A pre-embedded part connecting structure and curtain wall thereof

By designing the embedded parts connection structure of the support component, adjustment component and load-bearing component, the problem of the non-adjustable connection position of the embedded parts in the existing technology is solved, and the precise position adjustment and efficient installation of the embedded parts are achieved to adapt to the pouring requirements of different concrete thicknesses.

CN117145114BActive Publication Date: 2025-10-10JIANGSU DUPONT CONSTR ENG CO LTD
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Patent Information

Application Number
CN202311332084.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-10-13
Publication Date
2025-10-10
Estimated Expiration
2043-10-13

AI Technical Summary

Technical Problem

The connection position of existing curtain wall embedded parts cannot be adjusted, resulting in the need to cut and re-weld when the connection is not appropriate, and it is not convenient to adapt to different concrete pouring thicknesses.

Method used

An embedded part connection structure is designed, including a supporting component, an adjusting component and a bearing component. The position of the embedded part is adjusted by lifting the driving component and the adjusting component, and the T-bolts of the embedded part are carried by the bearing component to achieve precise position adjustment.

Benefits of technology

It improves the installation efficiency of embedded parts and the overall installation effect of curtain walls. It is suitable for concrete walls of different pouring thicknesses, avoids the problem of heavy welding, and improves construction efficiency and effects.

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Abstract

The application discloses a pre-embedded part connecting structure and a curtain wall thereof, and relates to the technical field of curtain walls.The application comprises a supporting assembly arranged on a steel reinforcement cage; the supporting assembly is provided with an adjusting assembly; and the adjusting assembly is provided with a bearing assembly for loading the pre-embedded part.The T-shaped bolt of the pre-embedded part is installed on the bearing assembly after the supporting assembly is arranged in the steel reinforcement cage, and the position of the T-shaped bolt of the pre-embedded part is adjusted through the bearing assembly and the adjusting assembly, so that the installation effect of the pre-embedded part is effectively improved, and problems, such as the need for cutting and re-welding if the connecting position of the pre-embedded part is not suitable, existing in the prior art are avoided, and the installation efficiency and effect of the curtain wall are effectively improved.
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Description

Technical Field

[0001] The invention belongs to the technical field of curtain walls, and in particular relates to an embedded part connection structure and a curtain wall thereof. Background Art

[0002] Curtain walls, also known as suspended walls, are the exterior enclosures of buildings, suspended like a curtain. They are lightweight, decorative walls commonly used in modern large and high-rise buildings. Composed of a structural frame and inlaid panels, they are a building envelope that does not bear the loads and effects of the main structure. To ensure the safety of curtain wall structures, embedded components are required for reinforcement and installation.

[0003] Embedded parts are key components used in building construction. Pre-installed within concealed structures during construction, they serve as overlapping connections during superstructure construction, facilitating the installation and securing of external engineering equipment foundations. Existing curtain wall embedded parts are typically welded to the steel cage. The position of the embedded parts is not adjustable, requiring removal and re-welding if the connection position is not appropriate. This also presents difficulties in adapting to the thickness of the concrete pour. Therefore, there is an urgent need to develop an embedded part connection structure and curtain wall design to address these issues. Summary of the Invention

[0004] The present invention provides an embedded component connection structure and a curtain wall thereof, the purpose of which is to solve the problems raised in the above background technology.

[0005] To solve the above technical problems, the present invention is achieved through the following technical solutions:

[0006] The present invention relates to an embedded part connection structure, comprising a support assembly mounted on a steel cage; an adjustment assembly mounted on the support assembly; and a bearing assembly for carrying embedded parts mounted on the adjustment assembly.

[0007] As an optimal technical solution of the present invention, the support assembly includes a lifting drive member and a pair of first slats horizontally connected to the upper and lower sides of the lifting drive member; the two ends of the first slats are horizontally fixed to the second slats; the second slats are vertically arranged with the first slats; the two ends of the second slats are provided with a plurality of accommodating grooves for accommodating steel bars side by side; the lifting drive member includes a guide rod and a two-way screw rod arranged in parallel; the two first blocks are fixed on the two ends of the first slat respectively; a pair of sliding sleeves are provided on the guide rod; the two ends of the two-way screw rod are rotatably connected to the second block; the two second blocks are respectively fixed to the two ends of the other first slat; one end of the two-way screw rod is fixed with the first handle; the two threaded sections of the two-way screw rod are respectively threaded with nuts; the two nuts and the two sliding sleeves are connected by a pair of transmission rods; the two transmission rods are cross-arranged; the two transmission rods are connected by a rotating shaft.

[0008] As a preferred technical solution of the present invention, a pair of reinforcing assemblies arranged side by side are installed on the support assembly; the reinforcing assembly includes a pair of third slats distributed up and down; the two third slats are respectively arranged at the same end of the two pairs of second slats; a pair of adjusting cylinders are vertically fixed on the relative inner sides of the two third slats; the two adjusting cylinders on the same axis are connected by a first screw; the two ends of the first screw are respectively threadedly connected to the corresponding two adjusting cylinders; U-shaped blocks are provided at both ends of the third slat; a limiting space for the steel bars is formed between the U-shaped block and the second slat; the two ends of the U-shaped block are connected by a pair of connecting columns arranged side by side; the connecting columns are inserted on the ends of the third slats.

[0009] As a preferred technical solution of the present invention, the adjusting component includes a fourth slat fixed in the middle at one end of the rotating shaft; a pair of protrusions are fixed side by side on a surface of the fourth slat away from the rotating shaft; a second screw is rotatably connected between the two protrusions; a second handle is fixed at one end of the second screw; a threaded joint is fitted on the second screw for carrying a movable block for carrying the bearing component; one surface of the movable block slides in engagement with a surface of the fourth slat away from the rotating shaft; both ends of the fourth slat are provided with straight slots along the length direction; positioning columns are slidably inserted in the two straight slots; one end of the two positioning columns is slidably sleeved with a third support block; the two third support blocks are respectively fixed on the relative outer surfaces of the two first slats; both ends of the positioning column are threadedly fitted with limiting sleeves; the two limiting sleeves are arranged on the relative outer sides of the fourth slat and the third support block.

[0010] As a preferred technical solution of the present invention, the bearing assembly includes a bearing frame fixed on a surface of the movable block away from the fourth slat; a side edge of the bearing frame away from the movable block is provided with a plurality of strip holes for accommodating embedded T-bolts; a locking member is installed on the inner side of the bearing frame; the locking member includes a connecting slat with both ends fixed to the inner side surface of the bearing frame; the connecting slat is arranged parallel to a side edge of the bearing frame away from the movable block; a third screw is vertically inserted through the connecting slat; the third screw is arranged perpendicular to the second screw; a third handle is fixed to one end of the third screw; the other end of the third screw is rotatably connected to a locking slat parallel to the connecting slat; the locking slat is arranged between the connecting slat and a side edge of the bearing frame away from the movable block.

[0011] A curtain wall has the above-mentioned embedded part connection structure.

[0012] The present invention has the following beneficial effects:

[0013] The present invention installs the support component in the steel cage, and then installs the T-bolts of the embedded parts on the bearing component, and uses the adjustment component to adjust the position of the T-bolts of the embedded parts through the bearing component, thereby effectively improving the installation effect of the embedded parts, avoiding the problem of the existing technology that if the connection position of the embedded parts is not appropriate, it needs to be cut off and then re-welded, etc., not only effectively improving the installation efficiency and effect of the curtain wall, but also being applicable to concrete walls of different casting thicknesses, and having high market application value.

[0014] Of course, any product implementing the present invention does not necessarily need to achieve all of the advantages described above at the same time. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.

[0016] Figure 1 It is a structural schematic diagram of an embedded part connection structure of the present invention.

[0017] Figure 2 for Figure 1 side view of the structure.

[0018] Figure 3 Schematic diagram of the structure of the support assembly of the present invention.

[0019] Figure 4 for Figure 3 The main view of the structure.

[0020] Figure 5 It is a structural diagram of the connection between the support component, the adjustment component and the bearing component of the present invention.

[0021] Figure 6 It is a structural schematic diagram of the adjustment component of the present invention.

[0022] Figure 7 It is a structural schematic diagram of the bearing assembly of the present invention.

[0023] Figure 8 for Figure 7 The main view of the structure.

[0024] Figure 9 It is a structural schematic diagram of the reinforcement component of the present invention installed on the support component.

[0025] Figure 10 It is a schematic structural diagram of the reinforcement component of the present invention.

[0026] In the accompanying drawings, the components represented by the reference numerals are as follows:

[0027] 1-Support assembly, 2-Adjustment assembly, 3-Bearing assembly, 4-Reinforcement assembly, 101-Lifting drive, 102-First slat, 103-Second slat, 104-Accommodation groove, 201-Fourth slat, 202-Bump, 203-Second screw, 204-Second handle, 205-Moving block, 206-Straight notch, 207-Positioning column, 208-Third support block, 209-Limiting sleeve, 301-Bearing frame, 302-Strip hole, 303-Locking piece, 4 01-the third slat, 402-adjusting cylinder, 403-the first screw, 404-U-shaped block, 405-connecting column, 1011-guide rod, 1012-bidirectional screw, 1013-the first support block, 1014-sleeve, 1015-the second support block, 1016-the first handle, 1017-nut, 1018-transmission rod, 1019-rotating shaft, 3031-connecting slat, 3032-the third screw, 3033-the third handle, 3034-locking slat. DETAILED DESCRIPTION

[0028] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making any creative efforts shall fall within the scope of protection of the present invention. Specific embodiment one:

[0030] See also Figures 1-2As shown, the present invention is a pre-embedded component connection structure, comprising a support assembly 1 mounted on a steel cage; an adjustment assembly 2 mounted on the support assembly 1; and a bearing assembly 3 mounted on the adjustment assembly 2 for carrying the pre-embedded components. During use, the support assembly 1 is installed within the steel cage, and then the T-bolts of the pre-embedded components are mounted on the bearing assembly 3. The position of the T-bolts of the pre-embedded components is adjusted using the adjustment assembly 2 via the bearing assembly 3, thereby effectively improving the installation effect of the pre-embedded components and avoiding the problem of the prior art that the pre-embedded components need to be cut and re-welded if the connection position is not appropriate. This not only effectively improves the installation efficiency and effect of the curtain wall, but also is applicable to concrete walls of different casting thicknesses. Specific embodiment two:

[0032] Based on the specific embodiment 1, Figures 3-5 As shown, the support assembly 1 includes a lifting drive member 101 and a pair of first slats 102 horizontally connected to the upper and lower sides of the lifting drive member 101; both ends of the two first slats 102 are bolted to a horizontally arranged second slat 103; the second slat 103 is arranged perpendicular to the first slat 102; both ends of the second slat 103 are provided with a plurality of accommodating grooves 104 for accommodating steel bars in parallel; the lifting drive member 101 includes a parallel guide rod 1011 and a bidirectional screw rod 1012; both ends of the guide rod 1011 are fixed with a first support block 1013; the two first support blocks 1013 are respectively welded to the two ends of a first slat 102; a pair of sliding sleeves are provided on the guide rod 1011 Sleeve 1014; both ends of the bidirectional screw rod 1012 are rotatably connected to the second support block 1015; the two second support blocks 1015 are respectively welded to the two end portions of the other first slat 102; one end of the bidirectional screw rod 1012 is fixed with a conventional first handle 1016 in this field; the two threaded sections of the bidirectional screw rod 1012 are respectively threadedly matched with a nut 1017; the two nuts 1017 and the two sleeves 1014 are connected through a pair of transmission rods 1018; the transmission rod 1018 is rotatably matched with the nut 1017 and the sleeve 1014; the two transmission rods 1018 are cross-arranged; the two transmission rods 1018 are connected by a rotating shaft 1019; the rotating shaft 1019 is rotatably matched with the transmission rod 1018. When in use, the support assembly 1 is first placed on the inner side of the steel cage, and the four steel bars of the steel cage are respectively aligned with the positions of the four groups of accommodating grooves 104. Then, the first handle 1016 is operated to drive the bidirectional screw rod 1012 to rotate, prompting the two transmission rods 1018 to move crosswise, so that the two first slats 102 move away from each other, and then the four steel bars of the steel cage are respectively matched in the four corresponding accommodating grooves 104, so that the support assembly 1 is installed in the steel cage, providing a stable support foundation for the subsequent adjustment assembly 2 and the load-bearing assembly 3.

[0033] Among them Figures 9-10As shown, a pair of reinforcing components 4 arranged side by side are installed on the support component 1; the reinforcing component 4 includes a pair of third slats 401 distributed up and down; the two third slats 401 are respectively arranged at the same end of the two pairs of second slats 103; the third slats 401 are arranged perpendicular to the second slats 103; a pair of adjusting cylinders 402 are vertically welded to the opposite inner sides of the two third slats 401; the two adjusting cylinders 402 on the same axis are connected by a first screw 403; the first screw 403 The two ends of the third slat 401 are respectively threadedly connected to the corresponding two adjustment cylinders 402; U-shaped blocks 404 are provided at both ends of the third slat 401; the U-shaped blocks 404 and the second slat 103 form a space for limiting the position of the steel bars; the two ends of the U-shaped blocks 404 are connected by a pair of connecting posts 405 arranged side by side; the connecting posts 405 are inserted into the ends of the third slat 401; the connecting posts 405 are threadedly engaged with the U-shaped blocks 404, and the connecting posts 405 and the third slat 401 are clearance-fitted. When in use, after the support assembly 1 is installed in the steel cage, the steel bars of the steel cage are first placed on the inner side of the U-shaped blocks 404, and then the U-shaped blocks 404 are vertically connected to the third slat 401 using the connecting posts 405. The relative position of the two third slats 401 is then adjusted by rotating the first screw 403, so that the outer wall of the steel cage steel bars are tightly abutted against the middle arm of the U-shaped blocks 404, thereby further improving the connection stability between the support assembly 1 and the steel cage. Specific embodiment three:

[0035] Based on the specific embodiment 2, Figures 5-6As shown, the adjustment assembly 2 includes a fourth slat 201 welded to one end of the rotating shaft 1019 in the middle; a pair of protrusions 202 are welded side by side on a surface of the fourth slat 201 away from the rotating shaft 1019; a second screw 203 is rotatably connected between the two protrusions 202; a conventional second handle 204 in the field is fixed to one end of the second screw 203; a movable block 205 for carrying the carrying assembly 3 is threadedly engaged on the second screw 203; a surface of the movable block 205 is connected to the fourth slat 201 away from the rotating shaft 1019 is slidably fitted on one surface; both ends of the fourth slat 201 are provided with straight slots 206 along the length direction; positioning posts 207 are slidably inserted into the two straight slots 206; one end of the two positioning posts 207 is slidably sleeved with a third support block 208; the two third support blocks 208 are respectively welded to the opposite outer sides of the two first slats 102; both ends of the positioning post 207 are threadedly fitted with a limiting sleeve 209; the two limiting sleeves 209 are arranged on the opposite outer sides of the fourth slat 201 and the third support block 208. During use, after the support assembly 1 is installed in the steel cage, the fourth slat 201 is first set vertically, and then the positioning column 207 is inserted into the straight slot 206, and the fourth slat 201 is stably installed on the first slat 102 using the limit sleeve 209, and then the second handle 204 is operated to rotate the second screw 203, causing the movable block 205 to slide on a surface of the fourth slat 201 away from the rotating axis 1019, thereby realizing the position adjustment of the bearing assembly 3.

[0036] Among them Figure 5 and Figures 7-8As shown, the bearing assembly 3 includes a bearing frame 301 fixed on a surface of the movable block 205 away from the fourth plate 201; a side edge of the bearing frame 301 away from the movable block 205 is provided with a plurality of strip holes 302 for accommodating pre-embedded T-bolts; a locking member 303 is installed on the inner side of the bearing frame 301; the locking member 303 includes a connecting plate 3031 with both ends welded to the inner side of the bearing frame 301; the connecting plate 3031 is arranged parallel to the side edge of the bearing frame 301 away from the movable block 205; the connecting plate A third screw 3032 is vertically inserted into the strip 3031; the third screw 3032 is threadedly engaged with the connecting strip 3031; the third screw 3032 is arranged vertically to the second screw 203; one end of the third screw 3032 is fixed with a conventional third handle 3033 in this field; the other end of the third screw 3032 is rotatably connected to a locking strip 3034 parallel to the connecting strip 3031; the locking strip 3034 is arranged between the connecting strip 3031 and a side edge of the supporting frame 301 away from the movable block 205. When in use, when the second screw rod 203 is in a vertical state, the supporting frame 301 is in a horizontal state. The T-bolt of the embedded part is first inserted into the strip hole 302, and then the T-bolt of the embedded part is placed horizontally, and the T-bolt of the embedded part is abutted against a side edge of the supporting frame 301 away from the movable block 205. Then, the third handle 3033 is operated to drive the third screw rod 3032 to rotate, causing the locking strip 3034 to conflict with the T-bolt of the embedded part, thereby locking the position of the T-bolt of the embedded part, effectively ensuring the installation effect of the embedded part; at the same time, due to the design of multiple strip holes 302, the horizontal position of the T-bolt of the embedded part can be adjusted, which effectively improves the installation effect of the embedded part.

[0037] A curtain wall has the above-mentioned embedded part connection structure.

[0038] The preferred embodiments of the present invention disclosed above are intended only to help illustrate the present invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the present invention to the specific embodiments described. Obviously, many modifications and variations are possible based on the content of this specification. These embodiments are selected and described in detail in this specification to better explain the principles and practical applications of the present invention, thereby enabling those skilled in the art to better understand and utilize the present invention. The present invention is limited only by the claims and their full scope and equivalents.

Claims

1. A pre-embedded parts connection structure, characterized in that: It comprises a support assembly (1) mounted on a steel cage; an adjustment assembly (2) is mounted on the support assembly (1); and a bearing assembly (3) for carrying embedded parts is mounted on the adjustment assembly (2); The support assembly (1) includes a lifting drive member (101) and a pair of first slats (102) horizontally connected to the upper and lower sides of the lifting drive member (101); a second slat (103) is horizontally fixed to both ends of the first slats (102); the second slat (103) is arranged perpendicular to the first slat (102); and a plurality of accommodating grooves (104) for accommodating steel bars are arranged side by side at both ends of the second slat (103); The lifting drive member (101) includes a guide rod (1011) and a bidirectional screw rod (1012) arranged in parallel; a first support block (1013) is fixed at both ends of the guide rod (1011); the two first support blocks (1013) are respectively fixed on the two ends of a first slat (102); a pair of sliding sleeves (1014) are provided on the sliding sleeve of the guide rod (1011); the two ends of the bidirectional screw rod (1012) are rotatably connected to the second support block (1015); the two second support blocks (1013) are respectively fixed on the two ends of a first slat (102); the sliding sleeve on the guide rod (1011) is provided with a pair of sliding sleeves (1014 ... two first support blocks (1013) are respectively fixed on the two ends of a first slat (102); the two first support blocks (1013) are respectively fixed on the two ends of a first slat (102); the two first support blocks (1013) are respectively fixed on the two ends of a first slat (102); the two first support blocks (1013) are respectively fixed on the two ends of a first slat (102); the two first support blocks (1013) are respectively fixed on the two ends of a first slat (102); the two first support blocks (1013 15) are respectively fixed to the two end portions of the other first slat (102); a first handle (1016) is fixed to one end of the bidirectional screw rod (1012); the two threaded sections of the bidirectional screw rod (1012) are respectively threadedly matched with a nut (1017); the two nuts (1017) and the two sleeves (1014) are connected via a pair of transmission rods (1018); the two transmission rods (1018) are cross-arranged; the two transmission rods (1018) are connected via a rotating shaft (1019); The support assembly (1) is provided with a pair of reinforcing assemblies (4) arranged side by side; the reinforcing assembly (4) includes a pair of third slats (401) distributed up and down; the two third slats (401) are respectively arranged at the same end of the two pairs of second slats (103); a pair of adjusting cylinders (402) are vertically fixed to the opposite inner sides of the two third slats (401); the two adjusting cylinders (402) on the same axis are connected by a first screw (403); the two ends of the first screw (403) are respectively threadedly connected to the corresponding two adjusting cylinders (402); U-shaped blocks (404) are provided at both ends of the third slat (401); a limiting space for the steel bars is formed between the U-shaped blocks (404) and the second slats (103); the two ends of the U-shaped blocks (404) are connected by a pair of connecting columns (405) arranged side by side; the connecting columns (405) are inserted and arranged on the ends of the third slat (401); The adjusting component (2) comprises a fourth slat (201) whose middle portion is fixed to one end of the rotating shaft (1019); a pair of protrusions (202) are fixed side by side on a surface of the fourth slat (201) away from the rotating shaft (1019); a second screw rod (203) is rotatably connected between the two protrusions (202); a second handle (204) is fixed to one end of the second screw rod (203); a movable block (205) for carrying the bearing component (3) is threadedly engaged on the second screw rod (203); and a surface of the movable block (205) is slidably fitted with a surface of the fourth slat (201) away from the rotating shaft (1019).

2. The embedded part connection structure according to claim 1, characterized in that: Both ends of the fourth slat (201) are provided with straight slots (206) along the length direction; positioning columns (207) are slidably inserted into the two straight slots (206); one end of the two positioning columns (207) is slidably sleeved with a third support block (208); the two third support blocks (208) are respectively fixed to the relative outer sides of the two first slats (102); both ends of the positioning column (207) are threadedly fitted with a limiting sleeve (209); the two limiting sleeves (209) are arranged on the relative outer sides of the fourth slat (201) and the third support block (208).

3. The embedded part connection structure according to claim 2, characterized in that: The bearing assembly (3) comprises a bearing frame (301) fixed on a surface of the movable block (205) away from the fourth slat (201); a side edge of the bearing frame (301) away from the movable block (205) is provided with a plurality of strip holes (302) for accommodating embedded T-bolts.

4. The embedded part connection structure according to claim 3, characterized in that: A locking member (303) is installed on the inner side of the supporting frame (301); the locking member (303) includes a connecting strip (3031) with both ends fixed to the inner side of the supporting frame (301); the connecting strip (3031) is arranged parallel to a side edge of the supporting frame (301) away from the movable block (205); a third screw (3032) is vertically inserted into the connecting strip (3031); the third screw (3032) is arranged perpendicular to the second screw (203); a third handle (3033) is fixed to one end of the third screw (3032); the other end of the third screw (3032) is rotatably connected to a locking strip (3034) parallel to the connecting strip (3031); the locking strip (3034) is arranged between the connecting strip (3031) and a side edge of the supporting frame (301) away from the movable block (205).

5. A curtain wall, characterized in that: The invention has an embedded part connection structure as claimed in any one of claims 1 to 4.

Citation Information

Patent Citations

  • Concrete embedded part for civil construction

    CN214195001U

  • Concrete embedded part assembling structure

    CN218881178U