Building waterproofness monitoring equipment
Through structural designs such as roof bearing columns, longitudinal connecting rods, transverse connecting rods and springs, the problem of unstable monitoring equipment after ceiling decoration is solved, and higher monitoring accuracy and equipment life are achieved, improving user experience.
Patent Information
- Application Number
- CN202422370680.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-27
- Publication Date
- 2025-07-01
- Estimated Expiration
- 2034-09-27
AI Technical Summary
The fixing method of existing building waterproof monitoring equipment after ceiling decoration is unstable, resulting in a decrease in the accuracy of monitoring data and a shortened service life of the equipment.
The structural design of the top bearing column, longitudinal connecting rod, transverse connecting rod and spring blade is adopted. The equipment is stable fixing and height adjustment through the meshing of the extended-range gear and rack, and the equipment is improved by combining rubber pads and side triangles.
It improves the accuracy of monitoring data of the equipment after ceiling decoration, extends the service life of the equipment and improves the user experience.
Smart Images

Figure CN223049782U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of building waterproof testing equipment, in particular to a building waterproof monitoring device. Background Technique
[0002] Building waterproof monitoring devices are instruments used to detect the waterproof performance of buildings. As the name implies, building waterproof monitoring devices are a type of instrument used to detect the waterproof performance of buildings. These devices play an important role in construction projects. They can not only timely detect and prevent potential problems such as water seepage and leakage, but also ensure the long-term stability and safety of buildings. Building waterproof monitoring devices play a crucial role in ensuring the quality and safety of buildings. With the continuous innovation of technology and the growth of market demand, this industry has broad development prospects.
[0003] In the prior art, in the field of building waterproof performance monitoring, it is usually necessary to use a special monitor and an induction plate in combination to accurately evaluate the waterproof effect of the building structure. In actual projects, special attention is paid to the waterproof performance of the ceiling. The role of the induction plate is to collect data related to water leakage. It needs to be installed as close as possible to the ceiling surface. However, if the lower-level users of the building have already decorated the ceiling, traditional fixing methods, such as using bolts or other types of penetrative mounting parts, are obviously no longer applicable. As an alternative, technicians will adopt some temporary padding measures, such as using stones, wooden blocks or other items to prop up the induction plate, close to or against the ceiling. However, the structure temporarily built by this method has insufficient stability and there is a risk of tipping over. Even if it does not tip over, it is very likely to be skewed during the monitoring period, which will directly affect the accuracy of the monitoring data and thus reduce the credibility of the entire monitoring result. Content of the Utility Model
[0004] The purpose of the utility model is to solve the disadvantages existing in the prior art and propose a building waterproof monitoring device.
[0005] To achieve the above object, the utility model adopts the following technical solutions: A building waterproofness monitoring device, comprising a monitor, a gas and water detection board, and a mounting plate. The monitor is provided on the top of the mounting plate. A rectangular seat is fixed on the top of the mounting plate, and a bottom base cylinder is fixed on the top of the rectangular seat. An inner bottom rack is fixed on the inner wall of the bottom base cylinder. A middle cylinder is slidably connected to the inner wall of the bottom base cylinder. An interleaved plate is fixed to the bottom end of the middle cylinder. A range-increasing gear is rotatably connected to one side of the interleaved plate. An outer fixing ring is fixed to the circumferential surface of the top end of the middle cylinder. A shaft plate is fixed to the circumferential surface of the outer fixing ring. A pressing arm is rotatably connected to one side of the shaft plate. A hammer insert head is fixed to one end of the pressing arm. A reset spring is fixed to one side of the pressing arm, and one end of the reset spring is fixed to the circumferential surface of the outer fixing ring. A top bearing column is slidably connected to the inner wall of the middle cylinder. A gas and water detection board is fixed to the top of the top bearing column. Embedding grooves are linearly arranged in an array on the circumferential surface of the top bearing column, and the inner walls of the embedding grooves are nested with the hammer insert heads. A bottom rack is fixed to the bottom of the top bearing column, and the surface of the bottom rack meshes with the surface of the range-increasing gear, and the surface of the range-increasing gear meshes with the surface of the inner bottom rack. In the prior art, in the field of building waterproof performance monitoring, it is usually necessary to use a special monitor and an induction board in combination to accurately evaluate the waterproof effect of the building structure. In actual engineering, special attention is paid to the waterproofness of the ceiling. The role of the induction board is to collect data related to water leakage. It needs to be installed as close as possible to the ceiling surface. However, if the lower-level users of the building have already decorated the ceiling, traditional fixing methods, such as using bolts or other types of penetrating mounting parts, are obviously no longer applicable. As an alternative, technicians will adopt some temporary heightening measures, such as using stones, wooden blocks or other items to prop up the induction board to be close to or in contact with the ceiling. However, the structure temporarily built in this way lacks stability and has the risk of tipping over. Even if it does not tip over, it is very likely to be skewed during the monitoring period, which will directly affect the accuracy of the monitoring data and thus reduce the credibility of the entire monitoring result. To solve such problems, the utility model adopts the method of installing a top bearing column. When the staff needs to monitor the waterproofness of the ceiling, etc., the staff presses the pressing arm to make the hammer insert head leave the embedding groove, and at the same time pulls the outer fixing ring to make the middle cylinder move upward. The range-increasing gear meshes with the bottom rack and the inner bottom rack to rotate, pushing the top bearing column upward to a suitable height. The staff releases the hand to make the hammer insert head enter the embedding groove corresponding to this height, so as to fix the device. Through this structure, the elongation distance of the components can be increased in a small operation space, so as to facilitate the staff to adjust the height of the gas and water detection board to make it fit the ceiling, achieving the effect of expanding the applicable range of the device.
[0006] Preferably, longitudinal connecting rods are fixed to the circumferential surface of the outer fixing ring, and transverse connecting rods are fixed to the circumferential surface of the outer fixing ring. In the prior art, a plurality of mechanisms are fixed to the top of the installation plate. At most, two mechanisms can be lifted by one worker at the same time, and synchronization cannot be guaranteed, which easily leads to different extension lengths of each mechanism, resulting in the inclination of the air-water detection plate and poor fitting with the ceiling, leading to deviation of the monitoring results. To solve such problems, the present invention adopts the method of installing longitudinal connecting rods and transverse connecting rods, realizing that through the connection of the longitudinal connecting rods and the transverse connecting rods, the worker can only operate one mechanism, making multiple mechanisms extend to the same height, and at the same time can bear part of the pressure, preventing the components from tilting outwards due to the heavy weight of the air-water detection plate, achieving the effects of improving the user experience and increasing the service life of the equipment.
[0007] Preferably, spring pieces are fixed to the inner wall of the bottom base cylinder, and spring-embedded grooves are formed on the circumferential surface of the middle item cylinder. In the prior art, when the worker applies too much force and the middle item cylinder moves too fast, it is easy to cause the interaction time between the middle item cylinder and the bottom base cylinder to be greatly reduced, resulting in a reduction in the buffering process, increasing the impact force when the two come into contact. Due to the lack of an effective buffering distance or time to gradually disperse and absorb the impact force, large collisions and abrasions occur between the components, resulting in a reduction in the service life of the equipment. To solve such problems, the present invention adopts the method of installing spring pieces, realizing that when the middle item cylinder moves too fast, the spring pieces first generate frictional force on its circumferential surface to reduce the speed, and then when reaching the spring-embedded groove, the spring pieces pop out and enter the spring-embedded groove, causing the components to decelerate and stop, and at the same time giving feedback to the worker, achieving the effects of increasing the service life of the equipment and improving the user experience.
[0008] Preferably, fixing ladder members are fixed to the circumferential surface at the bottom end of the bottom base cylinder, which is a reinforcement component to prevent outward tilting under pressure and increase the service life of the equipment.
[0009] Preferably, a rubber pad is fixed to the bottom of the installation plate to prevent the equipment from slipping and improve the stability of the equipment.
[0010] Preferably, side triangular members are fixed to both sides of the installation plate to improve the stability of the equipment.
[0011] Preferably, pull handles are fixed to both ends of the installation plate to facilitate user operation and improve the user experience.
[0012] Beneficial effects:
[0013] 1. In the prior art, in the field of building waterproof performance monitoring, it is usually necessary to use a special monitor and an induction plate in combination to accurately evaluate the waterproof effect of the building structure. In actual engineering, special attention is paid to the waterproofness of the ceiling. The role of the induction plate is to collect data related to water leakage. It needs to be installed as closely as possible to the ceiling surface. However, if the lower-level users of the building have already decorated the ceiling, traditional fixing methods, such as using bolts or other types of penetrating mounting parts, are obviously no longer applicable. As an alternative, technicians will adopt some temporary elevation measures, such as using stones, wooden blocks or other items to prop up the induction plate, close to or against the ceiling. However, the structure temporarily built by this method lacks stability and has the risk of tipping over. Even if it does not tip over, it is very likely to be skewed during monitoring, which will directly affect the accuracy of the monitoring data and thus reduce the credibility of the entire monitoring result. To solve such problems, the present utility model adopts the method of installing a top support column. When the staff needs to monitor the waterproofness of the ceiling, etc., the staff presses the pressing arm to make the hammer embedding head leave the embedding groove, and at the same time pulls the outer fixing ring to make the middle cylinder move upward. The extended-range gear meshes with the bottom rack and the bottom inner rack to rotate, pushing the top support column upward to a suitable height. The staff releases the hand to make the hammer embedding head enter the embedding groove corresponding to this height, so as to fix the device. Through this structure, the elongation distance of the component can be increased in a small operating space, so that it is convenient for the staff to adjust the height of the air and water detection plate to make it fit the ceiling, achieving the effect of expanding the applicable range of the device.
[0014] 2. In the prior art, a plurality of mechanisms are fixed on the top of the installation plate. One staff member can lift at most two at the same time and cannot ensure synchronization, which easily leads to different extension lengths of each mechanism, resulting in the skewing of the air and water detection plate and poor fitting with the ceiling, resulting in deviation of the monitoring result. To solve such problems, the present utility model adopts the method of installing a longitudinal connecting rod and a transverse connecting rod. Through the connection of the longitudinal connecting rod and the transverse connecting rod, it is realized that the staff can only operate one mechanism to make multiple mechanisms extend to the same height, and at the same time can bear part of the pressure to prevent the component from skewing outward due to the heavy weight of the air and water detection plate, achieving the effect of improving the user experience and increasing the service life of the device.
[0015] 3. In the prior art, when the staff applies a large force and the middle cylinder moves too fast, it is easy to cause a significant reduction in the interaction time between the middle cylinder and the bottom base cylinder, resulting in a reduction in the buffering process, increasing the impact force when they come into contact. Due to the lack of an effective buffering distance or time to gradually disperse and absorb the impact force, large collisions and wear occur between the components, leading to a reduction in the service life of the equipment. To address such problems, the present utility model solves them by installing spring plates. When the middle cylinder moves too fast, the spring plates first generate frictional force on its circumferential surface to decelerate. Subsequently, when reaching the spring-embedded groove, the spring plates pop out and enter the spring-embedded groove, causing the components to decelerate and stop, while giving feedback to the staff, achieving the effects of improving the service life of the equipment and enhancing the user experience. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 is a three-dimensional structural schematic diagram of the present utility model;
[0017] Figure 2 is a three-dimensional structural schematic diagram of the rubber pad of the present utility model;
[0018] Figure 3 is a three-dimensional structural schematic diagram of the bottom base cylinder of the present utility model;
[0019] Figure 4 is a cross-sectional view of the spring plate of the present utility model;
[0020] Figure 5 is a cross-sectional view of the top support column of the present utility model;
[0021] Figure 6 is a cross-sectional view of the middle cylinder of the present utility model.
[0022] LEGEND DESCRIPTION:
[0023] 1. Monitor; 101. Gas and water detection plate; 2. Installation plate; 201. Rectangular seat; 202. Bottom base cylinder; 203. Inner bottom rack; 204. Middle cylinder; 205. Staggered plate; 206. Extended-range gear; 207. Outer fixing ring; 208. Shaft plate; 209. Pressing arm; 2010. Hammer-embedded head; 2011. Return spring; 2012. Top support column; 2013. Bottom rack; 2014. Embedded groove; 3. Longitudinal connecting rod; 301. Transverse connecting rod; 4. Spring plate; 401. Spring-embedded groove; 5. Fixed ladder part; 6. Rubber pad; 601. Side triangular part; 602. Pulling handle. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0024] In order to make the technical means, creative features, achieved objectives and functions realized by the present utility model easy to understand, the following will further elaborate on the present utility model in conjunction with specific embodiments and drawings. However, the following embodiments are only the preferred embodiments of the present utility model and not all of them. Based on the embodiments in the implementation manners, other embodiments obtained by those skilled in the art without creative efforts all fall within the protection scope of the present utility model.
[0025] The following describes the specific embodiments of the present utility model in conjunction with the drawings. Specific embodiments:
[0027] Refer to Figure 1-6, a building waterproofness monitoring device, including a monitor 1, a gas and water detection board 101 and a mounting plate 2. The monitor 1 is provided on the top of the mounting plate 2. A rectangular seat 201 is fixed on the top of the mounting plate 2. A bottom base cylinder 202 is fixed on the top of the rectangular seat 201. An inner bottom rack 203 is fixed on the inner wall of the bottom base cylinder 202. A middle cylinder 204 is slidably connected to the inner wall of the bottom base cylinder 202. An interleaved plate 205 is fixed at the bottom end of the middle cylinder 204. An extended-range gear 206 is rotatably connected to one side of the interleaved plate 205. An outer fixing ring 207 is fixed on the circumferential surface of the top end of the middle cylinder 204. A shaft plate 208 is fixed on the circumferential surface of the outer fixing ring 207. A pressing arm 209 is rotatably connected to one side of the shaft plate 208. A hammer insert head 2010 is fixed at one end of the pressing arm 209. A return spring 2011 is fixed on one side of the pressing arm 209. One end of the return spring 2011 is fixed to the circumferential surface of the outer fixing ring 207. A top bearing column 2012 is slidably connected to the inner wall of the middle cylinder 204. The gas and water detection board 101 is fixed on the top of the top bearing column 2012. Embedding grooves 2014 are linearly arrayed on the circumferential surface of the top bearing column 2012. The inner wall of the embedding groove 2014 is nested with the hammer insert head 2010. A bottom rack 2013 is fixed at the bottom of the top bearing column 2012. The surface of the bottom rack 2013 meshes with the surface of the extended-range gear 206. The surface of the extended-range gear 206 meshes with the surface of the inner bottom rack 203. In the field of building waterproofness monitoring, it is usually necessary to use a special monitor and an induction board in combination to accurately evaluate the waterproof effect of the building structure. In actual projects, special attention is paid to the waterproofness of the ceiling. The role of the induction board is to collect data related to water leakage. It needs to be installed as close as possible to the ceiling surface. However, if the lower-level users of the building have already decorated the ceiling, traditional fixing methods, such as using bolts or other types of penetrating mounting parts, are obviously no longer applicable. As an alternative, technicians will adopt some temporary heightening measures, such as using stones, wooden blocks or other items to prop up the induction board to be close to or in contact with the ceiling. However, the structure temporarily built by this method has insufficient stability and has the risk of tipping over. Even if it does not tip over, it is very likely to be skewed during the monitoring period, which will directly affect the accuracy of the monitoring data and thus reduce the credibility of the entire monitoring result. The method of installing the top bearing column 2012 is adopted to solve this problem. When the staff needs to monitor the waterproofness of the ceiling, etc., the staff presses the pressing arm 209 to make the hammer insert head 2010 leave the embedding groove 2014, and at the same time pulls the outer fixing ring 207 to make the middle cylinder 204 move upward. The extended-range gear 206 meshes with the bottom rack 2013 and the inner bottom rack 203 to rotate, pushing the top bearing column 2012 upward to a suitable height. The staff releases the hand to make the hammer insert head 2010 enter the embedding groove 2014 corresponding to this height to fix the device. Through this structure, the elongation distance of the component can be increased in a small operating space, so as to facilitate the staff to adjust the height of the gas and water detection board 101 to make it fit the ceiling, achieving the effect of expanding the applicable range of the device.The longitudinal connecting rod 3 is fixed on the circumferential surface of the outer fixed ring 207, and the transverse connecting rod 301 is fixed on the circumferential surface of the outer fixed ring 207. A plurality of mechanisms are fixed on the top of the installation plate 2. At most two mechanisms can be lifted by one staff member at the same time, and synchronization cannot be guaranteed, which easily leads to different extension lengths of each mechanism, resulting in the air-water detection plate 101 being skewed and not closely fitting with the ceiling, resulting in deviation of the monitoring results. This problem is solved by installing the longitudinal connecting rod 3 and the transverse connecting rod 301. Through the connection of the longitudinal connecting rod 3 and the transverse connecting rod 301, the staff can operate only one mechanism, making multiple mechanisms extend to the same height. At the same time, it can bear part of the pressure to prevent the components from tilting outwards due to the heavy weight of the air-water detection plate 101, achieving the effect of improving the user experience and increasing the service life of the equipment.
[0028] The spring piece 4 is fixed on the inner wall of the bottom base cylinder 202, and the spring groove 401 is opened on the circumferential surface of the middle item cylinder 204. When the staff exerts too much force and makes the middle item cylinder 204 move too fast, it is easy to cause the interaction time between the middle item cylinder 204 and the bottom base cylinder 202 to be greatly reduced, resulting in a reduction in the buffering process, increasing the impact force when the two come into contact. Due to the lack of an effective buffering distance or time to gradually disperse and absorb the impact force, large collisions and wear occur between the components, resulting in a reduction in the service life of the equipment. This problem is solved by installing the spring piece 4. When the middle item cylinder 204 moves too fast, the spring piece 4 first generates frictional force on its circumferential surface to reduce the speed. Subsequently, when it reaches the spring groove 401, the spring piece 4 pops out and enters the spring groove 401, causing the component to decelerate and stop, and at the same time giving feedback to the staff, achieving the effect of increasing the service life of the equipment and improving the user experience. The fixed ladder part 5 is fixed on the circumferential surface of the bottom of the bottom base cylinder 202, which is a reinforcement component to prevent outward tilting under pressure and increase the service life of the equipment. The rubber pad 6 is fixed at the bottom of the installation plate 2 to prevent the equipment from slipping and improve the stability of the equipment. The side triangular parts 601 are fixed on both sides of the installation plate 2 to improve the stability of the equipment. The pull handles 602 are fixed at both ends of the installation plate 2, which are convenient for users to operate and improve the user experience.
[0029] Working principle of the utility model: When the staff needs to monitor the waterproof property of the ceiling or the like, the staff presses the pressing arm 209 to make the hammer embedding head 2010 leave the embedding groove 2014. At the same time, the outer fixing ring 207 is pulled to make the middle cylinder 204 move upward. The extended-range gear 206 meshes with the bottom rack 2013 and the bottom inner rack 203 to rotate, pushing the top supporting column 2012 to move upward to an appropriate height. The staff releases the hand to make the hammer embedding head 2010 enter the embedding groove 2014 corresponding to this height to fix the device. Through this structure, the elongation distance of the component can be increased in a smaller operation space, so as to facilitate the staff to adjust the height of the air and water detection plate 101 to make it fit the ceiling. The connection of the longitudinal connecting rod 3 and the transverse connecting rod 301 enables the staff to only operate one mechanism to make multiple mechanisms extend to the same height, and can bear a part of the pressure to prevent the component from tilting outward due to the heavy weight of the air and water detection plate 101. When the middle cylinder 204 moves too fast, the spring piece 4 first generates frictional force on its circumferential surface to reduce the speed. Subsequently, when reaching the spring embedding groove 401, the spring piece 4 pops out and enters the spring embedding groove 401, making the component reduce speed and stop, and at the same time giving feedback to the staff.
[0030] In the utility model, unless otherwise clearly defined and limited, the first feature being "above" or "below" the second feature may include direct contact between the first and second features, or may include non-direct contact between the first and second features but through additional features therebetween. Moreover, the first feature being "above", "over" and "on" the second feature includes the first feature being directly above and obliquely above the second feature, or merely indicating that the horizontal height of the first feature is higher than that of the second feature. The first feature being "below", "under" and "beneath" the second feature includes the first feature being directly below and obliquely below the second feature, or merely indicating that the horizontal height of the first feature is lower than that of the second feature.
[0031] The above shows and describes the basic principle, main features and advantages of the utility model. Those skilled in the art of this industry should understand that the utility model is not limited by the above embodiments. The above embodiments and the descriptions in the specification are only the preferred examples of the utility model and are not used to limit the utility model. Without departing from the spirit and scope of the utility model, the utility model will have various changes and improvements, and these changes and improvements all fall within the scope of the utility model claimed. The scope of protection claimed by the utility model is defined by the appended claims and their equivalents.
Claims
1. A building waterproofness monitoring device, comprising a monitoring instrument (1), a gas and water detection board (101) and a mounting board (2), characterized in that: A monitoring instrument (1) is provided on the top of the safety device plate (2); a plurality of matrix seats (201) are fixed on the top of the safety device plate (2); a bottom base tube (202) is fixed on the top of the matrix seat (201); a bottom inner rack (203) is fixed to the inner wall of the bottom base tube (202); a middle cylinder (204) is slidably connected to the inner wall of the bottom base tube (202); a staggered plate (205) is fixed to the bottom end of the middle cylinder (204); one side of the staggered plate (205) is rotatably connected to a range-extending gear (206); an outer fixed ring (207) is fixed to the circumference of the top end of the middle cylinder (204); a shaft plate (208) is fixed to the circumference of the outer fixed ring (207); one side of the shaft plate (208) is rotatably connected to a pressing arm (209); one end of the pressing arm (209) is fixed to the A hammering head (2010) is fixed on one side of the pressing arm (209), one end of the reset spring (2011) is fixed to the circumference of the outer fixed ring (207), a top support column (2012) is slidably connected to the inner wall of the middle cylinder (204), a gas-water detection plate (101) is fixed to the top of the top support column (2012), a linear array of embedding grooves (2014) are provided on the circumference of the top support column (2012), the inner wall of the embedding groove (2014) is nested with the hammering head (2010), a bottom rack (2013) is fixed to the bottom of the top support column (2012), the surface of the bottom rack (2013 is meshed with the surface of the range-extending gear (206), and the surface of the range-extending gear (206) is meshed with the surface of the bottom inner rack (203).
2. A building waterproofness monitoring device according to claim 1, characterized in that: A longitudinal connecting rod (3) is fixed to the circumferential surface of the outer fixed ring (207), and a transverse connecting rod (301) is fixed to the circumferential surface of the outer fixed ring (207).
3. A building waterproofness monitoring device according to claim 1, characterized in that: A spring sheet (4) is fixed to the inner wall of the bottom base tube (202), and a spring embedding groove (401) is formed on the circumferential surface of the middle top tube (204).
4. A building waterproofness monitoring device according to claim 1, characterized in that: A ladder fixing member (5) is fixed to the circumferential surface of the bottom end of the base tube (202).
5. A building waterproofness monitoring device according to claim 1, characterized in that: A rubber pad (6) is fixed to the bottom of the installation plate (2).
6. A building waterproofness monitoring device according to claim 1, characterized in that: Side triangular pieces (601) are fixed to both sides of the installation plate (2).
7. A building waterproofness monitoring device according to claim 1, characterized in that: Push-pull handles (602) are fixed to both ends of the installation plate (2).