Wall perpendicularity detection device for engineering supervision
By designing a wall verticality detection device that includes a base plate, a hinge seat, and a hinge shaft, the problem of existing equipment needing to be moved when detecting wall corners is solved. This enables multi-sided wall detection without moving the base plate, simplifying the operation process and improving detection efficiency.
Patent Information
- Application Number
- CN202520095703.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-15
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2035-01-15
AI Technical Summary
Existing verticality testing equipment requires moving the device and repositioning it when testing wall corners, which makes the operation complicated.
A wall verticality detection device for engineering supervision was designed, including a base plate, a hinge seat, and a hinge shaft. The hinge shaft is locked onto the hinge seat by a locking component, allowing the main plate to flip and fit snugly against the wall. Verticality is detected by combining a pointer and a corner scale. The other wall can be detected without moving the base plate.
This technology enables the verticality of one wall to be tested without moving the base plate after testing the verticality of another wall, simplifying the operation process and improving testing efficiency.
Smart Images

Figure CN223649923U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of verticality detection technology, and in particular to a wall verticality detection device for engineering supervision. Background Technology
[0002] Current verticality testing equipment can typically only detect the verticality between the ground and one wall. When testing the corners of walls, the equipment needs to be moved and repositioned, which makes the operation complicated. Utility Model Content
[0003] To address the aforementioned issues, this technical solution provides a wall verticality detection device for engineering supervision.
[0004] To achieve the above objectives, the technical solution is as follows:
[0005] A wall verticality testing device for engineering supervision, comprising:
[0006] The base plate is frame-shaped, with hinge seats on each of its four sides, and each hinge seat is equipped with a locking element that can be detachably connected to it;
[0007] The detection board includes a main board and hinge shafts extending from the four sides of the main board respectively;
[0008] The four hinge seats correspond one-to-one with the four hinge axes. When one of the hinge seats is connected to the locking member, the hinge axis is locked on the hinge seat. The hinge axis cooperates with the hinge seat to support the motherboard to rotate relative to the base plate around the hinge axis.
[0009] The hinge shaft is provided with a pointer at its end, and the hinge base is provided with an angle scale corresponding to the pointer.
[0010] As described above, a wall verticality detection device for engineering supervision has a mounting cavity on the hinge shaft, and a first bubble level is installed in the mounting cavity.
[0011] As described above, in a wall verticality testing device for engineering supervision, the mounting cavities are respectively located at both ends of the hinge shaft, and the first bubble level is plugged into the mounting cavity along the axial direction of the hinge shaft.
[0012] As described above, in a wall verticality detection device for engineering supervision, the hinge seat is provided with a semi-circular groove, and the hinge shaft is embedded in the semi-circular groove and rotates relative to it.
[0013] As described above, in a wall verticality detection device for engineering supervision, the hinge shaft has a locking groove at its center. After the locking member is embedded in the locking groove, it restricts the movement of the hinge shaft along its axial direction.
[0014] As described above, in a wall verticality detection device for engineering supervision, the locking member is provided with a buckle, and the hinge seat is provided with a protruding locking position. The locking member is inserted into the hinge seat, and after the buckle passes the locking position, it restricts the locking member from disengaging from the hinge seat in the pull-out direction.
[0015] As described above, in a wall verticality detection device for engineering supervision, a bracket is provided between the main board and the hinge shaft. When the main board is flipped to be perpendicular to the base plate via the hinge shaft, the bracket allows the edge of the main board to be flush with the base plate.
[0016] As described above, in a wall verticality detection device for engineering supervision, the main board has a mounting hole on its back, and a second bubble level is installed in the mounting hole.
[0017] The beneficial effects of this application are:
[0018] This invention provides a wall verticality testing device for engineering supervision. The base plate is installed flush against the wall corner. A hinge shaft is locked to a hinge seat using a locking mechanism. The main plate then flips using the hinge shaft, and the main plate is pressed against the wall. By observing the pointer and the angle scale, the verticality of the wall to the ground can be determined. When testing one wall, the base plate does not need to move. By releasing the locking mechanism and then locking another hinge shaft, the device can rotate relative to that hinge shaft for testing. Attached Figure Description
[0019] To more clearly illustrate the technical solutions in the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below.
[0020] Figure 1 This is a schematic diagram of the structure of this utility model;
[0021] Figure 2 This is a schematic diagram of the detection status. Detailed Implementation
[0022] To make the technical problems solved, technical solutions, and beneficial effects of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0023] A wall verticality testing device for engineering supervision, comprising:
[0024] The base plate 1 is frame-shaped, with a hinge seat 11 on each of its four sides. The hinge seat 11 is provided with a locking member 12 that can be detachably connected to it.
[0025] The detection board 2 includes a main board 21 and hinge shafts 22 extending from the four sides of the main board 21 respectively;
[0026] The four hinge seats 11 correspond one-to-one with the four hinge shafts 22. When one of the hinge seats 11 is connected to the locking member 12, the hinge shaft 22 is locked on the hinge seat 11. The hinge shaft 22 cooperates with the hinge seat 11 to support the main board 21 to rotate relative to the base plate 1 around the hinge shaft 22.
[0027] The hinge shaft 22 is provided with a pointer 20 at its end, and the hinge seat 11 is provided with an angle scale 10 corresponding to the pointer 20.
[0028] This invention provides a wall verticality testing device for engineering supervision. The base plate is installed flush against the wall corner. A hinge shaft is locked to a hinge seat using a locking mechanism. The main plate then flips using the hinge shaft, and the main plate is pressed against the wall. By observing the pointer and the angle scale, the verticality of the wall to the ground can be determined. When testing one wall, the base plate does not need to move. By releasing the locking mechanism and then locking another hinge shaft, the device can rotate relative to that hinge shaft for testing.
[0029] Furthermore, as a preferred embodiment of this solution and not a limitation, the hinge shaft 22 is provided with a mounting cavity 23, and the mounting cavity 23 is provided with a first bubble level 24. This facilitates disassembly and installation.
[0030] Furthermore, as a preferred embodiment of this solution and not a limitation, the mounting cavities 23 are respectively located at both ends of the hinge shaft 22, and the first bubble level 24 is inserted and connected to the mounting cavity 23 along the axial direction of the hinge shaft 22. Observe whether the base plate is in a horizontal position.
[0031] Furthermore, as a preferred embodiment of this solution and not a limitation, the hinge seat 11 is provided with a semi-circular groove 111, and the hinge shaft 22 is embedded in the semi-circular groove 111 and rotates relative to it, thereby improving the stability of rotation.
[0032] Furthermore, as a preferred embodiment of this solution and not a limitation, the hinge shaft 22 is provided with a locking groove 221 at its center. After the locking member 12 is embedded in the locking groove 221, it restricts the movement of the hinge shaft 22 along its axial direction. After all four locking members are locked, the detection plate cannot be flipped over, which facilitates transportation.
[0033] Furthermore, as a preferred embodiment of this solution and not a limitation, the locking member 12 is provided with a buckle 121, and the hinge seat 11 is provided with a locking position 112. When the locking member 12 is inserted into the hinge seat 11, the buckle 121 passes over the locking position 112, thus preventing the locking member 12 from disengaging from the hinge seat 11 in the pull-out direction. This facilitates locking or unlocking of the locking member.
[0034] Furthermore, as a preferred embodiment of this solution and not a limitation, a bracket 25 is provided between the motherboard 21 and the hinge shaft 22. When the motherboard 21 is flipped to be perpendicular to the base plate 1 via the hinge shaft 22, the bracket 25 allows the motherboard 21 to be flush with the edge of the base plate 1.
[0035] Furthermore, as a preferred embodiment of this solution and not a limitation, the motherboard 21 has a mounting hole 211 on its back, and a second bubble level 26 is provided on the mounting hole 211. This allows for observation of whether the motherboard is vertical.
[0036] The above description is only a preferred embodiment of this application and is not intended to limit the scope of implementation of this application. Any other embodiments whose principles and basic structures are the same as or similar to those of this application are within the protection scope of this application.
Claims
1. A wall verticality detection device for engineering supervision, characterized in that: include The base plate (1) is frame-shaped and has a hinge seat (11) on each of its four sides. The hinge seat (11) is provided with a locking member (12) that can be detachably connected to it. The detection board (2) includes a main board (21) and hinge shafts (22) extending from the four sides of the main board (21); The four hinge seats (11) correspond one-to-one with the four hinge shafts (22). When one of the hinge seats (11) is connected to the locking member (12), the hinge shaft (22) is locked on the hinge seat (11). The hinge shaft (22) cooperates with the hinge seat (11) to support the main board (21) to rotate relative to the base plate (1) around the hinge shaft (22). The hinge shaft (22) has a pointer (20) at its end, and the hinge seat (11) has an angle scale (10) corresponding to the pointer (20).
2. The wall verticality detection device for engineering supervision according to claim 1, characterized in that: The hinge shaft (22) is provided with a mounting cavity (23), and the mounting cavity (23) is provided with a first bubble level (24).
3. The wall verticality detection device for engineering supervision according to claim 2, characterized in that: The mounting cavities (23) are respectively located at both ends of the hinge shaft (22), and the first bubble level (24) is inserted and connected to the mounting cavity (23) along the axial direction of the hinge shaft (22).
4. The wall verticality detection device for engineering supervision according to claim 1, characterized in that: The hinge seat (11) is provided with a semi-circular groove (111), and the hinge shaft (22) is embedded in the semi-circular groove (111) and rotates relative to it.
5. The wall verticality detection device for engineering supervision according to claim 1, characterized in that: The hinge shaft (22) has a locking groove (221) at its center. After the locking member (12) is embedded in the locking groove (221), it restricts the hinge shaft (22) from moving along its axial direction.
6. The wall verticality detection device for engineering supervision according to claim 1, characterized in that: The locking member (12) is provided with a buckle (121), and the hinge seat (11) is provided with a locking position (112). The locking member (12) is inserted into the hinge seat (11). After the buckle (121) passes the locking position (112), it restricts the locking member (12) from disengaging from the hinge seat (11) in the pull-out direction.
7. The wall verticality detection device for engineering supervision according to claim 1, characterized in that: A bracket (25) is provided between the main board (21) and the hinge shaft (22). When the main board (21) is flipped to be perpendicular to the base plate (1) via the hinge shaft (22), the bracket (25) allows the edge of the main board (21) to be flush with the edge of the base plate (1).
8. The wall verticality detection device for engineering supervision according to claim 1, characterized in that: The motherboard (21) has a mounting hole (211) on the back, and a second bubble level (26) is provided on the mounting hole (211).