An intelligent safety monitoring system and method for a building structure
By adjusting the chassis, flip-up plate, and folding plate, combined with an infrared laser rangefinder and intelligent controller, the problem of measurement blind spots caused by the inability to move the support frame was solved, enabling comprehensive measurement and internal inspection of building walls.
Patent Information
- Application Number
- CN202510008130.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-03
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2045-01-03
AI Technical Summary
In existing technologies, the support frame cannot be moved, resulting in blind spots for measuring the back of building walls and height, making it impossible to fully measure the building structure.
Using an adjustment assembly that includes a mobile chassis, a flip-up plate, and a folding plate, combined with an infrared laser rangefinder and an intelligent controller, it is possible to achieve comprehensive measurement of building walls, including height, length, and thickness.
It enables comprehensive measurement of building walls, avoiding blind spots on the back and at different heights, improving measurement efficiency and accuracy, and can detect voids and cracks inside the walls.
Smart Images

Figure CN119844656B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of building structure monitoring, and in particular to a building structure intelligent safety monitoring system and method. BACKGROUND
[0002] After the construction is completed, in order to ensure safety, the building structure needs to be monitored to ensure quality, prevent disasters and accidents, and ensure the safety of construction personnel. Currently, the thickness and height of the wall of the building are usually measured during monitoring to ensure the accuracy of the size and the quality and safety of the construction. The traditional way is to manually hold a flexible ruler or a handheld infrared range finder to measure each wall one by one, which is low in efficiency.
[0003] In the prior art, a support frame is provided, and an adjusting mechanism is arranged on the support frame, and the infrared laser range finder is arranged on the adjusting mechanism, so that the surrounding multi-faceted wall can be measured by rotating.
[0004] In the foregoing prior art, although the measurement range can be expanded by rotating the angle, the support frame itself cannot be moved, and usually only planar rotation adjustment is performed, so that only rotation measurement can be performed with the support frame as the center point. The back of the wall cannot be measured, and the height of the wall cannot be measured, so that there is a dead angle in the measurement of the building wall. SUMMARY
[0005] The present application provides a building structure intelligent safety monitoring system and method, which solves the problem that in the prior art, although the measurement range can be expanded by rotating the angle, the support frame itself cannot be moved, and usually only planar rotation adjustment is performed, so that only rotation measurement can be performed with the support frame as the center point. The back of the wall cannot be measured, and the height of the wall cannot be measured, so that there is a dead angle in the measurement of the building wall.
[0006] To achieve the above-mentioned purpose, the present application provides a building structure intelligent safety monitoring system, which comprises a wall, an outer shell, an infrared laser range finder, a receiving plate, an intelligent controller and an adjusting assembly. The outer shell is arranged on one side of the wall. The infrared laser range finder is arranged on one side of the outer shell. The receiving plate is arranged on one side of the infrared laser range finder. The intelligent controller is arranged on the outer side of the outer shell.
[0007] The adjusting assembly comprises a moving chassis, a turnover plate and a folding plate. The moving chassis is arranged below the outer shell. The turnover plate is arranged inside the outer shell. The folding plate is rotatably connected to one end of the turnover plate. The infrared laser range finder is arranged on the folding plate.
[0008] The adjusting assembly further comprises a plurality of lifting components, a turnover driving component and a folding driving component, the plurality of lifting components are sequentially arranged above the moving chassis, the output ends of the plurality of lifting components are fixedly connected with the shell, the turnover driving component is arranged in the shell, the output end of the turnover driving component is fixedly connected with the turnover plate, and the folding driving component is arranged at the connection between the folding plate and the turnover plate.
[0009] The adjusting assembly further comprises an internal monitoring unit arranged in the shell.
[0010] The internal monitoring unit comprises a screw machine, a moving block, two sliding blocks, a rotating mechanism, two clamping plates, a knocking block, a sound receiver and an ultrasonic detection unit, the shell is provided with two sliding grooves, the screw machine is arranged in the shell, the moving block is arranged at the output end of the screw machine, the two sliding blocks are symmetrically arranged at the two ends of the moving block, the sliding blocks are in sliding connection with the sliding grooves, the rotating mechanism is arranged on one side of the moving block, the two clamping plates are symmetrically arranged on the two sides of the receiving plate, the knocking block is arranged on the corresponding clamping plate, the sound receiver is arranged on one side of the knocking block, and the ultrasonic detection unit is arranged below the shell.
[0011] The rotating mechanism comprises a rotating component, two gears, a rotating shaft and a limiting component, the rotating component is arranged on one side of the moving block, the two gears are sequentially arranged on one side of the moving block, the two gears are fixedly connected with the output end of the rotating component and the rotating shaft respectively, the two gears are in meshing with each other, one end of the receiving plate is fixedly connected with one end of the rotating shaft, the other end of the rotating shaft is rotatably connected with the moving block, and the limiting component is arranged on the rotating shaft.
[0012] The limiting component comprises a limiting cylinder, a limiting block and a limiting disc, the limiting disc is fixedly connected with the rotating shaft and is sleeved on the outer wall of the rotating shaft, the limiting disc is provided with a plurality of limiting holes, the limiting cylinder is arranged on one side of the limiting disc, the output end of the limiting cylinder is fixedly connected with the limiting block, and the limiting block is matched with the limiting holes.
[0013] The ultrasonic detection unit comprises a pushing component and an ultrasonic detector, the pushing component is arranged below the shell, and the output end of the pushing component is fixedly connected with the ultrasonic detector.
[0014] The adjusting assembly further comprises a clamping and stabilizing unit and two cameras, the clamping and stabilizing unit is arranged on one side of the turnover plate, and the two cameras are sequentially arranged above the shell.
[0015] The clamping and stabilizing unit comprises two moving parts and a resisting plate, the two moving parts are sequentially arranged on the turnover plate, the output ends of the two moving parts are fixedly connected with the resisting plate, and one end of the resisting plate is located on one side of the folding plate.
[0016] The adjusting assembly further comprises an anti-skid unit, and the anti-skid unit is arranged on the moving chassis.
[0017] The anti-skid unit comprises a telescopic part, a lifting plate and a plurality of anti-skid blocks, the telescopic part is arranged above the moving chassis, the output end of the telescopic part penetrates through the moving chassis and is fixedly connected with the lifting plate, and the plurality of anti-skid blocks are sequentially arranged below the lifting plate.
[0018] The application further provides a building structure intelligent safety monitoring system method, which adopts the building structure intelligent safety monitoring system and comprises the following steps:
[0019] The intelligent controller is connected with the upper computer and sends control instructions.
[0020] The shell is moved to the vicinity of a measured wall body through the moving chassis.
[0021] The turnover plate rotates, thereby driving the infrared laser range finder to sequentially emit infrared laser upwards and downwards, and the infrared laser is respectively shot on the ceiling and the ground, thereby measuring the height of the wall body.
[0022] The folding plate is folded, then the infrared laser range finder is aimed at one side of the wall body, laser ranging is emitted, and thereby the length of the wall body can be measured.
[0023] The folding plate is reset, the width of the wall body is clamped through the folding plate and the receiving plate, and then infrared rays are emitted on the receiving plate, and the thickness of the wall body is measured.
[0024] The application discloses a building structure intelligent safety monitoring system and method, wherein the intelligent controller is connected with an upper computer and sends control instructions; the shell is moved to the vicinity of a wall body through the mobile chassis; the turnover plate rotates and drives the infrared laser range finder to emit infrared laser upwards and downwards in sequence, and the infrared laser is respectively shot on the ceiling and the ground; the intelligent controller adds the data at both ends and measures the height of the wall body; the folding plate is folded, the infrared laser range finder is aimed at one side of the wall body, laser ranging is emitted, and the length of the wall body is measured; the folding plate is reset, the width of the wall body is clamped through the folding plate and the receiving plate, infrared rays are emitted on the receiving plate, the thickness of the wall body is measured, and the above structure is arranged, the infrared laser range finder is moved, the infrared laser range finder is folded and turned over at the same time, the wall body is comprehensively measured, the dead angle of the back and height cannot be measured, and the application is more convenient to use. BRIEF DESCRIPTION OF DRAWINGS
[0025] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the drawings needed to be used in the embodiments or prior art description will be briefly introduced.
[0026] Figure 1 It is a structural schematic diagram of the whole application.
[0027] Figure 2 It is a structural schematic diagram of the folding measurement of the application.
[0028] Figure 3 It is a rear view of the shell of the application.
[0029] Figure 4 It is a front view of the shell of the application.
[0030] Figure 5 It is a sectional view of the shell of the application.
[0031] Figure 6 It is an internal structure diagram of the shell of the application.
[0032] Figure 7 It is a local structure enlarged view of A of the application. Figure 6
[0033] Figure 8 It is a step flow chart of the building structure intelligent safety monitoring system method of the application.
[0034] 1-wall, 2-outer shell, 3-infrared laser range finder, 4-receiving plate, 5-smart controller, 6-moving chassis, 7-flip plate, 8-folding plate, 9-lifting component, 10-flip driving component, 11-folding driving component, 12-screw machine, 13-moving block, 14-sliding block, 15-clamping plate, 16-knock block, 17-sound receiver, 18-sliding groove, 19-rotating component, 20-gear, 21-rotating shaft, 22-limiting cylinder, 23-limiting block, 24-limiting disc, 25-limiting hole, 26-pushing component, 27-ultrasonic detector, 28-camera, 29-moving component, 30-pressing plate, 31-telescopic component, 32-lifting plate, 33-anti-skid block. DETAILED DESCRIPTION
[0035] The embodiments of the present application are described in detail below with reference to the accompanying drawings. The embodiments described below are examples for explaining the present application and are not intended to limit the present application.
[0036] Please refer to Figures 1 to 7 , the present application provides a kind of building structure intelligent safety monitoring system, including wall 1, outer shell 2, infrared laser range finder 3, receiving plate 4, smart controller 5 and adjusting assembly, the adjusting assembly includes moving chassis 6, flip plate 7 and folding plate 8, the adjusting assembly also includes multiple lifting components 9, flip driving component 10 and folding driving component 11, the adjusting assembly also includes internal monitoring unit, the internal monitoring unit includes screw machine 12, moving block 13, two sliding blocks 14, rotating mechanism, two clamping plates 15, knock block 16, sound receiver 17 and ultrasonic detection unit, the outer shell 2 has two sliding grooves 18, the rotating mechanism includes rotating component 19, two gears 20, rotating shaft 21 and limiting component, the limiting component includes limiting cylinder 22, limiting block 23 and limiting disc 24, the ultrasonic detection unit includes pushing component 26 and ultrasonic detector 27, the adjusting assembly also includes clamping firm unit and two cameras 28, the clamping firm unit includes two moving components 29 and pressing plate 30, the adjusting assembly also includes anti-skid unit, the anti-skid unit includes telescopic component 31, lifting plate 32 and multiple anti-skid blocks 33.
[0037] The shell 2 is arranged on one side of the wall body 1, the infrared laser range finder 3 is arranged on one side of the shell 2, the receiving plate 4 is arranged on one side of the infrared laser range finder 3, the intelligent controller 5 is arranged on the outer side of the shell 2, the mobile chassis 6 is arranged below the shell 2, the turnover plate 7 is arranged in the shell 2, the folding plate 8 is rotationally connected with one end of the turnover plate 7, and the infrared laser range finder 3 is arranged on the folding plate 8. The mobile chassis 6 is internally provided with a motor and a roller, the motor is started through the intelligent controller 5, the roller is driven to rotate, and the shell 2 is driven to move; the intelligent controller 5 is connected with an upper computer and sends a control instruction; the shell 2 is moved to the vicinity of the wall body 1 through the mobile chassis 6; the turnover plate 7 is rotated, and then the infrared laser range finder 3 is sequentially directed upward and downward to emit infrared laser, and the infrared laser is respectively shot on a ceiling and a ground, so that the height of the wall body 1 is measured; the folding plate 8 is folded, then the infrared laser range finder 3 is aligned with one side of the wall body 1, laser ranging is emitted, and then the length of the wall body 1 can be measured; the folding plate 8 is reset, the wall body 1 is clamped through the folding plate 8 and the receiving plate 4, and then infrared rays are emitted on the receiving plate 4, so that the thickness of the wall body 1 is measured.
[0038] Secondly, a plurality of lifting components 9 are sequentially arranged above the mobile chassis 6, output ends of the plurality of lifting components 9 are all fixedly connected with the shell 2, the turnover driving component 10 is arranged in the shell 2, an output end of the turnover driving component 10 is fixedly connected with the turnover plate 7, and the folding driving component 11 is arranged at the connection position of the folding plate 8 and the turnover plate 7. The lifting component 9 is a cylinder, the turnover driving component 10 is a motor, and the folding driving component 11 is a self-locking motor; the lifting component 9 is started to drive the shell 2 to adjust the height, so that the thickness and length of the wall body 1 at different heights are measured, the accuracy of data is ensured, and if the data of the wall body 1 at different heights is different, it is represented that the wall body 1 is uneven; the turnover driving component 10 is started to drive the turnover plate 7, the folding plate 8 and the infrared laser range finder 3 to be turned over, the folding driving component 11 drives the folding plate 8 to rotate on the turnover plate 7, so that the folding plate 8 is folded, and then the position of the shell 2 is adjusted, so that the infrared laser range finder 3 is aligned with the longitudinal direction of the wall body 1 to measure the length.
[0039] Meanwhile, the internal monitoring unit is arranged inside the shell 2; the shell 2 has two sliding grooves 18, the screw rod machine 12 is arranged inside the shell 2, the moving block 13 is arranged at the output end of the screw rod machine 12, two sliding blocks 14 are symmetrically arranged at the two ends of the moving block 13, the sliding block 14 is in sliding connection with the sliding groove 18, the rotating mechanism is arranged on one side of the moving block 13, two clamping plates 15 are symmetrically arranged on the two sides of the receiving plate 4, the knocking block 16 is arranged on the corresponding clamping plate 15, the sound receiver 17 is arranged on one side of the knocking block 16, and the ultrasonic detection unit is arranged below the shell 2. The screw rod machine 12 is started to drive the moving block 13 to move, and the sliding block 14 slides in the sliding groove 18 to keep the stability of the moving block 13, then the rotating mechanism is started to drive the receiving plate 4 to rotate, so that the knocking block 16 is aligned with the wall body 1, through the repeated movement of the moving block 13, the knocking block 16 knocks the wall body 1, and the sound receiver 17 collects the knocking sound, and the sound data is transmitted to the upper computer through the intelligent controller 5. The sound data is compared with the data in the server, and whether the wall body 1 has a cavity or a crack is analyzed, and the ultrasonic detection unit is used to detect the inside of the wall body 1, and the inside cavity and crack are further detected.
[0040] In addition, the rotating part 19 is arranged on one side of the moving block 13, two gears 20 are sequentially arranged on one side of the moving block 13, two gears 20 are respectively fixedly connected with the output end of the rotating part 19 and the rotating shaft 21, and two gears 20 are in meshing connection with each other. One end of the receiving plate 4 is fixedly connected with one end of the rotating shaft 21, the other end of the rotating shaft 21 is rotatably connected with the moving block 13, and the limiting part is arranged on the rotating shaft 21. The rotating part 19 is a motor, the rotating part 19 is started to drive the gear 20 to rotate, drive the rotating shaft 21 to rotate, make the receiving plate 4 rotate, finally drive the clamping plate 15 to rotate, the limiting part can limit the rotating shaft 21, so that it cannot rotate, and the wall body 1 can be knocked.
[0041] Then, the limiting disc 24 is fixedly connected with the rotating shaft 21 and is sleeved on the outer wall of the rotating shaft 21, the limiting disc 24 has a plurality of limiting holes 25, the limiting cylinder 22 is arranged on one side of the limiting disc 24, the output end of the limiting cylinder 22 is fixedly connected with the limiting block 23, and the limiting block 23 is matched with the limiting hole 25. The limiting cylinder 22 is started to drive the limiting block 23 to move, so that the limiting block 23 enters the limiting hole 25, and then the limiting disc 24 is limited, so that the rotating shaft 21 cannot rotate.
[0042] Again, the pushing component 26 is arranged below the shell 2, and the output end of the pushing component 26 is fixedly connected with the ultrasonic detector 27. The pushing component 26 is a cylinder, the pushing component 26 drives the ultrasonic detector 27 to approach the wall body 1, and the inside of the wall body 1 is detected by ultrasonic waves.
[0043] Moreover, the clamping and stabilizing unit is arranged on one side of the turnover plate 7, two camera heads 28 are sequentially arranged above the shell 2, two moving components 29 are sequentially arranged on the turnover plate 7, the output ends of the two moving components 29 are fixedly connected with the abutting plate 30, and one end of the abutting plate 30 is located on one side of the folding plate 8. The camera head 28 can photograph the knocked wall body 1, and then the picture is transmitted back to the upper computer, so that whether there is a crack outside the wall body 1 can be observed. If there is a crack, it means that the quality is unqualified. The moving component 29 is an electric sliding rail, the moving component 29 is started to drive the abutting plate 30 to move, the abutting plate 30 moves to one side of the folding plate 8, and then the folding plate 8 is abutted and supported when the folding plate 8 and the receiving plate 4 clamp the wall body 1, so that the stability is improved.
[0044] Finally, the anti-skid unit is arranged on the moving chassis 6, the telescopic component 31 is arranged above the moving chassis 6, the output end of the telescopic component 31 penetrates through the moving chassis 6 and is fixedly connected with the lifting plate 32, and a plurality of anti-skid blocks 33 are sequentially arranged below the lifting plate 32. The telescopic component 31 is a cylinder, the telescopic component 31 is started to drive the lifting plate 32 to move downward, so that the anti-skid blocks 33 are in contact with the ground, the friction force is improved, and the inaccuracy caused by slipping is avoided.
[0045] When the building structure intelligent safety monitoring system of the embodiment is used, the intelligent controller 5 is connected with the upper computer to send control instructions; the shell 2 is moved to the vicinity of the wall 1 to be measured by the mobile chassis 6; the turnover plate 7 is rotated to drive the infrared laser range finder 3 to emit infrared laser upwards and downwards in turn, which are respectively shot on the ceiling and the ground to measure the height of the wall 1; the folding plate 8 is folded, and then the infrared laser range finder 3 is aimed at one side of the wall 1, while the mobile chassis 6 is moved to the back of the wall 1 to emit laser ranging to measure the length of the back of the wall 1; the folding plate 8 is reset, and the mobile chassis 6 is moved to one end of the wall 1 again, at this time, the width of the wall 1 is clamped by the folding plate 8 and the receiving plate 4, and then infrared rays are emitted on the receiving plate 4 to measure the thickness of the wall 1; in addition, the knocking block 16 is aimed at the wall 1, the knocking block 16 knocks the wall 1 by repeated movement of the moving block 13, while the sound receiver 17 collects the knocking sound, the sound data is transmitted to the upper computer by the intelligent controller 5, the upper computer server has the sound of the wall 1 with a cavity or a crack, the sound data is compared with the data in the server, and then it is analyzed whether there is a cavity or a crack in the wall 1, and at the same time, the ultrasonic detection unit is used to detect the inside of the wall 1, so that the inside cavity and crack can be fully detected, and the safety of the building structure is further ensured; through the above structure, the infrared laser range finder 3 can be moved, folded and turned over at the same time, so that the wall 1 can be fully measured, the dead angle of the back and the height can be avoided, the inside of the wall 1 can be further detected, the external cracks can be photographed and checked, and the building structure can be fully detected to fully ensure the safety of the building structure.
[0046] Please refer to Figure 8 The application further provides a building structure intelligent safety monitoring system method, which comprises the following steps:
[0047] S1: the intelligent controller 5 is connected with the upper computer to send control instructions;
[0048] S2: the shell 2 is moved to the vicinity of the wall 1 to be measured by the mobile chassis 6;
[0049] S3: the turnover plate 7 is rotated to drive the infrared laser range finder 3 to emit infrared laser upwards and downwards in turn, which are respectively shot on the ceiling and the ground to measure the height of the wall 1;
[0050] S4: the folding plate 8 is folded, and then the infrared laser range finder 3 is aimed at one side of the wall 1 to emit laser ranging, so that the length of the wall 1 can be measured;
[0051] S5: the folding plate 8 resets, the width of the wall 1 is clamped through the folding plate 8 and the receiving plate 4, and then infrared rays are emitted on the receiving plate 4 to measure the thickness of the wall 1.
[0052] The intelligent controller 5 is connected with an upper computer to send control instructions, the shell 2 is moved to the vicinity of the wall 1 through the mobile chassis 6, the turnover plate 7 rotates to drive the infrared laser range finder 3 to emit infrared laser upwards and downwards in turn, and then the height of the wall 1 is measured, the folding plate 8 is folded, the infrared laser range finder 3 is aimed at one side of the wall 1, laser ranging is emitted, and then the length of the wall 1 can be measured, the folding plate 8 resets, the width of the wall 1 is clamped through the folding plate 8 and the receiving plate 4, and then infrared rays are emitted on the receiving plate 4 to measure the thickness of the wall 1.
[0053] The above only discloses one or more preferred embodiments of the application, and cannot limit the scope of the application. Those skilled in the art can understand that all or part of the above-mentioned embodiments can be implemented, and equivalent changes made according to the claims of the application still belong to the scope of the application.
Claims
1. A building structure intelligent safety monitoring system, comprising a wall, an outer shell, an infrared laser rangefinder, a receiving plate, and an intelligent controller, wherein the outer shell is mounted on one side of the wall, the infrared laser rangefinder is disposed on one side of the outer shell, the receiving plate is disposed on one side of the infrared laser rangefinder, and the intelligent controller is disposed on the outside of the outer shell, characterized in that, It also includes adjustment components; The adjustment assembly includes a movable chassis, a flip plate, and a folding plate. The movable chassis is located below the outer casing, the flip plate is located inside the outer casing, the folding plate is rotatably connected to one end of the flip plate, and the infrared laser rangefinder is located on the folding plate.
2. The intelligent safety monitoring system for building structures as described in claim 1, characterized in that, The adjustment assembly also includes multiple lifting components, a flipping drive component, and a folding drive component. The multiple lifting components are sequentially arranged above the mobile chassis, and the output ends of the multiple lifting components are fixedly connected to the outer shell. The flipping drive component is arranged inside the outer shell, and the output end of the flipping drive component is fixedly connected to the flipping plate. The folding drive component is arranged at the connection between the folding plate and the flipping plate.
3. The intelligent safety monitoring system for building structures as described in claim 2, characterized in that, The adjustment assembly also includes an internal monitoring unit, which is disposed inside the housing; The internal monitoring unit includes a screw compressor, a moving block, two sliders, a rotating mechanism, two clamping plates, a striking block, a sound receiver, and an ultrasonic detection unit. The housing has two sliding grooves. The screw compressor is located inside the housing. The moving block is located at the output end of the screw compressor. The two sliders are symmetrically arranged at both ends of the moving block, and the sliders are slidably connected to the sliding grooves. The rotating mechanism is located on one side of the moving block. The two clamping plates are symmetrically arranged on both sides of the receiving plate. The striking block is located on the corresponding clamping plate. The sound receiver is located on one side of the striking block. The ultrasonic detection unit is located below the housing.
4. The intelligent safety monitoring system for building structures as described in claim 3, characterized in that, The rotating mechanism includes a rotating component, two gears, a rotating shaft, and a limiting component. The rotating component is disposed on one side of the moving block, and the two gears are sequentially disposed on one side of the moving block. The two gears are fixedly connected to the output end of the rotating component and the rotating shaft, respectively, and the two gears mesh with each other. One end of the receiving plate is fixedly connected to one end of the rotating shaft, and the other end of the rotating shaft is rotatably connected to the moving block. The limiting component is disposed on the rotating shaft.
5. The intelligent safety monitoring system for building structures as described in claim 4, characterized in that, The limiting component includes a limiting cylinder, a limiting block, and a limiting disc. The limiting disc is fixedly connected to the rotating shaft and sleeved on the outer wall of the rotating shaft. The limiting disc has multiple limiting holes. The limiting cylinder is disposed on one side of the limiting disc. The output end of the limiting cylinder is fixedly connected to the limiting block. The limiting block and the limiting holes are mutually adapted.
6. The intelligent safety monitoring system for building structures as described in claim 5, characterized in that, The ultrasonic detection unit includes a pushing component and an ultrasonic detector. The pushing component is located below the housing, and the output end of the pushing component is fixedly connected to the ultrasonic detector.
7. The intelligent safety monitoring system for building structures as described in claim 6, characterized in that, The adjustment assembly also includes a clamping and stabilizing unit and two cameras. The clamping and stabilizing unit is disposed on one side of the flip plate, and the two cameras are disposed sequentially on the top of the housing. The clamping and stabilizing unit includes two moving parts and a supporting plate. The two moving parts are sequentially arranged on the flip plate, and the output ends of the two moving parts are fixedly connected to the supporting plate. One end of the supporting plate is located on one side of the folding plate.
8. The intelligent safety monitoring system for building structures as described in claim 6, characterized in that, The adjustment assembly also includes an anti-slip unit, which is disposed on the mobile chassis; The anti-slip unit includes a telescopic component, a lifting plate, and multiple anti-slip blocks. The telescopic component is located above the mobile chassis, and its output end passes through the mobile chassis and is fixedly connected to the lifting plate. The multiple anti-slip blocks are sequentially located below the lifting plate.
9. A method for an intelligent safety monitoring system for building structures, employing the intelligent safety monitoring system for building structures as described in claim 8, characterized in that, Includes the following steps: The intelligent controller is connected to the host computer and issues control commands. The outer casing is moved to the vicinity of the measuring wall using the mobile chassis; The rotating plate causes the infrared laser rangefinder to emit infrared lasers upwards and downwards in sequence, hitting the ceiling and the ground respectively, thereby measuring the height of the wall. The folding plate is folded, and then the infrared laser rangefinder is aimed at one side of the wall to emit laser rangefinder, thereby measuring the length of the wall; The folding plate is reset, and the width of the wall is clamped by the folding plate and the receiving plate. Infrared rays are then emitted onto the receiving plate to measure the thickness of the wall.
Citation Information
Patent Citations
Real estate building area measuring device
CN219869562U
Wall thickness detection structure
CN222069583U