Positioning tool and positioning assembly for enclosing wall connection foundation

By using fences to connect foundation positioning tooling and positioning parts, the problem of rapid determination of anchor pile installation location is solved, stability and accuracy during construction is ensured, and the risk of insolid connection is reduced.

CN223075189UActive Publication Date: 2025-07-08CHENGDU CONSTR ENG PRE-CONSTR TECH CO LTD +1
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Patent Information

Application Number
CN202421712816.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-18
Publication Date
2025-07-08
Estimated Expiration
2034-07-18

AI Technical Summary

Technical Problem

In prefabricated fence construction, how to quickly determine the installation location of anchor piles to ensure accurate positioning and installation of the connecting foundation.

Method used

The fence is used to connect the foundation positioning tooling, including tooling plates and positioning parts. By fixing the tooling plates in the construction area and inserting the anchor piles into the positioning holes, the positioning parts and casing guides are used to ensure the accurate positioning and installation of the anchor piles.

Benefits of technology

The rapid determination of the installation position of the anchor pile is achieved, reducing the risk of positioning offset caused by external forces and manual measurement errors, and improving construction accuracy and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an enclosing wall connection foundation positioning tool and a positioning assembly, and relates to the technical field of positioning tools. According to the main technical scheme, the tool comprises a tool plate and a positioning piece, a positioning hole is formed in the upper plate face of the tool plate, the positioning hole corresponds to a mounting hole in a connection foundation, and the positioning hole is used for reserving the insertion position of an anchor pile; the positioning piece is connected to the tool plate, and the lower end of the positioning piece is used for being connected to a construction area of an enclosing wall. The tool plate is placed in a preset enclosure wall construction area, and the lower end of the positioning piece is inserted into the preset enclosure wall construction area. The purposes that the stability of the tool plate in the construction process is ensured, and then the probability that the positioning holes deviate due to the influence of external force is reduced are achieved. And the anchor piles are anchored into a preset enclosure wall construction area from the positioning holes in the tool plate. Therefore, the mounting position of the anchor pile can be quickly determined, and the purposes of subsequent positioning and mounting of the connection foundation are facilitated. Meanwhile, the purpose of reducing the risk of infirm connection caused by manual measurement errors in construction is achieved.
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Description

Technical Field

[0001] The utility model relates to the technical field of positioning tooling, and particularly relates to a positioning tooling and a positioning component for a fence connection foundation. Background Art

[0002] An assembled fence generally includes a prefabricated connection foundation, a wind-resistant column and a wall panel. The wind-resistant column is arranged on the connection foundation, and insertion slots are arranged on both sides of the wind-resistant column. Both ends of the wall panel are respectively inserted into the opposite insertion slots of adjacent wind-resistant columns.

[0003] During the actual construction process, construction workers first install anchor piles in the construction area, and then install the connection foundation on the anchor piles in the construction area. In this process, how to quickly determine the installation position of the anchor piles in the construction area is a technical problem to be solved urgently. Summary of the Utility Model

[0004] The purpose of the utility model is to provide a positioning tooling and a positioning component for a fence connection foundation. The tooling plate is installed in the construction area by using the positioning piece, and then the anchor pile is anchored into the predetermined fence construction area from the positioning hole on the tooling plate. Thus, the installation position of the anchor pile can be quickly determined, so as to facilitate the subsequent positioning and installation of the connection foundation.

[0005] To solve the above technical problems, the utility model adopts the following technical solutions:

[0006] In the first aspect, a positioning tooling for a fence connection foundation is provided, which includes a tooling plate and a positioning piece. A positioning hole is formed on the upper plate surface of the tooling plate, and the positioning hole corresponds to the installation hole on the connection foundation. The positioning hole is used for reserving the insertion position of the anchor pile; the positioning piece is connected to the tooling plate, and the lower end of the positioning piece is used for connecting to the construction area of the fence.

[0007] A further solution is that the number of the positioning pieces is several; the several positioning pieces are evenly distributed at the four corners of the tooling plate.

[0008] A further solution is that the cross-sectional area of the positioning piece gradually increases in the direction from the lower end of the positioning piece to the upper end of the positioning piece.

[0009] A further solution is that handles are arranged at both ends of the tooling plate.

[0010] A further solution is that the positioning tooling further includes a sleeve; the sleeve is arranged on the lower plate surface of the tooling plate, and the sleeve is arranged corresponding to the positioning hole.

[0011] In a second aspect, a positioning component is provided, which includes the positioning tooling described in the first aspect, and further includes a positioning rod group and a connecting member. The positioning tooling is provided at both ends of the positioning rod group; the connecting member is connected to the positioning rod group and the positioning tooling.

[0012] A further solution is that: the connecting member is installed on the upper surface of the tooling plate; connection hole groups are provided at both ends of the positioning rod group, and the connection hole groups are connected to the connecting member.

[0013] A further solution is that: the two connecting members are uniformly arranged along the direction from one end of the tooling plate to the other end of the tooling plate; the positioning rod group includes two positioning rods, the two positioning rods are arranged in parallel, and the two positioning rods are respectively connected to the connecting member.

[0014] A further solution is that: the connecting member includes two connecting columns; the two connecting columns are uniformly arranged along the direction from one side of the tooling plate to the other side of the tooling plate; the connection hole group includes two connection holes; and the two connection holes are respectively connected to the connecting columns.

[0015] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0016] By placing the tooling plate in a predetermined enclosure construction area and inserting the lower end of the positioning member into the predetermined enclosure construction area, the tooling plate is fixed above the predetermined enclosure construction area. The purpose of ensuring the stability of the tooling plate during the construction process and thereby reducing the probability of the positioning holes shifting due to external forces is achieved.

[0017] By anchoring the anchor pile into the predetermined enclosure construction area through the positioning hole on the tooling plate. Thus, the purpose of quickly determining the installation position of the anchor pile is achieved, which is convenient for subsequent connection foundation positioning and installation. At the same time, the purpose of reducing the risk of insecure connection caused by manual measurement errors during construction is achieved. Description of the Drawings

[0018] Figure 1 It is a schematic structural diagram of a positioning tooling for a wall connection foundation in this embodiment;

[0019] Figure 2 It is a front view structural diagram of a positioning tooling for a wall connection foundation in this embodiment;

[0020] Figure 3 It is a left view structural diagram of a positioning tooling for a wall connection foundation in this embodiment;

[0021] Figure 4 It is a top view structural diagram of a positioning tooling for a wall connection foundation in this embodiment;

[0022] Figure 5 This is a top - view structural schematic diagram of a positioning component in this embodiment.

[0023] Marks in the attached drawings and corresponding component names:

[0024] 10 - positioning tooling; 101 - tooling plate; 102 - positioning hole; 103 - positioning part; 104 - handle; 105 - sleeve

[0025] 20 - positioning rod; 30 - connecting column; 40 - connecting hole. Specific implementation manners

[0026] The present utility model will be further described below in conjunction with the attached drawings.

[0027] Embodiment 1

[0028] This embodiment provides a positioning tooling 10 for the connection foundation of a wall. As Figures 1-4 shown, it includes a tooling plate 101 and a positioning part 103. A positioning hole 102 is provided on the upper plate surface of the tooling plate 101. The positioning hole 102 corresponds to the installation hole on the connection foundation, and the positioning hole 102 is used to reserve the insertion position of the anchor pile. The positioning part 103 is connected to the tooling plate 101, and the lower end of the positioning part 103 is used to be connected to the construction area of the wall.

[0029] Exemplarily, during implementation, the positioning hole 102 is drilled on the upper plate surface of the tooling plate 101 corresponding to the position of the installation hole on the connection foundation. This positioning hole 102 can enable the anchor pile to be accurately aligned and inserted. The positioning part 103 is connected to the tooling plate 101 by means of welding fixation, screw connection fixation or integral molding, etc. The positioning part 103 extends from the upper plate surface of the tooling plate 101 towards the lower plate surface of the tooling plate 101, and the lower end of the positioning part 103 is used to be connected to the construction area of the wall.

[0030] When in use, first place the tooling plate 101 in the predetermined construction area of the wall. Secondly, insert the lower end of the positioning part 103 into the predetermined construction area of the wall to fix the tooling plate 101 above the predetermined construction area of the wall. The purpose is to ensure the stability of the tooling plate 101 during construction, thereby reducing the probability of the positioning hole 102 shifting due to external forces. Then, anchor the anchor pile into the predetermined construction area of the wall through the positioning hole 102 on the tooling plate 101. Thus, the purpose of quickly determining the installation position of the anchor pile is achieved, facilitating subsequent connection foundation positioning and installation. At the same time, the purpose of reducing the risk of insecure connection caused by manual measurement errors during construction is achieved.

[0031] Embodiment 2

[0032] As Figure 1As shown, on the basis of the above-mentioned Embodiment 1, in this embodiment, the number of the positioning members 103 is set to be several; the several positioning members 103 are evenly distributed at the four corners of the tooling plate 101.

[0033] Exemplarily, during the implementation process, the number of the positioning members 103 is set to be multiple, and the multiple positioning members 103 are evenly distributed at the four corners of the tooling plate 101. During the process of inserting the tooling plate 101 into the predetermined enclosure construction area, the positioning members 103 at the four corners of the tooling plate 101 can achieve multi-point contact and positioning between the tooling plate 101 and the enclosure construction area, so as to better resist external disturbances even under complex or adverse construction conditions, and then ensure the stability of the tooling plate 101 during the entire construction process, so as to reduce the possibility of the offset of the positioning holes 102 and improve the positioning accuracy of the anchor piles. At the same time, the uniform distribution of the positioning members 103 makes the pressure received by the tooling plate 101 more uniform, so as to reduce deformation or offset caused by uneven local stress, and then improve the construction accuracy and safety.

[0034] Embodiment 3

[0035] As Figure 1 shown, on the basis of the above-mentioned Embodiment 1, in this embodiment, the cross-sectional area of the positioning member 103 gradually increases in the direction from the lower end to the upper end of the positioning member 103.

[0036] Exemplarily, during the implementation process, the cross-sectional area of the positioning member 103 gradually increases in the direction from the lower end to the upper end of the positioning member 103.

[0037] On the one hand, during the process of inserting the positioning member 103 into the predetermined enclosure construction area, the smaller cross-sectional area at the lower end of the positioning member 103 helps to reduce the resistance when the positioning member 103 is inserted, so as to make the positioning member 103 easier to penetrate the soil layer, and then improve the construction efficiency. At the same time, the positioning member 103 has a conical structure with a gradually increasing cross-sectional area from bottom to top, effectively reducing the disturbance to the surrounding soil and reducing the risk of soil loosening or settlement caused by excessive disturbance during the digging and insertion process, so as to improve the positioning accuracy and overall structural stability of the tooling plate 101 after the positioning member 103 is inserted.

[0038] On the other hand, when the positioning member 103 is inserted into the predetermined enclosure construction area, the gradually increasing cross-sectional area of the positioning member 103 from bottom to top can form a stable base, so as to significantly enhance the stability of the positioning member 103 in the predetermined enclosure construction area and reduce the risk of the positioning member 103 tilting or moving due to external forces during the construction process.

[0039] On the other hand, when it is necessary to adjust the position of the tooling plate 101 or remove the positioning member 103 after construction is completed, it is achieved that the positioning member 103 is easier to pull out from the soil, thereby reducing potential damage to the tooling plate 101 or surrounding structures.

[0040] Embodiment 4

[0041] As Figure 1 shown, on the basis of the above-mentioned Embodiment 1, in this embodiment, handles 104 are provided at both ends of the tooling plate 101.

[0042] Exemplarily, during implementation, the handles 104 are installed on the tooling plate 101 by means of welding fixation, screw connection fixation or integral molding, etc. The number of handles 104 is set to two, and the two handles 104 are respectively installed at both ends of the tooling plate 101. Among them, the handles 104 can adopt metal rings, plastic grips, bow-shaped grips or other forms of grasping devices. For example, when it is necessary to adjust the position of the tooling plate 101 or remove the positioning member 103 after construction is completed, the staff can grasp the position of the handles 104 to pull out the positioning member 103 from the predetermined fence construction area. Thus, the purpose of enabling the staff to more easily lift, move and position the tooling plate 10 can be achieved.

[0043] Preferably, the installation position of the handles 104 is located at the edge of the tooling plate 101, achieving the purpose of facilitating the staff to grasp and control.

[0044] Embodiment 5

[0045] As Figure 1 shown, on the basis of the above-mentioned Embodiment 1, in this embodiment, the positioning tooling 10 further includes a sleeve 105; the sleeve 105 is arranged on the lower plate surface of the tooling plate 101, and the sleeve 105 is arranged corresponding to the positioning hole 102.

[0046] Exemplarily, during implementation, the above-mentioned positioning tooling 10 further includes a sleeve 105, and the sleeve 105 is connected to the lower plate surface of the tooling plate 101 by means of welding fixation, screw connection fixation or integral molding, etc. The number of sleeves 105 is the same as the number of positioning holes 102 on the tooling plate 101, and the sleeves 105 correspond to the positioning holes 102 one by one. So that the sleeve 105 forms a guiding channel at the lower end of the positioning hole 102, achieving the purpose of ensuring that the anchor pile can be inserted into a predetermined position along the sleeve 105 after entering the positioning hole 102.

[0047] During the implementation process, when the thickness of the tooling plate 101 is small and the length of the anchor pile is long, after the anchor pile is inserted into the positioning hole 102, there may be a certain inclination between the anchor pile and the side wall of the positioning hole 102, so that the lower end of the anchor pile deviates far from the predetermined insertion position. A sleeve 105 is installed at the lower end of the positioning hole 102, so that after the anchor pile is inserted into the positioning hole 102, the anchor pile can be inserted into the sleeve 105, and then the anchor pile is guided by the sleeve 105 to be inserted into the predetermined insertion position, so as to reduce the probability of deviation or skew during the insertion of the anchor pile and ensure the positioning accuracy and reliability.

[0048] Embodiment 6

[0049] This embodiment provides a positioning assembly, as Figure 5 shown, including the positioning tooling 10 described in any one of Embodiments 1-5, and further including a positioning rod group and a connecting member. Both ends of the positioning rod group are provided with the positioning tooling 10; the connecting member is connected to the positioning rod group and the positioning tooling 10.

[0050] Exemplarily, during the implementation process, the length of the positioning rod 20 can be set according to the length of the enclosure wall. The above-mentioned positioning tooling 10 is respectively connected to both ends of the positioning rod 20 by detachable connection methods such as screwing and inserting.

[0051] When it is necessary to determine the installation positions of several anchor piles for connecting the foundations, first install the first positioning tooling 10 at the preset first connection foundation position. Then, connect one end of the positioning rod 20 to the positioning tooling. Secondly, connect the second positioning tooling 10 to the other end of the positioning rod 20. In this way, the installation positions of the anchor piles for the first connection foundation and the second connection foundation are determined. When it is necessary to determine the installation position of the anchor pile for the third connection foundation, only need to connect one end of the positioning rod 20 to the second positioning tooling 10 and connect the third positioning tooling 10 to the other end of the positioning rod 20, then the installation position of the anchor pile for the third connection foundation can be determined. And so on, the installation positions of several connection foundations can be determined. Thus, the installation positions of several anchor piles for connecting the foundations are determined to improve the construction efficiency and reduce the repeated positioning time and labor costs.

[0052] Embodiment 7

[0053] As Figure 5 shown, on the basis of the above Embodiment 6, in this embodiment, the connecting member is installed on the upper plate surface of the tooling plate 101; connection hole groups are opened at both ends of the positioning rod group, and the connection hole groups are connected to the connecting member.

[0054] Exemplarily, during implementation, the connecting member is installed on the upper plate surface of the tooling plate 101, usually located at the center position or the edge of the tooling plate 101 to provide the best connection points. Connection hole groups are provided at both ends of the positioning rod group, and the connection hole groups are matched with the connecting members on the tooling plate 101 to establish a firm connection between the positioning rod group and the tooling plate 101. During use, by inserting the connecting member on the tooling plate 101 into the connection hole group on the positioning rod 20, the connection between the tooling plate 101 and the positioning rod 20 can be achieved. By separating the connecting member on the tooling plate 101 from the connection hole group on the positioning rod 20, the separation between the tooling plate 101 and the positioning rod 20 can be achieved. Thus, the rapid installation and disassembly of the tooling plate 101 and the positioning rod member are realized, thereby improving the construction efficiency and reducing the labor intensity of the staff.

[0055] For example, in an alternative implementation, the connecting member is a bolt. By passing the bolt through the connection hole group of the positioning rod group and then fastening it with a nut, the connection between the positioning rod group and the tooling plate 101 can be achieved. In another alternative implementation, the connecting member is a pin. By inserting the pin into the connection hole group, the connection between the positioning rod group and the tooling plate 101 can be achieved. In yet another alternative implementation, the connecting member is a buckle and the connection hole group is a card slot. Through the buckling of the buckle and the card slot, the rapid connection and separation between the tooling plate 101 and the positioning rod 20 can be achieved.

[0056] Example 8

[0057] As Figure 5 shown, on the basis of the above Example 7, in this example, the two connecting members are uniformly arranged along the direction from one end of the tooling plate 101 to the other end of the tooling plate 101; the positioning rod group includes two positioning rods 20, the two positioning rods 20 are arranged in parallel, and the two positioning rods 20 are respectively connected to the connecting members.

[0058] Exemplarily, during implementation, the number of connecting members on the tooling plate 101 is set to two, and the two connecting members are uniformly arranged along the direction from one end of the tooling plate 101 to the other end. The positioning rod group includes two positioning rods 20 arranged in parallel, and the two positioning rods 20 are respectively connected to the connecting members at both ends of the tooling plate 101. During the implementation process, the two positioning rods 20 arranged in parallel are respectively connected to the connecting members at both ends of the tooling plate 101, so as to ensure the straightness and parallelism during the positioning process of two adjacent tooling plates 101, thereby reducing the positioning deviation and improving the positioning accuracy.

[0059] Example 9

[0060] As Figure 5As shown, on the basis of the above-mentioned Embodiment 8, in this embodiment, the connecting member includes two connecting columns 30; the two connecting columns 30 are uniformly arranged along the direction from one side of the tooling plate 101 to the other side of the tooling plate 101; the connection hole group includes two connection holes 40; and the two connection holes 40 are respectively connected to the connecting columns 30.

[0061] Exemplarily, during implementation, a connecting member includes two connecting columns 30, and the two connecting columns 30 are uniformly arranged along one side of the tooling plate 101 to the other side. One connection hole group on the positioning rod 20 includes two connection holes 40, and the two connection holes 40 are respectively correspondingly connected to the two connecting columns 30 on the tooling plate 101. During the implementation process, the two connection holes 40 on the positioning rod 20 are precisely matched with the two connecting columns 30 on the tooling plate 101, forming a stable connection point, so as to further ensure the straightness and parallelism of two adjacent tooling plates 101 during the positioning process, reduce the positioning deviation, and improve the positioning accuracy.

[0062] For example, during the implementation process, the tooling plate 101 adopts a cuboid structure with a length of 500 mm * a width of 120 mm * a height of 6 mm. The diameter of the positioning hole 102 is 12 mm, and the number of positioning holes 102 is set to four. The four positioning holes 102 are distributed in a hole array in two rows and two columns on the upper plate surface of the tooling plate 101. Among them, the distance between the two rows of positioning holes 102 is 200 mm, and the distance between the two columns of positioning holes 102 is 80 mm. The diameter of the connecting column 30 is 12 mm and the height is 20 mm. The number of connecting columns 30 is set to four. The four connecting columns 30 are arranged in two rows and two columns on the upper plate surface of the tooling plate 101. Among them, the distance between the two rows of connecting columns 30 is 132 mm, and the distance between the two columns of positioning holes 102 is 80 mm. The positioning member 103 adopts a conical structure with an upper end diameter of 8 mm and a height of 200 mm. The number of positioning members 103 is set to four, and the four positioning members 103 are evenly distributed at the four corners of the lower plate surface of the tooling plate 101. The height of the sleeve 105 is 50 mm, and the number of sleeves 105 is also set to 4. The handle 104 adopts an arched grip, and the distance between the two ends of the handle 104 is 92 mm.

[0063] Although the present invention has been described here with reference to multiple explanatory embodiments of the present invention, it should be understood that those skilled in the art can design many other modifications and implementation manners, and these modifications and implementation manners will fall within the scope of the principles and spirit disclosed in this application. More specifically, within the scope of this application's disclosure, drawings, and claims, various variations and improvements can be made to the components and / or layout of the subject combination layout. In addition to the variations and improvements made to the components and / or layout, other uses will also be obvious to those skilled in the art.

Claims

1. A positioning tooling for the connection foundation of a wall, characterized in that Including: A tooling plate (101), on the upper plate surface of the tooling plate (101), positioning holes (102) are provided, the positioning holes (102) correspond to the mounting holes on the connection base, and the positioning holes (102) are used to reserve the insertion positions of the anchor piles; A positioning member (103), the positioning member (103) is connected to the tooling plate (101), and the lower end of the positioning member (103) is used to be connected to the construction area of the enclosure wall.

2. The positioning tooling according to claim 1, wherein: The number of the positioning members (103) is set to be several; The several positioning members (103) are evenly distributed at the four corners of the tooling plate (101).

3. The positioning tooling according to claim 1, wherein: The cross-sectional area of the positioning member (103) gradually increases in the direction from the lower end of the positioning member (103) to the upper end of the positioning member (103).

4. The positioning tooling according to claim 1, wherein: Both ends of the tooling plate (101) are provided with handles (104).

5. The positioning tooling according to claim 1, wherein: It further includes a sleeve (105); The sleeve (105) is arranged on the lower plate surface of the tooling plate (101), and the sleeve (105) is arranged corresponding to the positioning holes (102).

6. A positioning component, characterized in that, Including the positioning tooling (10) according to any one of claims 1-5, it further includes: A positioning rod group, both ends of the positioning rod group are provided with the positioning tooling (10); A connecting member, the connecting member is connected to the positioning rod group and the positioning tooling (10).

7. The positioning assembly according to claim 6, wherein: The connecting member is installed on the upper plate surface of the tooling plate (101); Both ends of the positioning rod group are provided with connection hole groups, and the connection hole groups are connected to the connecting member.

8. The positioning assembly according to claim 7, wherein: The two connecting members are evenly arranged in the direction from one end of the tooling plate (101) to the other end of the tooling plate (101); The positioning rod group includes two positioning rods (20), the two positioning rods (20) are arranged in parallel, and the two positioning rods (20) are respectively connected to the connecting member.

9. The positioning assembly according to claim 8, wherein: The connecting member includes two connecting columns (30); The two connecting columns (30) are evenly arranged in the direction from one side of the tooling plate (101) to the other side of the tooling plate (101); The connection hole group includes two connection holes (40); And the two connection holes (40) are respectively connected to the connecting columns (30).