Wall perpendicularity detection device and method for building supervision

Through the combined structure of guide rope and pull rope, combined with motor drive and laser, the problem of the pendulum bracket shaking affecting the detection results is solved, and the accuracy and convenience of high-altitude wall verticality detection is achieved.

CN120628031AActive Publication Date: 2025-09-12GUANGDONG FINANCE & TRADE CONSTR ENG CONSULTING CO LTD
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Patent Information

Application Number
CN202510853624.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-24
Publication Date
2025-09-12
Estimated Expiration
2045-06-24

AI Technical Summary

Technical Problem

In the prior art, it is difficult for the brackets of the plumb bob and the vertical line to remain stationary during the up and down movement, resulting in inaccurate detection results. In addition, it is inconvenient to observe the protractor readings from the high-place detection component.

Method used

It adopts a combined structure of guide rope and pulling rope, and the length of the guide rope is adjusted by motor drive. Combined with laser and scale, it ensures the stability of the detection component and the accuracy of reading.

Benefits of technology

It achieves the accuracy and convenience of high-altitude wall verticality detection and ensures the stability and reliability of the detection results.

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Abstract

The invention discloses a wall perpendicularity detection device and method for building supervision, and the device comprises a main body unit and an adjusting unit, the main body unit comprises an inward concave base, two supporting plates are fixed on the inward concave base, a transverse plate is fixed at the tops of the two supporting plates, a support is fixed on the transverse plate, and a moving frame is slidably connected in the support. A beam is fixed to the top of the movable frame. When the second wire roller rotates, the traction rope is wound, when the traction rope is wound, the convex block is pulled, the movable frame and the cross beam are driven to move upwards, and at the moment, the third wire roller rotates to unwind the guide rope, so that the guide rope is pulled when the cross beam moves upwards, and the guide rope is adjusted to the required length; the guide rope is arranged on the moving seat, so that the guide rope can restrain the upward moving path of the moving seat and the laser, and whether the perpendicularity of the wall meets the requirement or not can be judged by observing the changing distance of the laser point position of the laser on the scale mark when the laser moves upwards.
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Description

Technical Field

[0001] The present invention relates to the technical field of wall verticality detection, and in particular to a wall verticality detection device and method for construction supervision. Background Art

[0002] The detection of wall verticality has always been a difficult problem in construction inspection. There are currently many ways to detect the verticality of walls. Publication No. CN113686305B discloses a building wall verticality detection device, which includes a detection component; the detection component includes an upper detection component and a lower detection component; it also includes a segmented height adjustment component, and the upper detection component and the lower detection component are respectively arranged on the segmented height adjustment component through a first connecting block and a second connecting block; a mobile base is used for positioning and position change of the segmented height adjustment component; the segmented height adjustment component includes a mounting base arranged on the mobile base and a segmented height adjustment unit arranged on the side of the mounting base; the segmented adjustment unit includes a first adjustment actuator, a second adjustment actuator and a drive motor; thereby realizing the verticality detection of high-rise walls and the storage of the upper detection component when idle, reducing the space occupied by the building wall verticality detection device.

[0003] The above patent proposes that it is inconvenient to detect the verticality of higher walls. Indeed, at present, for some single-sided walls that are higher, such as warehouses, shopping malls, etc., the construction walls of each floor are higher, which is not convenient for detection. The above patent sets up upper and lower detection components to facilitate the detection of higher walls, but the following problems still exist: First, the detection still uses a plumb bob and a vertical line, and the bracket used to fix the vertical line is difficult to keep the plumb bob relatively still during the up and down movement, and it may shake, affecting the detection results. Moreover, when the upper detection component moves to a higher position, it is not convenient to observe the reading of the corresponding protractor. Summary of the Invention

[0004] In view of this, the purpose of the present invention is to propose a wall verticality detection device and method for construction supervision. The technical problem to be solved is that the existing technology uses a plumb line and a vertical line for detection, and when the bracket for fixing the vertical line moves up and down, the plumb line is difficult to remain relatively still, and may shake, affecting the detection results. Moreover, when the upper detection component moves to a higher position, it is not convenient to observe the reading of the corresponding protractor.

[0005] In order to achieve the above technical objectives, the technical solutions adopted by the present invention are as follows.

[0006] The present invention provides a wall verticality detection device for construction supervision: Material toggling mechanism, its both sides respectively have a cylinder pressure, and the cylinder pressure bar connects swing arm, and the swing arm end face has hook portion, and a bar passes position between the end of two swing arms and the hook portion.

[0007] The traction motor is installed in the traction motor, and the traction motor is installed in the traction motor, and the traction motor is installed in the traction motor, and the traction motor is installed in the traction motor, and the traction motor is installed in the traction motor, and the traction motor is installed in the traction motor, and the traction motor is installed in the traction motor.

[0008] Preferably, the verticality detection component includes a laser arranged below the movable seat, a scale is fixed on the top of the horizontal plate, a rectangular groove is opened at the bottom of the movable seat, a rectangular plate is slidably connected in the rectangular groove, the laser is installed at the bottom of the rectangular plate, and both sides of the rectangular plate are in contact with the inner walls of the rectangular groove.

[0009] Preferably, a U-shaped plate is fixed on one side of the movable seat, and a sliding rod is slidably connected to the U-shaped plate and the movable seat. One end of the sliding rod extends into the rectangular groove and is fixed to the rectangular plate. A roller seat is fixed to the end of the sliding rod away from the rectangular plate, and a roller is rotatably connected to the roller seat. A first spring is sleeved on the outer side of the sliding rod, one end of the first spring is against the U-shaped plate, and the other end of the first spring is against the roller seat.

[0010] Preferably, the driving assembly includes a traction rope fixed to the top of the moving seat, a scale line is provided on the outside of the traction rope, the traction rope is located between the two guide ropes, the traction rope passes through the crossbeam and slides inside the crossbeam, two ear plates are fixed on the top of the crossbeam, a first rotating shaft is connected and rotated together between the two ear plates, a first wire roller is fixed on the outside of the first rotating shaft, one end of the traction rope is fixed on the first wire roller, the traction rope can be wound around the first wire roller, a first motor is installed on one of the ear plates, and the output end of the first motor is fixed to one end of the first rotating shaft.

[0011] Preferably, an inner cavity and a first guide groove are provided in the horizontal plate, the inner cavity and the first guide groove are communicated, a driving plate is slidably connected in the inner cavity, a first hinge seat is fixed to the bottom of the driving plate, the first hinge seat slides in the first guide groove, a second hinge seat is fixed to the top of the square rod, and a first rotating rod is hinged between the second hinge seat and the first hinge seat.

[0012] It can be seen from the above technical solutions that this application has the following beneficial effects: 1: When the second line roller rotates, the pulling rope is reeled in. When the pulling rope is reeled in, the protrusion is pulled and the movable frame and the beam are moved upward. At this time, the third line roller rotates to unwind the guide rope, so that the guide rope is pulled when the beam moves upward, thereby adjusting the guide rope to the required length, so that the guide rope can constrain the upward path of the movable seat and the laser. When the laser moves upward, by observing the change in the distance of the laser point position on the scale, it can be judged whether the verticality of the wall meets the requirements.

[0013] 2: When the driving plate contacts the wall, the driving plate slides in the inner cavity. At this time, the driving plate moves to drive the first rotating rod to rotate. When the first rotating rod rotates, it drives the square rod and the second guide wheel to move downward. When the second guide wheel moves downward, it pulls the guide rope, making the guide rope taut, ensuring that the laser will only move because the roller is squeezed by the wall, ensuring the accuracy of the detection.

[0014] 3: When the square rod continues to move downward, it drives the second rotating rod to rotate. When the second rotating rod rotates, it drives the tooth plate to move, so that the tooth plate and the gear are engaged. At this time, the cylindrical rod is fixed and no longer rotates, that is, the caster is locked, and at this time the stabilizing plate moves to fit the ground, that is, the device is fixed and cannot be moved, which is convenient for the subsequent inspection work of the inspection personnel. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be derived from these drawings without inventive effort. Among them: Figure 1 A schematic structural diagram of a wall verticality detection device for construction supervision provided by the present invention; Figure 2 A schematic structural diagram of a wall verticality detection device for construction supervision provided by the present invention from another perspective; Figure 3 The present invention provides Figure 2 Schematic diagram of the structure at A in the middle; Figure 4 A schematic structural diagram of a wall verticality detection device for construction supervision provided by the present invention from another perspective; Figure 5 The present invention provides Figure 4 Schematic diagram of the structure at B in the middle; Figure 6 A schematic structural diagram of a wall verticality detection device for construction supervision provided by the present invention from another perspective; Figure 7 The present invention provides Figure 6 Schematic diagram of the structure at C in the middle; Figure 8 A schematic diagram of the internal structure of the concave base provided by the present invention; Figure 9 A schematic diagram of the partial structure of a wall verticality detection device for construction supervision provided by the present invention; Figure 10 The present invention provides Figure 9 Schematic diagram of the structure at point D in the middle.

[0016] Description of the drawings: 100, main unit; 101, concave base; 102, support plate; 103, horizontal plate; 104, bracket; 105, movable frame; 106, horizontal beam; 108, guide rope; 109, movable seat; 110, traction rope; 111, ear plate; 112, first rotating shaft; 113, first line roller; 114, first motor; 115, scale line; 116, laser; 117, U-shaped plate; 118, rectangular groove; 119, rectangular plate; 120, slide bar; 121, roller seat; 122, roller; 123, first spring; 124, scale; 200, adjustment unit; 201, vertical plate; 202, second motor; 203, second rotating shaft; 204, second line roller; 205, third line roller; 206, travel groove; 207, convex 208, pulling rope; 209, mounting plate; 210, first guide wheel; 211, inner cavity; 212, first guide groove; 213, driving plate; 214, first hinge seat; 215, square rod; 216, second hinge seat; 217, first rotating rod; 218, second guide wheel; 219, second guide groove; 220, guide plate; 221, third rotating shaft; 222, guide rod; 223, second spring; 224, cylindrical rod; 225, caster; 226, rectangular block; 227, groove; 228, gear; 229, tooth plate; 230, second rotating rod; 231, stabilizing plate; 232, square groove; 233, U-shaped baffle; 234, concave plate; 235, clamping plate; 236, limit groove; 237, limit block; 238, third spring. DETAILED DESCRIPTION

[0017] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the specific embodiments of the present invention are described in detail below with reference to the accompanying drawings.

[0018] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art may make similar generalizations without violating the connotation of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0019] Secondly, the term "one embodiment" or "embodiment" herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in various places throughout this specification does not necessarily refer to the same embodiment, nor does it refer to a separate or selective embodiment that is mutually exclusive of other embodiments.

[0020] Furthermore, the present invention is described in detail with reference to schematic diagrams. For ease of illustration, when describing the embodiments of the present invention, cross-sectional views illustrating device structures may be partially enlarged and not to scale. Furthermore, the schematic diagrams are merely illustrative and should not limit the scope of protection of the present invention. Furthermore, in actual production, the three-dimensional dimensions of length, width, and depth should be included.

[0021] Reference Figures 1-10 : Example 1 A wall verticality detection device for construction supervision includes a main unit 100 and an adjustment unit 200. The main unit 100 includes a concave base 101. Two support plates 102 are fixed on the concave base 101. A horizontal plate 103 is fixed on the top of the two support plates 102. A bracket 104 is fixed on the horizontal plate 103. A mobile frame 105 is slidably connected in the bracket 104. A crossbeam 106 is fixed on the top of the mobile frame 105. Two guide ropes 108 are fixed at the bottom of the crossbeam 106. The guide ropes 108 pass through the cross plate 103 and slide in the cross plate 103. The outer sides of the two guide ropes 108 are slidably connected in the same direction. It is connected to a movable base 109, and verticality detection components are provided on the movable base 109 and the horizontal plate 103. A driving component for driving the verticality detection component to move along the wall is provided on the horizontal beam 106. The adjustment unit 200 includes two vertical plates 201, and the two vertical plates 201 are fixed to the bottom of the horizontal plate 103. A second rotating shaft 203 is rotatably connected between the two vertical plates 201, and an adjustment component for adjusting the length of the movable frame 105 and the guide rope 108 is provided on the second rotating shaft 203. A square rod 215 is slidably connected in the concave base 101, and a tensioning component for tightening the guide rope 108 is provided in the square rod 215.

[0022] Specifically, the adjustment component includes a travel groove 206 opened in the bracket 104, a protrusion 207 is fixed at the bottom of the movable frame 105, the protrusion 207 slides in the travel groove 206, a mounting plate 209 is fixed on the top of the bracket 104, a first guide wheel 210 is rotatably connected to the mounting plate 209, a pulling rope 208 is fixed on the protrusion 207, the pulling rope 208 passes over the first guide wheel 210 and slides in the first guide wheel 210, the pulling rope 208 passes through the first guide wheel 210 and slides in the horizontal plate 103, and a second line roller 203 is fixed on the outside of the second rotating shaft 203. 04 and two third line rollers 205, one end of the guide rope 108 is fixed on the corresponding third line roller 205 after passing through the horizontal plate 103, and the guide rope 108 can be wound on the third line roller 205, and one end of the pulling rope 208 is fixed on the second line roller 204 after passing through the horizontal plate 103, and the pulling rope 208 can be wound on the second line roller 204, and a second motor 202 is installed on one of the vertical plates 201, and the output end of the second motor 202 is fixed to one end of the second rotating shaft 203, and the winding direction of the pulling rope 208 on the second line roller 204 is opposite to the winding direction of the guide rope 108 on the third line roller 205.

[0023] Among them, the verticality detection component includes a laser 116 arranged below the moving seat 109, a scale 124 is fixed on the top of the horizontal plate 103, a rectangular groove 118 is opened at the bottom of the moving seat 109, and a rectangular plate 119 is slidably connected in the rectangular groove 118. The laser 116 is installed at the bottom of the rectangular plate 119, and both sides of the rectangular plate 119 are in contact with the inner walls of the rectangular groove 118 on both sides. A U-shaped plate 117 is fixed on one side of the moving seat 109, and a slide rod 120 is slidably connected to the U-shaped plate 117 and the moving seat 109. One end of the slide rod 120 extends into the rectangular groove 118 and is fixed to the rectangular plate 119. A roller seat 121 is fixed on the end of the slide rod 120 away from the rectangular plate 119, and a roller 122 is rotatably connected in the roller seat 121. A first spring 123 is provided on the outer side of the slide rod 120. One end of the first spring 123 is against the U-shaped plate 117, and the other end of the first spring 123 is against the roller seat 121. The driving assembly includes a traction rope 110 fixed to the top of the mobile seat 109, and a scale line 115 is provided on the outside of the traction rope 110. The traction rope 110 is located between the two guide ropes 108. The traction rope 110 passes through the crossbeam 106 and slides inside the crossbeam 106. Two ear plates 111 are fixed on the top of the crossbeam 106. A first rotating shaft 112 is connected to the two ear plates 111 for common rotation. A first line roller 113 is fixed on the outside of the first rotating shaft 112. One end of the traction rope 110 is fixed on the first line roller 113. The traction rope 110 can be wound around the first line roller 113. A first motor 114 is installed on one of the ear plates 111, and the output end of the first motor 114 is fixed to one end of the first rotating shaft 112.

[0024] When in use, first measure the height of the wall to adjust the length of the guide rope 108 as needed, and start the second motor 202 to drive the second rotating shaft 203, the second line roller 204, and the third line roller 205 to rotate. When the second line roller 204 rotates, the pulling rope 208 is wound up. When the pulling rope 208 is wound up, the protrusion 207 is pulled and the movable frame 105 and the beam 106 are moved upward. At this time, the third line roller 205 rotates to unwind the guide rope 108, and when the beam 106 moves upward, it pulls the guide rope 108, thereby adjusting the guide rope 108 to the required length, and then start the first motor 114 to drive the third line roller 205 to rotate. The first line roller 113 rotates, and the traction rope 110 is wound when the first line roller 113 rotates, so that the traction rope 110 drives the movable seat 109 to move upward, and when the movable seat 109 moves upward, it drives the laser 116 to move upward. By observing the change in the distance of the laser point position of the laser 116 on the scale 124, and then observing the value of the scale line 115 on the traction rope 110, the distance the laser point moves on the scale 124 is divided by the value of the scale line 115 on the traction rope 110, the tangent value of the angle of the wall can be obtained, and it can be converted into the corresponding angle by a calculator to determine whether the verticality of the wall meets the requirements.

[0025] In addition, the transverse plate 103 is provided with an inner cavity 211 and a first guide groove 212, the inner cavity 211 and the first guide groove 212 are connected, the inner cavity 211 is slidably connected with a driving plate 213, the bottom of the driving plate 213 is fixed with a first hinge seat 214, the first hinge seat 214 slides in the first guide groove 212, the top of the square rod 215 is fixed with a second hinge seat 216, the second hinge seat 216 and the first hinge seat 214 are jointly hinged with a first rotating rod 217, the tensioning assembly includes a second guide groove 219 provided in the square rod 215, a guide rod 222 is fixed in the second guide groove 219, and a guide rod 222 is slidably connected in the second guide groove 219. Toward plate 220, guide rod 222 passes through guide plate 220, guide plate 220 slides and fits outside guide rod 222, and both sides of guide plate 220 are in contact with the inner wall of second guide groove 219, a second spring 223 is sleeved on the outer side of guide rod 222, and one end of second spring 223 is against the inner wall of second guide groove 219, and the other end of second spring 223 is against guide plate 220, and third rotating shaft 221 is fixed on both sides of guide plate 220, and the end of third rotating shaft 221 away from guide plate 220 is rotatably connected to second guide wheel 218, and guide rope 108 passes under corresponding second guide wheel 218 and slides in second guide wheel 218.

[0026] When in use, after the length adjustment of the guide rope 108 is completed, the concave base 101 will be pushed to make it close to the wall. When the driving plate 213 contacts the wall, the driving plate 213 slides in the inner cavity 211. At this time, the driving plate 213 moves to drive the first rotating rod 217 to rotate. When the first rotating rod 217 rotates, it drives the square rod 215 and the second guide wheel 218 to move downward. When the second guide wheel 218 moves downward, it pulls the guide rope 108, so that the guide rope 108 is tightened. After the second guide wheel 218 tightens the guide rope 108, the square rod 215 continues to move downward, and the second guide wheel 218 does not move downward. At this time, the guide plate 220 compresses the second spring 223. When the driving plate 213 moves to drive the square rod 215 to move downward, the guide rope 108 is tightened and the device continues to move. , the roller 122 will hit the wall, and the roller 122 drives the roller seat 121, the slide bar 120, the rectangular plate 119, and the laser 116 to move. At this time, the first spring 123 is compressed. It should be noted that the elastic coefficient of the second spring 223 is much greater than the elastic coefficient of the first spring 123, so that when the guide rope 108 is tightened, the roller 122 and the wall are against each other. Although the first spring 123 is compressed at this time, the rebound force of the first spring 123 will not drive the moving seat 109 to move, that is, the moving seat 109 will not squeeze and deform the guide rope 108, so that the moving seat 109 is located on the guide rope 108 and always moves vertically upward, which ensures that the laser 116 will only move because the roller 122 is squeezed by the wall, thereby ensuring the accuracy of the detection.

[0027] In addition, there are two cylindrical rods 224 rotatably connected in the concave base 101, and casters 225 are fixed at both ends of the cylindrical rods 224 extending outside the concave base 101. Two rectangular blocks 226 are fixed on the inner wall of the concave base 101, and a groove 227 is opened in the rectangular block 226. The cylindrical rod 224 passes through the groove 227 and rotates in the groove 227. A gear 228 is fixed on the outside of the cylindrical rod 224, and the gear 228 is located in the groove 227. A toothed plate 229 is slidably connected in the rectangular block 226, and the toothed plate 229 can mesh with the gear 228. Two second rotating rods 230 are hinged on the square rod 215. The end of the second rotating rod 230 away from the square rod 215 is hinged to the corresponding toothed plate 229. A stabilizing plate 231 is fixed to the bottom of 15, a square groove 232 is provided on the top of the horizontal plate 103, and the square groove 232 is communicated with the inner cavity 211. A U-shaped baffle 233 is fixed to the top of the horizontal plate 103, and an inner concave plate 234 is fixed on the top of the driving plate 213. The inner concave plate 234 slides in the square groove 232, and a clamping plate 235 is slidably connected in the inner concave plate 234. Limiting grooves 236 are provided on both sides of the inner concave plate 234, and limiting blocks 237 are fixed on both sides of the clamping plate 235. The limiting blocks 237 slide in the limiting grooves 236. Two third springs 238 are fixed in the inner concave plate 234, and the top of the third spring 238 is fixed to the clamping plate 235. The side of the clamping plate 235 close to the U-shaped baffle 233 is an inclined surface.

[0028] Example 2 A wall verticality detection method for construction supervision, based on the first embodiment, specifically includes the following steps: Step 1: According to the height of the wall, adjust the length of the guide rope 108, start the second motor 202 to drive the second rotating shaft 203, the second line roller 204, and the third line roller 205 to rotate. When the second line roller 204 rotates, the pulling rope 208 is wound. When the pulling rope 208 is wound, the protrusion 207 is pulled and the movable frame 105 and the beam 106 are moved upward. At this time, the third line roller 205 rotates to unwind the guide rope 108. When the beam 106 moves upward, it pulls the guide rope 108. Step 2: Push the concave base 101 toward the wall. When the driving plate 213 contacts the wall, the driving plate 213 slides within the inner cavity 211. The driving plate 213 then moves, driving the first rotating rod 217 to rotate. The rotation of the first rotating rod 217 drives the square rod 215 and the second guide wheel 218 to move downward. The second guide wheel 218 pulls the guide rope 108 as it moves downward. Step 3: After the second guide wheel 218 tightens the guide rope 108, the square rod 215 continues to move downward, but the second guide wheel 218 does not move downward. At this time, the guide plate 220 compresses the second spring 223, and the square rod 215 continues to move downward by driving the second rotating rod 230 to rotate. When the second rotating rod 230 rotates, it drives the tooth plate 229 to move, so that the tooth plate 229 and the gear 228 are engaged. At this time, the cylindrical rod 224 is fixed and no longer rotates, that is, the caster 225 is locked, and the stabilizing plate 231 moves to fit the ground, that is, the device is fixed and cannot be moved; Step 4: When the driving plate 213 moves, it also drives the inner concave plate 234 and the clamping plate 235 to move. When the clamping plate 235 moves to squeeze the U-shaped baffle 233, the clamping plate 235 is squeezed and moves into the inner concave plate 234 and compresses the third spring 238. After the clamping plate 235 passes the U-shaped baffle 233, the rebound force of the third spring 238 drives the clamping plate 235 to move upward, so that the clamping plate 235 is stuck on one side of the U-shaped baffle 233. At the same time, the tooth plate 229 and the gear 228 are meshed, and the stabilizing plate 231 is in contact with the ground. Step 5: When the driving plate 213 moves and drives the square rod 215 downward, the guide rope 108 is tightened. When the device continues to move, the roller 122 will contact the wall. The roller 122 drives the roller seat 121, the slide bar 120, the rectangular plate 119, and the laser 116 to move. At this time, the first spring 123 is compressed. When the device continues to move, the square rod 215 continues to move downward to lock the device. At this time, the first spring 123 has been compressed a certain distance. Step 6: Start the first motor 114 to drive the first line roller 113 to rotate. When the first line roller 113 rotates, the traction rope 110 is reeled in, so that the traction rope 110 drives the movable seat 109 to move upward. When the movable seat 109 moves upward, it drives the laser 116 to move upward. By observing the change in the position of the laser point of the laser 116 on the scale line 115, the verticality of the wall can be judged.

[0029] The above description is merely a preferred embodiment of the present invention and does not constitute any form of limitation to the present invention. Although the present invention has been disclosed as above in terms of a preferred embodiment, it is not intended to limit the present invention. Any person skilled in the art can, without departing from the scope of the technical solution of the present invention, make some changes or modifications to equivalent embodiments using the technical contents disclosed above. However, any brief modifications, equivalent changes and modifications made to the above embodiments based on the technical essence of the present invention without departing from the content of the technical solution of the present invention are still within the scope of the technical solution of the present invention.

Claims

1. A wall verticality detection device for construction supervision, characterized in that: include: The main unit (100) comprises a concave base (101), two support plates (102) are fixed on the concave base (101), a transverse plate (103) is fixed on the top of the two support plates (102), a bracket (104) is fixed on the transverse plate (103), a movable frame (105) is slidably connected in the bracket (104), a transverse beam (106) is fixed on the top of the movable frame (105), two guide ropes (108) are fixed on the bottom of the transverse beam (106), the guide ropes (108) pass through the transverse plate (103) and slide in the transverse plate (103), a movable seat (109) is slidably connected on the outer sides of the two guide ropes (108), a verticality detection component is provided on the movable seat (109) and the transverse plate (103), and a driving component for driving the verticality detection component to move along the wall is provided on the transverse beam (106); The adjustment unit (200) comprises two vertical plates (201), the two vertical plates (201) being fixed to the bottom of the horizontal plate (103), a second rotating shaft (203) being rotatably connected between the two vertical plates (201), an adjustment component for adjusting the length of the movable frame (105) and the guide rope (108) being provided on the second rotating shaft (203), a square rod (215) being slidably connected in the concave base (101), and a tensioning component for tightening the guide rope (108) being provided in the square rod (215).

2. A wall verticality detection device for construction supervision according to claim 1, characterized in that: The adjustment component includes a travel groove (206) opened in the bracket (104), a protrusion (207) is fixed at the bottom of the movable frame (105), and the protrusion (207) is slidably fitted in the travel groove (206), a mounting plate (209) is fixed at the top of the bracket (104), a first guide wheel (210) is rotatably connected in the mounting plate (209), and a pulling rope (208) is fixed on the protrusion (207).

3. A wall verticality detection device for construction supervision according to claim 2, characterized in that: The pulling rope (208) passes over the first guide wheel (210) and slides inside the first guide wheel (210). After passing the first guide wheel (210), the pulling rope (208) passes through the transverse plate (103) and slides inside the transverse plate (103). A second line roller (204) and two third line rollers (205) are fixed on the outside of the second rotating shaft (203). One end of the guide rope (108) after passing through the transverse plate (103) is fixed to the corresponding third line roller (205).

4. A wall verticality detection device for construction supervision according to claim 3, characterized in that: The guide rope (108) can be wound on the third line roller (205), and one end of the pulling rope (208) is fixed on the second line roller (204) after passing through the horizontal plate (103). The pulling rope (208) can be wound on the second line roller (204), and a second motor (202) is installed on one of the vertical plates (201). The output end of the second motor (202) is fixed to one end of the second rotating shaft (203). The winding direction of the pulling rope (208) on the second line roller (204) is opposite to the winding direction of the guide rope (108) on the third line roller (205).

5. A wall verticality detection device for construction supervision according to claim 4, characterized in that: The verticality detection assembly includes a laser (116) arranged below the movable seat (109), a scale (124) is fixed on the top of the horizontal plate (103), a rectangular groove (118) is opened at the bottom of the movable seat (109), a rectangular plate (119) is slidably connected in the rectangular groove (118), the laser (116) is installed at the bottom of the rectangular plate (119), and both sides of the rectangular plate (119) are in contact with the inner walls of the rectangular groove (118).

6. A wall verticality detection device for construction supervision according to claim 5, characterized in that: A U-shaped plate (117) is fixed on one side of the movable seat (109), and a sliding rod (120) is slidably connected in the U-shaped plate (117) and the movable seat (109). One end of the sliding rod (120) extending into the rectangular groove (118) is fixed to the rectangular plate (119), and one end of the sliding rod (120) away from the rectangular plate (119) is fixed to a roller seat (121), and a roller (122) is rotatably connected in the roller seat (121). A first spring (123) is sleeved on the outer side of the sliding rod (120), one end of the first spring (123) is against the U-shaped plate (117), and the other end of the first spring (123) is against the roller seat (121).

7. A wall verticality detection device for construction supervision according to claim 1, characterized in that: The driving assembly includes a traction rope (110) fixed to the top of the moving seat (109), a scale line (115) is provided on the outside of the traction rope (110), the traction rope (110) is located between the two guide ropes (108), and the traction rope (110) passes through the crossbeam (106) and slides inside the crossbeam (106).

8. A wall verticality detection device for construction supervision according to claim 7, characterized in that: Two ear plates (111) are fixed on the top of the crossbeam (106), and a first rotating shaft (112) is connected between the two ear plates (111) for common rotation. A first line roller (113) is fixed on the outside of the first rotating shaft (112), and one end of the traction rope (110) is fixed on the first line roller (113). The traction rope (110) can be wound on the first line roller (113). A first motor (114) is installed on one of the ear plates (111), and an output end of the first motor (114) is fixed to one end of the first rotating shaft (112).

9. The wall verticality detection device for construction supervision according to claim 1, characterized in that: An inner cavity (211) and a first guide groove (212) are provided in the transverse plate (103), the inner cavity (211) and the first guide groove (212) are communicated with each other, a driving plate (213) is slidably connected in the inner cavity (211), a first hinge seat (214) is fixed at the bottom of the driving plate (213), the first hinge seat (214) is slidably fitted in the first guide groove (212), a second hinge seat (216) is fixed at the top of the square rod (215), and a first rotating rod (217) is hingedly connected between the second hinge seat (216) and the first hinge seat (214).

Citation Information

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