Building bottom non-framed beam curtain wall mounting system

By adjusting the components and the flexible movable components, the distance between the wall-connecting channel steel and the main keel adapter can be adjusted without the need for bolt alignment, which improves the efficiency of curtain wall connection and solves the problem of time-consuming and laborious bolt alignment.

CN223867492UActive Publication Date: 2026-02-03CHINA CONSTR SECOND BUREAU DECORATION ENG CO
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Patent Information

Application Number
CN202520394035.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-07
Publication Date
2026-02-03
Estimated Expiration
2035-03-07

AI Technical Summary

Technical Problem

When installing aluminum panel curtain walls on non-frame beams at the bottom of a building, the connection between the wall ties and the main keel adapter relies on bolts. Although this is secure, drilling is time-consuming and laborious, affecting installation efficiency.

Method used

The distance between the sliding sleeve and the fixed shell is adjusted by an adjustment component, and the bolts are elastically inserted into the main keel adapter by an elastic movable component, eliminating the need for hole alignment. Combined with hexagonal swivel blocks and guide rods, the movement stability and efficiency are improved.

Benefits of technology

It enables adjustment of the distance between the wall-connecting channel steel and the main keel adapter without the need for hole alignment, improving the efficiency of curtain wall connection and solving the problem of time-consuming and laborious bolt hole alignment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a building bottom non-frame beam curtain wall installation system which comprises a hyperbolic main keel installed on a hyperbolic aluminum veneer and a channel steel connecting piece installed on a concrete structure through a mechanical anchor bolt, and a main keel adapter is welded to the bottom of one side of the hyperbolic main keel. And the surface of the channel steel connecting piece is slidably connected with a sliding sleeve. Movement of the sliding sleeve and the fixing shell is adjusted through the adjusting assembly, the distance between the fixing shell and the main keel adapting piece is adjusted, after the distance is adjusted to be appropriate, the hyperbolic aluminum veneer is pushed, and the surface of the sliding sleeve is sleeved with the main keel adapting piece through the hyperbolic main keel; the bolt column elastically enters the inner cavity of the L-shaped groove through the elastic movable assembly, and the gasket nut is tightened, so that the purposes that the distance between the wall connecting channel steel and the main keel adapter can be adjusted, the bolt can elastically enter the main keel adapter, hole alignment is not needed, time is saved, efficiency is high, and the curtain wall connecting efficiency is improved are achieved.
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Description

Technical Field

[0001] This utility model belongs to the field of curtain wall construction technology, and in particular relates to a curtain wall installation system for non-frame beams at the bottom of a building. Background Technology

[0002] In a frame structure, the beams between the frame beams that transfer the weight of the floor slab to the frame beams first are called non-frame beams. When installing aluminum panel curtain walls on non-frame beams at the bottom of a building, the connection between the wall ties and the main keel adapter usually relies on bolts. Although the firmness is guaranteed, aligning the bolts with the holes is time-consuming and laborious, affecting the installation efficiency of the aluminum panel curtain wall. Therefore, we propose a curtain wall installation system for non-frame beams at the bottom of a building. This system can adjust the distance between the wall ties and the main keel adapter, and the bolts can be flexibly inserted into the main keel adapter without the need for alignment, saving time and increasing efficiency, thus improving the connection efficiency of the curtain wall. Utility Model Content

[0003] The purpose of this utility model is to provide a curtain wall installation system for non-frame beams at the bottom of buildings. This system has the advantages of being able to adjust the distance between the wall-connecting channel steel and the main keel adapter, and the bolts being able to elastically enter the main keel adapter without the need for hole alignment. This saves time and is highly efficient, improving the connection efficiency of the curtain wall. It solves the problem that when installing aluminum panel curtain walls on non-frame beams at the bottom of buildings, the connection between the wall-connecting channel steel and the main keel adapter generally relies on bolts. Although the firmness is guaranteed, the bolt hole alignment is time-consuming and laborious, affecting the installation efficiency of the aluminum panel curtain wall.

[0004] The technical solution of this utility model to solve the above-mentioned technical problems is as follows: A non-frame beam curtain wall installation system for the bottom of a building includes a hyperbolic main keel installed on a hyperbolic aluminum single panel and a channel steel connector installed on a concrete structure by mechanical anchor bolts. A main keel adapter is welded to the bottom of one side of the hyperbolic main keel. A sliding sleeve is slidably connected to the surface of the channel steel connector. An adjustment component is provided between the sliding sleeve and the main keel adapter. A fixed shell is embedded and fixedly installed on the right side of the channel steel connector. Two symmetrical cavities are opened on the right side of the fixed shell. A slider is slidably connected to the inner cavity of the cavity. Bolt columns are fixedly connected to the front and rear sides of the slider. Two L-shaped grooves adapted to the bolt columns are opened on the left side of the main keel adapter. A washer nut that fits on the main keel adapter is threaded to the surface of the bolt column. An elastic movable component is provided between the slider and the fixed shell.

[0005] The present invention, as described above, is a curtain wall installation system for non-frame beams at the bottom of a building. Further, the adjustment component includes a T-shaped through hole opened on the channel steel connector. A threaded column is rotatably connected to the inner cavity of the T-shaped through hole. A threaded sleeve is threadedly connected to the surface of the threaded column. A sliding groove is opened on the left side of the sliding sleeve to slide on the surface of the channel steel connector. The front and rear sides of the threaded sleeve are fixedly connected to the inner wall of the sliding groove.

[0006] The present invention further comprises, as described above, an installation system for curtain walls of non-frame beams at the bottom of buildings, wherein a hexagonal rotating block is fixedly connected to the surface of the threaded column.

[0007] The present invention, as described above, is a curtain wall installation system for non-frame beams at the bottom of a building. Further, the elastic movable component includes an inclined surface formed on one side of the L-shaped groove cavity, and a spring is fixedly connected between the slider and the inner wall of the cavity.

[0008] The present invention provides a further feature to the non-frame beam curtain wall installation system at the bottom of a building, as described above: the inner cavity of the cavity is provided with movable openings on both the front and rear sides for the bolt column to move.

[0009] The present invention provides a further embodiment of the installation system for curtain walls of non-frame beams at the bottom of buildings, as described above: a guide rod is fixedly connected to the inner cavity of the cavity, and both the slider and the spring are sleeved on the surface of the guide rod, with the slider and the guide rod being slidably connected.

[0010] The present invention further comprises the following: a tensioned vertical keel is provided on the top of the inner side of the hyperbolic aluminum single panel, and the upper part of the hyperbolic main keel is welded to the tensioned vertical keel.

[0011] The beneficial effects of this utility model are:

[0012] 1. This utility model adjusts the movement of the sliding sleeve and the fixed shell by adjusting the components, thereby adjusting the distance between the fixed shell and the main keel adapter. After adjusting to a suitable distance, the hyperbolic aluminum panel is pushed, and the hyperbolic main keel adapter fits onto the surface of the sliding sleeve through the hyperbolic main keel. The elastic movable component allows the bolt column to elastically enter the inner cavity of the L-shaped groove. Tightening the washer nut is sufficient. This achieves the goal of adjusting the distance between the wall connecting channel steel and the main keel adapter, and the bolt can elastically enter the main keel adapter without the need for hole alignment. This saves time and is highly efficient, improving the connection efficiency of the curtain wall. It solves the problem that when installing aluminum panel curtain walls on non-frame beams at the bottom of buildings, the connection between the wall connecting channel steel and the main keel adapter generally relies on bolts. Although the firmness is guaranteed, the bolt hole alignment is time-consuming and laborious, affecting the installation efficiency of the aluminum panel curtain wall.

[0013] 2. With the addition of a hexagonal rotating block, the user can use a wrench to rotate the T-shaped through hole on the surface of the hexagonal rotating block, providing a force point for rotating the T-shaped through hole and making it convenient for the user to rotate the T-shaped through hole.

[0014] 3. By setting the sliding groove, this utility model enables the sliding sleeve to slide on the surface of the channel steel connector, which limits and guides the movement of the sliding sleeve, avoids the sliding sleeve from swinging during the movement, and improves the stability of the sliding sleeve movement.

[0015] 4. By setting the guide rod, this utility model can guide the movement of the slider, prevent the slider from rotating inside the cavity, and also support the spring to prevent the spring from tilting or breaking, thus improving the stability of the slider and the spring.

[0016] 5. By setting the inclined surface, during the process of the main keel adapter being sleeved on the surface of the sliding sleeve, the inclined surface on the main keel adapter will first contact the bolt post, causing the two bolt posts at the upper and lower positions to move towards each other, thereby driving the slider to squeeze the spring until it enters the corner of the L-shaped groove. After the bolt post is no longer limited, the spring's rebound force causes the bolt post to enter the deepest part of the L-shaped groove, limiting the main keel adapter. Attached Figure Description

[0017] The advantages of the present invention, as described above and / or in the following detailed description in conjunction with the accompanying drawings, will become clearer and more readily understood. These drawings are merely illustrative and do not limit the scope of the present invention.

[0018] Figure 1 This is a schematic cross-sectional view of one embodiment of the present invention;

[0019] Figure 2 This is a three-dimensional disassembled schematic diagram of the sliding sleeve and main keel adapter according to an embodiment of the present utility model;

[0020] Figure 3 This is a three-dimensional disassembled schematic diagram of the channel steel connector, sliding sleeve, and fixed shell according to an embodiment of the present utility model;

[0021] Figure 4 This is a three-dimensional schematic diagram of the main keel adapter according to an embodiment of the present invention.

[0022] The attached diagram lists the components represented by each number as follows:

[0023] 1. Hyperbolic aluminum single panel; 2. Hyperbolic main keel; 3. Mechanical anchor bolt; 4. Channel steel connector; 5. Main keel adapter; 6. Sliding sleeve; 7. Adjustment component; 71. T-shaped through hole; 72. Threaded column; 73. Threaded sleeve; 74. Sliding groove; 75. Hexagonal rotating block; 8. Fixed shell; 9. Cavity; 10. Slider; 11. Bolt column; 12. Washer nut; 13. L-shaped groove; 14. Elastic movable component; 141. Inclined surface; 142. Spring; 143. Movable opening; 144. Guide rod; 15. Tension-bending vertical keel. Detailed Implementation

[0024] In the following description, embodiments of the non-frame beam curtain wall installation system at the bottom of the building according to the present invention will be described with reference to the accompanying drawings.

[0025] The embodiments described herein are specific implementations of this utility model, used to illustrate the concept of this utility model. They are all illustrative and exemplary, and should not be construed as limiting the implementation methods or scope of this utility model. In addition to the embodiments described herein, those skilled in the art can employ other obvious technical solutions based on the content disclosed in the claims and specification of this application. These technical solutions include those that make any obvious substitutions and modifications to the embodiments described herein.

[0026] The accompanying drawings in this specification are schematic diagrams used to illustrate the concept of this utility model, and schematically show the shapes of the various parts and their interrelationships. Please note that, in order to clearly show the structure of the components of the embodiments of this utility model, the drawings are not drawn to the same scale. The same reference numerals are used to indicate the same parts.

[0027] Figure 1-4This invention illustrates an embodiment of a non-frame beam curtain wall installation system for the building base, comprising a hyperbolic main keel 2 mounted on a hyperbolic aluminum panel 1 and a channel steel connector 4 mounted on a concrete structure via mechanical anchor bolts 3. A main keel adapter 5 is welded to the bottom of one side of the hyperbolic main keel 2. A sliding sleeve 6 is slidably connected to the surface of the channel steel connector 4. An adjustment component 7 is provided between the sliding sleeve 6 and the main keel adapter 5. The adjustment component 7 includes a T-shaped through hole 71 opened on the channel steel connector 4. A threaded post 72 is rotatably connected to the inner cavity of the T-shaped through hole 71. A threaded sleeve 73 is threadedly connected to the surface of the threaded post 72. A sliding groove 74 is opened on the left side of the sliding sleeve 6, allowing it to slide on the surface of the channel steel connector 4. The front and rear sides of the threaded sleeve 73 are connected to the sliding groove. The inner wall of 74 is fixedly connected. Through the setting of the sliding groove 74, the sliding sleeve 6 can slide vertically on the surface of the channel steel connector 4, which limits and guides the movement of the sliding sleeve 6, avoids the sliding sleeve 6 from swinging during the movement, and improves the stability of the sliding sleeve 6. The surface of the threaded column 72 is fixedly connected with a hexagonal rotating block 75. Through the setting of the hexagonal rotating block 75, the user can pick up a wrench and rotate the T-shaped through hole 71 on the surface of the hexagonal rotating block 75, providing a force point for rotating the T-shaped through hole 71, which is convenient for the user to rotate the T-shaped through hole 71. The right side of the channel steel connector 4 is embedded and fixedly installed with a fixing shell 8. The right side of the fixing shell 8 has two symmetrical cavities 9. The inner cavity of the cavity 9 is slidably connected with a slider 10. Bolt posts 11 are fixedly connected to both the front and rear sides. Two L-shaped grooves 13 adapted to the bolt posts 11 are opened on the left side of the main keel adapter 5. A washer nut 12, fitted to the main keel adapter 5, is threaded onto the surface of the bolt posts 11. An elastic movable component 14 is provided between the slider 10 and the fixed shell 8. The elastic movable component 14 includes an inclined surface 141 on one side of the inner cavity of the L-shaped groove 13. Due to the inclined surface 141, during the process of the main keel adapter 5 being fitted onto the surface of the sliding sleeve 6, the inclined surface 141 on the main keel adapter 5 will first contact the bolt posts 11, causing the two bolt posts 11 at the upper and lower positions to move towards each other, thereby driving the slider 10 to compress the spring 142 until it enters the corner of the inner cavity of the L-shaped groove 13, where the bolt posts 11 lack a limiting position. The rebound force of spring 142 causes bolt post 11 to enter the deepest part of L-shaped groove 13, limiting the main keel adapter 5. Spring 142 is fixedly connected between slider 10 and inner wall of cavity 9. Movable openings 143 for bolt post 11 to move are provided on the front and rear sides of cavity 9. Guide rod 144 is fixedly connected to cavity 9. Slider 10 and spring 142 are both sleeved on the surface of guide rod 144. Slider 10 and guide rod 144 are slidably connected. The guide rod 144 guides the movement of slider 10, preventing slider 10 from rotating in cavity 9. It also supports spring 142, preventing spring 142 from tilting or breaking, thus improving the stability of slider 10 and spring 142.A vertical keel 15 is installed on the top of the inner side of the hyperbolic aluminum single panel 1, and the upper part of the hyperbolic main keel 2 is welded to the vertical keel 15.

[0028] Working principle: When using this utility model, the user can pick up a wrench and place it on the surface of the hexagonal swivel block 75 to rotate the threaded post 72. Due to the threaded relationship, the threaded sleeve 73 will move on the surface of the threaded post 72, thereby adjusting the movement of the sliding sleeve 6 and the fixed shell 8. After adjusting the distance between the sliding sleeve 6 and the fixed shell 8 and the main keel adapter 5 to a suitable position, push the hyperbolic aluminum single panel 1, so that the main keel adapter 5 moves towards the sliding sleeve 6. The inclined surface 141 on the main keel adapter 5 will first contact the bolt post 11, thereby driving the bolt post 11. The bolt column 11 slides within the inner cavity of the movable opening 143, causing the two sliders 10 to slide towards each other on the surface of the guide rod 144 and compress the spring 142 until the bolt column 11 is located at the corner of the L-shaped groove 13. The rebound force of the spring 142, through the slider 10, causes the bolt column 11 to be located at the deepest part of the inner cavity of the L-shaped groove 13. Then, the washer nut 12 is tightened to secure it. This allows for adjustment of the distance between the wall connecting channel steel and the main keel adapter, and the bolt can elastically enter the main keel adapter without the need for hole alignment, saving time and increasing efficiency, thus improving the curtain wall connection efficiency.

[0029] In summary, this non-frame beam curtain wall installation system at the building's base adjusts the movement of the sliding sleeve 6 and the fixed shell 8 via the adjusting component 7, thereby adjusting the distance between the fixed shell 8 and the main keel adapter 5. Once the appropriate distance is reached, the hyperbolic aluminum panel 1 is pushed, and the hyperbolic main keel 2 causes the main keel adapter 5 to fit onto the surface of the sliding sleeve 6. The elastic movable component 14 allows the bolt column 11 to elastically enter the inner cavity of the L-shaped groove 13, and the washer nut 12 is tightened. This achieves the goal of adjusting the distance between the wall-connecting channel steel and the main keel adapter, and the bolt can elastically enter the main keel adapter without the need for hole alignment, saving time and increasing efficiency. It solves the problem that when installing aluminum panel curtain walls on non-frame beams at the building's base, the connection between the wall-connecting channel steel and the main keel adapter generally relies on bolts. Although the firmness is guaranteed, the bolt hole alignment is time-consuming and laborious, affecting the installation efficiency of the aluminum panel curtain wall.

[0030] The technical features disclosed above are not limited to the combinations of the disclosed features with other features. Those skilled in the art can also make other combinations of the technical features according to the purpose of the utility model in order to achieve the purpose of the utility model.

Claims

1. A curtain wall installation system for non-frame beams at the base of a building, characterized in that, The system includes a hyperbolic main keel (2) mounted on a hyperbolic aluminum panel (1) and a channel steel connector (4) mounted on a concrete structure via mechanical anchor bolts (3). A main keel adapter (5) is welded to the bottom of one side of the hyperbolic main keel (2). A sliding sleeve (6) is slidably connected to the surface of the channel steel connector (4). An adjustment component (7) is provided between the sliding sleeve (6) and the main keel adapter (5). A fixing shell (8) is embedded and fixedly installed on the right side of the channel steel connector (4). Two symmetrical cavities (9) are opened on the right side. A slider (10) is slidably connected to the inner cavity of the cavity (9). Bolt columns (11) are fixedly connected to the front and rear sides of the slider (10). Two L-shaped grooves (13) adapted to the bolt columns (11) are opened on the left side of the main keel adapter (5). A washer nut (12) that fits on the main keel adapter (5) is threaded on the surface of the bolt column (11). An elastic movable component (14) is provided between the slider (10) and the fixed shell (8).

2. The non-frame beam curtain wall installation system at the bottom of a building according to claim 1, characterized in that, The adjustment component (7) includes a T-shaped through hole (71) opened on the channel steel connector (4). The inner cavity of the T-shaped through hole (71) is rotatably connected to a threaded column (72). The surface of the threaded column (72) is threadedly connected to a threaded sleeve (73). The left side of the sliding sleeve (6) is provided with a sliding groove (74) that slides on the surface of the channel steel connector (4). The front and rear sides of the threaded sleeve (73) are fixedly connected to the inner wall of the sliding groove (74).

3. The non-frame beam curtain wall installation system at the bottom of a building according to claim 2, characterized in that, The surface of the threaded column (72) is fixedly connected to a hexagonal rotating block (75).

4. The non-frame beam curtain wall installation system at the bottom of a building according to claim 3, characterized in that, The elastic movable component (14) includes an inclined surface (141) formed on one side of the inner cavity of the L-shaped groove (13), and a spring (142) is fixedly connected between the slider (10) and the inner wall of the cavity (9).

5. The non-frame beam curtain wall installation system at the bottom of a building according to claim 4, characterized in that, The cavity (9) has openings (143) on the front and rear sides for the bolt column (11) to move.

6. The non-frame beam curtain wall installation system at the bottom of a building according to claim 5, characterized in that, The cavity (9) is fixedly connected to a guide rod (144), and the slider (10) and the spring (142) are both sleeved on the surface of the guide rod (144). The slider (10) and the guide rod (144) are slidably connected.

7. The non-frame beam curtain wall installation system at the base of a building according to claim 6, characterized in that, The upper part of the hyperbolic main keel (2) is welded to the bending vertical keel (15).