Smart building safety assessment device
By introducing a screw, movable block, and ball-locking structure into the building safety assessment device, the problem of cumbersome adjustment of the plumb bob position in the existing device is solved, enabling rapid adjustment of the plumb bob position and rapid measurement of wall tilt, thus improving the convenience and accuracy of the measurement.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-30
- Publication Date
- 2026-03-20
AI Technical Summary
Existing building safety assessment devices are cumbersome to adjust the position of the plumb bob, making it difficult to quickly adjust its position.
By designing a smart building safety assessment device, a screw-driven movable block and ball bearing structure is adopted, which allows the slider to slide on the connecting frame. Combined with a rotating block and transmission belt system, the position of the plumb bob can be quickly adjusted and measured.
It enables rapid adjustment of the plumb bob position and rapid measurement of the tilt of building walls, avoiding interference from obstacles around the wall and improving the convenience and accuracy of the measurement.
Smart Images

Figure CN224019067U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to building safety evaluation technical field, concretely is a kind of wisdom building safety evaluation device. BACKGROUND
[0002] The safety evaluation device of wisdom building is a kind of device for measuring and detecting the structure of building, to improve the safety of building and prevent potential danger, which includes the inclination detection and evaluation of building wall surface.
[0003] The existing building safety evaluation device is fixedly connected to the connecting frame when using, to avoid error during measurement, and the connecting frame is fixed to the wall body, which leads to very cumbersome when the position of lead plummet needs to be adjusted, the connecting frame needs to be removed, and the lead plummet is adjusted to the appropriate position, and then the connecting frame is fixed again, so that the position of connecting frame is not conveniently and quickly adjusted. UTILITARIAN CONTENT
[0004] The utility model aims at providing a kind of wisdom building safety evaluation device, to solve the problem of not being convenient and quickly adjusted the position of lead plummet of the building safety evaluation device of present use proposed in the above background art.
[0005] To achieve the above object, the utility model provides the following technical scheme: a kind of wisdom building safety evaluation device, comprising: connecting frame and crank handle, the inside of the connecting frame is connected with sliding block, the bottom of the sliding block is connected with connecting seat, the inside of the connecting seat is installed with winding roller, the bottom of the winding roller is connected with lead plummet by connecting line, the crank handle is connected in the side of winding roller by connecting seat;
[0006] The top of the sliding block is connected with screw rod, the bottom of the screw rod is connected with movable block, the bottom of the movable block is provided with rotating block, the top of the rotating block is provided with the clamping bead of the sliding block.
[0007] Preferably, the rotating block is connected in the inside of sliding block by pivot, and two groups of rotating blocks are symmetrically installed about the center line of sliding block.
[0008] Preferably, the bottom of the connecting frame is installed with fixed frame, the inside of the fixed frame is installed with driven roller, the middle of the driven roller is connected with driven shaft, and the first transmission belt is connected between the two groups of driven shafts by belt pulley.
[0009] Preferably, the one end of the driven shaft is sleeved with driving shaft, and the outside of the driven shaft is connected with sliding block of the sliding slot of driving shaft.
[0010] Preferably, the outer side of the driving shaft is connected with a driving roller, the bottom of the driving roller and the driven shaft are connected with connecting ropes, and the bottom of the connecting rope is provided with a scale expansion plate.
[0011] Preferably, the two groups of driving shafts are connected with a second transmission belt through a belt pulley, and one side of the driving shaft is connected with a connecting block through a connecting seat.
[0012] Preferably, the connecting block is connected with a threaded rod through one side, and a protrusion is arranged between the threaded rod and the circular sliding groove of the connecting seat.
[0013] Compared with the prior art, the beneficial effects of the utility model are that: the intelligent building safety evaluation device can rotate the screw rod according to the measurement requirement, the screw rod is rotated upward to drive the movable block to move upward synchronously, the movable block does not extrude the rotating block at this time, the other end of the rotating block is rotated downward under the gravity of the clamping bead, and the clamping bead is retracted into the sliding block, the clamping bead does not extrude the inner wall of the connecting frame sliding groove, the sliding block drives the connecting seat to slide, so that the measurement position of the lead sinker is adjusted conveniently, which is the use characteristics of the intelligent building safety evaluation device.
[0014] 1. The intelligent building safety evaluation device, when the measurement position needs to be adjusted, the screw rod can be rotated to drive the movable block to move upward, the movable block does not extrude the rotating block at the bottom, the clamping bead is retracted into the sliding block under the action of gravity, the sliding block does not extrude, and the sliding block drives the connecting seat to slide along the connecting frame, so that the position of the lead sinker in the connecting seat is adjusted, and the measurement effect is not interfered by a large number of obstacles around the wall body.
[0015] 2. The intelligent building safety evaluation device, when the inclination of the building wall surface is measured, the driving shaft can be rotated to drive the driving roller to rotate, and the sliding block is matched to drive the driven shaft and the driven roller to rotate synchronously, so that the connecting rope drives the expansion scale plate to move downward, and the inclination of the building wall surface can be measured and evaluated quickly by observing the corresponding scale marks of the lead sinker and the sliding block. BRIEF DESCRIPTION OF DRAWINGS
[0016] Figure 1 It is a front view structural schematic diagram of the utility model;
[0017] Figure 2 It is a right side cut structure schematic diagram of the utility model;
[0018] Figure 3 It is a front view cut structure schematic diagram of the driving shaft of the utility model;
[0019] Figure 4It is the right side structure schematic view of the convex block of the utility model.
[0020] Figure 5 It is the three-dimensional structure schematic view of the utility model scale telescopic plate.
[0021] In the figure: 1, connecting frame;2, sliding block;3, connecting seat;4, winding roller;5, lead sinker;6, crank;7, screw;8, movable block;9, rotating block;10, clamping bead;11, fixed frame;12, driven roller;13, driven shaft;14, first transmission belt;15, drive shaft;16, sliding block;17, connecting rope;18, scale telescopic plate;19, second transmission belt;20, connecting block;21, threaded rod;22, convex block;23, drive roller. DETAILED DESCRIPTION
[0022] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model.
[0023] Please refer to Figure 1 With Figure 2 The utility model provides a kind of technical scheme: a kind of intelligent building safety evaluation device, comprising: connecting frame 1 and crank 6, the inside connection of connecting frame 1 has sliding block 2, the bottom of sliding block 2 is connected with connecting seat 3, connecting seat 3 is equipped with winding roller 4 in the inside, the bottom of winding roller 4 is connected with lead sinker 5 by connecting line, and crank 6 is connected in the side of winding roller 4 by penetrating connecting seat 3;
[0024] The top of sliding block 2 is connected with screw 7 by penetrating, the bottom of screw 7 is connected with movable block 8, the bottom of movable block 8 is provided with rotating block 9, the top of rotating block 9 is provided with clamping bead 10 by penetrating sliding block 2, rotating block 9 is connected in the inside of sliding block 2 by pivot, and rotating block 9 is symmetrically installed with two groups about the center line of sliding block 2, and clamping bead 10 is symmetrically arranged with two groups about the center line of sliding block 2.
[0025] In specific implementation, when the measurement position needs to be adjusted, the intelligent building safety evaluation device can rotate the screw rod 7 upwards. Since the bottom of the screw rod 7 is connected to the movable block 8 through a bearing, and the top of the movable block 8 is connected to the inside of the sliding block 2 through the telescopic rod, when the screw rod 7 rotates upwards, the movable block 8 will move upwards, at this time, the movable block 8 does not press the rotating block 9 at the bottom, then one end of the rotating block 9 will rotate downwards under the gravity of the clamping bead 10, and the clamping bead 10 will shrink into the inside of the sliding block 2, without the clamping bead 10 pressing the inner wall of the connecting frame 1, so that the sliding block 2 can normally slide along the connecting frame 1, the bottom of the sliding block 2 is also connected to the connecting seat 3, and the winding roller 4 in the connecting seat 3 is connected to the lead sinker 5 through a connecting line, so the sliding block 2 can drive the lead sinker 5 to slide synchronously, thereby the position of the lead sinker 5 can be adjusted.
[0026] When the position of the sliding block 2 needs to be fixed, the screw rod 7 only needs to be rotated downwards, so that the screw rod 7 drives the movable block 8 to move, at this time, the movable block 8 will press one end of the rotating block 9, then the rotating block 9 will rotate in the opposite direction, and the clamping bead 10 at the other end will be pressed out of the inside of the sliding block 2, the sliding block 2 cannot slide due to the friction between the clamping bead 10 and the inner wall of the connecting frame 1, so that the position of the sliding block 2 can be fixed.
[0027] As shown in Figure 1 and Figure 2 known, in use, the screw rod 7 can be rotated according to the measurement requirements, so that the screw rod 7 does not press the rotating block 9 through the movable block 8, then the clamping bead 10 will shrink into the sliding block 2, without the pressing of the clamping bead 10, the connecting seat 3 can be driven to slide through the sliding block 2, so that the position of the lead sinker 5 in the connecting seat 3 can be adjusted.
[0028] The bottom of the connecting frame 1 is provided with a fixed frame 11, the inside of the fixed frame 11 is provided with a driven roller 12, the middle of the driven roller 12 penetrates a driven shaft 13, the two groups of driven shafts 13 are connected through a belt pulley to a first transmission belt 14, one end of the driven shaft 13 is sleeved with a driving shaft 15, the outer side of the driven shaft 13 is connected with a sliding block 16 penetrating a sliding groove of the driving shaft 15, the outer side of the driving shaft 15 is connected with a driving roller 23, the bottom of the driven shaft 13 and the driving roller 23 is connected with a connecting rope 17, the bottom of the connecting rope 17 is provided with a scale telescopic plate 18, the two groups of driving shafts 15 are connected through a belt pulley to a second transmission belt 19, one side of a group of driving shafts 15 is connected with a connecting block 20 penetrating the connecting seat 3, one side of the connecting block 20 penetrates a threaded rod 21, a convex block 22 is arranged between one end of the threaded rod 21 and the circular sliding groove of the connecting seat 3, the driven shaft 13 and the driving shaft 15 constitute a telescopic structure through the sliding block 16.
[0029] In specific implementation, when the slider 2 is sliding, the bottom scale expansion plate 18 can be pushed to expand or contract, so that the scale expansion plate 18 expands or contracts synchronously. When the position of the slider 2 is fixed, the threaded rod 21 can be rotated. Since the threaded rod 21 is in threaded connection with the connecting block 20, rotating the threaded rod 21 can separate the threaded rod 21 from the protrusion 22 in the side circular sliding groove of the connecting seat 3. Without the limiting effect of the threaded rod 21 and the protrusion 22 in the side circular sliding groove of the connecting seat 3 on the driving shaft 15, one of the driving shafts 15 can be rotated, so that the driving shaft 15 drives the other driving shaft 15 to rotate through the second transmission belt 19. When the two driving shafts 15 rotate synchronously, the driving roller 23 rotates. One end of the driving shaft 15 is sleeved with the driven shaft 13, and the driven shaft 13 is slidably connected to one end of the driving shaft 15 through the sliding block 16. Therefore, when the driving shaft 15 rotates, the driven shaft 13 rotates through the sliding block 16. Then, the first transmission belt 14 drives the two driven rollers 12 to rotate. At this time, the two driven rollers 12 and the two driving rollers 23 drive the expansion scale plate to move downward through the connecting rope 17. The middle of the expansion scale plate is provided with a through groove for the movement of the connecting line and the lead weight 5. The top of the expansion scale plate is also marked with a scale bar. The side of the connecting frame 1 is also marked with a scale bar. By observing the position indicated by the scale bar on the expansion scale plate and the position indicated by the scale bar on the side of the connecting frame 1, when the two values are the same, it indicates that the building wall is not inclined. Otherwise, it indicates that the building wall is inclined. This facilitates rapid measurement without the need for separate use of a tape measure.
[0030] Referring to Figures 1-5 It can be seen that, in use, the driving shaft 15 can be rotated according to the use requirements, so that the driving shaft 15 drives the driving roller 23 to rotate, and then the sliding block 16 drives the driven shaft 13 and the driven roller 12 to rotate, so that the expansion scale plate moves downward. At this time, whether the value corresponding to the connecting line at the top of the lead weight 5 on the expansion scale plate is the same as the value corresponding to the slider 2 on the side of the connecting frame 1 is observed, so as to facilitate rapid measurement of whether the building wall is inclined.
[0031] In summary, the intelligent building safety evaluation device can be fixed to one end of the wall body, and then the position of the slider 2 and the connecting seat 3 can be adjusted. At this time, the handle 6 can be rotated, so that the handle 6 drives the winding roller 4 to rotate. The winding roller 4 can drive the lead weight 5 to move downward through the connecting line when rotating. The scale bar at the top of the expansion scale plate and the scale bar on the side of the connecting frame 1 can be used to measure whether the building wall is inclined, so as to facilitate safety evaluation of the inclination of the building wall. This is the use feature of the intelligent building safety evaluation device. The contents not described in detail in the description belong to the existing technology known to those skilled in the art.
[0032] Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions recorded in the foregoing embodiments, or make equivalent replacement to part of the technical features, and any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the utility model shall be included in the protection scope of the utility model.
Claims
1. A smart building safety assessment device, comprising: The connecting frame (1) and the crank handle (6) are characterized in that a slider (2) is connected inside the connecting frame (1), a connecting seat (3) is connected to the bottom of the slider (2), a take-up roller (4) is installed inside the connecting seat (3), a plumb bob (5) is connected to the bottom of the take-up roller (4) through a connecting line, and the crank handle (6) passes through the connecting seat (3) and is connected to one side of the take-up roller (4); The top of the slider (2) is connected to a screw (7), the bottom of the screw (7) is connected to a movable block (8), the bottom of the movable block (8) is provided with a rotating block (9), and the top of the rotating block (9) is provided with a retaining bead (10) that passes through the slider (2).
2. The intelligent building safety assessment device according to claim 1, characterized in that: The rotating block (9) is connected to the inside of the slider (2) via a rotating shaft, and two sets of the rotating block (9) are symmetrically installed about the center line of the slider (2).
3. The intelligent building safety assessment device according to claim 1, characterized in that: A fixed frame (11) is installed at the bottom of the connecting frame (1). A driven roller (12) is installed inside the fixed frame (11). A driven shaft (13) is connected through the middle of the driven roller (12). A first transmission belt (14) is connected between the two sets of driven shafts (13) through pulleys.
4. The intelligent building safety assessment device according to claim 3, characterized in that: One end of the driven shaft (13) is sleeved with a drive shaft (15), and a sliding block (16) that passes through the groove of the drive shaft (15) is connected to the outside of the driven shaft (13).
5. The intelligent building safety assessment device according to claim 4, characterized in that: A drive roller (23) is connected to the outside of the drive shaft (15). A connecting rope (17) is connected to the bottom of both the driven shaft (13) and the drive roller (23). A scale telescopic plate (18) is installed at the bottom of the connecting rope (17).
6. The intelligent building safety assessment device according to claim 5, characterized in that: A second transmission belt (19) is connected between the two sets of drive shafts (15) via pulleys, and a connecting block (20) is connected to one side of the drive shaft (15) through the connecting seat (3).
7. The intelligent building safety assessment device according to claim 6, characterized in that: A threaded rod (21) is connected through one side of the connecting block (20), and a protrusion (22) is provided between one end of the threaded rod (21) and the circular groove of the connecting seat (3).