Simple and foldable building perpendicularity measuring device

Through the simple folding building verticality measurement device, the design of measurement components and locking mechanisms solves the problems of complex operation and inconvenience in carrying traditional tools, achieving high-precision measurement and efficient operation, and adapting to complex environments.

CN223166139UActive Publication Date: 2025-07-29中交天航南方交通建设有限公司
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Patent Information

Application Number
CN202422439115.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-10
Publication Date
2025-07-29
Estimated Expiration
2034-10-10

AI Technical Summary

Technical Problem

Traditional verticality measurement tools are complex in operation, require multiple people to cooperate, and are not convenient to carry. Especially in complex terrain and special environments, measurement efficiency and accuracy face challenges.

Method used

A simple folding building verticality measurement device is designed, including the device main body, a measuring assembly and a locking mechanism. Through the mutual cooperation between the first measuring part and the second measuring part and the stable locking of the locking mechanism, the stability and accuracy during the measurement process are ensured. The device is compact in structure and has a folding function, which is easy to carry.

Benefits of technology

It realizes high-precision building verticality measurement, meets engineering quality control requirements, operates alone, reduces labor costs, reduces errors, and improves measurement efficiency and equipment versatility and adaptability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a simple folding building verticality measuring device, and relates to the technical field of building engineering. The device body comprises an opening and a mounting groove, and the opening is formed in the side face of the mounting groove. The measuring assembly comprises a first measuring piece and a second measuring piece, the first measuring piece is connected with the device body, the second measuring piece is slidably connected with the first measuring piece, and the measuring assembly is arranged in the mounting groove; when the locking assembly is located at the locking position, the locking assembly abuts against the second measuring piece, and the unlocking assembly is arranged on the opening and used for pushing the locking assembly away from the locking position. According to the building perpendicularity measuring device, the first measuring piece and the second measuring piece are matched with each other, and the second measuring piece is stably locked by the locking mechanism, so that the stability and the accuracy in the measuring process are ensured, the high-precision measurement of the building perpendicularity is realized, and the strict requirement of engineering quality control is met. The device is compact in structure and has a folding function.
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Description

Technical Field

[0001] The utility model relates to the field of construction engineering, in particular to a simple and foldable building verticality measuring device. Background Technique

[0002] In the field of the backbone projects of the New Land-Sea Corridor, with the continuous advancement of large-scale infrastructure construction, the accurate measurement of building verticality has become a key link to ensure project quality and safety. Traditional verticality measuring tools are often complex to operate, require multiple people to cooperate, and are not convenient to carry, increasing the construction difficulty and cost. Especially in complex terrains and special environments, the measurement efficiency and accuracy face challenges. Content of the Utility Model

[0003] In order to solve at least one of the above technical problems, the utility model provides a simple and foldable building verticality measuring device.

[0004] To achieve the above object, the embodiments of the present application adopt the following technical solutions:

[0005] A simple and foldable building verticality measuring device provided by the utility model includes:

[0006] A device main body, the device main body includes an opening and an installation groove, and the opening is arranged on the side surface of the installation groove;

[0007] A measuring component, the measuring component includes a first measuring piece and a second measuring piece, the first measuring piece is connected to the device main body, the second measuring piece is slidably connected to the first measuring piece, and the measuring component is arranged in the installation groove;

[0008] A locking mechanism, the locking mechanism includes a locking component and an unlocking component. When the locking component is in the locking position, the locking component abuts against the second measuring piece, and the unlocking component is arranged on the opening for pushing the locking component away from the locking position.

[0009] In a possible implementation manner of the present application, one opening is arranged on each side of the installation groove.

[0010] In a possible implementation manner of the present application, the first measuring piece is connected to the device main body through a U-shaped piece.

[0011] In a possible implementation manner of the present application, the second measuring piece is arranged on one side of the first measuring piece.

[0012] In a possible implementation manner of the present application, the locking component includes a locking piece and an elastic piece, and the elastic piece applies a force to the locking piece towards the second measuring piece.

[0013] In a possible implementation manner of the present application, an abutting head is provided at one end of the locking member that abuts against the second measuring member, and a slope is provided on one side of the abutting head.

[0014] In a possible implementation manner of the present application, the other end of the locking member is connected to the device main body, and the elastic member is sleeved on the locking member.

[0015] In a possible implementation manner of the present application, a clamping portion adapted to the abutting head is provided on the second measuring member.

[0016] In a possible implementation manner of the present application, the unlocking assembly includes an operating member and an unlocking member, and the operating member and the unlocking member are respectively arranged on both sides of the opening.

[0017] In a possible implementation manner of the present application, the unlocking member includes a pushing head adapted to the slope.

[0018] Compared with the prior art, a simple and foldable building verticality measuring device of the present utility model ensures the stability and accuracy during the measurement process through the mutual cooperation of the first measuring member and the second measuring member, and the firm locking of the second measuring member by the locking mechanism, thereby achieving high-precision measurement of the building verticality and meeting the strict requirements of engineering quality control. The locking mechanism enables the measuring device to be flexibly adjusted under different measurement requirements, ensuring both the measurement accuracy and enhancing the versatility and adaptability of the device. The device has a compact structure and a folding function, making the measuring equipment occupy less space during transportation and storage and facilitating it to be carried to the construction site. At the same time, the sliding connection structure of the measuring assembly simplifies the operation process, enabling the verticality measurement to be carried out quickly and improving the work efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings required for use in the embodiments of the present application will be described below.

[0020] Figure 1 is a schematic structural diagram of a simple and foldable building verticality measuring device provided by the present utility model;

[0021] Figure 2 is another schematic structural diagram of a simple and foldable building verticality measuring device provided by the present utility model;

[0022] Figure 3 is still another schematic structural diagram of a simple and foldable building verticality measuring device provided by the present utility model;

[0023] Figure 4It is a schematic structural diagram of a locking mechanism in a simple folding building verticality measuring device provided by the present utility model.

[0024] Explanation of reference numerals:

[0025] 10. Device main body; 110. Opening; 120. Installation groove; 20. Measuring assembly; 210. First measuring piece; 220. Second measuring piece; 2210. Clamping part; 30. Locking mechanism; 310. Locking assembly; 3110. Locking piece; 3120. Elastic piece; 3130. Contact head; 3140. Slope; 320. Unlocking assembly; 3210. Operating piece; 3220. Unlocking piece; 3230. Pushing head; 40. U-shaped piece. Detailed implementation manners

[0026] In order to make the purpose, technical solutions and advantages of the present utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present utility model and are not used to limit the present utility model.

[0027] Terms such as "first" and "second" in the embodiments of the present utility model are only used to distinguish related technical features and do not represent a sequence. It should be understood that such data can be interchanged under appropriate circumstances for the embodiments of the present application described herein. In addition, the terms "comprising" and "having" and any variations thereof are intended to cover non-exclusive inclusion. For example, a process, method, system, product or device comprising a series of steps or units does not necessarily have to be limited to those steps or units clearly listed, but may include other steps or units not clearly listed or inherent to these processes, methods, products or devices.

[0028] In the present application, the orientation or positional relationship indicated by terms such as "upper", "lower", "inner", "middle", "outer", "front", "rear", etc. is based on the orientation or positional relationship shown in the accompanying drawings. These terms are mainly used to better describe the present application and its embodiments, and are not used to limit that the indicated device, element or component must have a specific orientation or be constructed and operated in a specific orientation.

[0029] Moreover, in addition to being able to represent an orientation or positional relationship, some of the above terms may also be used to represent other meanings. For example, the term "upper" may also be used to represent a certain attachment relationship or connection relationship in some cases. For those of ordinary skill in the art, the specific meanings of these terms in the present application can be understood according to specific circumstances.

[0030] A simple and foldable building verticality measuring device provided by the present utility model ensures the stability and accuracy during the measurement process through the mutual cooperation of the first measuring member and the second measuring member, and the firm locking of the second measuring member by the locking mechanism, thereby achieving high-precision measurement of the building verticality and meeting the strict requirements of engineering quality control. The locking mechanism enables the measuring device to be flexibly adjusted under different measurement requirements, ensuring both the accuracy of measurement and enhancing the versatility and adaptability of the device. The device has a compact structure and a folding function, making the measuring equipment occupy less space during transportation and storage and facilitating it to be carried to the construction site. At the same time, the sliding connection structure of the measuring component simplifies the operation process, enabling the verticality measurement to be carried out quickly and improving the work efficiency. Embodiment

[0031] An embodiment of the present utility model provides a simple and foldable building verticality measuring device, as Figures 1 to 4 shown, including a device main body 10. The device main body 10 includes an opening 110 and an installation groove 120. The opening 110 is provided on the side surface of the installation groove 120; a measuring component 20, the measuring component 20 includes a first measuring member 210 and a second measuring member 220. The first measuring member 210 is connected to the device main body 10, and the second measuring member 220 is slidably connected to the first measuring member 210. The measuring component 20 is arranged in the installation groove 120; a locking mechanism 30, the locking mechanism 30 includes a locking component 310 and an unlocking component 320. When the locking component 310 is in the locking position, the locking component 310 abuts against the second measuring member 220, and the unlocking component 320 is arranged on the opening 110 for pushing the locking component 310 away from the locking position.

[0032] The structure of this device enables a single person to complete the measurement operation without the need for multiple people to cooperate, reducing the labor cost and also reducing the errors that may be caused by multiple-person operations. By accurately measuring the verticality, building deviations can be detected and corrected in a timely manner, avoiding potential structural safety problems caused by non-compliant verticality and improving the overall safety and stability of the project.

[0033] More specifically, an opening 110 may be provided on each side of the installation groove 120.

[0034] In this way, the openings 110 on both sides of the installation groove 120 enable a more flexible arrangement of the locking mechanism 30 and the unlocking component 320. Users can approach and operate the locking mechanism 30 from two directions, and can handle it with ease whether they are operating with their left or right hand, greatly improving the convenience and comfort of operation. During the measurement process, if quick adjustment or re-locking of the second measuring piece 220 is required, the structure of the openings 110 on both sides allows users to easily reach and operate the unlocking component 320 without moving the entire device body 10, thus quickly completing the adjustment of the measuring component 20 and improving the measurement efficiency. The symmetric structure of the openings 110 on both sides of the installation groove 120 helps to balance the weight distribution of the device body 10, reducing operational instability or measurement errors caused by the center of gravity shifting. At the same time, it also enhances the stability of the device body 10 in a complex construction environment, ensuring the accuracy of the measurement results.

[0035] As Figure 2 and Figure 3 shown, the first measuring piece 210 is connected to the device body 10 through a U-shaped piece 40. The U-shaped piece 40, as a structurally stable connecting piece, can effectively fix the first measuring piece 210 firmly on the device body 10. This connection method can not only withstand various forces during the measurement process, but also reduce measurement errors caused by vibration or impact, ensuring the accuracy of the measurement results. The first measuring piece 210 connected through the U-shaped piece 40 can be relatively easily adjusted and calibrated when needed. For example, if the initial position of the measuring device needs to be adjusted, or if calibration is required due to a decrease in measurement accuracy after long-term use, the design of the U-shaped piece 40 makes these operations simple and fast.

[0036] As Figure 2As shown, more specifically, the second measuring member 220 may be positioned on one side of the first measuring member 210. Placing the second measuring member 220 on one side of the first measuring member 210 ensures that the two maintain a close parallel relationship during sliding or adjustment, effectively reducing measurement errors caused by misalignment or offset. When the second measuring member 220 slides along the first measuring member 210, its side position makes operation more stable. Users can stabilize the entire measuring assembly 20 by holding or supporting it on one side, reducing measurement deviations caused by hand tremors or external interference. Placing the second measuring member 220 on one side of the first measuring member 210 helps optimize space utilization within the measuring device. This layout reduces unnecessary space waste, making the entire device more compact, lightweight, and easy to carry and store. During the measurement process, the user can read and record measurement data from one side. Placing the second measuring member 220 on the side of the first measuring member 210 makes the reading area clearer and more intuitive, allowing users to quickly and accurately read and record measurement results. This layout also allows the measuring device to adapt to different measurement scenarios. Whether measuring the verticality of a wall or checking the straightness of a column, the user can adjust the position and angle of the first measuring member 210 and the second measuring member 220 as needed to meet different measurement requirements.

[0037] like Figure 4As shown, more specifically, the locking component 310 includes a locking member 3110 and an elastic member 3120. The elastic member 3120 applies a force to the locking member 3110 towards the second measuring member 220. The locking member 3110 is a key component that directly contacts the second measuring member 220 and generates a locking effect. When it is necessary to lock the second measuring member 220, the locking member 3110 moves to a position where it abuts against the second measuring member 220, and the movement of the second measuring member 220 is blocked by friction or mechanical structure, thereby ensuring the stability during the measurement process. The elastic member 3120 is a component that applies a force to the locking member 3110 in the direction towards the second measuring member 220. It can be made of elastic materials such as springs or elastic sheets. The function of the elastic member 3120 is to keep the locking member 3110 in a state of contact with or about to contact the second measuring member 220 when there is no external force. In this way, during the measurement process, even if it is affected by a certain external force interference, the locking member 3110 can quickly return to the locking position and maintain the stability of the measurement. By applying a force to the locking member 3110 towards the second measuring member 220 through the elastic member 3120, the locking process can be made more rapid and reliable. The user only needs to simply operate the unlocking component 320 to overcome the elastic force of the elastic member 3120 and make the locking member 3110 disengage from the locking position; and when it is necessary to lock again, the elastic member 3120 will automatically push the locking member 3110 back to the locking position without the user applying additional force. Due to the existence of the elastic member 3120, the user will feel a smooth and comfortable hand feeling when operating the locking and unlocking functions, reducing the operation difficulty and fatigue.

[0038] As Figure 4As shown, one end of the locking member 3110 in contact with the second measuring member 220 is provided with a contact head 3130, and a ramp 3140 is provided on one side of the contact head 3130. More specifically, the unlocking member 3220 includes a push head 3230 adapted to the ramp 3140. The contact head 3130, as the part of the locking member 3110 in direct contact with the second measuring member 220, the selection of its shape and material is crucial. The provision of the ramp 3140 on one side of the contact head 3130 enables the unlocking member 3220 to slide more easily along the ramp 3140 during the unlocking process, thereby pushing the locking member 3110 out of the locked position. The inclination angle and surface treatment (such as smooth treatment) of the ramp 3140 will directly affect the smoothness of unlocking and the force required. The push head 3230 on the unlocking member 3220 is designed to closely fit the ramp 3140 on the contact head 3130. This fitting relationship ensures that when the push head 3230 contacts the ramp 3140 and applies a thrust, it can effectively push the locking member 3110 out of the locked position. The shape, size and material of the push head 3230 also need to match the ramp 3140 to ensure the stability and reliability of the unlocking process. Through the fitting design of the ramp 3140 on the contact head 3130 and the push head 3230 on the unlocking member 3220, the unlocking process becomes more efficient and smooth. The user only needs to gently push the unlocking member 3220, and the push head 3230 can slide along the ramp 3140 and push the locking member 3110 out of the locked position without using excessive force or complex operations.

[0039] As Figure 4As shown, more specifically, the other end of the locking member 3110 is connected to the device main body 10, and the elastic member 3120 is sleeved on the locking member 3110. The other end of the locking member 3110 is firmly connected to the device main body 10 through a certain form of connection structure such as a pin or a threaded connection. This connection method enables the locking member 3110 to maintain a relatively fixed position during the measurement process and will not move or fall off easily due to external forces. At the same time, it also provides a stable support point for the elastic member 3120, enabling the elastic member 3120 to correctly apply elastic force. The elastic member 3120 is sleeved on the locking member 3110 and is located between the device main body 10 and the abutting head 3130. One end of the elastic member 3120 contacts or is connected to the device main body 10, and the other end contacts the locking member 3110 and applies an elastic force towards the second measuring member 220. This sleeving method enables the elastic member 3120 to closely wrap around the locking member 3110, ensuring uniform transmission and stable application of the elastic force. When the measuring device is in the locked state, the elastic force of the elastic member 3120 is transmitted to the abutting head 3130 through the locking member 3110, causing the abutting head 3130 to closely abut and lock with the second measuring member 220. This elastic force transmission mechanism ensures the stability and reliability of the locking. When unlocking is required, the user can operate the unlocking member 3220 to overcome the elastic force of the elastic member 3120, causing the locking member 3110 to disengage from the locked position. The structure of sleeving the elastic member 3120 on the locking member 3110 not only realizes the effective transmission of the elastic force and the stable operation of the locking mechanism, but also makes the structure of the entire measuring device more compact and the space utilization more optimized. This reduces unnecessary components and connection structures, lowers the manufacturing cost and weight, and improves the portability and practicality of the measuring device.

[0040] Such as Figure 2As shown, more specifically, a clamping portion 2210 adapted to the abutting head 3130 is provided on the second measuring member 220. Generally, the clamping portion 2210 can form a groove, a through hole or other forms of geometric structures to match the shape of the abutting head 3130. When the locking member 3110 is in the locked position, the abutting head 3130 will accurately fit into the clamping portion 2210 to form a tight locking relationship. The adaptability between the clamping portion 2210 and the abutting head 3130 is crucial. The contact surface between them should be smooth and tight to ensure sufficient force transmission and prevent sliding in the locked state. In addition, the materials of the clamping portion 2210 and the abutting head 3130 also need to be considered to ensure sufficient friction and durability between them. When the locking member 3110 is acted on by the elastic force of the elastic member 3120, the abutting head 3130 will slide along the slope 3140 and gradually approach the clamping portion 2210. Once the abutting head 3130 contacts the clamping portion 2210 and reaches the locked position, the elastic force of the elastic member 3120 will be converted into a locking force to firmly clamp the abutting head 3130 in the clamping portion 2210. This locking mechanism is not only stable and reliable, but also the unlocking process is relatively simple and fast.

[0041] As Figures 1 to 3As shown, more specifically, the unlocking assembly 320 includes an operating member 3210 and an unlocking member 3220, which are respectively located on either side of the opening 110. The operating member 3210 and the unlocking member 3220 are respectively located on either side of the opening 110, allowing the user to choose to operate from the left or right side as needed. This separate layout avoids interference and conflict between the operating member 3210 and the unlocking member 3220, improving operational flexibility and comfort. The operating member 3210 is the part that the user directly operates and can be in the form of a button, knob, or lever. The user triggers the unlocking mechanism by pressing, rotating, or pulling the operating member 3210. The unlocking member 3220 is the part that actually performs the unlocking action and is typically connected directly to the locking member 3110 or through some kind of transmission mechanism. When the operating member 3210 is triggered, the unlocking member 3220 receives the corresponding signal and begins to move. During the movement, the unlocking member 3220 interacts with the slope 3140 or the clamping portion 2210 on the locking member 3110, thereby releasing the locked state. Since the operating member 3210 and the unlocking member 3220 are respectively arranged on both sides of the opening 110, the connection and transmission mechanism between them need to be designed to be sufficiently stable and reliable. This ensures that during the unlocking process, no matter how much force the user applies or how fast the operation speed is, the unlocking member 3220 can move stably and accurately perform the unlocking action. The fact that the operating member 3210 and the unlocking member 3220 are respectively arranged on both sides of the opening 110 also improves operational efficiency. The user can choose the most convenient side to operate according to the actual situation, and can quickly complete the unlocking process without adjusting the position or posture. This is especially important for scenarios that require frequent measurements.

[0042] Compared with the prior art, the embodiment of the utility model provides a simple folding building verticality measuring device, which ensures stability and accuracy during the measurement process through the mutual cooperation of the first measuring piece and the second measuring piece, and the firm locking of the second measuring piece by the locking mechanism, thereby achieving high-precision measurement of the building verticality and meeting the strict requirements of engineering quality control. The locking mechanism enables the measuring device to be flexibly adjusted under different measurement requirements, which not only ensures the accuracy of the measurement, but also enhances the versatility and adaptability of the device. The device has a compact structure and a folding function, so that the measuring equipment takes up little space during transportation and storage, and is easy to carry to the construction site. At the same time, the sliding connection structure of the measuring component simplifies the operation process, so that the verticality measurement can be carried out quickly, improving work efficiency.

[0043] The above are only preferred specific implementation methods of the present invention, but the protection scope of the present invention is not limited to this. Any changes or replacements that can be easily thought of by any technician familiar with this technical field within the technical scope disclosed in the present invention should be covered by the protection scope of the present invention.

Claims

1. A simple foldable building verticality measuring device, characterized in that, Comprising: A device main body (10), the device main body (10) includes an opening (110) and a mounting groove (120), and the opening (110) is provided on the side of the mounting groove (120); A measuring assembly (20), the measuring assembly (20) includes a first measuring member (210) and a second measuring member (220), the first measuring member (210) is connected to the device main body (10), the second measuring member (220) is slidably connected to the first measuring member (210), and the measuring assembly (20) is disposed in the mounting groove (120); A locking mechanism (30), the locking mechanism (30) includes a locking assembly (310) and an unlocking assembly (320). When the locking assembly (310) is in the locking position, the locking assembly (310) abuts against the second measuring member (220), and the unlocking assembly (320) is provided on the opening (110) for pushing the locking assembly (310) away from the locking position.

2. The simple foldable building verticality measuring device according to claim 1, characterized in that, One opening (110) is provided on each side of the mounting groove (120).

3. The simple folding building verticality measuring device according to claim 1, characterized in that, The first measuring member (210) is connected to the device main body (10) through a U-shaped member (40).

4. The simple folding building verticality measuring device according to claim 1, wherein, The second measuring member (220) is disposed on one side of the first measuring member (210).

5. The simple folding building verticality measuring device according to claim 1, characterized in that, The locking assembly (310) includes a locking member (3110) and an elastic member (3120), and the elastic member (3120) applies a force to the locking member (3110) towards the second measuring member (220).

6. The simple folding building verticality measuring device according to claim 5, characterized in that, One end of the locking member (3110) that abuts against the second measuring member (220) is provided with an abutting head (3130), and one side of the abutting head (3130) is provided with a slope (3140).

7. The simple folding building verticality measuring device according to claim 5 or 6, characterized in that, The other end of the locking member (3110) is connected to the device main body (10), and the elastic member (3120) is sleeved on the locking member (3110).

8. The simple folding building verticality measuring device according to claim 6, wherein, The second measuring member (220) is provided with a clamping portion (2210) adapted to the abutting head (3130).

9. The simple folding building verticality measuring device according to claim 6, characterized in that, The unlocking assembly (320) includes an operating member (3210) and an unlocking member (3220), and the operating member (3210) and the unlocking member (3220) are respectively disposed on both sides of the opening (110).

10. The simple folding building verticality measuring device according to claim 9, characterized in that, The unlocking member (3220) includes a pushing head (3230) adapted to the slope (3140).