roller (94) are both located in the circular groove (12).
8. The assembled installation structure for large aluminum plate strips on the facade of a large high-rise building according to claim 7, characterized in that: The bottom of the inner surface of the square frame (91) is fixedly connected to two supporting springs (911), and the upper ends of the two supporting springs (911) are fixedly connected to a rising plate (912). Both ends of the rising plate (912) are rotatably connected to a fourth roller (913). The bottom end of the square frame (91) is fixedly connected to the mounting body (1), and the upper portion of the outer surface of the rising plate (912) penetrates and is slidably connected to the square frame (91), and the lower portion of the outer surface of the rising plate (912) is slidably connected to the square frame (91) via the two fourth rollers (913). The position of the rising plate (912) corresponds to the position of the pressing plate (84).
9. The assembled installation structure for large aluminum plate strips on the facade of a large high-rise building according to claim 1, characterized in that: The movable structure (10) comprises an L-shaped plate (101), one end of the L-shaped plate (101) is rotatably connected to two second pulleys (102), the other end of the L-shaped plate (101) is fixedly connected to a rack (1012), the inner surface of the L-shaped plate (101) is fixedly connected to a fixed tube (103), the outer surface of the fixed tube (103) is sleeved and slidably connected to a spring column (104), and one side of the outer surface of the movable end of the spring column (104) is rotatably connected to a sliding rod ( 105), both sides of the movable end of the spring column (104) are fixedly connected with anti-deflection plates (108), one end of the slide bar (105) away from the spring column (104) is rotatably connected to the support plate (106), and the lower part of the end of the support plate (106) away from the slide bar (105) is rotatably connected to the second roller (107), two anti-deflection grooves (109) are opened inside the L-shaped plate (101), and the upper end of the support plate (106) is fixedly connected to the mounting plate (1011).
10. The assembled installation structure for large aluminum plate strips on the facade of a large high-rise building according to claim 9, characterized in that: The two L-shaped plates (101) are respectively slidably connected to the mounting body (1) via two L-shaped grooves (18); the four second pulleys (102) are all slidably connected to the mounting body (1); the four anti-deflection plates (108) are respectively located in the four anti-deflection grooves (109); the two second rollers (107) are respectively located in the two inclined grooves (16); the two racks (1012) are respectively located in the two movable grooves (17); and the two racks (1012) are both meshedly connected to the gear (74).