A protective device for building deformation monitoring equipment

By designing protective enclosures and shock-absorbing components to protect the building deformation monitoring equipment, the problem of the equipment being easily damaged in severe weather has been solved, achieving accurate monitoring and extending the equipment's lifespan.

CN224285905UActive Publication Date: 2026-05-26ARCHITECTURAL DESIGN INST FUKIEN PROV
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ARCHITECTURAL DESIGN INST FUKIEN PROV
Filing Date
2025-05-06
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Existing building deformation monitoring equipment is easily damaged in severe weather conditions, leading to errors and decreased accuracy in monitoring data, which affects the lifespan of the equipment and its monitoring function.

Method used

A protective device comprising a protective housing and shock-absorbing components is designed. It is bolted to the wall of a house and has an internal mounting base and disassembly assembly. It uses damping shock-absorbing springs and support rollers to absorb vibration and impact. The protective housing is equipped with heat dissipation grooves and rain shields to protect the equipment.

Benefits of technology

It effectively protects monitoring equipment from rain and severe weather, reduces sensor corrosion and circuit aging, improves monitoring accuracy, extends equipment life, and ensures normal function.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses a protective device for a building deformation monitoring equipment, belonging to the technical field of monitoring equipment. It includes a building wall. Through the installation of protective components, the deformation monitoring equipment body is quickly installed inside a protective housing. The protective housing protects the internal deformation monitoring equipment body from damage caused by rain, severe weather, or other factors. It also prevents the internal sensor components from corroding due to contact with rainwater, thus ensuring the accuracy of the monitoring data and enabling the equipment to perform its monitoring function normally. The support rollers on both sides and the second damping shock-absorbing spring reduce damage to the deformation monitoring equipment body from external impacts. The shock-absorbing rod and the first damping shock-absorbing spring at the bottom effectively absorb vibrations caused by building deformation, preventing damage to the monitoring equipment due to vibration and extending the equipment's service life.
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Description

Technical Field

[0001] This utility model relates to the field of monitoring equipment technology, specifically a protective device for a building deformation monitoring device. Background Technology

[0002] As important places for people to live and work, the safety and stability of houses are of paramount importance. In recent years, due to natural factors (such as earthquakes, strong winds, and rainstorms), human factors (such as unreasonable renovations and the impact of surrounding construction projects), and the aging of the houses themselves, structural deformation of houses has occurred frequently. Once a house undergoes excessive deformation, it may cause problems such as cracked walls and deformed doors and windows that affect normal use. In severe cases, it may lead to partial collapse or even complete collapse of the house, posing a serious threat to people's lives and property.

[0003] Existing building deformation monitoring equipment is installed on-site behind walls and exposed to the outside. It is often affected by severe weather such as rain and storms, which can cause errors in the monitoring data and reduce the accuracy of monitoring. It may also lead to corrosion of sensor components and aging of circuits, which in turn affects the monitoring accuracy and the normal monitoring function of the equipment. Utility Model Content

[0004] The purpose of this utility model is to provide a protective device for building deformation monitoring equipment, which can effectively absorb the vibration caused by building deformation, prevent the monitoring equipment from being damaged by vibration, and thus extend the service life of the equipment.

[0005] The objective of this utility model is achieved through the following technical solution:

[0006] A protective device for a building deformation monitoring equipment includes a building wall, characterized in that: a protective component is bolted to one side surface of the building wall;

[0007] The protective assembly includes a protective box that is bolted to the surface of a building wall. Inside the protective box is a mounting base, and on the surface of the mounting base are disassembly and assembly components. A deformation monitoring device body is mounted on the mounting base via these components. Shock-absorbing rods are rotatably connected to both sides of the lower surface of the mounting base via hinges. A sliding block is rotatably connected to the other end of each shock-absorbing rod. A guide rail is provided on the bottom side of the protective box, and the sliding block is slidably connected within the guide rail. First damping shock-absorbing springs are provided on both sides of the sliding block and are fixedly installed inside the guide rail. Telescopic rods are fixedly installed at the four corners of the lower surface of the mounting base, with the lower ends of the telescopic rods fixed to the inner bottom wall of the protective box. The protective box also contains several telescopic plates, each with a second damping shock-absorbing spring inside. One end of each telescopic plate is fixed to the inner side wall of the protective box, and the other end is rotatably connected to a support roller. The support roller abuts against the outer side wall of the deformation monitoring device body. A door is rotatably connected to the side surface of the protective box via hinges.

[0008] Compared with the prior art, the advantages of this utility model are:

[0009] By incorporating protective components, the deformation monitoring device can be quickly installed inside the protective enclosure. This enclosure protects the device from damage caused by rain, severe weather, or other factors, preventing corrosion of the internal sensor components from contact with water. This ensures the accuracy of the monitoring data and allows the device to perform its monitoring functions normally. The support rollers on both sides and the second damping spring reduce external impacts on the device, while the lower shock absorber and the first damping spring effectively absorb vibrations caused by building deformation, preventing damage and extending the device's lifespan. Attached Figure Description

[0010] Figure 1 This is a schematic diagram of the structure of a protective device for a building deformation monitoring equipment according to this utility model;

[0011] Figure 2 This is a front view cross-sectional structural diagram of the protective component in the protective device of a building deformation monitoring equipment according to this utility model;

[0012] Figure 3 This is a structural schematic diagram of the disassembly and assembly components in the protective device for a building deformation monitoring equipment according to this utility model;

[0013] Figure 4 yes Figure 3 Enlarged structural diagram at point A;

[0014] Figure 5 This is a schematic diagram of the structure of the first and second protective frames in a protective device for a building deformation monitoring equipment.

[0015] Labeling Explanation: 1. Building wall; 2. Protective components; 201. Protective housing; 202. Mounting base; 203. Shock absorber rod; 204. First damping shock absorber spring; 205. Support roller; 206. Telescopic plate; 207. Second damping shock absorber spring; 301. First sliding plate; 302. Insert block; 303. Second sliding plate; 304. First toothed plate; 305. Second toothed plate; 306. Transmission gear; 307. Lead screw; 309. Mounting component; 4. Deformation monitoring equipment body; 5. Magnetic base; 6. Permanent magnet plate; 7. Top plate; 8. Rain shield; 9. Connecting wire; 10. First protective frame; 11. Second protective frame. Detailed Implementation

[0016] The present invention will now be described in detail with reference to the accompanying drawings and embodiments:

[0017] like Figure 1-5 The diagram shown is a schematic representation of an embodiment of a building deformation monitoring and protection device provided by this utility model:

[0018] A protective device for a building deformation monitoring equipment includes a building wall 1, characterized in that: a protective component 2 is bolted to one side surface of the building wall 1;

[0019] The protective assembly 2 includes a protective housing 201 bolted to the surface of the house wall 1. An installation base 202 is provided inside the protective housing 201. A disassembly assembly is provided on the surface of the installation base 202. A deformation monitoring device body 4 is mounted on the installation base 202 via the disassembly assembly. Shock-absorbing rods 203 are rotatably connected to both sides of the lower surface of the installation base 202 via hinged seats. A sliding block is rotatably connected to the other end of each shock-absorbing rod 203. A guide rail is provided on the bottom side of the protective housing 201. The sliding block is slidably connected within the guide rail. First damping shock-absorbing springs 204 are provided on both sides of the sliding block. Damping springs 204 are fixedly installed inside the guide rail. Telescopic rods are fixedly installed at the four corners of the lower surface of the mounting base 202. The lower ends of the telescopic rods are fixed to the inner bottom wall of the protective box 201. Several telescopic plates 206 are also provided inside the protective box 201. A second damping spring 207 is installed inside the telescopic plate 206. One end of the telescopic plate 206 is fixed to the inner side wall of the protective box 201. The other end of the telescopic plate 206 is rotatably connected to a support roller 205. The support roller 205 abuts against the outer side wall of the deformation monitoring equipment body 4. A door is rotatably connected to the side surface of the protective box 201 through a hinge.

[0020] The staff quickly installs the deformation monitoring device body 4 onto the surface of the mounting base 202 using the disassembly and assembly components, and then closes the side door of the protective box 201. When vibration occurs, the deformation monitoring device body 4 drives the mounting base 202 below to move synchronously. The mounting base 202 slides stably under the guidance of the telescopic rod. The moving mounting base 202 presses the shock-absorbing rod 203 below to move. The shock-absorbing rod 203 drives the sliding block at one end to slide inside the guide rail, and causes the first damping shock-absorbing springs 204 on both sides of the sliding block to deform. The force generated by the vibration is absorbed by the first damping shock-absorbing springs 204.

[0021] When the side surface of the protective housing 201 is subjected to external impact, the support rollers 205 on both sides abut against the side surface of the deformation monitoring equipment body 4. The impact force on both sides causes the telescopic plate 206 to contract and squeeze the internal second damping shock absorber spring 207. The second damping shock absorber spring 207 converts the kinetic energy of the impact into its own elastic potential energy, thereby buffering the direct contact of the impact force with the equipment, thereby reducing the intensity of the impact and ensuring the stable operation of the monitoring equipment.

[0022] The disassembly and assembly assembly includes a first rectangular groove on the upper side of the mounting base 202 and a second rectangular groove on the lower side of the mounting base 202. Both the first rectangular groove and the second rectangular groove extend to the left and right. A first sliding plate 301 is provided inside the first rectangular groove, and a second sliding plate 303 is provided inside the second rectangular groove. Both the first sliding plate 301 and the second sliding plate 303 are provided with two inserts 302 that are spaced apart to the left and right.

[0023] The mounting base 202 has mounting grooves on both sides of its surface. The deformation monitoring device body 4 has mounting parts 309 fixedly installed on both the upper and lower sides. The mounting parts 309 have limiting grooves on their surfaces. The mounting parts 309 are adapted to the mounting grooves, and the limiting grooves are adapted to the insert block 302.

[0024] The first sliding plate 301 has downwardly extending first toothed plates 304 at its left and right ends, and the second sliding plate 303 has second toothed plates 305 at its left and right ends corresponding to the first toothed plates 304 on both sides. A transmission gear 306 meshes between the first toothed plates 304 and their corresponding second toothed plates 305. The transmission gear 306 is rotatably connected to the side surface of the mounting base 202 through a support frame. A lead screw 307 is threadedly connected to the inside of the first sliding plate 301. The lead screw 307 passes through the surface of the mounting base 202 and is threadedly engaged with the mounting base 202. A drive handle is fixedly installed on the top of the lead screw 307.

[0025] When it is necessary to quickly install the deformation monitoring device body 4 onto the surface of the mounting base 202, the operator inserts the mounting part 309 on the surface of the deformation monitoring device body 4 into the mounting groove on the surface of the mounting base 202, and then rotates the drive handle to drive the lead screw 307 to rotate. The rotation of the lead screw 306 causes the first sliding plate 301 to slide downward. The first sliding plate 301 drives the first toothed plates 304 on both sides to slide downward. The first toothed plates 304 drive the second toothed plates 305 to slide in the opposite direction through the meshing transmission gear 305. This causes the first sliding plate 301 and the second sliding plate 303 to drive the insert block 302 to slide towards the center, so that the insert block 302 is inserted into the limiting groove on the surface of the mounting part 309, thereby completing the quick installation of the deformation monitoring device body 4. When it is necessary to disassemble and repair, the reverse is true, which facilitates the quick disassembly and assembly of the deformation monitoring device body 4 by the operator, thereby improving the work efficiency of the operator.

[0026] Both sides of the upper surface of the protective box 201 are provided with magnetic seats 5. The magnetic seats 5 are magnetically connected to permanent magnet plates 6. The top of the permanent magnet plates 6 on both sides is fixedly connected to a top plate 7. The outer surfaces of the protective box 201 and the top plate 7 are coated with a heat insulation coating.

[0027] By installing a removable top plate 7, direct sunlight is avoided, the internal temperature of the protection device is reduced, and the impact of temperature changes on the monitoring equipment is minimized. The top plate 7 is magnetically attached to the surface of the magnetic base 5, making it easy for staff to disassemble and install.

[0028] The protective housing 201 has heat dissipation grooves on both sides. A rain shield 8 is provided on one side of the heat dissipation groove. A connecting wire 9 is connected to the side surface of the deformation monitoring device body 4. One end of the connecting wire 9 is electrically connected to a solar panel. The connecting wire 9 is slidably connected to the side surface of the protective housing 201. A first protective frame 10 is provided on the side surface of the protective housing 201. A second protective frame 11 is bolted to one side of the first protective frame 10.

[0029] By setting up heat dissipation slots, the heat generated by the deformation monitoring device body 4 can be discharged to the outside through the heat dissipation slots. The setting of the rain shield 8 prevents external rainwater from entering the interior of the protective box 201 through the heat dissipation slots, ensuring the normal operation of the deformation monitoring device body 4. Some of the connecting wires 9 are located outside the protective box 201. They are assembled with the first protective frame 10 through the second protective frame 11 and covered and wrapped, thereby protecting most of the connecting wires 9. This allows the electricity generated by the solar panel to be stably transmitted to the interior of the deformation monitoring device body 4, thus enabling the deformation monitoring device body 4 to work continuously.

[0030] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A device for protecting a house deformation monitoring device, comprising a house wall (1), characterized in that: The protective component (2) is bolted to one side of the wall (1) of the house. The protective assembly (2) includes a protective housing (201) bolted to the surface of the house wall (1). An installation base (202) is provided inside the protective housing (201). A disassembly assembly is provided on the surface of the installation base (202). The installation base (202) is connected to the deformation monitoring device body (4) via the disassembly assembly. Shock-absorbing rods (203) are rotatably connected to both sides of the lower surface of the installation base (202) via hinges. A sliding block is rotatably connected to the other end of the shock-absorbing rods (203). A guide rail is provided on the bottom side of the protective housing (201). The sliding block is slidably connected within the guide rail. First damping springs (204) are provided on both sides of the sliding block. The damping spring (204) is fixedly installed inside the guide rail. Telescopic rods are fixedly installed at the four corners of the lower surface of the mounting base (202). The lower end of the telescopic rod is fixed to the inner bottom wall of the protective box (201). Several telescopic plates (206) are also provided inside the protective box (201). The second damping spring (207) is installed inside the telescopic plate (206). One end of the telescopic plate (206) is fixed to the inner side wall of the protective box (201). The other end of the telescopic plate (206) is rotatably connected to the support roller (205). The support roller (205) abuts against the outer side wall of the deformation monitoring equipment body (4). The side surface of the protective box (201) is rotatably connected to the box door through a hinge.

2. The apparatus of claim 1, wherein: The disassembly and assembly assembly includes a first rectangular groove on the upper side of the mounting base (202) and a second rectangular groove on the lower side of the mounting base (202). Both the first rectangular groove and the second rectangular groove extend to the left and right. A first sliding plate (301) is provided inside the first rectangular groove, and a second sliding plate (303) is provided inside the second rectangular groove. Both the first sliding plate (301) and the second sliding plate (303) are provided with two inserts (302) spaced apart to the left and right.

3. A device for protecting a housing deformation monitoring device according to claim 2, characterized in that: The mounting base (202) has mounting grooves on both sides of its surface. The deformation monitoring device body (4) has mounting parts (309) fixedly installed on both the upper and lower sides. The mounting parts (309) have limiting grooves on their surfaces. The mounting parts (309) are adapted to the mounting grooves, and the limiting grooves are adapted to the inserts (302).

4. The apparatus of claim 2, wherein: The first sliding plate (301) has downwardly extending first toothed plates (304) at its left and right ends, and the second sliding plate (303) has second toothed plates (305) at its left and right ends corresponding to the first toothed plates (304) on both sides. A transmission gear (306) meshes between the first toothed plate (304) and its corresponding second toothed plate (305). The transmission gear (306) is rotatably connected to the side surface of the mounting base (202) through a support frame. The first sliding plate (301) has a lead screw (307) internally threaded. The lead screw (307) passes through the surface of the mounting base (202) and is threadedly engaged with the mounting base (202). A drive handle is fixedly installed on the top of the lead screw (307).

5. The apparatus of claim 1, wherein: The protective box (201) is provided with magnetic seats (5) on both sides of its upper surface. The magnetic seats (5) are magnetically connected to permanent magnet plates (6). The tops of the permanent magnet plates (6) on both sides are fixedly connected to top plates (7). The outer surfaces of the protective box (201) and the top plates (7) are coated with heat insulation coating.

6. The apparatus of claim 1, wherein: The protective housing (201) has heat dissipation grooves on both sides. A rain shield (8) is provided on one side of the heat dissipation groove. A connecting wire (9) is connected to the side surface of the deformation monitoring device body (4). One end of the connecting wire (9) is electrically connected to a solar panel. The connecting wire (9) is slidably connected to the side surface of the protective housing (201). A first protective frame (10) is provided on the side surface of the protective housing (201). A second protective frame (11) is bolted to one side of the first protective frame (10).