Building design wall detection device
By designing an architectural design wall detection device including an electric telescopic rod, a hammer body and an adjustment mechanism, the problem of inconvenience in detection of existing devices is solved, and the portability and applicability are improved.
Patent Information
- Application Number
- CN202421907625.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-08
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2034-08-08
AI Technical Summary
When used, the existing wall detection device is used, the knock structure on one side of the detection wall is far away from the handle, which leads to inconvenience in detection, especially the detection of the upper wall, which is heavier in weight and insufficient practicality.
An architectural design wall inspection device is designed, including a housing assembly, an electric telescopic rod, a hammer body and an adjustment mechanism. By rotating the screw, adjusting the position of the arc clamp, fixing the staff's forearm on the housing assembly, and controlling the electric telescopic rod through the button module to drive the hammer for wall inspection.
The device is highly portable and is suitable for detection of a variety of environments and locations. It increases applicability through stepless adjustment function and improves the practicality of detection.
Smart Images

Figure CN222994398U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of wall detection, and particularly relates to a wall detection device for architectural design. Background Technique
[0002] The wall of architectural design is a part of the building structure, bearing the vertical loads from the upper structures such as the roof and floor slabs, as well as the horizontal loads such as wind and earthquake. For example, in a framed structure building, although the infill wall does not bear the main structural loads, it can also increase the overall stability of the structure. Architectural design usually follows a series of national and local standards and specifications, and these standards have clear regulations on various performance indicators of the wall. Through detection, it can be verified whether the wall meets the requirements of these standards.
[0003] Currently, the existing device (such as the publication number: CN219830949U) discloses a wall detection device based on architectural design. This device can detect rough walls and smooth and fragile walls respectively through two hammers of different sizes. The second hammer can be used to detect relatively rough walls, while for smooth and fragile walls such as tiles, the smaller first hammer is used to strike, and the springs on both sides of the second moving rod can provide buffering during the strike to prevent damage to the wall while achieving the detection effect.
[0004] However, in the process of implementing the above technical solution, it is found that there are at least the following technical problems: when the device is in use, the knocking structure on one side for detecting the wall is at a relatively far position from the handle. Therefore, the detection of the wall can only be applied to the bottom wall detection. For the detection of the upper wall, due to the fact that the knocking structure on one side for detecting the wall is at a relatively far position from the handle, it is relatively heavy and troublesome to detect, and the practicability is insufficient and needs to be improved. Content of the Utility Model
[0005] (1) Technical Problems to be Solved
[0006] Aiming at the deficiencies of the prior art, the utility model provides a wall detection device for architectural design, which solves the technical problem of insufficient practicability of the existing device.
[0007] (2) Technical Solutions
[0008] To achieve the above purposes, the utility model is realized through the following technical solutions:
[0009] A wall detection device for architectural design, including a housing assembly. A square groove is provided inside the housing assembly. An adjustment mechanism is rotatably installed inside the square groove. The adjustment mechanism includes a lead screw, and a part of the lead screw is exposed above the housing assembly. Slide grooves are symmetrically provided inside the square groove, and each slide groove is located at the four corners of the square groove. A square plate is slidably installed inside the square groove. The square plate is threadedly installed with the lead screw. A slider is slidably installed inside each slide groove, and each slider is fixedly installed with the square plate. An arc-shaped clamping member is fixedly installed at the lower end of each slider.
[0010] Preferably, side grooves are symmetrically provided on the side walls of each slide groove. A side block is slidably installed inside each side groove, and each side block is fixedly installed with the slider. Each side block is located on both sides of the slider. A silica gel layer is fixedly installed on the inner side of each arc-shaped clamping member. A power module and a control module are respectively provided inside the housing assembly.
[0011] Preferably, an electric telescopic rod is fixedly installed at the upper end of the housing assembly. A hammer body is fixedly installed on the output shaft of the electric telescopic rod, and a rubber pad is provided at the end of the hammer body.
[0012] Preferably, a through groove is provided inside the housing assembly, and the through groove is located between the electric telescopic rod and the hammer body.
[0013] Preferably, the through groove is located above the square groove. A support block is slidably installed inside the through groove. A connecting rod is fixedly installed between the support block and the hammer body. A button module is fixedly installed at the lower end of the housing assembly, and the button module is located on one side of the lower end of the housing assembly away from the power module.
[0014] (III) Beneficial effects
[0015] First, by optimizing the structure and layout of the device, a hammer body is provided on the output shaft of the electric telescopic rod, and through the button module, the hammering of the wall can be completed. At the same time, since the device can be installed on the human arm, it has strong portability and is conducive to being used in various environments and positions, with strong practicality.
[0016] Second, by rotating the lead screw, the lead screw rotates in the square groove inside the housing assembly and has a threaded drive with the square plate, so that the square plate drives the slider to slide upward inside the square groove and the slide groove, and further reduces the distance between the arc-shaped clamping member and the bottom of the housing assembly until the silica gel layer on the arc-shaped clamping member can fix the worker's forearm on the housing assembly. Thus, stepless adjustment can be carried out according to the situation of the user's arm, thereby increasing the applicability. Description of the drawings
[0017] The above description is only an overview of the technical solution of the present utility model. In order to better understand the technical means of the present utility model and implement it according to the content of the specification, the following is a detailed description of the preferred embodiments of the present utility model in conjunction with the accompanying drawings.
[0018] Figure 1 is a three-dimensional structure diagram of the present utility model;
[0019] Figure 2 is a three-dimensional exploded structure diagram of the present utility model;
[0020] Figure 3 is a cross-sectional view of the housing assembly of the present utility model;
[0021] Figure 4 is a connection exploded structure diagram of the housing assembly of the present utility model.
[0022] Legend: 11. Housing assembly; 12. Square groove; 13. Lead screw; 14. Slide groove; 15. Side groove; 16. Square plate; 17. Slide block; 18. Side block; 19. Arc-shaped clamping member; 21. Silicone layer; 22. Power supply module; 23. Control module; 24. Electric telescopic rod; 25. Hammer body; 26. Rubber pad; 27. Through groove; 28. Support block; 29. Connecting rod; 31. Button module. Specific embodiments
[0023] In the embodiment of the present application, by providing a wall detection device for architectural design, the technical problem of insufficient practicability of the existing device is effectively solved. By optimizing the structure and layout of the device, a hammer body is arranged on the output shaft of the electric telescopic rod, and through the button module, the wall can be hammered. At the same time, since the device can be installed on the human arm, it has strong portability and is suitable for use in various environments, with strong practicability. And by rotating the lead screw, the lead screw rotates in the square groove inside the housing assembly and engages in a screw drive with the square plate, so that the square plate drives the slide block to slide upward inside the square groove and the slide groove, thereby reducing the distance between the arc-shaped clamping member and the bottom of the housing assembly until the silicone layer on the arc-shaped clamping member can fix the worker's forearm on the housing assembly. Thus, stepless adjustment can be made according to the situation of the user's arm, thereby increasing applicability. Embodiment
[0024] As Figure 1 - Figure 4 shown, the technical solution in the embodiment of the present application effectively solves the technical problem of insufficient practicability of the existing device, and the general idea is as follows:
[0025] In view of the problems existing in the prior art, the utility model provides a wall detection device for architectural design, which includes a housing assembly 11. A square groove 12 is formed inside the housing assembly 11. An adjusting mechanism is rotatably installed inside the square groove 12. The adjusting mechanism includes a lead screw 13. A part of the lead screw 13 is exposed above the housing assembly 11. Side grooves 14 are symmetrically formed inside the square groove 12, and each side groove 14 is located at the four corners of the square groove 12. A square plate 16 is slidably installed inside the square groove 12. The square plate 16 is threadedly installed with the lead screw 13. Sliders 17 are slidably installed inside each side groove 14. Each slider 17 is fixedly installed with the square plate 16. An arc-shaped clamping member 19 is fixedly installed at the lower end of each slider 17. By rotating the lead screw 13, the lead screw 13 rotates in the square groove 12 inside the housing assembly 11 and engages in threaded transmission with the square plate 16, causing the square plate 16 to drive the slider 17 to slide upward inside the square groove 12 and the side grooves 14, so that the distance between the arc-shaped clamping member 19 and the bottom of the housing assembly 11 is reduced until the silicone layer 21 on the arc-shaped clamping member 19 can fix the staff's forearm on the housing assembly 11, and thus stepless adjustment can be performed according to the condition of the user's arm, thereby increasing the applicability.
[0026] Side grooves 15 are symmetrically formed on the side walls of each side groove 14. Side blocks 18 are slidably installed inside each side groove 15. Each side block 18 is fixedly installed with the slider 17. Each side block 18 is located on both sides of the slider 17. A silicone layer 21 is fixedly installed inside each arc-shaped clamping member 19. A power module 22 and a control module 23 are respectively arranged inside the housing assembly 11. By optimizing the structure and layout of the device, a hammer body 25 is arranged on the output shaft of the electric telescopic rod 24, and through the button module 31, the wall can be hammered. At the same time, since the device can be installed on the human arm, it has strong portability and is suitable for use in various environments, with strong practicability.
[0027] An electric telescopic rod 24 is fixedly installed at the upper end of the housing assembly 11. A hammer body 25 is fixedly installed on the output shaft of the electric telescopic rod 24. A rubber pad 26 is provided at the end of the hammer body 25. A through groove 27 is formed inside the housing assembly 11. The through groove 27 is located between the electric telescopic rod 24 and the hammer body 25. The through groove 27 is located above the square groove 12. A support block 28 is slidably installed inside the through groove 27. A connecting rod 29 is fixedly installed between the support block 28 and the hammer body 25. A button module 31 is fixedly installed at the lower end of the housing assembly 11. The button module 31 is located on one side of the lower end of the housing assembly 11 away from the power module 22. When the electric telescopic rod 24 is started, the output shaft of the electric telescopic rod 24 will drive the hammer body 25 to move. At this time, the hammer body 25 will generate a radial force on the connecting rod 29, so that when the hammer body 25 moves, it will synchronously drive the support block 28 to slide inside the through groove 27, thereby always providing a supporting force for the hammer body 25 and improving stability. When the lead screw 13 and the square plate 16 perform screw transmission, the square plate 16 drives the slider 17 and the side block 18 to slide upward inside the square groove 12, the chute 14 and the side groove 15, thereby providing additional limitation and increasing stability. At the same time, by providing sliders 17 at the four corners of the square groove 12, the two arc-shaped clamping members 19 for clamping the forearm are symmetrically installed, making the fixation firm and improving reliability.
[0028] Working principle:
[0029] First step, during use, the staff can first pass the forearm through between the arc-shaped clamping members 19 and place the fingers on the button module 31. Then the staff can rotate the lead screw 13, so that the lead screw 13 rotates in the square groove 12 inside the housing assembly 11 and performs screw transmission with the square plate 16, so that the square plate 16 drives the slider 17 and the side block 18 to slide upward inside the square groove 12, the chute 14 and the side groove 15 respectively, thereby reducing the distance between the arc-shaped clamping member 19 and the bottom of the housing assembly 11 until the silicone layer 21 on the arc-shaped clamping member 19 can fix the staff's forearm on the housing assembly 11.
[0030] Second step, after the housing assembly 11 is fixedly installed, at this time the staff can turn on the power module 22 for power supply. Then the staff can press the button in the button module 31 to control the start of the electric telescopic rod 24. When the electric telescopic rod 24 is started, the output shaft of the electric telescopic rod 24 will drive the hammer body 25 to extend, so that the rubber pad 26 hits the wall surface, thus completing the knocking detection of the wall surface. When the hammer body 25 moves, at this time the hammer body 25 will generate a radial force on the connecting rod 29, so that when the hammer body 25 moves, it will synchronously drive the support block 28 to slide inside the through groove 27.
[0031] Finally, it should be noted that: Obviously, the above embodiments are merely examples given to clearly illustrate the present utility model, rather than limitations on the implementation manners. For those of ordinary skill in the art, other different forms of changes or modifications can be made based on the above description. It is not necessary and impossible to enumerate all implementation manners here. And the obvious changes or modifications derived therefrom still fall within the protection scope of the present utility model.
Claims
1. A building design wall detection device, comprising a housing assembly (11), wherein a square groove (12) is provided inside the housing assembly (11), characterized in that: An adjusting mechanism is rotatably installed inside the square groove (12), and the adjusting mechanism includes a screw rod (13). The screw rod (13) is partially exposed above the housing assembly (11). A slide groove (14) is symmetrically opened inside the square groove (12). A square plate (16) is slidably installed inside the square groove (12). The square plate (16) is threadedly installed with the screw rod (13). A slider (17) is slidably installed inside each of the slide grooves (14). Each of the sliders (17) is fixedly installed with the square plate (16). An arc-shaped clamping member (19) is fixedly installed at the lower end of each of the sliders (17).
2. A building design wall detection device as claimed in claim 1, characterized in that: A side groove (15) is symmetrically provided on the side wall of each of the slide grooves (14), a side block (18) is slidably installed inside each of the side grooves (15), and each of the side blocks (18) is fixedly installed with the slider (17).
3. A building design wall detection device as claimed in claim 2, characterized in that: A silicone layer (21) is fixedly mounted on the inner side of each arc-shaped clamping member (19); Wherein, a power module (22) and a control module (23) are respectively arranged inside the housing assembly (11).
4. A building design wall detection device as claimed in claim 3, characterized in that: An electric telescopic rod (24) is fixedly mounted on the upper end of the housing assembly (11); Wherein, a hammer body (25) is fixedly mounted on the output shaft of the electric telescopic rod (24).
5. A building design wall detection device as claimed in claim 4, characterized in that: A rubber pad (26) is provided at the end of the hammer body (25).
6. A building design wall detection device as claimed in claim 5, characterized in that: A through slot (27) is provided inside the housing assembly (11); Wherein, the through slot (27) is located between the electric telescopic rod (24) and the hammer body (25).
7. A building design wall detection device as claimed in claim 6, characterized in that: A support block (28) is slidably mounted inside the through groove (27); Wherein, a connecting rod (29) is fixedly installed between the support block (28) and the hammer body (25).
8. A building design wall detection device as claimed in claim 7, characterized in that: A button module (31) is fixedly mounted on the lower end of the housing assembly (11); The button module (31) is located at a side of the lower end of the housing assembly (11) away from the power module (22).
Citation Information
Patent Citations
Wall body detection device based on building design
CN219830949U