A systematic treatment device for preventing leakage of a building

CN118167074BActive Publication Date: 2026-09-11NANJING KUNJIA WATERPROOF ANTICORROSIVE HEAT PRESERVATION ENG
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Patent Information

Application Number
CN202410221545.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-02-28
Publication Date
2026-09-11
Estimated Expiration
2044-02-28

AI Technical Summary

Technical Problem

[0004]装配式混凝土建筑外墙在装配过程中,容易产生大量的接缝,例如水平接缝等施工缝;接缝处一般极易发生渗漏水问题,渗漏水发生后,接缝又易成为水渗透的通道,造成装饰材料变形、发霉、翘曲、空鼓、脱落,墙体发潮、开裂、脱落,甚至钢筋锈蚀等,不仅影响结构的使用功能性,甚至影响结构的安全性能

Benefits of technology

1、检测组件能够对墙体进行信息获取,然后对获取信息进行分析,从而得到漏水路径及渗漏点的具体情况,不仅对墙体不易造成损坏,而且判断精度较高。

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Abstract

This application provides a systematic treatment device for building waterproofing, relating to the field of building waterproofing. It includes: a support assembly and a treatment mechanism disposed on the support assembly for treating the wall. The support assembly includes: a base plate, support legs, an upper plate, a lower plate, a drive motor, a transmission belt, and two lead screws. The support legs are fixed to the base plate. One end of each lead screw is rotatably mounted on the base plate, and the other end passes through the upper and lower plates and is threadedly connected to them. The output shaft of the drive motor is coaxially fixed to either lead screw. The transmission belt drives the transmission between the two lead screws. This application has the effect of accurately identifying leakage points.
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Description

Technical Field

[0001] This application relates to the field of building waterproofing, and in particular to a systematic treatment device for building waterproofing. Background Technology

[0002] Architecture is a general term for buildings and structures. It refers to the artificial environment created by people to meet the needs of social life by using the material and technical means they have mastered and applying certain scientific laws and aesthetic principles. In the process of building construction, it can be divided into two methods: on-site casting and on-site assembly.

[0003] Prefabricated buildings involve manufacturing prefabricated components in a factory and then assembling them on the construction site. This achieves standardized design, factory production, prefabricated construction, integrated decoration, and information management, meeting current requirements for green construction, improving construction efficiency, and reducing labor consumption. It has become an inevitable choice for technological upgrading in the construction industry.

[0004] During the assembly process of prefabricated concrete building exterior walls, a large number of joints are easily generated, such as horizontal joints and other construction joints. Water leakage is generally prone to occur at these joints. Once water leakage occurs, the joints can easily become channels for water penetration, causing deformation, mold, warping, hollowing, and detachment of decorative materials, dampness, cracking, and even corrosion of steel bars in the walls. This not only affects the functionality of the structure but also its safety performance.

[0005] However, the common method for determining the path and location of water leakage inside the exterior wall is to spray water on the exterior wall and then visually observe the watermarks and traces on the wall surface to judge the leakage situation. This method has two drawbacks: firstly, spraying water on the entire exterior wall can easily damage it; secondly, it is difficult to accurately determine the path and location of water leakage inside the exterior wall by visual inspection. Summary of the Invention

[0006] In order to improve the problems existing in the above-mentioned technologies, this application provides a systematic treatment device for building waterproofing.

[0007] This application provides a systematic treatment device for building waterproofing, which adopts the following technical solution: A systematic treatment device for building waterproofing includes: a support assembly and a treatment mechanism disposed on the support assembly for treating the wall. The support assembly includes: a base plate, a support leg, an upper plate, a lower plate, a drive motor, a transmission belt, and two lead screws. The support leg is fixed to the base plate. One end of each lead screw is rotatably mounted on the base plate, and the other end passes through the upper plate and the lower plate and is threadedly connected to the upper plate and the lower plate. The output shaft of the drive motor is coaxially fixed with either of the lead screws. The transmission belt drives the two lead screws. The treatment mechanism includes a detection component, a processing component, and a repair component. The detection component and the processing component are both disposed on the upper plate, and the repair component is disposed on the lower plate.

[0008] By adopting the above technical solution, before treatment, the drive motor is started to drive the lead screw to rotate, which in turn drives the lower and upper plates to lift and lower the detection component. The detection component can acquire information about the wall and then analyze the acquired information to obtain the specific situation of the leakage path and seepage point. This not only avoids damage to the wall but also has high accuracy.

[0009] Optionally, the detection component includes: a heating plate, a heating rod, and an infrared thermal imager. The heating plate is disposed on the upper plate and has a heating cavity for water storage. The heating rod is disposed in the heating cavity, and the infrared thermal imager is disposed on the upper plate.

[0010] By adopting the above technical solution, before treatment, the heating plate is attached to the wall, and then the heating rod is activated to heat the water in the heating chamber. At this time, the heat on the heating plate will be transferred to the wall, thereby continuously heating the wall and increasing its temperature. After reaching a certain temperature, the wall is photographed using an infrared thermal imager, and then the images obtained by the infrared thermal imager are analyzed to obtain the specific details of the leakage path and seepage point. This not only minimizes damage to the wall but also provides high accuracy in judgment.

[0011] Optionally, the processing component includes a drilling section, which includes a drill rod, a drilling motor, a slider, and a first electric push rod. A groove is provided on the upper plate, the slider is slidably disposed in the groove, the drilling motor is mounted on the slider, and the output shaft of the drilling motor is connected to the drill rod. The first electric push rod is mounted in the groove, and the output shaft of the first electric push rod is fixedly connected to the slider.

[0012] By adopting the above technical solution, the height of the upper plate is first adjusted so that the upper plate corresponds to the leakage point. Then, the drilling motor is started to drive the drill rod to rotate. At the same time, the first electric push rod is started to pull the slider closer to the wall, that is, to pull the drill rod to contact the wall, thereby drilling a hole in the wall until the wall is drilled through so that the repair component can be repaired.

[0013] Optionally, the processing assembly further includes a processing unit, which includes a top plate, a second electric push rod, a receiving rod, a scraper, a sleeve plate, and a brush sweeper. The top plate is fixed to the upper plate, the second electric push rod is fixed to the top plate, and the output shaft of the second electric push rod is fixed to the receiving rod. The scraper and the sleeve plate are both sleeved on the receiving rod, and the brush sweeper is fixed to the sleeve plate.

[0014] By adopting the above technical solution, the height of the upper plate is first adjusted so that the top plate corresponds to the drill hole. Then, the second electric push rod is activated to pull the receiving rod into the drill hole. During the insertion process, the scraper scrapes away the defects on the inner wall of the drill hole and pushes out the gravel in the drill hole, thereby improving the cleanliness of the drill hole and improving the quality of subsequent repairs.

[0015] Optionally, the repair component includes: a spraying part, a partition part, a limiting part, a fixing part, and a pulling part. The spraying part includes: a spray pipe, a hose, a pump, a storage tank, and a third electric push rod. The storage tank is fixed to the lower plate. The pump is disposed on the lower plate and communicates with the storage tank. One end of the hose is connected to the pump and the other end is connected to the spray pipe. The third electric push rod is mounted on the lower plate, and the output shaft of the third electric push rod is fixed to the spray pipe. The partition part is disposed on the spray pipe. The limiting part is disposed between the spray pipe and the partition part. The fixing part is disposed on the partition part. The pulling part is disposed between the spray pipe and the fixing part.

[0016] By adopting the above technical solution, the height of the lower plate is first adjusted so that it aligns with the drilled hole. Then, the third electric push rod is activated to pull the spray pipe into the drilled hole. Next, the third electric push rod is used again to push the spray pipe out of the drilled hole. During this process, the pump corresponding to the stored cement material is activated to transport the cement material into the drilled hole. After a certain amount has been transported, the pump corresponding to the stored cement material is turned off, and the pump corresponding to the thermal insulation spray material is activated to transport the thermal insulation spray material into the drilled hole, thus forming an insulation layer. After a certain amount has been transported, the pump corresponding to the stored thermal insulation spray material is turned off, and the pump corresponding to the cement material is activated again to transport the cement material into the drilled hole. Finally, both ends of the drilled hole are sealed with a sealing adhesive to fill the hole, thus completing the repair of the leakage point and achieving a leak-proof effect.

[0017] Optionally, the partition includes: a partition plate, a sealing plate, a sealing spring, and a rubber sleeve. The partition plate is sleeved on the nozzle, and a sealing groove is formed on the inner wall of the partition plate. The sealing plate is disposed in the sealing groove, the sealing spring is fixed between the sealing plate and the inner wall of the sealing groove, the rubber sleeve is sleeved on the sealing plate, the limiting part is disposed between the nozzle and the sealing plate, the fixing part is disposed on the partition plate, and the pulling part is disposed between the nozzle and the fixing part.

[0018] By adopting the above technical solution, after the nozzle separates from the partition plate, the sealing spring pushes the sealing plate out of the sealing groove, thereby sealing the through hole of the partition plate.

[0019] Optionally, the limiting part includes: a limiting rod and a limiting spring, the nozzle has a receiving hole, the sealing plate has a limiting hole, one end of the limiting rod is disposed in the limiting hole and the other end is disposed in the receiving hole, and the limiting rod has a limiting guide surface, and the limiting spring is fixed between the limiting rod and the bottom of the receiving hole.

[0020] By adopting the above technical solution, the limiting rod can limit the partition plate, so that the partition plate is not easy to move on the nozzle during the process of the nozzle extending into the borehole.

[0021] Optionally, the fixing part includes: a retaining pad, a sealant, a push plate, a push spring, and a connecting rod. The retaining pad is fixedly sleeved on the partition plate. The partition plate has a receiving groove. The sealant is filled into the receiving groove. The push plate is disposed in the receiving groove. The push spring is fixed between the push plate and the inner wall of the receiving groove. One end of the connecting rod is fixed to the push plate, and the other end is connected to the pulling part.

[0022] By adopting the above technical solution, after the nozzle is inserted into the borehole, the push spring will push the push plate upward to push the sealant in the receiving groove into the space between the two baffles; after the sealant solidifies, the partition plate can be fixed, so that the nozzle can be pushed out of the borehole for spraying.

[0023] Optionally, the pulling part includes: a pulling plate, a pulling spring, a locking rod, a pulling rope, an unlocking plate, an unlocking rod, and an unlocking spring. The nozzle has a mounting groove, the pulling plate is slidably disposed within the mounting groove, and the pulling plate has a slot. The connecting rod is disposed within the slot, and the connecting rod has a locking hole. One end of the locking rod is fixed to the inner wall of the slot, and the other end is disposed within the locking hole. The pulling spring is fixed between the pulling plate and the inner wall of the mounting groove. The unlocking plate is sleeved on the nozzle, and the unlocking plate has an installation hole. The unlocking rod is disposed within the installation hole, and the unlocking spring is fixed between the unlocking rod and the inner wall of the installation hole. One end of the pulling rope is fixed to the pulling plate, and the other end is fixed to the unlocking rod.

[0024] By adopting the above technical solution, when the nozzle is about to be fully inserted into the borehole, the unlocking rod will contact the wall and press the unlocking rod into the installation hole; during this process, the pull rope is released, and the pull spring will push the pull plate closer to the hose, that is, the locking rod moves relative to the connecting rod until the locking rod separates from the locking hole, thereby releasing the locking of the connecting rod.

[0025] Optionally, the partition further includes: reinforcing bars, which are fixed to the partition plate.

[0026] By adopting the above technical solutions, the steel bars can improve the strength of the repaired wall, making it less susceptible to damage.

[0027] In summary, this application includes at least one of the following beneficial effects: 1. The detection component can acquire information from the wall and then analyze the acquired information to obtain the specific details of the leakage path and seepage point. It not only does not easily damage the wall, but also has high accuracy.

[0028] 2. First, adjust the height of the upper plate so that it corresponds to the leakage point. Then, start the drilling motor to drive the drill rod to rotate. At the same time, start the first electric push rod to pull the slider closer to the wall, that is, pull the drill rod to contact the wall, thereby drilling a hole in the wall until the wall is drilled through, so that the repair components can be used for repair.

[0029] 3. After the nozzle separates from the partition plate, the sealing spring pushes the sealing plate out of the sealing groove, thereby sealing the through hole of the partition plate. Attached Figure Description

[0030] Figure 1 This is a structural schematic diagram according to an embodiment of this application; Figure 2 yes Figure 1 A schematic top view; Figure 3 It is along Figure 2 A schematic cross-sectional view taken by the cutting line AA in the diagram; Figure 4 yes Figure 3 A schematic enlarged view of part B in the diagram; Figure 5 yes Figure 3 A schematic enlarged view of part C.

[0031] In the diagram: 1. Support assembly; 11. Base plate; 12. Support leg; 13. Upper plate; 131. Slide groove; 14. Lower plate; 15. Drive motor; 16. Transmission belt; 17. Lead screw; 2. Detection assembly; 21. Heating plate; 211. Heating chamber; 22. Heating rod; 23. Infrared thermal imager; 3. Drilling section; 31. Drill rod; 32. Drilling motor; 33. Slider; 34. First electric push rod; 4. Processing section; 41. Top plate; 42. Second electric push rod; 43. Receiving rod; 44. Scraper; 45. Sleeve plate; 46. Brushing; 5. Spraying section; 51. Spray pipe; 511. Accommodation hole; 512. Placement groove; 52. Hose; 53. Material pump; 54. Storage bin; 55. Third electric push rod; 6. Divider; 61. Divider plate; 611. Sealing groove; 612. Receiving groove; 62. Sealing plate; 621. Limiting hole; 63. Sealing spring; 64. Rubber sleeve; 65. Reinforcing bar; 7. Limiting part; 71. Limiting rod; 711. Limiting guide surface; 72. Limiting spring; 8. Fixing part; 81. Baffle; 82. Sealant; 83. Push plate; 84. Push spring; 85. Connecting rod; 851. Locking hole; 9. Pulling part; 91. Pulling plate; 911. Slot; 92. Pulling spring; 93. Locking rod; 94. Pull rope; 95. Unlocking plate; 951. Mounting hole; 96. Unlocking rod; 97. Unlocking spring. Detailed Implementation

[0032] This application provides a systematic treatment device for preventing building leakage.

[0033] See Figure 1 A systematic treatment device for preventing building leaks includes a support assembly 1. The support assembly 1 is equipped with a treatment mechanism for treating the wall. The support assembly 1 includes a base plate 11, support legs 12, an upper plate 13, a lower plate 14, a drive motor 15, a transmission belt 16, and two lead screws 17. The support legs 12 are fixed to the bottom wall of the base plate 11. In this embodiment, four support legs 12 are provided, located at the four corners of the base plate 11, and are used to support the base plate 11. A caster wheel is installed at the end of each support leg 12 away from the base plate 11, facilitating the movement of the base plate 11.

[0034] See Figure 1One end of the lead screw 17 is rotatably mounted on the top wall of the base plate 11 and is vertically positioned; the other end passes through the lower plate 14 and the upper plate 13 and is threadedly connected to both plates. The upper plate 13 is located above the lower plate 14. The drive motor 15 is mounted on the base plate 11, and the output shaft of the drive motor 15 is coaxially fixed with either lead screw 17. The transmission belt 16 drives the two lead screws 17 (the transmission belt 16 generally also includes two pulleys, which are respectively sleeved on the two lead screws 17). When the drive motor 15 is started, the lead screw 17 is driven to rotate, thereby driving the lower plate 14 and the upper plate 13 to lift and lower the treatment mechanism.

[0035] See Figure 1 , Figure 2 and Figure 3 The governance structure includes: detection component 2, processing component and repair component.

[0036] See Figure 1 and Figure 3 The detection component 2 includes a heating plate 21, a heating rod 22, and an infrared thermal imager 23. The heating plate 21 is fixed to the side wall of the upper plate 13, and a heating chamber 211 for water storage is provided on the heating plate 21. The heating rod 22 is installed in the heating chamber 211. Before treatment, the bottom plate 11 is moved until the heating plate 21 is in close contact with the wall. Then the heating rod 22 is activated to heat the water in the heating chamber 211. As the water temperature rises, the temperature of the heating plate 21 also rises. At this time, the heat on the heating plate 21 is transferred to the wall, thereby continuously heating the wall and increasing the wall temperature. Once a certain temperature is reached, the wall is photographed using an infrared thermal imager 23. The images obtained by the infrared thermal imager 23 are then analyzed to determine the specific details of the leakage path and seepage point. This method not only minimizes damage to the wall but also provides high accuracy in the assessment.

[0037] See Figure 1 The processing components include: a drilling section 3 and a processing section 4.

[0038] See Figure 1The drilling section 3 includes a drill rod 31, a drilling motor 32, a slider 33, and a first electric push rod 34. A groove 131 is formed on the top wall of the upper plate 13. The slider 33 is slidably disposed within the groove 131 and slides along the length of the groove 131. The drilling motor 32 is mounted on the slider 33, and its output shaft is fixedly connected to the drill rod 31. The first electric push rod 34 is mounted within the groove 131, and its output shaft is fixedly connected to the slider 33. After determining the leakage point, the height of the upper plate 13 is adjusted so that it corresponds to the leakage point. Then, the drilling motor 32 is started to drive the drill rod 31 to rotate. Simultaneously, the first electric push rod 34 is started to pull the slider 33 closer to the wall, i.e., to pull the drill rod 31 into contact with the wall, thereby drilling a hole in the wall until the wall is drilled through, allowing the repair component to perform repairs.

[0039] See Figure 1 Furthermore, the processing unit 4 includes: a top plate 41, a second electric push rod 42, a receiving rod 43, a scraper 44, a sleeve plate 45, and a brush 46. The top plate 41 is fixed to the top wall of the upper plate 13, and a space is left between the top plate 41 and the upper plate 13. The second electric push rod 42 is installed on the top wall of the top plate 41, and the output shaft of the second electric push rod 42 is fixedly connected to the receiving rod 43, which is horizontally positioned. The scraper 44 is sleeved on the receiving rod 43. After drilling is completed, the height of the upper plate 13 is first adjusted so that the top plate 41 corresponds to the drilled hole. Then, the second electric push rod 42 is activated to pull the receiving rod 43 into the drilled hole. During the insertion process, the scraper 44 scrapes away the defects on the inner wall of the drilled hole and pushes out the gravel in the drilled hole, thereby improving the cleanliness of the drilled hole and improving the quality of subsequent repairs.

[0040] See Figure 1 The sleeve plate 45 is fitted onto the receiving rod 43, and the bristle 46 is fixed to the peripheral wall of the sleeve plate 45. While the scraper 44 is scraping, the bristle 46 will also clean the fine gravel and other impurities in the borehole, thereby further improving the cleanliness of the borehole and further improving the quality of subsequent repairs.

[0041] See Figure 1 , Figure 4 and Figure 5 The repair components include: a spraying part 5, a separating part 6, a limiting part 7, a fixing part 8, and a pulling part 9.

[0042] See Figure 1The spraying unit 5 includes: a spray pipe 51, a hose 52, a material pump 53, a storage tank 54, and a third electric push rod 55. The storage tank 54 is fixed to the top wall of the lower plate 14. In this embodiment, there are two storage tanks 54, two material pumps 53, and two hoses 52, which correspond one-to-one. One storage tank 54 is used to store cement material, and the other storage tank 54 is used to store thermal insulation spraying material. The material pump 53 is installed on the top wall of the lower plate 14 and is connected to the corresponding storage tank 54. One end of the hose 52 is connected to the corresponding material pump 53, and the other end is connected to the spraying pipe. In this embodiment, the hose 52 is long enough.

[0043] See Figure 1 The third electric push rod 55 is installed on the top wall of the lower plate 14, and the output shaft of the third electric push rod 55 is fixedly connected to the spray pipe. After the drilling is completed, the height of the lower plate 14 is adjusted so that the lower plate 14 corresponds to the drill hole. Then the third electric push rod 55 is started to pull the spray pipe into the drill hole. Then the spray pipe is pushed out of the drill hole again by the third electric push rod 55. During this process, the pump 53 corresponding to the stored cement material is started to transport the cement material into the drill hole. After a certain amount is transported, the pump 53 corresponding to the stored cement material is turned off, and the pump 53 corresponding to the thermal insulation spray material is started to transport the thermal insulation spray material into the drill hole to form a thermal insulation layer. After a certain amount is transported, the pump 53 corresponding to the stored thermal insulation spray material is turned off, and the pump 53 corresponding to the cement material is started again to transport the cement material into the drill hole. Finally, seal both ends of the drilled hole with a sealing adhesive to fill the hole, thus completing the repair of the leak and achieving the effect of preventing leakage.

[0044] See Figure 4 In this embodiment, the partition section 6 is provided in four sets, and the four sets of partition sections 6 are arranged along the length direction of the nozzle 51. The four sets of partition sections 6 form three cavities, and the cavity in the middle is filled with heat-insulating spray material. The partition section 6 includes: a partition plate 61, a sealing plate 62, a sealing spring 63, and a rubber sleeve 64. The partition plate 61 is sleeved on the nozzle 51, and a sealing groove 611 is opened on the inner bottom wall of the partition plate 61. The sealing plate 62 is slidably disposed in the sealing groove 611 and slides in the vertical direction, and the sealing plate 62 abuts against the nozzle 51.

[0045] See Figure 4One end of the sealing spring 63 is fixed to the bottom of the sealing groove 611, and the other end is fixed to the sealing plate 62. The sealing spring 63 is used to push the sealing plate 62 out of the sealing groove 611. The rubber sleeve 64 is fixedly sleeved on the sealing plate 62. After the nozzle 51 is separated from the partition plate 61, the sealing spring 63 pushes the sealing plate 62 out of the sealing groove 611, thereby sealing the through hole of the partition plate 61. The rubber sleeve 64 can improve the sealing between the sealing plate 62 and the inner wall of the through hole of the partition plate 61.

[0046] See Figure 4 Furthermore, the partition 6 also includes a reinforcing bar 65, which is fixed between adjacent partition plates 61. After the drilled holes are filled, the reinforcing bar 65 can improve the strength of the repaired wall, making it less susceptible to damage.

[0047] See Figure 4 The limiting part 7 includes a limiting rod 71 and a limiting spring 72. The bottom wall of the nozzle 51 has a receiving hole 511, and the number of receiving holes 511 is the same as that of the partition plate 61, and they correspond one-to-one. The end of the sealing plate 62 away from the sealing spring 63 has a limiting hole 621, and the limiting block passes through the rubber sleeve 64. One end of the limiting rod 71 is set in the receiving hole 511 and the other end is set in the limiting hole 621. The limiting rod 71 can limit the partition plate 61, so that the partition plate 61 is not easy to move on the nozzle 51 during the process of the nozzle 51 extending into the borehole.

[0048] See Figure 4 One end of the limiting spring 72 is fixed to the limiting rod 71, and the other end is fixed to the bottom of the receiving hole 511. The limiting spring 72 is used to push the limiting rod 71 into the limiting hole 621. A limiting guide surface 711 is provided on the side of the limiting rod 71 away from the limiting spring 72 and facing the third electric push rod 55. The end of the limiting guide surface 711 near the limiting spring 72 is higher than the opening of the receiving hole 511. During the process of the nozzle 51 extending out of the borehole, the limiting rod 71 will automatically retract into the receiving hole 511 through the limiting guide surface 711, thereby facilitating the separation plate 61 from the nozzle 51 so that the sealing plate 62 can extend out of the sealing groove 611.

[0049] See Figure 4 The fixing part 8 includes: a baffle 81, a sealant 82, a push plate 83, a push spring 84, and a connecting rod 85. The baffle 81 is fixedly sleeved on the partition plate 61. In this embodiment, the baffle 81 is made of rubber material, and there are two baffles 81 on each partition plate 61. When the nozzle 51 is inserted into the borehole, the baffle 81 abuts against the inner wall of the borehole, that is, the baffle 81 can improve the sealing between the partition plate 61 and the inner wall of the borehole.

[0050] See Figure 4The top wall of the partition plate 61 has a receiving groove 612, and the push plate 83 is slidably disposed in the receiving groove 612 and slides vertically. Sealant 82 is filled in the receiving groove 612 and located on top of the push plate 83. One end of the push spring 84 is fixed to the bottom wall of the push plate 83, and the other end is fixed to the bottom of the receiving groove 612. The push spring 84 can push the push plate 83 upward. After the nozzle 51 is inserted into the borehole, the push spring 84 pushes the push plate 83 upward to push the sealant 82 in the receiving groove 612 between the two baffles 81. After the sealant 82 solidifies, the partition plate 61 can be fixed, thereby allowing the nozzle 51 to be pushed out of the borehole for spraying.

[0051] See Figure 4 and Figure 5 The pulling part 9 includes: a pulling plate 91, a pulling spring 92, a locking rod 93, a pulling rope 94, an unlocking plate 95, an unlocking rod 96, and an unlocking spring 97. A mounting groove 512 is formed on the top wall of the nozzle 51 along its length. The pulling plate 91 is slidably disposed within the mounting groove 512 and slides along its length. A slot 911 is formed on the top wall of the pulling plate 91, and the number of slots 911 corresponds to the number of partition plates 61. One end of the connecting rod 85 away from the push plate 83 is disposed within the slot 911, and the other end of the connecting rod 85 within the slot 911 has a locking hole 851. One end of the locking rod 93 is fixed to the inner wall of the slot 911 near the hose 52, and the other end is disposed within the locking hole 851. The locking rod 93 can lock the connecting rod 85, meaning that when the nozzle 51 is not inserted into the borehole, the push plate 83 cannot easily push the sealant 82.

[0052] See Figure 4 and Figure 5 One end of the pull spring 92 is fixed to the pull plate 91, and the other end is fixed to the inner wall of the mounting groove 512 away from the hose 52. The pull spring 92 is used to push the pull plate 91 closer to the hose 52. The unlocking plate 95 is fixedly sleeved on the nozzle 51 and located at the end of the nozzle 51 near the hose 52. The unlocking plate 95 has a mounting hole 951 on the side away from the hose 52. One end of the unlocking rod 96 is disposed in the mounting hole 951, and the other end extends out of the mounting hole 951. One end of the unlocking spring 97 is fixed to the unlocking rod 96, and the other end is fixed to the bottom of the mounting hole 951. The unlocking spring 97 is used to push the unlocking rod 96 out of the mounting hole 951. In this embodiment, the elastic force of the unlocking spring 97 is greater than the elastic force of the pull spring 92.

[0053] See Figure 4 and Figure 5One end of the pull rope 94 is fixed to the end of the unlocking rod 96 near the unlocking spring 97, and the other end passes through the mounting groove 512 and is fixed to the end of the pulling plate 91 near the pulling spring 92. When the nozzle 51 is about to be fully inserted into the drill hole, the unlocking rod 96 will contact the wall and press the unlocking rod 96 into the mounting hole 951. During this process, the pull rope 94 is released, and the pulling spring 92 will push the pulling plate 91 toward the hose 52, that is, the locking rod 93 moves relative to the connecting rod 85 until the locking rod 93 separates from the locking hole 851, thereby releasing the lock on the connecting rod 85.

[0054] The working principle of the systematic treatment device for building leakage prevention in this application is as follows: Before treatment, the base plate 11 is moved until the heating plate 21 is in close contact with the wall. Then, the heating rod 22 is activated to heat the water in the heating chamber 211. As the water temperature rises, the temperature of the heating plate 21 also rises. At this time, the heat on the heating plate 21 is transferred to the wall, thereby continuously heating the wall and increasing its temperature. After reaching a certain temperature, the wall is photographed using an infrared thermal imager 23. The image obtained by the infrared thermal imager 23 is then analyzed to obtain the specific details of the leakage path and seepage point. This method not only avoids damage to the wall but also has high accuracy.

[0055] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A systematic treatment device for building leakage prevention, characterized in that, include: A support assembly (1) and a treatment mechanism for wall treatment disposed on the support assembly (1). The support assembly (1) includes: a base plate (11), a support leg (12), an upper plate (13), a lower plate (14), a drive motor (15), a transmission belt (16), and two lead screws (17). The support leg (12) is fixed on the base plate (11). One end of the lead screw (17) is rotatably mounted on the base plate (11), and the other end passes through the upper plate (13) and the lower plate (14) and is threadedly connected to the upper plate (13) and the lower plate (14). The output shaft of the drive motor (15) is coaxially fixed with any of the lead screws (17). The transmission belt (16) drives between the two lead screws (17). The treatment mechanism includes: a detection component (2), a processing component and a repair component. The detection component (2) and the processing component are both disposed on the upper plate (13), and the repair component is disposed on the lower plate (14). The repair assembly includes: a spraying section (5), a partition section (6), a limiting section (7), a fixing section (8), and a pulling section (9). The spraying section (5) includes: a spray pipe (51), a hose (52), a pump (53), a storage tank (54), and a third electric push rod (55). The storage tank (54) is fixed on the lower plate (14). The pump (53) is disposed on the lower plate (14) and communicates with the storage tank (54). One end of the hose (52) is connected to the pump (53). One end is connected to the nozzle (51), the other end is connected to the nozzle (51), the third electric push rod (55) is installed on the lower plate (14), and the output shaft of the third electric push rod (55) is fixed to the nozzle (51), the partition (6) is disposed on the nozzle (51), the limiting part (7) is disposed between the nozzle (51) and the partition (6), the fixing part (8) is disposed on the partition (6), and the pulling part (9) is disposed between the nozzle (51) and the fixing part (8).

2. The systematic treatment device for building waterproofing according to claim 1, characterized in that, The detection component (2) includes a heating plate (21), a heating rod (22), and an infrared thermal imager (23). The heating plate (21) is disposed on the upper plate (13) and has a heating chamber (211) for water storage. The heating rod (22) is disposed in the heating chamber (211), and the infrared thermal imager (23) is disposed on the upper plate (13).

3. The systematic treatment device for building waterproofing according to claim 1, characterized in that, The processing component includes a drilling section (3), which includes a drill rod (31), a drilling motor (32), a slider (33), and a first electric push rod (34). A groove (131) is provided on the upper plate (13). The slider (33) is slidably disposed in the groove (131). The drilling motor (32) is mounted on the slider (33), and the output shaft of the drilling motor (32) is connected to the drill rod (31). The first electric push rod (34) is mounted in the groove (131), and the output shaft of the first electric push rod (34) is fixedly connected to the slider (33).

4. The systematic treatment device for building waterproofing according to claim 3, characterized in that, The processing assembly further includes a processing unit (4), which includes a top plate (41), a second electric push rod (42), a receiving rod (43), a scraper (44), a sleeve plate (45), and a bristle sweeper (46). The top plate (41) is fixed on the upper plate (13), the second electric push rod (42) is fixed on the top plate (41), and the output shaft of the second electric push rod (42) is fixed to the receiving rod (43). The scraper (44) and the sleeve plate (45) are both sleeved on the receiving rod (43), and the bristle sweeper (46) is fixed on the sleeve plate (45).

5. The systematic treatment device for building waterproofing according to claim 1, characterized in that, The partition (6) includes: a partition plate (61), a sealing plate (62), a sealing spring (63), and a rubber sleeve (64). The partition plate (61) is sleeved on the nozzle (51). A sealing groove (611) is provided on the inner wall of the partition plate (61). The sealing plate (62) is disposed in the sealing groove (611). The sealing spring (63) is fixed between the sealing plate (62) and the inner wall of the sealing groove (611). The rubber sleeve (64) is sleeved on the sealing plate (62). The limiting part (7) is disposed between the nozzle (51) and the sealing plate (62). The fixing part (8) is disposed on the partition plate (61). The pulling part (9) is disposed between the nozzle (51) and the fixing part (8).

6. The systematic treatment device for building waterproofing according to claim 5, characterized in that, The limiting part (7) includes a limiting rod (71) and a limiting spring (72). The nozzle (51) has a receiving hole (511), and the sealing plate (62) has a limiting hole (621). One end of the limiting rod (71) is disposed in the limiting hole (621), and the other end is disposed in the receiving hole (511). The limiting rod (71) has a limiting guide surface (711), and the limiting spring (72) is fixed between the limiting rod (71) and the bottom of the receiving hole (511).

7. The systematic treatment device for building waterproofing according to claim 6, characterized in that, The fixing part (8) includes: a baffle (81), a sealant (82), a push plate (83), a push spring (84), and a connecting rod (85). The baffle (81) is fixedly sleeved on the partition plate (61). The partition plate (61) has a receiving groove (612). The sealant (82) is filled in the receiving groove (612). The push plate (83) is disposed in the receiving groove (612). The push spring (84) is fixed between the push plate (83) and the inner wall of the receiving groove (612). One end of the connecting rod (85) is fixed to the push plate (83), and the other end is connected to the pulling part (9).

8. The systematic treatment device for building waterproofing according to claim 7, characterized in that, The pulling part (9) includes: a pulling plate (91), a pulling spring (92), a locking rod (93), a pulling rope (94), an unlocking plate (95), an unlocking rod (96), and an unlocking spring (97). The nozzle (51) has a mounting groove (512). The pulling plate (91) is slidably disposed in the mounting groove (512), and the pulling plate (91) has a slot (911). The connecting rod (85) is disposed in the slot (911), and the connecting rod (85) has a locking hole (851). One end of the locking rod (93) is attached to the inner wall of the slot (911). The first end of the cable is fixed, and the second end is set in the card hole (851). The pull spring (92) is fixed between the pull plate (91) and the inner wall of the mounting groove (512). The unlocking plate (95) is sleeved on the nozzle (51), and the unlocking plate (95) has an installation hole (951). The unlocking rod (96) is set in the installation hole (951). The unlocking spring (97) is fixed between the unlocking rod (96) and the inner wall of the installation hole (951). One end of the pull rope (94) is fixed to the pull plate (91), and the other end is fixed to the unlocking rod (96).

9. The systematic treatment device for building waterproofing according to claim 5, characterized in that, The partition (6) further includes a reinforcing bar (65), which is fixed to the partition plate (61).

Citation Information

Patent Citations

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    CN112078025A

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    CN214408603U