High-efficiency verticality detection device for building

By combining a laser emitter and a photosensitive sensor, a building verticality detection device has been developed that solves the problems of low efficiency and low accuracy in traditional methods, achieving rapid and accurate verticality detection, and is suitable for building construction.

CN223954913UActive Publication Date: 2026-02-27LIANYUNGANG JIANCHENG CONSTR ENG INSPECTION CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202520397940.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-10
Publication Date
2026-02-27
Estimated Expiration
2035-03-10

Smart Images

  • Figure CN223954913U_ABST
    Figure CN223954913U_ABST
Patent Text Reader

Abstract

The utility model discloses a building verticality high-efficiency detection device, which comprises a detection end box, a detected end group, a gradienter seat and an emitter group, the emitter group is fixed at the top end of the detection end box, and the bottom surface of the inner cavity of the detection end box is provided with a detection optical disc. The tested end group comprises an angle iron seat, and a light receiving disc and a buzzer which are fixed on the upper and lower surfaces of the angle iron seat. According to the utility model, the laser and the photosensitive sensor are combined, so that the verticality of the wall surface can be quickly judged, the time of a traditional measuring method is greatly shortened, the structure design is simple, the operation is convenient, the device is suitable for various building construction environments, and complicated tools and professional skills of operators are not needed.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to building perpendicularity detection technical field, specifically is a building is with perpendicularity high -efficient detection device. BACKGROUND

[0002] In the process of building construction and structure installation, the perpendicularity of wall surface is an important factor to ensure the stability and aesthetics of building. Perpendicularity measurement is a common detection item in the building process, and the traditional measurement method depends on the level, plumb line or spirit level and other manual tools. Although these methods can realize the basic perpendicularity detection, there are the following problems:

[0003] Low detection efficiency: the traditional manual measurement method needs a large amount of manual operation, the detection process is complicated and time -consuming, especially in the process of large -scale building construction, when the measurement area is large, the manual operation efficiency is low, which is easy to cause the engineering progress delay.

[0004] Low measurement accuracy: the traditional perpendicularity measurement method usually depends on visual observation or physical instrument, which is limited by environmental factors, operator skill and measurement tool, and the measurement result is easy to be affected by error, which leads to error accumulation and finally affects the accuracy of structure.

[0005] Therefore, the existing problems are researched and improved, and a building perpendicularity high -efficient detection device is provided to solve the existing problems, so as to solve the problems and improve the practical value. INVENTION CONTENTS

[0006] The utility model relates to a building perpendicularity high -efficient detection device, and aims at providing an efficient and accurate solution for perpendicularity measurement in building construction. By combining laser emitter, photosensitive sensor, optical disc, level and other components, the device can detect and display the perpendicularity of wall surface in real time, simplify the traditional measurement method, and improve the work efficiency and accuracy.

[0007] The building perpendicularity high -efficient detection device of the utility model includes detection end box, measured end group, level seat and emitter group. The structure and function of each part are as follows:

[0008] Detection end box: used for being installed on the surface of wall surface to be detected and fixing optical disc. The surface of optical disc is provided with a plurality of concentric ring photosensitive layers for detecting the eccentricity of light spot. The bottom surface of the inner cavity of the end box is provided with a detection optical disc, which cooperates with the photosensitive sensor and buzzer to realize automatic detection and alarm prompt of perpendicularity.

[0009] Measured end group: containing angle iron seat and light receiving disc, used for receiving the light spot emitted by laser emitter. The light receiving disc is provided with a photosensitive sensor, which judges the perpendicularity of wall surface by detecting the offset degree of light spot.

[0010] The level seat is fixed on the bottom surface of the detection end box and is adjusted to be horizontal by the adjustable supporting legs. One side of the level seat is equipped with a display assembly to display the horizontal degree after adjustment of the supporting legs and to assist in judging the balance of the device.

[0011] The transmitter group is fixed on the top end of the detection end box and includes a laser transmitter and an adjusting disc. The laser transmitter is used to emit a laser light spot which will form an image on the light receiving disc of the measured end group. The laser direction is precisely adjusted by the adjusting disc.

[0012] By adopting the above technical scheme, the following technical features are achieved:

[0013] Accurate light spot detection: the device accurately detects the eccentricity of the laser light spot by combining the photosensitive layer and the photosensitive sensor, can output the perpendicularity data of the wall surface in a short time, and greatly improves the measurement efficiency.

[0014] Automatic adjustment and display: the device is equipped with adjustable supporting legs and a display assembly to display the horizontal degree adjustment information in real time during the detection process, helping the operator to accurately adjust and ensure the horizontal state of the device, and ensuring the accuracy of the measurement.

[0015] The beneficial effects achieved by the utility model are as follows:

[0016] 1. In the utility model, the combination of laser and photosensitive sensor can quickly judge the perpendicularity of the wall, greatly shorten the time of the traditional measurement method, the structure design is simple, the operation is convenient, and it is suitable for various construction environments without the need for complex tools and professional skills of the operator.

[0017] 2. In the utility model, the laser test method is adopted, the laser transmitter is enlarged under the support of the fulcrum ring lever, the light receiving position of the detection disc is accurately displayed, the high-precision laser measurement and photosensitive detection technology ensure the accuracy of the measurement result, and meet the strict perpendicularity requirement in the construction. BRIEF DESCRIPTION OF DRAWINGS

[0018] Figure 1 It is a whole structure schematic view of one embodiment of the utility model;

[0019] Figure 2 It is an internal structure schematic view of the detection end box of one embodiment of the utility model;

[0020] Figure 3 It is a structure schematic view of the measured end group of one embodiment of the utility model;

[0021] Figure 4 It is a sectional structure schematic view of the transmitter group of one embodiment of the utility model.

[0022] Reference signs:

[0023] 100, detection end box; 110, cassette; 120, detection disc; 200, measured end group; 210, angle iron seat; 220, light receiving disc; 230, buzzer; 221, photosensitive sensor; 300, level seat; 310, adjustable leg; 320, display assembly; 400, transmitter group; 410, guide seat; 420, adjusting disc; 430, laser transmitter; 411, fulcrum ring; 431, ball head seat. DETAILED DESCRIPTION

[0024] In order to make the purpose, technical scheme and advantages of the present application more clear and understandable, the present application will be further described in detail below with reference to the specific embodiments and the accompanying drawings. It should be noted that the embodiments of the present application and the features in the embodiments can be combined with each other without conflict.

[0025] It is understood that the above description is only exemplary and is not intended to limit the scope of the present application.

[0026] The specific embodiments of the present application will be described below with reference to the accompanying drawings. Figures 1-4 Some embodiments of the present application provide a verticality efficient detection device for building.

[0027] The present application provides a verticality efficient detection device for building, which aims to efficiently and accurately detect the verticality of the wall surface of the building. The device comprises a plurality of components, and through the accurate measurement and display system, the reliability and convenience of the verticality measurement are ensured.

[0028] 1. Detection end box 100 and its internal structure:

[0029] The detection end box 100 is used to be fixed on the building surface to be detected. The bottom surface of the inner cavity of the box body is provided with a detection disc 120, and the surface of the disc presents a concentric ring-shaped photosensitive layer. The function of these photosensitive layers is to detect the eccentricity of the surface light spot and ensure the accuracy of the light spot.

[0030] The photosensitive sensor 221 is located in a part of the measured end group 200, which can receive the light spot data from the disc 120, and is further connected with the buzzer 230 for emitting sound signals to prompt the detection result.

[0031] 2. Measured end group 200:

[0032] The measured end group 200 comprises a light receiving disc 220 installed on the angle iron seat 210, and a photosensitive sensor 221 connected therewith. These components constitute the main receiving system for receiving the light spot emitted from the transmitter group 400 and performing imaging detection on the surface.

[0033] The angle iron seat 210 plays a supporting role to ensure stable positioning of the light receiving disc and the sensor.

[0034] 3. The emitter group 400:

[0035] The emitter group 400 is fixedly installed on the top of the detection end box 100 and internally contains a laser emitter 430. The emitter is adjusted in position by the adjusting disc 420 to ensure that the laser light spot is accurately projected onto the surface of the light disc 220 of the measured end group 200.

[0036] The adjusting disc 420 is slidingly installed on the guide seat 410 and is provided at the top end with a lens assembly for dust prevention and protection of the laser assembly to ensure the stability and accuracy of the laser.

[0037] The laser emitter is provided at both ends with a laser generator for indicating the directionality of both ends and aligning the center of the measured end group and the detection end box.

[0038] 4. The level seat 300 and its adjustment:

[0039] The level seat 300 is fixedly installed on the bottom surface of the detection end box 100 and is provided at the four corners with adjustable legs 310 for adjusting the horizontal state of the device.

[0040] The display assembly 320 is electrically connected with the photosensitive sensor 221 and can display the eccentricity of the light spot in real time to help the operator judge the perpendicularity of the wall. By adjusting the height of the leg 310, the entire device is ensured to be in a horizontal state.

[0041] Specifically, the photosensitive sensor 221 is arranged at the center of the light receiving disc 220, and the output end of the photosensitive sensor 221 is electrically connected with the end of the buzzer 230. The emitter group 400 includes a guide seat 410, an adjusting disc 420, and a laser emitter 430. The top end of the laser emitter 430 is provided with a ball head seat 431 movably installed on the inner side of the adjusting disc 420. The inner side of the guide seat 410 is provided with a fulcrum ring 411, and the laser emitter 430 is movably sleeved and penetrates through the fulcrum ring 411. The adjustable leg 310 is used to detect the arrangement state of the detection end box 100, and the display assembly 320 is used to display the detection signal of the adjustable leg 310.

[0042] The emitter group 400 is arranged perpendicular to the surface direction of the detection light disc 120 and the level seat 300. The laser emitter 430 is located at the axis of the guide seat 410.

[0043] The surface of the detection light disc 120 is provided with a plurality of photosensitive layers arranged in concentric rings for detecting the eccentricity of the surface light spot. The output end of the detection light disc 120 is electrically connected with the input end of the display assembly 320, and the eccentricity of the surface light spot of the detection light disc 120 is displayed through the display assembly 320.

[0044] The adjusting disc 420 is slidingly installed on the top surface of the guide base 410, and the top end of the adjusting disc 420 is provided with a lens for dustproof. The fulcrum ring 411 is close to the bottom end of the laser emitter 430, and the fulcrum ring 411 and the surface supporting surface of the laser emitter 430 are annular.

[0045] The working principle and use process of the utility model are as follows:

[0046] Preliminary detection: the detection end box 100 and the measured end group 200 are fixed on the surface of the building wall to be detected, the position of the detection end box 100 is adjusted until the laser emission of one end of the laser emitter 430 is opposite to the surface of the light receiving disc 220, and the light spot is imaged on the surface of the light receiving disc 220, so that the measured end group 200 and the detection end box 100 are located on the same vertical line, the perpendicularity of the wall is determined according to the levelness of the level base 300, if the level base 300 is in a horizontal state and the light spot of the laser emitter 430 is located on the surface of the photosensitive sensor 221, it is determined that the wall is perpendicular; if one or both of the two conditions are not met, it is determined that the wall is in a non-perpendicular state.

[0047] Eccentricity detection: according to the detection information of the level base 300 and the display content on the surface of the display assembly 320, the height of each adjustable supporting leg 310 on the bottom surface of the level base 300 is adjusted, so that the levelness of the level base 300 and the detection end box 100 is adjusted, until the detection end box 100 and the level base 300 are in a horizontal state, the sliding adjusting disc 420 is coaxial with the guide base 410, and then the laser emitter 430 is opposite to the surface of the photosensitive sensor 221, after the laser emitter 430 bottom end is deviated from the center of the light spot on the surface of the detection disc 120, the eccentricity of the wall is determined according to the eccentricity.

[0048] In the description of the present specification, the description of the terms "one embodiment", "some embodiments", "a specific embodiment" and the like means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the utility model. In the present specification, the illustrative description of the above terms does not necessarily mean the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.

[0049] Although the embodiments of the utility model have been shown and described, those skilled in the art can understand that various changes, modifications, replacements and variations can be made to these embodiments without departing from the principles and purposes of the utility model, and the scope of the utility model is defined by the claims and their equivalents.

Claims

1. A verticality efficient detection device for construction, characterized by, Include: The detection end box (100), the measured end group (200), the level seat (300) and the transmitter group (400), the level seat (300) is fixed to the bottom surface of the detection end box (100), and the level seat (300) bottom surface four corners are provided with adjustable supporting legs (310), one side of the level seat (300) is fixedly installed with display assembly (320), the transmitter group (400) is fixed to the top end of the detection end box (100), and the bottom surface of the inner cavity of the detection end box (100) is provided with a detection optical disc (120), the measured end group (200) includes angle iron seat (210) and light receiving disc (220) and buzzer (230) fixed to the upper and lower surfaces of angle iron seat (210), the center of the light receiving disc (220) is provided with a photosensitive sensor (221), and the output end of the photosensitive sensor (221) is electrically connected with the end of the buzzer (230), the transmitter group (400) includes guide seat (410), adjusting disc (420) and laser transmitter (430), the top end of the laser transmitter (430) is provided with a ball head seat (431) movably installed in the inner side of the adjusting disc (420), the inner side of the guide seat (410) is provided with a fulcrum ring (411), and the laser transmitter (430) is movably sleeved and arranged through the fulcrum ring (411).

2. The verticality efficient detection device for building according to claim 1, characterized in that, The adjustable supporting legs (310) are used for detecting the arrangement state of the detection end box (100), and the display assembly (320) is used for displaying the detection signal of the adjustable supporting legs (310).

3. The verticality efficient detection device for building according to claim 1, characterized in that, The transmitter group (400) is arranged perpendicular to the surface direction of the detection optical disc (120) and the level seat (300), and the laser transmitter (430) is located at the axis of the guide seat (410).

4. The verticality efficient detection device for building according to claim 1, characterized in that, The laser transmitter (430) is provided with a laser generator at both ends, which is used for indicating the opposite of the transmitter group (400) at both ends.

5. The verticality efficient detection device for building according to claim 1, characterized in that, The surface of the detection optical disc (120) is provided with a plurality of concentric ring arranged photosensitive layers, which is used for detecting the surface light point eccentricity, and the output end of the detection optical disc (120) is electrically connected with the input end of the display assembly (320), and the display assembly (320) is used for displaying the surface light point eccentricity of the detection optical disc (120).

6. The verticality efficient detection device for building according to claim 1, characterized in that, The adjusting disc (420) is slidably installed on the top surface of the guide seat (410), and the top end of the adjusting disc (420) is provided with a lens for dust protection.

7. The verticality efficient detection device for building according to claim 1, characterized in that, The fulcrum ring (411) is close to the bottom end of the laser transmitter (430), and the fulcrum ring (411) and the surface supporting surface of the laser transmitter (430) are annular.