A building design measuring device

CN224786771UActive Publication Date: 2026-09-22陈德轩
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Patent Information

Application Number
CN202522490074.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-24
Publication Date
2026-09-22
Estimated Expiration
2035-11-24

AI Technical Summary

Technical Problem

[0003]然而,现有建筑设计测量装置受结构设计限制,只能在单一方向上对测距传感器的位置进行调整,其在调节协同性、测量精度、操作效率、稳定性等核心性能上存在显著技术缺陷,难以满足现代建筑测量需求,具体问题如下:

Benefits of technology

[0020]角度调节部件对安装块的角度进行调整,安装块通过竖板和横板对测距传感器的检测方向进行调整,使得该装置可对不同角度的墙面进行检测,Y轴调节部件带动活动板、活动套和测距传感器在Y轴向上运动,X轴调节部件带动活动杆、活动套和测距传感器在X轴向上运动,在Y轴调节部件和X轴调节部件的作用下,测距传感器可在一个平面内对墙面进行全面的测量,大幅提升墙面测量的全面性和效率性。

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Abstract

The utility model discloses a kind of architectural design measuring devices, bottom plate upper end surface symmetry is equipped with support plate one, installation block is equipped between support plate one, angle adjusting component is equipped on support plate one, and angle indicating component is equipped on one of support plate one;Bottom plate upper is equipped with vertical plate, vertical plate lower end is connected with installation block, and horizontal plate is equipped with vertical plate upper end;Vertical plate front surface is equipped with support plate two, and Y-axis adjusting component is equipped with support plate two, and slot is equipped on movable plate, and horizontal plate front surface is equipped with support plate three, and X-axis adjusting component is equipped on support plate three, and movable sleeve is slidably connected on movable rod, and connecting rod is equipped on movable sleeve front surface, and connecting rod is slidably in slot, and range sensor is equipped on connecting rod front surface.The utility model's advantage lies in: X axis, Y axis, angle can be cooperatively adjusted, accurate drive indication can be carried out efficient and comprehensive measurement to wall surface.
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Description

Technical Field

[0001] This utility model relates to the field of measuring device technology, and in particular to a building design measuring device. Background Technology

[0002] Architectural design surveying is a core component of building construction layout, component dimension verification, spatial form detection, and final acceptance. Its accuracy and efficiency directly determine the quality and progress of the building project. Current architectural design surveying scenarios, such as the installation of irregularly shaped components, wall tilt detection, and spatial point coordinate measurement, increasingly demand multi-dimensional adjustment, precise positioning, and coordinated control of equipment.

[0003] However, existing building design surveying devices are limited by structural design and can only adjust the position of the distance sensor in a single direction. They have significant technical deficiencies in core performance aspects such as adjustment coordination, measurement accuracy, operational efficiency, and stability, making it difficult to meet the needs of modern building surveying. Specific problems are as follows:

[0004] The X-axis and Y-axis linear and angle adjustments are independent and cannot be coordinated, resulting in extremely low measurement efficiency in complex scenarios. When measuring the dimensions of multiple points on an inclined wall, it is necessary to first adjust the tilt angle of the device using an independent angle meter, then manually move the distance sensor to the target position on the X-axis, and finally fine-tune the height on the Y-axis. Single-point measurement requires more than three independent operations, and the angle and linear position are prone to mutual interference.

[0005] This invention addresses these issues by proposing a building design measurement device that aims to solve the aforementioned problems. The device allows for coordinated adjustment of the X-axis, Y-axis, and angle, providing precise drive indication and enabling efficient and comprehensive measurement of the wall surface. Utility Model Content

[0006] To address the aforementioned shortcomings in the existing technology, this utility model provides a building design measurement device.

[0007] To achieve the aforementioned objectives, the technical solution adopted by this utility model is as follows:

[0008] A building design measurement device, including a base plate,

[0009] The upper surface of the base plate is symmetrically provided with a support plate, and a mounting block is provided between the support plates. An angle adjustment component is provided on the support plate, and one of the support plates is provided with an angle indicator component.

[0010] A vertical plate is provided above the base plate, the lower end of the vertical plate is connected to the mounting block, and a horizontal plate is provided at the upper end of the vertical plate;

[0011] The vertical plate has symmetrical support plates on its front side, and each support plate has a Y-axis adjustment component that drives a movable plate to move upward along the Y-axis. The movable plate has a slot. The horizontal plate has symmetrical support plates on its front side, and each support plate has an X-axis adjustment component that drives a movable rod to move upward along the X-axis. A movable sleeve is slidably connected to the movable rod, and a connecting rod is provided on the front side of the movable sleeve. The connecting rod slides within the slot, and a distance sensor is provided on the front side of the connecting rod. A controller is provided on the back side of the vertical plate.

[0012] Furthermore, the angle adjustment component includes a motor and a rotating shaft. The motor is mounted on one of the support plates, and the rotating shaft is rotatably connected between the support plates. The output end of the motor is connected to the rotating shaft. The mounting block is mounted on the rotating shaft, and the rotating shaft is connected to the angle indicating component.

[0013] Furthermore, the angle indicating component includes an angle indicating plate and a pointer. The angle indicating plate is disposed on a support plate, and the rotating shaft is rotatably connected to the angle indicating plate. The pointer is provided on the portion of the rotating shaft that protrudes from the angle indicating plate.

[0014] Furthermore, the Y-axis adjustment component includes a second motor, a first screw, and a first movable block. The second motor is mounted on one of the second support plates, and the first screw is rotatably connected between the second support plates. The output end of the second motor is connected to the first screw, and the first movable block is threaded onto the first screw. One end of the movable plate is connected to the side of the first movable block.

[0015] Furthermore, a ball bearing is rotatably connected to the back of the movable block, and the ball bearing is rotatably connected to the vertical plate.

[0016] Furthermore, the X-axis adjustment component includes a motor three, a screw two, and a movable block two. The motor three is mounted on one of the support plates three, and the screw two is rotatably connected between the support plates three. The output end of the motor three is connected to the screw two, and the movable block two is threadedly connected to the screw two. The upper end of the movable rod is connected to the lower end face of the movable block two.

[0017] Furthermore, the back of the movable block two is rotatably connected to a ball bearing two, which is rotatably connected to the front of the horizontal plate.

[0018] Furthermore, limiting rings are provided on the front and rear sides of the movable plate on the connecting rod.

[0019] Compared to traditional technologies, the advantages of this utility model are:

[0020] The angle adjustment component adjusts the angle of the mounting block, which in turn adjusts the detection direction of the distance sensor via the vertical and horizontal plates. This allows the device to detect walls at different angles. The Y-axis adjustment component moves the movable plate, movable sleeve, and distance sensor upward along the Y-axis, while the X-axis adjustment component moves the movable rod, movable sleeve, and distance sensor upward along the X-axis. Under the action of the Y-axis and X-axis adjustment components, the distance sensor can perform comprehensive measurements of the wall surface within a single plane, significantly improving the comprehensiveness and efficiency of wall surface measurements. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the structure of the present invention. Figure 1 ;

[0022] Figure 2 This is a schematic diagram of the structure of the present invention. Figure 2 ;

[0023] Figure 3 This is a schematic diagram of the angle adjustment component of this utility model;

[0024] Figure 4 This is a schematic diagram of the structure of the movable block 1 of this utility model;

[0025] Appendix Label Reference Table:

[0026] 1. Base plate; 2. Support plate one; 3. Mounting block; 4. Vertical plate; 5. Horizontal plate; 6. Support plate two; 7. Movable plate; 8. Slot; 9. Support plate three; 10. Movable rod; 11. Movable sleeve; 12. Connecting rod; 13. Distance sensor; 14. Controller; 15. Motor one; 16. Angle indicator plate; 17. Pointer; 18. Motor two; 19. Screw one; 20. Movable block one; 21. Ball bearing one; 22. Motor three; 23. Screw two; 24. Movable block two; 25. Limit ring. Detailed Implementation

[0027] The specific embodiments of this utility model will be further described below with reference to the accompanying drawings. Identical components are indicated by the same reference numerals.

[0028] It should be noted that the terms “front,” “back,” “left,” “right,” “up,” and “down” used in the following description refer to the directions shown in the attached diagram, while the terms “inside” and “outside” refer to the directions toward or away from the geometric center of a specific component, respectively.

[0029] To make the content of this utility model easier to understand, the technical solutions of this utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of this utility model.

[0030] Example 1

[0031] Combined with appendix Figure 1-2 The base plate 1 has a support plate 2 symmetrically arranged on its upper end, and an mounting block 3 is provided between the support plates 2. An angle adjustment component is provided on the support plate 2.

[0032] The angle adjustment component includes a motor 15 and a rotating shaft. The motor 15 is mounted on one of the support plates 2. The rotating shaft is rotatably connected between the support plates 2. The output end of the motor 15 is connected to the rotating shaft. The mounting block 3 is mounted on the rotating shaft. The rotating shaft is connected to the angle indicator component.

[0033] The back of the vertical plate 4 is equipped with a controller 14.

[0034] When in use, place the device in a suitable position and control the motor 15 to operate through the controller 14. The motor 15 drives the rotating shaft to rotate, and the rotating shaft drives the mounting block 3 to rotate between the support plate 2. The mounting block 3 adjusts the orientation of the distance sensor 13 through the vertical plate 4 and the horizontal plate 5 so that the detection direction of the distance sensor 13 is perpendicular to the wall.

[0035] Combined with appendix Figure 1 and 3 One of the support plates 2 is provided with an angle indicator component, which includes an angle indicator plate 16 and a pointer 17. The angle indicator plate 16 is disposed on the support plate 2, and the rotating shaft is rotatably connected to the angle indicator plate 16. The pointer 17 is provided on the part of the rotating shaft that is exposed on the angle indicator plate 16.

[0036] When adjusting the angle of mounting block 3, the rotating shaft rotates, which drives the pointer 17 to swing. The pointer 17 indicates on the angle indicator plate 16, which can make precise angle adjustments to mounting block 3, thereby making precise adjustments to the orientation of distance sensor 13.

[0037] Combined with appendix Figure 1-2 A vertical plate 4 is provided above the base plate 1. The lower end of the vertical plate 4 is connected to the mounting block 3, and a horizontal plate 5 is provided at the upper end of the vertical plate 4.

[0038] The vertical plate 4 has symmetrical support plates 6 on its front side. The support plates 6 have Y-axis adjustment components, which drive the movable plate 7 to move upward along the Y-axis. The movable plate 7 has a slot 8. The horizontal plate 5 has symmetrical support plates 9 on its front side. The support plates 9 have X-axis adjustment components, which drive the movable rod 10 to move upward along the X-axis. The movable rod 10 is slidably connected to a movable sleeve 11. The movable sleeve 11 has a connecting rod 12 on its front side. The connecting rod 12 slides in the slot 8. The connecting rod 12 has a distance sensor 13 on its front side.

[0039] The Y-axis adjustment component includes a second motor 18, a first screw 19, and a first movable block 20. The second motor 18 is mounted on one of the second support plates 6. The first screw 19 is rotatably connected between the second support plates 6. The output end of the second motor 18 is connected to the first screw 19. The first movable block 20 is threadedly connected to the first screw 19. One end of the movable plate 7 is connected to the side of the first movable block 20.

[0040] The X-axis adjustment component includes a motor 22, a screw 23, and a movable block 24. The motor 22 is mounted on one of the support plates 9. The screw 23 is rotatably connected between the support plates 9. The output end of the motor 22 is connected to the screw 23. The movable block 24 is threadedly connected to the screw 23. The upper end of the movable rod 10 is connected to the lower end face of the movable block 24.

[0041] After the angle adjustment is completed, motor 18 rotates, driving screw 19 to rotate between support plate 2. Screw 19 drives movable block 20, which is threadedly connected to it, to move along screw 19. Movable block 20 drives movable plate 7 to move upward in the Y-axis. The movement of movable plate 7 drives movable sleeve 11 to move on movable rod 10 through slot 8 and connecting rod 12, so that the distance sensor 13 at the front end of connecting rod 12 moves upward in the Y-axis.

[0042] Motor 22 rotates, driving screw 23 to rotate between support plates 26. Screw 23 drives movable block 24, which is threadedly connected to it, to move along screw 23. Movable block 24 drives movable rod 10 to move in the X-axis. Movable rod 10 moves, and through movable sleeve 11, drives connecting rod 12 to move in slot 8, so that distance sensor 13 at the front end of connecting rod 12 moves in the X-axis.

[0043] With the help of the Y-axis adjustment component and the X-axis adjustment component, the distance sensor 13 can perform a comprehensive measurement of the wall surface in one plane, thereby greatly improving the comprehensiveness and efficiency of the wall surface measurement.

[0044] Example 2

[0045] Combined with appendix Figure 1 and 4 The movable block 20 is connected to a ball bearing 21 on its back, and the ball bearing 21 is connected to the vertical plate 4 in a rolling manner.

[0046] The back of the movable block 24 is connected to a ball bearing 2, which is in a rolling connection with the front of the horizontal plate 5.

[0047] The connecting rod 12 has limiting rings 25 on both the front and rear sides of the movable plate 7.

[0048] Based on Embodiment 1, when the Y-axis adjustment component and the X-axis adjustment component drive the movable block 1 20 and the movable block 24 to move, the ball bearings 1 21 and 2 on the movable block 1 20 and the movable block 24 roll on the vertical plate 4 and the horizontal plate 5 respectively, ensuring the smoothness of the movement of the movable block 1 20 and the movable block 24, thereby ensuring the smoothness of the position adjustment of the ranging sensor 13.

[0049] The limiting ring 25 on the connecting rod prevents the connecting rod 12 from falling out of the slot 8 when the movable plate 7 and the movable rod 10 move.

[0050] The above description is only a preferred embodiment of this utility model patent and is not intended to limit this utility model patent. Any modifications, equivalent substitutions and improvements made within the spirit and principles of this utility model patent should be included within the protection scope of this utility model patent.

Claims

1. A building design measurement device, comprising a base plate (1), characterized in that: The base plate (1) is symmetrically provided with a support plate (2) on its upper end, and a mounting block (3) is provided between the support plates (2). An angle adjustment component is provided on the support plate (2), and an angle indicator component is provided on one of the support plates (2). A vertical plate (4) is provided above the base plate (1), the lower end of the vertical plate (4) is connected to the mounting block (3), and a horizontal plate (5) is provided at the upper end of the vertical plate (4). The vertical plate (4) has a second support plate (6) symmetrically arranged on the front. The second support plate (6) has a Y-axis adjustment component. The Y-axis adjustment component drives the movable plate (7) to move upward in the Y-axis. The movable plate (7) has a slot (8). The horizontal plate (5) has a third support plate (9) symmetrically arranged on the front. The third support plate (9) has an X-axis adjustment component. The X-axis adjustment component drives the movable rod (10) to move upward in the X-axis. The movable rod (10) is slidably connected to a movable sleeve (11). The movable sleeve (11) has a connecting rod (12) on its front. The connecting rod (12) slides in the slot (8). The connecting rod (12) has a distance sensor (13) on its front. The vertical plate (4) has a controller (14) on its back.

2. The architectural design measurement device according to claim 1, characterized in that: The angle adjustment component includes a motor (15) and a rotating shaft. The motor (15) is mounted on one of the support plates (2). The rotating shaft is rotatably connected between the support plates (2). The output end of the motor (15) is connected to the rotating shaft. The mounting block (3) is mounted on the rotating shaft. The rotating shaft is connected to the angle indicator component.

3. The architectural design measurement device according to claim 2, characterized in that: The angle indicator component includes an angle indicator plate (16) and a pointer (17). The angle indicator plate (16) is mounted on a support plate (2). The rotating shaft is rotatably connected to the angle indicator plate (16). The pointer (17) is provided on the part of the rotating shaft that is exposed on the angle indicator plate (16).

4. The architectural design measurement device according to claim 1, characterized in that: The Y-axis adjustment component includes a second motor (18), a first screw (19), and a first movable block (20). The second motor (18) is mounted on one of the second support plates (6). The first screw (19) is rotatably connected between the second support plates (6). The output end of the second motor (18) is connected to the first screw (19). The first movable block (20) is threaded onto the first screw (19). One end of the movable plate (7) is connected to the side of the first movable block (20).

5. The architectural design measurement device according to claim 4, characterized in that: The back of the movable block (20) is connected to a ball bearing (21), which is in a rolling connection with the vertical plate (4).

6. The architectural design measurement device according to claim 1, characterized in that: The X-axis adjustment component includes a motor (22), a screw (23), and a movable block (24). The motor (22) is mounted on one of the support plates (9). The screw (23) is rotatably connected between the support plates (9). The output end of the motor (22) is connected to the screw (23). The movable block (24) is threaded onto the screw (23). The upper end of the movable rod (10) is connected to the lower end face of the movable block (24).

7. The architectural design measurement device according to claim 6, characterized in that: The back of the movable block 2 (24) is connected to a ball bearing 2, which is connected to the front of the horizontal plate (5).

8. The architectural design measurement device according to claim 1, characterized in that: Limiting rings (25) are provided on the front and rear sides of the movable plate (7) on the connecting rod (12).