A civil engineering construction embedded part

By introducing X-axis, Y-axis, Z-axis adjustment components and anchoring devices into the embedded parts, the problem of difficulty in adjusting the installation of traditional embedded parts is solved, and the precise butt between the embedded parts and structural parts is achieved and the construction efficiency is improved.

CN119981265BActive Publication Date: 2025-07-11FUJIAN POLYTECHNIC OF INFORMATION TECH
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Patent Information

Application Number
CN202510457329.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-14
Publication Date
2025-07-11
Estimated Expiration
2045-04-14

AI Technical Summary

Technical Problem

The installation method of traditional embedded parts and structural parts requires a large number of welding or bolt connection operations on site. The position of embedded parts after installation is difficult to adjust, resulting in the inaccurate connection between subsequent installation components and embedded parts, increasing the construction difficulty and rework rate.

Method used

The design includes an embedded part and an assembly part. The embedded part is composed of an embedded frame body with anti-corrosion coating on the surface. The assembly part is composed of an assembly frame body. It is precisely fine-tuned through the X-axis, Y-axis, and Z-axis adjustment components, and is installed in a separable and adjustable manner with the anchoring device.

Benefits of technology

The precise docking between the embedded parts and the structural parts is achieved, the construction operation steps are reduced, the installation speed and construction efficiency are improved, and the stability and durability of the building are enhanced.

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Abstract

The present invention discloses a civil engineering construction embedded part, which relates to the technical field of embedded parts. It includes an embedded part and an assembly part. The embedded part includes an embedded frame main body with an anti-corrosion coating sprayed on its surface. Symmetrically distributed chutes are provided at the top of the embedded frame main body. The assembly part includes an assembly frame main body located above the embedded frame main body and used for the installation of structural members. A guiding device for adjusting the position of the assembly frame main body is also provided between the embedded frame main body and the assembly frame main body. An auxiliary device for restricting the movement of the assembly frame main body is also provided in the assembly frame main body. An anchoring device for anchoring the embedded frame main body is provided at the bottom of the embedded frame main body. When in use, through the guiding device composed of an X-axis adjustment component, a Y-axis adjustment component and a Z-axis adjustment component provided on the embedded frame main body, precise fine-tuning of the assembly frame main body connected to the structural member is realized, so as to adapt to the installation requirements of different structures and achieve accurate docking.
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Description

Technical Field

[0001] The present invention relates to the technical field of embedded parts, and particularly relates to an embedded part for civil engineering construction. Background Art

[0002] Embedded parts are usually used to fix components such as equipment, pipelines, railings, and steel structures. Their installation quality directly affects the construction progress and service safety of subsequent projects.

[0003] Embedded parts are components pre-embedded in concrete during the structural construction process. It consists of two parts: one part is the component embedded in the concrete, and the other part is the component that will be connected to or function with the embedded component later. The embedded part serves as the foundation for the subsequent structure or equipment installation. For example, in construction projects, it is used to fix steel column feet and connect structural members such as curtain wall keels. By using embedded parts, different structural components can be firmly connected together to ensure the stability and integrity of the entire building structure. In some large-scale equipment installation projects, embedded parts can provide a stable support and fixed points for the equipment, preventing the equipment from shaking or shifting during operation.

[0004] However, the installation method of traditional embedded parts and structural members requires a large number of on-site welding or bolt connection operations. The position of the embedded part after installation is often difficult to adjust, resulting in the inability of the subsequent installed components to accurately dock with the embedded part, increasing the construction difficulty and rework rate. Moreover, traditional embedded parts are often of an integral structure, and the installation method requires a large number of on-site welding connection operations, with low construction efficiency and being easily affected by weather and environmental factors. Summary of the Invention

[0005] In view of the problems existing in the above-mentioned prior art, the present invention is proposed.

[0006] Therefore, the purpose of the present invention is to provide an embedded part for civil engineering construction, and the problem to be solved is that the installation method of traditional embedded parts and structural members requires a large number of on-site welding or bolt connection operations, and the position of the embedded part after installation is often difficult to adjust, resulting in the inability of the subsequent installed components to accurately dock with the embedded part, increasing the construction difficulty and rework rate.

[0007] To achieve the above purpose, the present invention provides the following technical solution: An embedded part for civil engineering construction, including an embedded part and an assembly part. The embedded part includes an embedded frame main body with an anti-corrosion coating sprayed on its surface. Symmetrically distributed chutes are opened at the top of the embedded frame main body. The assembly part includes an assembly frame main body located above the embedded frame main body and used for installing structural members. A guiding device for adjusting the position of the assembly frame main body is further provided between the embedded frame main body and the assembly frame main body. An auxiliary device for restricting the movement of the assembly frame main body is also provided in the assembly frame main body. An anchoring device for anchoring the embedded frame main body is provided at the bottom of the embedded frame main body;

[0008] The guide device includes an X-axis adjustment component located above the embedded frame body and used to adjust the X-axis position of the assembly frame body, the X-axis adjustment component is provided with a Y-axis adjustment component for adjusting the Y-axis position of the assembly frame body, and the Y-axis adjustment component is provided with a Z-axis adjustment component for adjusting the Z-axis position of the assembly frame body;

[0009] The X-axis adjustment assembly includes a first X-axis guide rail and a second X-axis guide rail which are respectively slidably connected to the assembly frame body and are adapted to the slide groove, the first X-axis guide rail and the second X-axis guide rail are both fixedly installed in the embedded frame body by screws, and the first X-axis guide rail and the second X-axis guide rail are both provided with a stepped support frame on the side away from the assembly frame body, and the second X-axis guide rail is also rotatably connected to an X-axis screw with a thread on the surface;

[0010] The auxiliary device includes an extension block slidably connected in the hidden groove and corresponding to the step support frame. The extension block is located at one end of the assembly frame body and is fixedly installed with an auxiliary sliding block. The two ends of the assembly frame body are also rotatably connected with auxiliary screws with threads on the surface. One end of the auxiliary screw extends into the assembly frame body and is threadedly connected to the auxiliary sliding block.

[0011] As a preferred solution of the embedded parts for civil engineering construction described in the present invention, the Y-axis adjustment assembly includes a Y-axis guide rail slidably connected to the first X-axis guide rail and the second X-axis guide rail, and the Y-axis guide rail is threadedly connected to one end of the X-axis screw extending into the second X-axis guide rail, a Y-axis screw is also rotatably connected in the Y-axis guide rail, a Y-axis slider is slidably connected to the Y-axis guide rail, and one end of the Y-axis slider extending into the Y-axis guide rail is threadedly connected to the Y-axis screw.

[0012] As a preferred solution of the embedded parts for civil engineering construction described in the present invention, the Z-axis adjustment assembly includes a Z-axis guide rail located between the first X-axis guide rail and the second X-axis guide rail and fixedly mounted on the Y-axis slider, and a Z-axis screw is also rotatably connected in the Z-axis guide rail, and one end of the Z-axis screw extends into the Z-axis guide rail and is connected to the assembly frame body with a threaded fit.

[0013] As a preferred solution of the embedded parts for civil engineering construction described in the present invention, the top of the assembly frame body is fixedly installed with symmetrically distributed welding support frames for fixing structural parts, rubber pads are provided between the welding support frames and in the assembly frame body, the welding support frames are L-shaped and have threaded holes corresponding to the rubber pads, and the assembly frame body is also provided with symmetrically distributed hidden grooves.

[0014] As a preferred embodiment of the civil engineering construction embedded part of the present invention, the following is provided: triangular reinforcing ribs are fixedly installed at the four corners of the main body of the embedded frame, and side ears for screw fixation and symmetrically distributed are further provided on both sides of the main body of the embedded frame, and the side ears and the main body of the embedded frame are of an integrally formed structure.

[0015] As a preferred embodiment of the civil engineering construction embedded part of the present invention, the following is provided: the anchoring device includes an anchoring rod body that is in clearance fit with the main body of the embedded frame. One end of the anchoring rod body away from the main body of the embedded frame is fixedly installed with an embedded end. One end of the anchoring rod body extending into the main body of the embedded frame is fixedly installed with an anchor rod frame that is slidably connected in the main body of the embedded frame. Symmetrically distributed adjusting screws are also rotatably connected in the main body of the embedded frame, and one end of the adjusting screw extending into the main body of the embedded frame is in threaded cooperation with the anchor rod frame.

[0016] As a preferred embodiment of the civil engineering construction embedded part of the present invention, the following is provided: a first discharge hole and a second discharge hole that are annularly arrayed and correspond to each other are respectively formed on the anchoring rod body, and the embedded end is located between the first discharge hole and the second discharge hole. A diversion hopper sleeved outside the anchoring rod body is fixedly installed on the top of the embedded end, and diversion grooves corresponding to the first discharge hole and the second discharge hole are also formed on the embedded end.

[0017] In summary, the present invention includes at least one of the following beneficial effects:

[0018] 1. In the present invention, by providing a guiding device composed of an X-axis adjusting component, a Y-axis adjusting component, and a Z-axis adjusting component on the main body of the embedded frame, precise fine adjustment of the main body of the assembly frame connected to the structural member is realized, so as to adapt to the installation requirements of different structures and accurately dock.

[0019] 2. In the present invention, by adopting the separable and adjustable design of the embedded part and the assembly part including the anchoring device, the embedded part can be installed in advance, reducing the operation steps. Therefore, compared with the traditional integral embedded part, the installation speed of the precast component can be improved.

[0020] 3. In the present invention, the concrete injected into the anchoring rod body flows out through the first discharge hole, and then under the guidance of the diversion hopper, enters the diversion groove to be connected with the concrete flowing out of the second discharge hole, thereby increasing the contact surface between the concrete and the anchoring rod body and utilizing the anchoring force of the formation to maintain the stability of the building. Description of the Drawings

[0021] To more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments recorded in the present invention. For those of ordinary skill in the art, other drawings can also be obtained based on these drawings.

[0022] Figure 1 Schematic diagram of the three-dimensional structure of the present invention;

[0023] Figure 2 Exploded structure diagram of the present invention;

[0024] Figure 3 Structural diagram of the mating installation of the main body of the assembly frame and the guiding device of the present invention;

[0025] Figure 4 Structural diagram of the structural guiding device of the present invention;

[0026] Figure 5 For the present invention Figure 4 Enlarged structure diagram of part A;

[0027] Figure 6 Cross-sectional view of the main body of the assembly frame of the present invention;

[0028] Figure 7 Structural diagram of the mating installation of the main body of the embedded part frame and the anchoring device of the present invention;

[0029] Figure 8 Structural diagram of the mating installation of the anchor rod and the embedded end of the present invention.

[0030] Explanation of reference numerals:

[0031] 1. Main body of the embedded frame; 101. Chute; 102. Reinforcing rib; 103. Side ear; 2. Main body of the assembly frame; 201. Welding support frame; 202. Rubber pad; 203. Hidden groove; 3. Guiding device; 301. X-axis adjustment component; 3011. First X-axis guide rail; 3012. Second X-axis guide rail; 3013. Step support frame; 3014. X-axis screw; 302. Y-axis adjustment component; 3021. Y-axis guide rail; 3022. Y-axis screw; 3023. Y-axis slider; 303. Z-axis adjustment component; 3031. Z-axis guide rail; 3032. Z-axis screw; 4. Auxiliary device; 401. Extension block; 402. Auxiliary slider; 403. Auxiliary screw; 5. Anchoring device; 501. Anchor rod body; 5011. First discharge hole; 5012. Second discharge hole; 502. Embedded end; 5021. Drain hopper; 5022. Drainage groove; 503. Anchor rod frame; 504. Adjusting screw. Detailed implementation manners

[0032] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0033] An embodiment of the present invention discloses a civil engineering construction embedded part.

[0034] Embodiment 1

[0035] Refer to Figure 1-8, which is the first embodiment of the present invention, provides a civil engineering construction embedded part. This civil engineering construction embedded part includes an embedded part and an assembly part. The embedded part includes an embedded frame main body 1 with an anti-corrosion coating sprayed on its surface. Symmetrically distributed chutes 101 are opened at the top of the embedded frame main body 1. The assembly part includes an assembly frame main body 2 located above the embedded frame main body 1 and used for the installation of structural members. A guiding device 3 for adjusting the position of the assembly frame main body 2 is also provided between the embedded frame main body 1 and the assembly frame main body 2. An auxiliary device 4 for restricting the movement of the assembly frame main body 2 is also provided in the assembly frame main body 2. An anchoring device 5 for anchoring the embedded frame main body 1 is provided at the bottom of the embedded frame main body 1. The guiding device 3 includes an X-axis adjusting component 301 located above the embedded frame main body 1 and used for adjusting the X-axis position of the assembly frame main body 2. A Y-axis adjusting component 302 for adjusting the Y-axis position of the assembly frame main body 2 is provided on the X-axis adjusting component 301. A Z-axis adjusting component 303 for adjusting the Z-axis position of the assembly frame main body 2 is provided on the Y-axis adjusting component 302. The X-axis adjusting component 301 includes a first X-axis guide rail 3011 and a second X-axis guide rail 3012 that are respectively slidably connected in the assembly frame main body 2 and are both adapted to the chute 101. The first X-axis guide rail 3011 and the second X-axis guide rail 3012 are both fixedly installed in the embedded frame main body 1 by screws. And a stepped support frame 3013 in a stepped shape is provided on the side of the first X-axis guide rail 3011 and the second X-axis guide rail 3012 facing away from the assembly frame main body 2. An X-axis screw 3014 with a threaded surface is also rotatably connected in the second X-axis guide rail 3012. The auxiliary device 4 includes an extension block 401 slidably connected in a hidden groove 203 and corresponding to the stepped support frame 3013. An auxiliary slider 402 is fixedly installed at one end of the extension block 401 located on the assembly frame main body 2. Threaded auxiliary screws 403 are also rotatably connected at both ends of the assembly frame main body 2. The end of the auxiliary screw 403 extending into the assembly frame main body 2 is in threaded cooperation with the auxiliary slider 402. The embedded frame main body 1, as the main structure of the embedded part, has an anti-corrosion coating sprayed on its surface to improve durability. The assembly frame main body 2 is used for the installation of structural members and can be separated from the embedded frame main body 1. The first X-axis guide rail 3011 and the second X-axis guide rail 3012 are respectively slidably connected in the chute 101 in the embedded frame main body 1 and are fixed by screws. And through the stepped support frame 3013 in a stepped shape, additional stability and support can be provided even after height adjustment. By rotating the X-axis screw 3014, the Y-axis guide rail 3021 slides on the first X-axis guide rail 3011 and the second X-axis guide rail 3012, thereby finely adjusting the position of the Y-axis guide rail 3021 in the X-axis direction. The extension block 401 can protrude from the corresponding hidden groove 203 to adapt to the positions of different heights of the stepped support frame 3013, restrict the movement of the assembly frame main body 2 after adjustment, and realize different protruding lengths of the extension block 401 connected to the corresponding auxiliary slider 402 by rotating the auxiliary screw 403.

[0036] The Y-axis adjustment assembly 302 includes a Y-axis guide rail 3021 slidably connected to the first X-axis guide rail 3011 and the second X-axis guide rail 3012, and the Y-axis guide rail 3021 is threadedly engaged with one end of the X-axis screw 3014 extending into the second X-axis guide rail 3012. A Y-axis screw 3022 is also rotatably connected in the Y-axis guide rail 3021. A Y-axis slider 3023 is slidably connected to the Y-axis guide rail 3021, and one end of the Y-axis slider 3023 extending into the Y-axis guide rail 3021 is threadedly engaged with the Y-axis screw 3022. By rotating the Y-axis screw 3022, the Y-axis slider 3023 slides on the Y-axis guide rail 3021 to achieve fine adjustment in the Y-axis direction.

[0037] The Z-axis adjustment assembly 303 includes a Z-axis guide rail 3031 located between the first X-axis guide rail 3011 and the second X-axis guide rail 3012 and fixedly installed on the Y-axis slider 3023. A Z-axis screw 3032 is also rotatably connected in the Z-axis guide rail 3031. One end of the Z-axis screw 3032 extending into the Z-axis guide rail 3031 is threadedly engaged with the assembly frame body 2. The Z-axis guide rail 3031 can limit the moving direction of the assembly frame body 2. By rotating the Z-axis screw 3032, precise adjustment of the assembly frame body 2 in the Z-axis direction is achieved.

[0038] On the top of the assembly frame body 2, symmetrically distributed welding support frames 201 for fixing structural members are fixedly installed. A rubber pad 202 is provided between the welding support frames 201 and in the assembly frame body 2. The welding support frames 201 are L-shaped and are provided with threaded holes corresponding to the rubber pad 202. Hidden grooves 203 are also symmetrically distributed in the assembly frame body 2. The welding support frames 201 can be connected to the structural members by screws to complete the installation with the assembly frame body 2. The rubber pad 202 is used to reduce vibration and noise.

[0039] Triangular reinforcing ribs 102 are fixedly installed at the four corners of the embedded frame body 1. On both sides of the embedded frame body 1, symmetrically distributed side ears 103 for screw fixation are provided, and the side ears 103 and the embedded frame body 1 are integrally formed structures. The reinforcing ribs 102 are used to increase the overall load-bearing capacity of the embedded frame body 1 with a frame structure. The side ears 103 can be fixed to the ground by screws, and at the same time, the grounding area is increased to maintain stability.

[0040] The anchoring device 5 includes an anchoring rod body 501 that is in clearance fit with the embedded frame body 1. One end of the anchoring rod body 501 away from the embedded frame body 1 is fixedly installed with an embedded end 502. One end of the anchoring rod body 501 extending into the embedded frame body 1 is fixedly installed with an anchor rod frame 503 that is slidably connected in the embedded frame body 1. In the embedded frame body 1, there are also symmetrically distributed adjusting screws 504 rotatably connected. One end of the adjusting screw 504 extending into the embedded frame body 1 is threadedly connected to the anchor rod frame 503. Concrete can be injected into the anchoring rod body 501 to firmly anchor the embedded frame body 1 in the concrete structure, enhancing the overall strength of the embedded structure, enabling it to withstand greater loads and stresses, and by rotating the adjusting screw 504, the anchor rod frame 503 drives the anchoring rod body 501 to rise to meet the requirements of different anchoring depths.

[0041] The anchoring rod body 501 is respectively provided with a first discharge hole 5011 and a second discharge hole 5012 that are distributed in an annular array and correspond to each other. And the embedded end 502 is located between the first discharge hole 5011 and the second discharge hole 5012. The top of the embedded end 502 is fixedly installed with a diversion hopper 5021 sleeved outside the anchoring rod body 501. The embedded end 502 is also provided with a diversion groove 5022 corresponding to the first discharge hole 5011 and the second discharge hole 5012. The concrete flowing out of the first discharge hole 5011 can be guided by the diversion hopper 5021 and then enter the diversion groove 5022 to be connected with the concrete flowing out of the second discharge hole 5012, thereby increasing the contact surface between the concrete and the anchoring rod body 501 and utilizing the anchoring force of the formation to maintain the stability of the building.

[0042] During use, first place the embedded end 502 of the anchor rod body 501 into the foundation pit dug for embedding, and by rotating the adjusting screw rod 504, the anchor rod frame 503 drives the anchor rod body 501 to rise to meet the requirements of different embedding depths, so that the embedded frame main body 1 with increased structural strength through the reinforcing rib 102 and the integrally formed side ear 103 are located above the ground. After the adjustment is completed, backfill the foundation pit and inject concrete into the anchor rod body 501. After the concrete flows out through the first discharge hole 5011, it enters the drainage groove 5022 through the guidance of the drainage hopper 5021 and is connected to the concrete flowing out through the second discharge hole 5012, thereby increasing the contact surface between the concrete and the anchor rod body 501, utilizing the anchoring force of the formation to maintain the stability of the building, and coating the embedded frame main body 1 with an anti-corrosion coating to improve durability. By adopting the separable and adjustable method of the embedded part and the assembly part, the embedded part can be installed in advance, reducing the operation steps. Thus, compared with the traditional integral embedded parts, the installation speed of the precast components can be improved. The first X-axis guide rail 3011 and the second X-axis guide rail 3012 are respectively installed and fixed in the chute 101 of the embedded frame main body 1. The screw on the support frame 201 welded on the assembly frame main body 2 is connected to the structural member to complete the installation of the structural member and the assembly frame main body 2, and the rubber pad 202 is used to reduce vibration and noise. When the position needs to be adjusted, by rotating the X-axis screw rod 3014, the Y-axis guide rail 3021 slides on the first X-axis guide rail 3011 and the second X-axis guide rail 3012, thereby finely adjusting the position of the Y-axis guide rail 3021 in the X-axis direction. Then rotate the Y-axis screw rod 3022, and the Y-axis slider 3023 slides on the Y-axis guide rail 3021 to achieve fine adjustment in the Y-axis direction. Finally, by rotating the Z-axis screw rod 3032, the assembly frame main body 2 moves along the Z-axis guide rail 3031, thereby realizing the adjustment of the assembly frame main body 2 in three-axis directions to adapt to the assembly requirements of different structural members and accurate docking.

[0043] The structures of the rest are the same as those of Embodiment 1.

[0044] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit them. Although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical solutions of the present invention can be modified or equivalently replaced without departing from the spirit and scope of the technical solutions of the present invention, and they should all be covered within the scope of the claims of the present invention.

Claims

1. A civil engineering construction embedded part, characterized in that: It includes an embedded part and an assembly part. The embedded part includes an embedded frame main body (1) with an anti-corrosion coating sprayed on its surface. Symmetrically distributed chutes (101) are provided at the top of the embedded frame main body (1). The assembly part includes an assembly frame main body (2) located above the embedded frame main body (1) and used for installing structural members. A guiding device (3) for adjusting the position of the assembly frame main body (2) is also provided between the embedded frame main body (1) and the assembly frame main body (2). An auxiliary device (4) for restricting the movement of the assembly frame main body (2) is also provided in the assembly frame main body (2). An anchoring device (5) for anchoring the embedded frame main body (1) is provided at the bottom of the embedded frame main body (1). The guiding device (3) includes an X-axis adjusting component (301) located above the embedded frame main body (1) and used for adjusting the X-axis position of the assembly frame main body (2). A Y-axis adjusting component (302) for adjusting the Y-axis position of the assembly frame main body (2) is provided on the X-axis adjusting component (301). A Z-axis adjusting component (303) for adjusting the Z-axis position of the assembly frame main body (2) is provided on the Y-axis adjusting component (302). The X-axis adjusting component (301) includes a first X-axis guide rail (3011) and a second X-axis guide rail (3012) that are respectively slidably connected in the assembly frame main body (2) and are both adapted to the chutes (101). The first X-axis guide rail (3011) and the second X-axis guide rail (3012) are both fixedly installed in the embedded frame main body (1) by screws. And stepped support frames (3013) in a stepped shape are provided on the sides of the first X-axis guide rail (3011) and the second X-axis guide rail (3012) facing away from the assembly frame main body (2). An X-axis screw rod (3014) with threads on its surface is also rotatably connected in the second X-axis guide rail (3012). The auxiliary device (4) includes an extension block (401) that is slidably connected in a hidden groove (203) and corresponds to the stepped support frame (3013). An auxiliary slider (402) is fixedly installed at one end of the extension block (401) located on the assembly frame main body (2). Auxiliary screw rods (403) with threads on their surfaces are also rotatably connected at both ends of the assembly frame main body (2). One end of the auxiliary screw rod (403) extending into the assembly frame main body (2) is threadedly engaged with the auxiliary slider (402).

2. The civil engineering construction embedded part according to claim 1, wherein The Y-axis adjusting component (302) includes a Y-axis guide rail (3021) that is slidably connected to the first X-axis guide rail (3011) and the second X-axis guide rail (3012). And the Y-axis guide rail (3021) is threadedly engaged with one end of the X-axis screw rod (3014) extending into the second X-axis guide rail (3012). A Y-axis screw rod (3022) is also rotatably connected in the Y-axis guide rail (3021). A Y-axis slider (3023) is slidably connected to the Y-axis guide rail (3021). And one end of the Y-axis slider (3023) extending into the Y-axis guide rail (3021) is threadedly engaged with the Y-axis screw rod (3022).

3. The civil engineering construction embedded part according to claim 2, wherein, The Z-axis adjustment assembly (303) includes a Z-axis guide rail (3031) located between the first X-axis guide rail (3011) and the second X-axis guide rail (3012) and fixedly installed on the Y-axis slider (3023). A Z-axis screw rod (3032) is also rotatably connected in the Z-axis guide rail (3031). One end of the Z-axis screw rod (3032) extending into the Z-axis guide rail (3031) is in threaded fit with the assembly frame body (2).

4. The civil engineering construction embedded part according to claim 1, wherein, On the top of the assembly frame body (2), symmetrically distributed welding support frames (201) for fixing structural members are fixedly installed. A rubber pad (202) is provided in the assembly frame body (2) between the welding support frames (201). The welding support frames (201) are L-shaped and are provided with threaded holes corresponding to the rubber pad (202). Symmetrically distributed hidden grooves (203) are also provided in the assembly frame body (2).

5. The civil engineering construction embedded part according to claim 1, wherein, Triangular stiffeners (102) are fixedly installed at the four corners of the embedded frame body (1). On both sides of the embedded frame body (1), symmetrically distributed side ears (103) for screw fixation are provided. The side ears (103) and the embedded frame body (1) are of an integrally formed structure.

6. The civil engineering construction embedded part according to claim 5, characterized in that, The anchoring device (5) includes an anchoring rod body (501) in clearance fit with the embedded frame body (1). One end of the anchoring rod body (501) away from the embedded frame body (1) is fixedly installed with an embedded end (502). One end of the anchoring rod body (501) extending into the embedded frame body (1) is fixedly installed with an anchor rod frame (503) slidably connected in the embedded frame body (1). Symmetrically distributed adjusting screw rods (504) are also rotatably connected in the embedded frame body (1). One end of the adjusting screw rod (504) extending into the embedded frame body (1) is in threaded fit with the anchor rod frame (503).

7. The civil engineering construction embedded part according to claim 6, wherein The anchoring rod body (501) is respectively provided with a first discharge hole (5011) and a second discharge hole (5012) which are annularly and arrayedly distributed and correspond to each other. The embedded end (502) is located between the first discharge hole (5011) and the second discharge hole (5012). On the top of the embedded end (502), a drainage hopper (5021) sleeved outside the anchoring rod body (501) is fixedly installed. The embedded end (502) is also provided with drainage grooves (5022) corresponding to the first discharge hole (5011) and the second discharge hole (5012).

Citation Information

Patent Citations

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    CN202595979U