Levelness control device for civil engineering installation
By combining the water platform and the adjusting seat, and utilizing telescopic support legs and displacement screws, the civil engineering installation platform can be flexibly and precisely adjusted, solving the problem of inconvenient level adjustment of conventional civil engineering installation platforms and ensuring the accuracy of equipment installation and normal operation.
Patent Information
- Application Number
- CN202511696386.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-19
- Publication Date
- 2026-02-06
AI Technical Summary
Conventional civil engineering installation platforms are inconvenient to level, making it difficult to meet equipment installation standards and affecting the normal operation of the equipment.
It adopts a combination structure of a water platform, telescopic support legs and an adjustment seat. The telescopic support legs are used for large-range pre-adjustment, and the adjustment seat is used for small-range high-precision adjustment. Combined with the displacement screw and limit structure, it achieves precise control of levelness.
It enables flexible and convenient leveling of the civil engineering installation platform, meeting the precision requirements of equipment installation and ensuring normal equipment operation.
Smart Images

Figure CN121474450A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the civil installation technical field, specifically relates to a horizontal degree control device for civil installation. BACKGROUND
[0002] Civil installation includes the main content: 1. Construction and installation of facilities. This part covers the construction work of foundation, including the construction of building foundation, wall, roof and other parts, and the installation of water, electricity, gas and other infrastructure. Specifically, construction involves key steps such as earth excavation, foundation treatment, wall building, roof waterproofing. These works ensure the structural stability and safety of the building. Installation of facilities: mainly including pipeline installation, cable laying, etc. This stage involves the installation of various public facilities in place to ensure the normal operation of the internal system of the building. 2. Equipment installation and commissioning. After the completion of civil engineering, various equipment such as elevators, air conditioning systems, water supply and drainage equipment need to be installed and commissioned to ensure their normal operation.
[0003] The horizontal degree control of some large equipment civil installation in the factory has always been a difficult problem in the industry. When the conventional equipment is installed in the civil installation, the horizontal degree of the installation platform on the equipment is difficult to effectively adjust and control, and the operation is more troublesome and laborious. It is difficult to meet the equipment installation level requirement, and the horizontal degree of the equipment civil installation does not meet the standard, which will affect the normal operation of the equipment. The construction difficulty is great.
[0004] Therefore, a horizontal degree control device for civil installation is needed to solve the problem of inconvenient horizontal degree adjustment of the conventional civil installation platform. SUMMARY
[0005] The present application provides a horizontal degree control device for civil installation to solve the problem of inconvenient horizontal degree adjustment of the conventional civil installation platform.
[0006] To achieve the above purpose, the following technical scheme is adopted: A horizontal degree control device for civil installation, comprising a water platform, a plurality of telescopic supporting legs and an adjusting seat, the upper end of the telescopic supporting leg is connected with the adjusting seat, a plurality of telescopic supporting legs are respectively supported on the lower end of the water platform through the adjusting seat array, the adjusting seat comprises a fine adjustment seat, an adjusting block one, an adjusting block two and a displacement screw, the fine adjustment seat is fixedly connected to the upper end of the telescopic supporting leg, and the fine adjustment seat is provided with an adjusting cavity, the adjusting cavity is provided with an adjusting block two which can slide horizontally, the adjusting block one is vertically slidably arranged in the adjusting cavity and located above the adjusting block two, the lower end surface of the adjusting block one and the upper end surface of the adjusting block two are in contact with each other and are both inclined surfaces, the displacement screw is rotatably penetrated into the adjusting cavity from the fine adjustment seat and is in threaded connection with the adjusting block two, for driving the adjusting block two to slide horizontally, and the upper end of the adjusting block one is used for connecting the water platform.
[0007] To optimize the above technical solutions, the specific measures taken also include: Further, the upper end of the adjusting block one is fixedly connected with a support plate, and the upper end of the support plate is provided with a limiting column penetrating through the water platform.
[0008] Further, a plurality of limiting holes are formed in the water platform, the limiting column is of a T-shaped structure, the T-shaped limiting column is penetratingly arranged in the limiting hole, and the wide end is located on the upper surface of the water platform.
[0009] Further, the bottom of the support plate on both sides of the adjusting block one is provided with a vertical limiting rod, and the limiting rods on both sides are movably inserted into the adjusting cavities on both sides of the fine adjustment seat.
[0010] Further, one side edge and the top of the adjusting cavity are of an open structure, the adjusting block one is slidingly arranged at the top opening of the adjusting cavity, the adjusting block two is slidingly arranged at the side opening of the adjusting cavity, and the two sides of the adjusting block two are slidingly connected with the inner walls of the adjusting cavity.
[0011] Further, the end of the displacement screw rod is fixedly connected with a hexagonal inner hole block, and the hexagonal inner hole block is rotationally connected to the side wall of the fine adjustment seat.
[0012] Further, the telescopic support leg comprises a telescopic column and a support leg, the upper end of the telescopic column is connected to the adjusting seat, a vertical sliding groove is formed in one side of the telescopic column, the support leg is slidingly connected in the sliding groove, the end of the support leg away from the adjusting seat is used for extending out of the sliding groove and supporting the ground, and the support leg is further provided with a limiting structure for limiting the relative movement of the telescopic column and the support leg.
[0013] Further, the limiting structure comprises a push block and a tension spring, a plurality of buckle holes are vertically arranged in the sliding groove of the telescopic column, an inner cavity is formed in the side of the support leg close to the sliding groove, the push block is slidingly arranged in the inner cavity, the side of the push block close to the sliding groove is fixedly connected with a buckle block, the buckle block can movably penetrate through the inner cavity and extend to the buckle hole, the other side of the push block is connected with the side wall of the inner cavity through the tension spring, and the tension spring is used for driving the buckle block to be inserted into any buckle hole.
[0014] Further, the top of the inner cavity is of an open structure, the top of the push block is fixedly connected with a pushing block, and the pushing block penetrates out of the top of the support leg upward.
[0015] Further, the bottom of the buckle block is of a slope structure with a narrow end facing the buckle hole, the top of the buckle block is horizontally arranged, and the horizontal plane of the top of the buckle block is used for contacting the inner wall of the buckle hole.
[0016] The beneficial effects of the present application are: The device can pre-adjust the height of the water platform in a large range by the telescopic supporting legs, and then adjust the height of the water platform in a small range by the adjusting seat on the upper end of the telescopic supporting legs, so as to solve the problem of inconvenient adjustment of the levelness of the civil installation platform.
[0017] The device can limit the telescopic direction of the telescopic column as required by the matching of the buckle block and the buckle hole, and is allowed to move in one direction only without external force control, the position of the buckle block can be adjusted by the installed push block, so that the telescopic direction of the telescopic column is adjusted by external force, and the levelness is adjusted more flexibly and conveniently in use. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 It is a whole structure schematic view of the levelness control device for civil installation. Figure 2 It is a structure schematic view of the telescopic supporting leg of the levelness control device for civil installation. Figure 3 It is a structure schematic view of the adjusting seat of the levelness control device for civil installation. Figure 4 It is an installation schematic view of the adjusting seat of the levelness control device for civil installation. Figure 5 It is a structure schematic view of the limiting structure of the levelness control device for civil installation.
[0019] Reference signs: 1, water platform; 2, fine adjustment seat; 3, telescopic column; 4, supporting leg; 5, buckle hole; 6, supporting plate; 7, adjusting cavity; 8, adjusting block one; 9, limiting column; 10, adjusting block two; 11, displacement screw; 12, limiting hole; 13, buckle block; 14, push block; 15, tension spring; 16, push block; 17, inner cavity. DETAILED DESCRIPTION
[0020] The application will be further described in detail in combination with the drawings.
[0021] As shown in the accompanying drawings Figure 1 , the accompanying drawings Figure 2 , and the accompanying drawings Figure 3As shown, the horizontal degree control device for civil installation of the embodiment of the application comprises a water platform 1, a plurality of telescopic supporting legs and adjusting seats, the upper end of the telescopic supporting leg is connected with the adjusting seat, the plurality of telescopic supporting legs are respectively supported on the lower end of the water platform 1 through the adjusting seat array, the adjusting seat comprises a fine adjustment seat 2, an adjusting block one 8, an adjusting block two 10 and a displacement screw 11, the fine adjustment seat 2 is fixedly connected at the upper end of the telescopic supporting leg, the fine adjustment seat 2 is provided with an adjusting cavity 7, the adjusting cavity 7 is provided with the adjusting block two 10 which can slide horizontally, the adjusting block one 8 is vertically slidably arranged in the adjusting cavity 7 and is located above the adjusting block two 10, the lower end surface of the adjusting block one 8 and the upper end surface of the adjusting block two 10 are in contact with each other and are both inclined surfaces, the displacement screw 11 is rotatably penetrated into the adjusting cavity 7 through the fine adjustment seat 2 and is threadedly connected with the adjusting block two 10, for driving the adjusting block two 10 to slide horizontally, and the upper end of the adjusting block one 8 is used for connecting the water platform 1.
[0022] The device can pre-adjust the height of the water platform 1 in a large range by the telescopic supporting legs, and then can adjust the height of the water platform 1 in a small range by the adjusting seat at the upper end of the telescopic supporting leg, so as to solve the problem of inconvenient adjustment of the horizontal degree of the conventional civil installation platform.
[0023] In the scheme, the adjusting block one 8 and the adjusting block two 10 can be vertically misaligned, and the misalignment distance can be selected as required, so as to set the adjustment range of the adjusting block one 8 as required.
[0024] In the above scheme, the bottom of the water platform 1 can be arrayed with four groups of telescopic supporting legs and adjusting seats which are symmetric to each other, in use, the four telescopic supporting legs are synchronously adjusted to pre-adjust the height of the water platform 1 in a large range until the preset height is reached, and then the adjusting seat on the side of the horizontal degree deviation is further adjusted as required until the use requirement is met.
[0025] As shown in the specific embodiment based on the above, Figure 4 As shown in the specific embodiment based on the above, the upper end of the adjusting block one 8 is fixedly connected with a supporting plate 6, and the upper end of the supporting plate 6 is provided with a limiting column 9 which penetrates the water platform 1. In this way, the adjusting block one 8 is connected with the water platform 1 through the supporting plate 6 and the limiting column 9. In the scheme, the supporting plate 6 and the limiting column 9 are connected vertically.
[0026] The water platform 1 is provided with a plurality of limiting holes 12, the limiting column 9 is in a T-shaped structure, the limiting column 9 in the T-shaped structure is arranged through the limiting hole 12, and the wide end is located on the upper surface of the water platform 1. In the scheme, the limiting column 9 in the T-shaped structure cooperates with the limiting hole 12 to increase the reliability of the structural connection, and at the same time, the plasticity of the material and the wide end feedback device horizontal condition of the limiting column 9 in the T-shaped structure can be fully combined during use, so that the corresponding adjusting seat can be adjusted as needed. In the scheme, a gap for buffering adjustment can be arranged between the side wall of the limiting column 9 and the limiting hole 12.
[0027] The supporting plate 6 is provided with a vertical limiting rod on the bottom of each side of the adjusting block one 8, and the limiting rods on the two sides are movably inserted into the adjusting cavities 7 on the two sides of the fine adjustment seat 2. In this way, the vertical sliding arrangement of the adjusting block one 8 can be completed according to the vertical dislocation distance between the adjusting block one 8 and the adjusting block two 10.
[0028] In another specific embodiment based on the above, one side and the top of the adjusting cavity 7 are in an open structure, the adjusting block one 8 is slidably arranged at the top opening of the adjusting cavity 7, the adjusting block two 10 is slidably arranged at the side opening of the adjusting cavity 7, and the two sides of the adjusting block two 10 are slidably connected with the inner wall of the adjusting cavity 7.
[0029] In another specific embodiment based on the above, the end of the displacement screw 11 is fixedly connected with a hexagonal hole block, and the hexagonal hole block is rotatably connected to the side wall of the fine adjustment seat 2. In this way, the hexagonal hole block can be rotated by a tool during use, thereby driving the displacement screw 11 to rotate and achieving adjustment.
[0030] As shown in the accompanying drawings, Figure 5 In another specific embodiment based on the above, the telescopic supporting leg includes a telescopic column 3 and a supporting leg 4, the upper end of the telescopic column 3 is connected to the adjusting seat, a vertical sliding groove is formed in one side of the telescopic column 3, the supporting leg 4 is slidably connected in the sliding groove, the end of the supporting leg 4 away from the adjusting seat is used to extend out of the sliding groove and support the ground, and the supporting leg 4 is further provided with a limiting structure for limiting the relative movement of the telescopic column 3 and the supporting leg 4.
[0031] The limiting structure comprises the push block 14 and the tension spring 15, a plurality of buckle holes 5 are vertically arranged in the slide groove of the telescopic column 3, an inner cavity 17 is formed in one side of the upper end of the supporting leg 4 close to the slide groove, the push block 14 is slidably arranged in the inner cavity 17, the buckle block 13 is fixedly connected to one side of the push block 14 close to the slide groove, the buckle block 13 is movably penetrated through the inner cavity 17 and extends to the buckle hole 5, the other side of the push block 14 is connected with the side wall of the inner cavity 17 through the tension spring 15, and the tension spring 15 is used for driving the buckle block 13 to be inserted into any buckle hole 5. In this way, the buckle block 13 can be driven to be inserted into any buckle hole 5 through the tension spring 15, and the relative movement of the telescopic column 3 and the supporting leg 4 is limited.
[0032] The top of the inner cavity 17 is an open structure, the top of the push block 14 is fixedly connected with a push block 16, and the push block 16 penetrates out of the top of the supporting leg 4 upwards. In this way, the push block 14 and the buckle block 13 can be manually driven to move.
[0033] The bottom of the buckle block 13 is a slope structure with a narrow end facing the buckle hole 5, and the top of the buckle block 13 is horizontally arranged, and the horizontal plane of the top of the buckle block 13 is used for being in contact with the inner wall of the buckle hole 5. In this way, the adjustment convenience of the buckle block 13 and the stability of the buckle block 13 in the buckle hole 5 can be improved.
[0034] A specific embodiment of the present application is as follows: The whole structure supports the water platform 1 by the supporting leg 4, so that equipment can be installed on the water platform 1; When the coarse range adjustment is performed, the telescopic column 3 is slid on the surface of the supporting leg 4 by pulling the telescopic column 3 upwards, so that the distance between the telescopic column 3 and the supporting leg 4 is stretched; when the telescopic column 3 is stretched, the buckle block 13 is in contact with the buckle hole 5 in sequence, so that the tension spring 15 is extruded, so that the stretching adjustment is facilitated; when fixed, the buckle block 13 is inserted into the corresponding buckle hole 5 by the elastic force of the tension spring 15, so that the supporting leg 4 and the telescopic column 3 are supported, and the use length is maintained; When the fine adjustment is performed, the hexagonal inner hole block at the end of the displacement screw 11 is rotated by using a hexagonal wrench or the like, then the displacement screw 11 is driven to rotate, according to the rotating direction, the adjustment block two 10 is driven to move forward and backward, the slope surface of the adjustment block two 10 is in contact with the slope surface of the adjustment block one 8, then the supporting plate 6 is driven to ascend or descend, so that the single side of the water platform 1 is finally pushed to ascend or descend, until the horizontal requirement is met; When the supporting leg 4 is contracted, the push block 16 is pushed, the buckle block 13 is driven to move away from the buckle hole 5, and the supporting leg 4 can be freely contracted.
[0035] It should be noted that the terms such as "upper", "lower", "left", "right", "front", "back" and the like cited in the invention are only for the convenience of clear description, and are not used to limit the scope of the implementation of the invention. The change or adjustment of the relative relationship is also considered as the implementation of the invention without substantial change of the technical content.
[0036] The above is only the preferred embodiment of the present application, and the protection scope of the present application is not limited to the above-mentioned embodiments. Any technical solution falling within the concept of the present application is within the protection scope of the present application. It should be noted that for ordinary skilled persons in the art, it can be understood that various changes, modifications, replacements, refinements and modifications can be made to these embodiments without departing from the principles and spirits of the present application. The scope of the present application is defined by the appended claims and their equivalents.
Claims
1. A levelness control device for civil engineering installation, characterized in that: The system includes a water platform (1), multiple telescopic support legs, and an adjustment seat. The upper end of each telescopic support leg is connected to an adjustment seat. The multiple telescopic support legs are supported on the lower end of the water platform (1) by an array of adjustment seats. The adjustment seat includes a fine-tuning seat (2), an adjustment block one (8), an adjustment block two (10), and a shifting screw (11). The fine-tuning seat (2) is fixedly connected to the upper end of the telescopic support leg. The fine-tuning seat (2) has an adjustment cavity (7) inside, and the adjustment cavity (7) has an adjustment block that can slide laterally. Second (10), the first adjustment block (8) is vertically slidably disposed in the adjustment cavity (7) and located above the second adjustment block (10). The lower end face of the first adjustment block (8) and the upper end face of the second adjustment block (10) are in contact with each other and are both inclined surfaces. The shifting screw (11) rotatably passes through the fine-tuning seat (2) into the adjustment cavity (7) and is threadedly connected to the second adjustment block (10) for driving the second adjustment block (10) to slide laterally. The upper end of the first adjustment block (8) is used to connect to the water platform (1).
2. The levelness control device for civil engineering installation according to claim 1, characterized in that: The upper end of the adjustment block (8) is fixedly connected to a support plate (6), and the upper end of the support plate (6) is provided with a limiting post (9) that penetrates the water platform (1).
3. The levelness control device for civil engineering installation according to claim 2, characterized in that: The water platform (1) is provided with multiple limiting holes (12), and the limiting post (9) is a "T" shaped structure. The "T" shaped limiting post (9) is installed through the limiting hole (12), and the wide end is located on the upper surface of the water platform (1).
4. The levelness control device for civil engineering installation according to claim 2, characterized in that: The support plate (6) is provided with a vertical limiting rod at the bottom of both sides of the adjustment block (8), and the limiting rods on both sides are movably inserted into the adjustment cavity (7) of the fine adjustment seat (2).
5. The levelness control device for civil engineering installation according to claim 1, characterized in that: The adjustment cavity (7) has an open structure on one side and at the top. The first adjustment block (8) is slidably disposed at the top opening of the adjustment cavity (7), and the second adjustment block (10) is slidably disposed at the side opening of the adjustment cavity (7). The two sides of the second adjustment block (10) are slidably connected to the inner wall of the adjustment cavity (7).
6. The levelness control device for civil engineering installation according to claim 1, characterized in that: The end of the shifting screw (11) is fixedly connected to a hexagonal inner hole block, which is rotatably connected to the side wall of the fine-tuning seat (2).
7. The levelness control device for civil engineering installation according to claim 1, characterized in that: The telescopic support leg includes a telescopic column (3) and a support leg (4). The upper end of the telescopic column (3) is connected to the adjustment seat. A vertical slide groove is provided on one side of the telescopic column (3). The support leg (4) is slidably connected in the slide groove. The end of the support leg (4) away from the adjustment seat is used to extend out of the slide groove and support the ground. The support leg (4) is also provided with a limiting structure for restricting the relative movement of the telescopic column (3) and the support leg (4).
8. A levelness control device for civil engineering installation according to claim 7, characterized in that: The limiting structure includes a push block (14) and a tension spring (15). The slide groove of the telescopic column (3) is provided with multiple buckle holes (5) in the vertical direction. The upper end of the support leg (4) is provided with an inner cavity (17) on the side near the slide groove. The push block (14) is slidably arranged in the inner cavity (17). The push block (14) is fixedly connected to a buckle block (13) on the side near the slide groove. The buckle block (13) can move through the inner cavity (17) and extend to the buckle hole (5). The other side of the push block (14) is connected to the side wall of the inner cavity (17) through a tension spring (15). The tension spring (15) is used to drive the buckle block (13) to be inserted into any buckle hole (5).
9. A levelness control device for civil engineering installation according to claim 8, characterized in that: The top of the inner cavity (17) is an open structure, and the top of the push block (14) is fixedly connected to the paddle block (16), which extends upward through the top of the support leg (4).
10. A levelness control device for civil engineering installation according to claim 8, characterized in that: The bottom of the buckle block (13) is a sloping structure with the narrow end facing the buckle hole (5), and the top of the buckle block (13) is horizontally set. The horizontal surface of the top of the buckle block (13) is used to contact the inner wall of the buckle hole (5).