Intelligent seepage water collecting and recycling device for municipal pipe gallery

By using meltblown fabric and a frame structure to collect seepage water in municipal utility tunnels, and combining it with pressurized conveying and filtration components, the problems of poor filtration effect and short electric drive life of traditional seepage collection devices have been solved, realizing efficient, stable and intelligent collection and reuse of seepage water.

CN224106508UActive Publication Date: 2026-04-10CHINA THIRD METALLURGICAL GRP
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-23
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Traditional seepage collection devices have poor filtration performance in municipal utility tunnels, and electric drives have a short lifespan in humid environments, resulting in poor seepage water quality and high costs.

Method used

The system uses meltblown fabric and a skeleton structure to collect seepage water. It combines pressurized conveying and filtration components to transport seepage water by gravity and pressurization. It also utilizes self-cleaning filter plates and anti-overflow components to ensure the efficiency of seepage water collection and treatment, avoids electric drive, and increases the hydrophilicity and adhesion of meltblown fabric to improve seepage water collection capacity.

Benefits of technology

It increases the seepage collection area, reduces costs, ensures stable operation in humid environments, enhances the efficiency and water quality of seepage treatment, and realizes intelligent collection and reuse of seepage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an intelligent seepage water collecting and recycling device for a municipal pipe gallery, and relates to the technical field of seepage water collecting and processing. Comprising a collecting mechanism installed on a pipe gallery wall, and a concentrating mechanism used for collecting seepage water is installed at the bottom of the collecting mechanism. Through the transverse columns and the circular grooves on the framework, the contact area between the melt-blown cloth and the wall can be increased, the adhesive force is improved, the melt-blown cloth is matched with the collecting mechanism to suck and collect seepage water, the seepage water is filtered through the filtering assembly, and the seepage water is conveyed in an inflation pressurization mode so as to ensure the conveying effect; meanwhile, the melt-blown cloth also has a simple filtering function, corresponding additives can be added into the raw materials to improve the water seepage collection capacity and adhesion capacity of the melt-blown cloth, the whole water seepage collection component does not need to be driven electrically, the water seepage collection area is large, the use cost is saved, and stable operation of water seepage collection in a humid environment is ensured.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the technical field of water seepage collection and treatment, in particular to an intelligent water seepage collection and recycling device for a municipal pipe gallery. BACKGROUND

[0002] Urban underground comprehensive pipe gallery, also known as common trench, refers to a tunnel space built underground in a city, in which various engineering pipelines such as power, communication, water supply, heating, and gas are integrated, and unified planning, design, construction, and maintenance management are implemented. In the rainy season or in the case of excessive surface water, the underground water level may rise, which may cause water to seep into the pipe gallery wall. By effectively collecting and utilizing the seepage water, the pressure of rainwater flowing into the drainage system can be reduced, and the probability of urban waterlogging can be reduced.

[0003] Patent publication No. CN117926975A, a green roof rainwater collection and utilization device and method, includes a gutter set on the roof to collect rainwater; a roof planting structure for planting vegetation; a soil moisture detection device for real-time monitoring of soil moisture; a water storage device for storing rainwater; an irrigation device for outputting stored rainwater to irrigate plants; a control device receives signals from the soil moisture detection device and controls the operation of the water storage device and the irrigation device, improving the intelligence and automation of rainwater collection and utilization; a power supply device is provided to supply power to the system. The system integrates rainwater collection, storage, and irrigation, and automatically irrigates according to different soil moisture, with high accuracy and high intelligence, forming a complete roof rainwater utilization technology method system, solving the problem of single function, lack of intelligence and precision of roof rainwater utilization device.

[0004] In the underground pipe gallery of the city, due to the large number of pipelines, water resource management is crucial, and the traditional water seepage collection device has the disadvantages of poor filtering effect and high cost, and due to its poor filtering effect, it often cannot effectively block harmful substances in shallow water, resulting in poor quality of collected rainwater or seepage water, and the traditional water seepage collection device often uses electric drive or flow guide groove design to collect seepage water, and the electric drive will affect its service life in the humid environment of the underground pipe gallery, and a single flow guide groove has a small flow guide range, which is not conducive to saving the cost of collecting seepage water, thus the utility model is proposed. UTILITY MODEL CONTENTS

[0005] The utility model aims to provide an intelligent water seepage collection and recycling device for a municipal pipe gallery to solve the problems raised in the background technology.

[0006] In order to achieve the above object, the utility model provides the following technical scheme: A kind of intelligent water seepage collection and recycling device for municipal pipe gallery, including the collection mechanism being installed on pipe gallery wall, the bottom of the collection mechanism is equipped with the centralized mechanism for collecting water seepage, the bottom of centralized mechanism is equipped with the conveying mechanism for conveying water seepage, pressurizing mechanism is installed on conveying mechanism, water seepage is conveyed to the processing mechanism for processing water seepage by conveying mechanism, after processing mechanism is finished to water seepage, the water seepage after processing is conveyed to water storage bin by outlet pipe, collection mechanism includes horizontal box, slot is opened in the middle of the bottom inner wall of horizontal box, inclined block is installed at both ends of the bottom inner wall of horizontal box, water seepage in horizontal box is guided into slot by inclined block, connecting plate is fixedly connected on horizontal box, detachable framework is installed on connecting plate, a plurality of mounting plates are installed on framework, framework is installed on pipe gallery wall by mounting plate, a plurality of horizontal columns are installed on the outer wall of both ends of framework, a plurality of circular grooves are opened in horizontal column, meltblown cloth is fused on the contour of a plurality of frameworks, centralized mechanism includes collecting hopper and connecting pipe being installed at the bottom of collecting hopper, anti-backflow component is installed in connecting pipe, filter component is installed in collecting hopper, anti-overflow component is installed between horizontal box and connecting pipe, C-shaped block is installed at both ends of the bottom outer wall of horizontal box, strip block is installed at both ends of the outer wall of collecting hopper, and the communication between collecting hopper and slot is completed by strip block being inserted in C-shaped block, meltblown cloth is used to collect water seepage of pipe gallery wall, water seepage falls into horizontal box by gravity, water seepage is guided into conveying mechanism by centralized mechanism by inclined block, and water seepage in conveying mechanism is conveyed to processing mechanism by pressurizing mechanism.

[0007] Further, the filter component includes an insert block installed in the collecting hopper, a trapezoidal slot is formed at one end inside the collecting hopper, a filter plate is installed at the bottom of the trapezoidal slot, a frame-shaped slot is formed at the top of the filter plate in the insert block, a square frame is arranged in the frame-shaped slot, the insert block is hollow at one end of the outer wall of the collecting hopper, the frame-shaped slot is in communication with the hollow cavity, an extension component is installed on the top inner wall of the insert block, the piston rod of the extension component is fixedly connected to the square frame at one end, and a detachable sealing cover is installed on the insert block.

[0008] Further, the anti-backflow component includes vertical slots formed in the inner walls of both sides of the connecting pipe, a vertical rod is installed between the top and bottom of the vertical slot, a sliding block is sleeved on the vertical rod, a sealing head is installed between the two sliding blocks, a spring is installed around the vertical rod between the bottom inner wall of the vertical slot and the bottom outer wall of the sliding block, a top ring is installed on the inner wall of the connecting pipe at the top of the sealing head, a circular truncated cone slot is formed in the inner wall of the top ring, the sealing head is in the shape of a circular truncated cone corresponding to the circular truncated cone slot, and the sealing head is lifted to the sealing head and the top ring are attached by the pressurizing mechanism to complete the sealing of the connecting pipe.

[0009] Further, the anti-overflow assembly comprises a first liquid level sensor embeddedly installed on the inner wall of the middle part of the horizontal box, a flow guide pipe is installed on the connecting pipe, an installation groove is formed in the middle part of the outer wall of the horizontal box, the flow guide pipe is inserted into the installation groove, a sealing ring is installed on the contact part of the flow guide pipe and the installation groove, a first air valve is installed on the flow guide pipe, a filter box is installed on the middle part of the flow guide pipe, an annular groove is formed on the outer wall of the filter box, a semicircular ring is inserted into the annular groove, and a filter disc is installed on the inner wall of the semicircular ring.

[0010] Further, the pressurizing mechanism comprises a pressurizing box, a box cover is installed on the pressurizing box, an air pump is installed on the box cover, a plurality of heat-resistant mounting bases are installed on the inner wall bottom and top of the pressurizing box, an electric heating wire is installed between the corresponding heat-resistant mounting bases, a gas conveying pipe connected with the conveying mechanism is installed on the pressurizing box, and a second air valve is installed on the gas conveying pipe.

[0011] Further, the conveying mechanism comprises a conveying pipe, the gas conveying pipe and the connecting pipe are connected with the conveying pipe, flanges are installed on the pipe openings of the conveying pipes, adjacent conveying pipes are communicated through a connecting assembly, the connecting assembly comprises two connecting discs, a connecting hose is installed between the two connecting discs, and adjacent conveying pipes are communicated through the connecting hose by cooperation of the flanges and the connecting discs.

[0012] Further, the processing mechanism comprises a processing barrel, a communication pipe connected with the conveying pipe is installed in the processing barrel, the inner end of the communication pipe in the processing barrel is L-shaped, a plurality of through grooves are formed on the L-shaped outer wall top of the communication pipe, a bottom plate is installed on the bottom inner wall of the processing barrel, a top cover is installed on the top outer wall of the processing barrel, a storage barrel is installed on the top cover, a discharging pipe is installed on the bottom outer wall of the storage barrel, a flow meter valve is installed on the discharging pipe, a plurality of transfer boxes corresponding to the storage barrel are installed on the bottom outer wall of the top cover, a discharging pipe is installed on the bottom outer wall of each transfer box, a control valve is installed on the discharging pipe, a connecting box connected with the communication pipe is installed on the L-shaped top outer wall of the communication pipe, and a plurality of L-shaped pipes with the gas outlets facing the bottom of the processing barrel are installed on the circumferential outer wall of the connecting box.

[0013] Further, a plurality of air guide pipes connected with the transfer boxes are installed on the top outer wall of the connecting box, a third air valve is installed on the air guide pipe, a sleeve ring is sleeved on the outer wall of the communication pipe, an air bag is installed on the outer wall of the sleeve ring, the bottom outer wall of the air bag is attached to the top outer wall of the bottom plate, a second liquid level sensor is installed in the inner wall of the conveying pipe, a flow guide groove is formed on each skeleton, a connecting groove adapted to the connecting plate is formed on the bottom of the skeleton attached to the wall, an insertion groove is formed in the connecting groove, and an insertion column inserted into the insertion groove is installed on the connecting plate.

[0014] Compared with the prior art, the anti-overflow assembly has the beneficial effects that:

[0015] The intelligent water seepage collecting and recycling device for municipal pipe gallery can improve the contact area of the melt-blown cloth and the wall and improve the adhesion by the plurality of horizontal columns and the circular grooves on the framework, can collect water seepage by the melt-blown cloth cooperating with the collecting mechanism, can filter the water seepage by the filtering assembly, can ensure the conveying effect by adopting the inflation pressurization mode for conveying the water seepage, the melt-blown cloth also has a simple filtering function, and the corresponding additive can be added in the raw material to improve the water seepage collecting capacity and the adhesion of the melt-blown cloth, the water seepage collecting overall component does not need to use electric drive and has a large water seepage collecting area, so that the use cost is saved and the stable operation of the water seepage collecting in a humid environment is ensured.

[0016] Meanwhile, the filtering assembly has a self-cleaning filter plate function, the position of the square frame is moved by starting the telescopic assembly, so that the square frame passes through the filter plate, the impurities attached to the filter plate can be scraped off, and the impurities are pushed into the cavity of the collecting hopper, then the sealing cover is opened, the impurities are removed, another channel is provided by the anti-overflow assembly to drain the water seepage, so that the water seepage is prevented from spilling out of the horizontal box, when the water seepage in the horizontal box exceeds the installation groove, the water seepage enters the flow guide pipe in the installation groove, the water seepage is filtered by the filtering disc in the flow guide pipe, when rapid pressurization is needed, the gas in the pressurization box is heated by starting the heating wire, so that the pressurization efficiency is improved, and the exhaust pipe and the drain pipe can be installed on the pressurization box, the humid air in the pipe gallery is improved by closing the second air valve, starting the air pump and the heating wire.

[0017] Meanwhile, the design of the flange plate, the connecting disc and the connecting hose can make the conveying mechanism suitable for the scene with the need of conveying water seepage with bending, the design of the air guide pipe can guide the gas or a small part of the water seepage into the transfer box, the impact force when entering the transfer box can fully mix the treatment agent, when the water seepage is sprayed, the gas is sprayed out through the L-shaped pipe, so that the mixing efficiency of the agent and the water seepage is improved, the efficiency of treating the water seepage is accelerated, and the heated gas can be sprayed according to the use demand, so that the mixing reaction efficiency is further improved, the air bag moves upward by the action of the buoyancy, and when the buoyancy moves to block the through slot of the sleeve ring, the phenomenon of backflow of the water seepage being treated in the treatment barrel is avoided. BRIEF DESCRIPTION OF DRAWINGS

[0018] Figure 1 It is a whole structure schematic view of the utility model;

[0019] Figure 2 It is a part of the collecting mechanism structure schematic view of the utility model;

[0020] Figure 3 It is a part of the concentrating mechanism structure schematic view of the utility model;

[0021] Figure 4This is an enlarged structural diagram of point A in this utility model;

[0022] Figure 5 This is a cross-sectional view of part of the centralized mechanism of this utility model;

[0023] Figure 6 This is an enlarged structural diagram of point B in this utility model;

[0024] Figure 7 This is an enlarged structural diagram of point C in this utility model;

[0025] Figure 8 This is a cross-sectional view of the pressurization mechanism of this utility model;

[0026] Figure 9 This is a schematic diagram of part of the conveying mechanism structure of this utility model;

[0027] Figure 10 This is a cross-sectional view of the processing mechanism of this utility model.

[0028] In the diagram: 1. Collection mechanism; 101. Horizontal box; 102. Connecting plate; 103. Frame; 104. Inclined block; 105. Guide channel; 106. Insert column; 107. Horizontal column; 108. Circular groove; 2. Concentration mechanism; 201. Collection hopper; 202. Connecting pipe; 203. Guide pipe; 204. Filter box; 205. First liquid level sensor; 206. Filter circular plate; 207. Semi-circular ring; 208. Insert block; 209. Sealing cover; 210. Trapezoidal groove; 211. Filter plate; 212. Square frame; 213. Telescopic assembly; 214. Top ring; 215. Sealing head; 216. Spring; 2 17. Vertical rod; 3. Pressurizing mechanism; 301. Pressurizing box; 302. Air pump; 303. Heat-resistant mounting base; 304. Heating wire; 305. Air supply pipe; 4. Conveying mechanism; 401. Conveying pipe; 402. Connecting hose; 403. Flange; 5. Processing mechanism; 501. Processing tank; 502. Transfer box; 503. Flow meter valve; 504. Storage tank; 505. Air guide pipe; 506. Discharge pipe; 507. Connecting box; 508. L-shaped pipe; 509. Through groove; 510. Connecting pipe; 511. Airbag; 512. Base plate; 6. Water outlet pipe; 7. Water storage tank; 8. Meltblown fabric. Detailed Implementation

[0029] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0030] The intelligent water seepage collection and recycling is an important part of the intelligent management of the municipal pipe gallery, which can effectively solve the water seepage problem in the pipe gallery and convert it into available resources, realize energy saving and emission reduction and sustainable utilization of resources, and ensure the normal operation of the subsequent water seepage conveying.

[0031] As shown in Figures 1-10 The utility model provides a kind of technical scheme: an intelligent water seepage collection and recycling device for municipal pipe gallery, including the collection mechanism 1 installed on pipe gallery wall, the bottom of collection mechanism 1 is equipped with the centralized mechanism 2 for collecting water seepage, the bottom of centralized mechanism 2 is equipped with conveying mechanism 4 for conveying water seepage, conveying mechanism 4 is installed with pressurizing mechanism 3, water seepage is conveyed to processing mechanism 5 for processing water seepage by conveying mechanism 4, after processing mechanism 5 is processed to water seepage, treated water seepage is conveyed to water storage bin 7 by outlet pipe 6, collection mechanism 1 includes horizontal box 101, the middle part of the bottom inner wall of horizontal box 101 is provided with notch, both ends of the bottom inner wall of horizontal box 101 are equipped with inclined block 104, water seepage in horizontal box 101 is guided into notch by inclined block 104, connecting plate 102 is fixedly connected on horizontal box 101, detachable framework 103 is installed on connecting plate 102, a plurality of mounting plates are installed on framework 103, framework 103 is installed on pipe gallery wall by mounting plate, a plurality of horizontal columns 107 are installed on both ends of the outer wall of framework 103, a plurality of circular grooves 108 are provided in horizontal column 107, meltblown cloth 8 is meltblown on the contour of a plurality of framework 103, centralized mechanism 2 includes collecting hopper 201 and connecting pipe 202 installed at the bottom of collecting hopper 201, anti-backflow assembly is installed in connecting pipe 202, filter assembly is installed in collecting hopper 201, anti-overflow assembly is installed between horizontal box 101 and connecting pipe 202, C-shaped block is installed on both ends of the bottom outer wall of horizontal box 101, strip block is installed on both ends of the outer wall of collecting hopper 201, collecting hopper 201 is communicated with notch by being inserted into C-shaped block, water seepage of pipe gallery wall is collected by meltblown cloth 8, water seepage falls into horizontal box 101 by gravity, water seepage is guided into conveying mechanism 4 by centralized mechanism 2 by inclined block 104, water seepage in conveying mechanism 4 is conveyed to processing mechanism 5 by pressurizing mechanism 3.

[0032] It should be noted that the device is aimed at pipe gallery wall water seepage, through the melt-blown cloth 8 attached to the pipe gallery wall, water seepage is attracted, and through the action of gravity, the water seepage falls into the horizontal box 101, through the action of the two inclined blocks 104 in the horizontal box 101, the water seepage is guided into the collecting hopper 201, and the water seepage is filtered through the filtering assembly in the collecting hopper 201 to ensure that the water seepage removes large impurities, and the melt-blown cloth 8 also has a simple filtering function to improve the efficiency of water seepage treatment. When the water seepage is too much, the filtering assembly cannot handle it, and then the overflow prevention assembly guides the water seepage through another channel for treatment. The water treated by the two channels is introduced into the conveying mechanism 4 through the connecting pipe 202, and the water is pressurized by the pressurizing mechanism 3, and then the anti-backflow assembly is matched to convey the accumulated water seepage in the conveying mechanism 4 to the treatment mechanism 5. After the water seepage is further treated by the treatment mechanism 5, it is introduced into the water storage warehouse 7, and the water resources are distributed by the water storage warehouse 7. Through the above process, water seepage collection and reuse are completed. When installing the melt-blown cloth 8, first, the skeleton 103 needs to be installed on the connecting plate 102, and then the skeleton 103 is fixed on the wall through the fixing bolt of the mounting plate on the skeleton 103. Through the several horizontal columns 107 and circular grooves 108 on the skeleton 103, the contact area of the melt-blown cloth 8 with the wall is increased, the adhesion is improved, and the effect of adsorbing water seepage is ensured. After the skeleton 103 is fixed and installed, the polymer is melted by high temperature, and then sprayed onto the outline formed by the several skeletons 103 through the nozzle to form fine fibers. Then, during the cooling process, these fibers are gathered together to form cloth with high surface area and good filtering capacity, that is, the melt-blown cloth 8 is obtained. In order to improve the water seepage collection capacity and adhesion capacity of the melt-blown cloth 8, the following additives can be added to the raw material: hydrophilic additives such as polyvinyl alcohol (PVA) or hydroxyethyl cellulose (HEC), which can improve the hydrophilicity of the melt-blown cloth 8, making it easier to absorb water, thereby enhancing the water seepage collection capacity; reinforcing materials such as optical fibers or bio-based natural fibers (such as wood pulp fibers), which can increase the strength and durability of the melt-blown cloth 8, reducing the possibility of damage under stress or immersion; surface treatment agent such as polyurethane coating or other polymer coating, which can significantly improve the adhesion capacity of the melt-blown cloth 8, making it better combined with the wall and achieving more effective water seepage collection; crosslinking agent such as glutaraldehyde or peroxide, which can improve the structural stability and durability of the melt-blown cloth 8, enhancing its performance in various environments; through the design of C-shaped block and strip block, the collecting hopper 201 can be detached from the horizontal box 101 to facilitate the maintenance of the parts on the collecting hopper 201.

[0033] As Figure 6As shown, the filter assembly includes an insert block 208 mounted in the collection bucket 201, the insert block 208 is provided with a trapezoidal groove 210 at one end inside the collection bucket 201, the bottom of the trapezoidal groove 210 is provided with a filter plate 211, a frame-shaped groove is provided at the top of the filter plate 211 in the insert block 208, a square frame 212 is arranged in the frame-shaped groove, the insert block 208 is provided with a cavity at one end inside the outer wall of the collection bucket 201, the frame-shaped groove is communicated with the cavity, the top inner wall of the insert block 208 is provided with a telescopic assembly 213, one end of the piston rod of the telescopic assembly 213 is fixedly connected to the square frame 212, and a detachable sealing cover 209 is mounted on the insert block 208.

[0034] It should be noted that by arranging the filter plate 211, the seepage water passing through the filter plate 211 can be filtered, and the specific filter plate 211 can be an activated carbon plate or the like, so as to improve the efficiency of seepage water treatment. By starting the telescopic assembly 213, the position of the square frame 212 is moved, so that the square frame 212 passes through the filter plate 211, the impurities attached to the filter plate 211 can be scraped off, and the impurities can be pushed into the cavity of the collection bucket 201. Subsequently, the sealing cover 209 is opened, and the impurities can be removed. The telescopic assembly 213 can be an electric push rod or a hydraulic cylinder, and the specific cleaning frequency can be determined according to the actual use. By the trapezoidal groove 210, the water inlet effect can be improved. By arranging the frame-shaped groove, the square frame 212 can be accommodated, so as to avoid blocking the treatment space of the filter plate 211 and affecting the treatment efficiency.

[0035] As shown in Figure 7 The anti-backflow assembly includes vertical grooves arranged on the inner walls of the connecting pipe 202 on both sides, a vertical rod 217 is arranged between the top and bottom of the vertical grooves, a sliding block is sleeved on the vertical rod 217, a sealing head 215 is arranged between the two sliding blocks, a spring 216 is arranged between the bottom inner wall of the vertical groove and the bottom outer wall of the sliding block and surrounds the vertical rod 217, a top ring 214 is arranged on the inner wall of the connecting pipe 202 at the top of the sealing head 215, a circular truncated cone groove is arranged in the inner wall of the top ring 214, and the sealing head 215 is in the shape of a circular truncated cone corresponding to the circular truncated cone groove. The sealing head 215 is lifted to the sealing head 215 and the top ring 214 by the pressurizing mechanism 3 to complete the sealing of the connecting pipe 202.

[0036] It should be noted that when the pressurizing mechanism 3 is pressurized, the gas will enter the connecting pipe 202, and the sealing head 215 will be lifted to the sealing head 215 and the circular truncated cone groove in the top ring 214, so as to be sealed, so as to avoid the phenomenon of backflow of the seepage water in the connecting pipe 202, and at the same time, the sealing effect is achieved, so as to ensure the normal operation of the conveying mechanism 4 for conveying the seepage water. When the pressurization is completed, the sealing head 215 is reset by the restoration of the spring 216, so as to facilitate the normal passage of the seepage water through the connecting pipe 202 into the conveying mechanism 4.

[0037] As shown in Figure 3 andFigure 5 As shown, the anti-overflow assembly includes a first liquid level sensor 205 embeddedly installed on the inner wall of the middle part of the horizontal box 101, a guide pipe 203 is installed on the connecting pipe 202, a mounting groove is formed in the middle part of the outer wall of the horizontal box 101, the guide pipe 203 is inserted into the mounting groove, a sealing ring is installed on the contact part of the guide pipe 203 and the mounting groove, a first air valve is installed on the guide pipe 203, a filter box 204 is installed on the middle part of the guide pipe 203, an annular groove is formed on the outer wall of the filter box 204, a semicircular ring 207 is inserted into the annular groove, and a filter disc 206 is installed on the inner wall of the semicircular ring 207.

[0038] It should be noted that, through the anti-overflow assembly, another channel is provided for drainage of seepage water, so as to prevent seepage water from spilling out of the horizontal box 101. When the seepage water in the horizontal box 101 exceeds the mounting groove, the seepage water will enter the guide pipe 203 in the mounting groove, and the filter disc 206 in the guide pipe 203 will filter the seepage water. The filter disc 206 can be an activated carbon plate, etc. By inserting the semicircular ring 207, the filter disc 206 can be easily disassembled for maintenance by the staff. When the pressurizing mechanism 3 is in the air intake and pressurization state, the first air valve is closed to prevent backflow of the seepage water. At the same time, the first air valve can be replaced by a backflow prevention assembly, which is selected according to the actual use. The first liquid level sensor 205 monitors the liquid level of the seepage water in the horizontal box 101, and determines whether the anti-overflow assembly and the filter assembly are blocked by monitoring the liquid level of the seepage water, so as to provide instant feedback.

[0039] As shown in Figure 1 and Figure 8 The pressurizing mechanism 3 includes a pressurizing box 301, a box cover is installed on the pressurizing box 301, an air suction pump 302 is installed on the box cover, a plurality of heat-resistant mounting seats 303 are installed on the inner wall of the bottom and the top of the pressurizing box 301, an electric heating wire 304 is installed between the upper and lower corresponding heat-resistant mounting seats 303, a gas conveying pipe 305 connected with the conveying mechanism 4 is installed on the pressurizing box 301, and a second air valve is installed on the gas conveying pipe 305.

[0040] It should be noted that, when the pressurizing mechanism 3 is needed to be used, the air is sucked into the pressurizing box 301 by the air suction pump 302, and then the air is introduced into the conveying mechanism 4 through the gas conveying pipe 305. When rapid pressurization is needed, the electric heating wire 304 can be started to heat the air in the pressurizing box 301, so as to improve the pressurization efficiency. At the same time, an air exhaust pipe and a water drain pipe can be installed on the pressurizing box 301. By closing the second air valve and starting the air suction pump 302 and the electric heating wire 304, the humid air inside the pipe gallery can be improved, which is beneficial to use.

[0041] As shown in Figure 1 and Figure 9As shown, the conveying mechanism 4 comprises a conveying pipe 401, the gas conveying pipe 305 and the connecting pipe 202 are connected with the conveying pipe 401, flanges 403 are installed at the pipe openings of the conveying pipe 401, adjacent conveying pipes 401 are connected through connecting assemblies, the connecting assemblies comprise two connecting plates, connecting hoses 402 are installed between the two connecting plates, the adjacent conveying pipes 401 are connected through the connecting hoses 402 through the cooperation of the flanges 403 and the connecting plates.

[0042] It should be noted that when conveying the seepage water, the seepage water deposited in the conveying pipe 401 can be pushed to the target position through the gas pressurization of the pressurizing mechanism 3. Through the design of the flanges 403, the connecting plates and the connecting hoses 402, the conveying mechanism 4 can be applied to the scene with the requirement of conveying seepage water with bends.

[0043] As shown in Figure 1 and Figure 10 , the processing mechanism 5 comprises a processing barrel 501, a communication pipe 510 connected with the conveying pipe 401 is installed in the processing barrel 501, the L-shaped outer wall of the communication pipe 510 at the inner end of the processing barrel 501 is provided with a plurality of through grooves 509, a bottom plate 512 is installed on the bottom inner wall of the processing barrel 501, a top cover is installed on the top outer wall of the processing barrel 501, a storage barrel 504 is installed on the top cover, a discharge pipe is installed on the bottom outer wall of the storage barrel 504, a flow meter valve 503 is installed on the discharge pipe, a plurality of transfer boxes 502 corresponding to the storage barrel 504 are installed on the bottom outer wall of the top cover, a discharge pipe 506 is installed on the bottom outer wall of the transfer box 502, a control valve is installed on the discharge pipe 506, an L-shaped pipe 508 with the outlet facing the bottom of the processing barrel 501 is installed on the circumferential outer wall of a connecting box 507 connected with the communication pipe 510.

[0044] It should be noted that when the processing mechanism 5 is needed to be used, when the seepage water is transmitted into the processing barrel 501, it will be sprayed out through the through grooves 509 on the communication pipe 510, at the same time of spraying, the storage barrel 504 is started to convey the processing reagent corresponding to the requirement to the transfer box 502, through the design of the gas guide pipe 505, the gas or a small part of the seepage water can be guided into the transfer box 502, through the impact force when entering the transfer box 502, the processing reagent can be fully mixed, then the mixed processing reagent is discharged to the processing barrel 501 through the discharge pipe 506, so that the processing reagent and the seepage water are fully mixed, when the seepage water is sprayed out, the gas is sprayed out through the L-shaped pipe 508, so as to improve the mixing efficiency of the reagent and the seepage water, speed up the efficiency of processing the seepage water, and the heated gas can also be sprayed out according to the use requirement, so as to further improve the mixing reaction efficiency, and in order to improve the strength of the gas sprayed out by the L-shaped pipe 508, the third gas valve on the gas guide pipe 505 can be closed.

[0045] AsFigure 3 、 Figure 4 and Figure 10 As shown in FIG. 11, the outer wall of the top of the connecting box 507 is provided with a plurality of air guide pipes 505 connected with the transfer box 502, the outer wall of the air guide pipe 505 is provided with a third air valve, the outer wall of the communication pipe 510 is sleeved with a sleeve ring, the outer wall of the sleeve ring is provided with an air bag 511, the bottom outer wall of the air bag 511 is attached to the top outer wall of the bottom plate 512, the inner wall of the conveying pipe 401 is provided with a second liquid level sensor, the skeleton 103 is provided with a flow guide groove 105, the skeleton 103 is attached to the wall, and the bottom of one end is provided with a connecting groove matched with the connecting plate 102, the connecting groove is provided with a plug-in slot, and the connecting plate 102 is provided with a plug-in column 106 plugged into the plug-in slot.

[0046] It should be noted that when the water seepage in the processing barrel 501 slowly enters, the sleeve ring is driven to move upward by the air bag 511 through the action of buoyancy, and the sleeve ring is moved to block the through slot 509 through the buoyancy, so that the phenomenon of backflow of the water seepage being processed in the processing barrel 501 can be avoided, which is beneficial to use. The second liquid level sensor in the conveying pipe 401 can monitor the water seepage level in the conveying pipe 401, so as to determine whether to convey the water seepage according to the actual use requirement. Through the connecting groove, the plug-in slot and the plug-in column 106, the skeleton 103 can be conveniently installed on the connecting plate 102, and the installation and disassembly process is simple and fast.

[0047] Although the embodiments of the utility model have been shown and described, it can be understood by those skilled in the art that various changes, modifications, replacements and variations can be made to these embodiments without departing from the principles and spirits of the utility model, and the scope of the utility model is defined by the appended embodiments and their equivalents.

Claims

1. An intelligent water seepage collection and reuse device for a municipal pipeline gallery, comprising a collection mechanism (1) installed on the wall of the pipeline gallery, characterized in that: The bottom of the collecting mechanism (1) is provided with a concentrating mechanism (2) for collecting seepage water, the bottom of the concentrating mechanism (2) is provided with a conveying mechanism (4) for conveying seepage water, the conveying mechanism (4) is provided with a pressurizing mechanism (3), the seepage water is conveyed to the processing mechanism (5) for processing the seepage water through the conveying mechanism (4), the processed seepage water is conveyed to the water storage bin (7) through the water outlet pipe (6) after the processing mechanism (5) finishes processing the seepage water, the collecting mechanism (1) comprises a horizontal box (101), a notch is formed in the middle of the bottom inner wall of the horizontal box (101), inclined blocks (104) are arranged at both ends of the bottom inner wall of the horizontal box (101), the seepage water in the horizontal box (101) is guided into the notch through the inclined blocks (104), a connecting plate (102) is fixedly connected to the horizontal box (101), a detachable framework (103) is arranged on the connecting plate (102), a plurality of mounting plates are arranged on the framework (103), the framework (103) is mounted on the pipe gallery wall through the mounting plates, a plurality of horizontal columns (107) are arranged on the outer walls of both ends of the framework (103), a plurality of circular grooves (108) are formed in the horizontal columns (107), a melt-blown cloth (8) is melt-blown on the contour formed by the plurality of frameworks (103), the concentrating mechanism (2) comprises a collecting hopper (201) and a connecting pipe (202) arranged at the bottom of the collecting hopper (201), an anti-backflow assembly is arranged in the connecting pipe (202), a filtering assembly is arranged in the collecting hopper (201), an anti-overflow assembly is arranged between the horizontal box (101) and the connecting pipe (202), C-shaped blocks are arranged at both ends of the bottom outer wall of the horizontal box (101), strip blocks adapted to the C-shaped blocks are arranged at both ends of the outer wall of the collecting hopper (201), the melt-blown cloth (8) collects the seepage water of the pipe gallery wall, and the seepage water falls into the horizontal box (101) through the action of gravity.

2. The intelligent water seepage collection and reuse device for the municipal pipeline gallery according to claim 1, characterized in that: The filtering assembly comprises an insertion block (208) arranged in the collecting hopper (201), a trapezoidal groove (210) is formed at one end of the insertion block (208) inside the collecting hopper (201), a filter plate (211) is arranged at the bottom of the trapezoidal groove (210), a frame-shaped groove is formed at the top of the filter plate (211) in the insertion block (208), a square frame (212) is arranged in the frame-shaped groove, the insertion block (208) is hollow at one end of the outer wall inside the collecting hopper (201), the frame-shaped groove is communicated with the cavity, an extension assembly (213) is arranged on the top inner wall of the insertion block (208), the piston rod of the extension assembly (213) is fixedly connected to the square frame (212), and a detachable sealing cover (209) is arranged on the insertion block (208).

3. The intelligent water seepage collection and reuse device for a municipal conduit of claim 1, wherein: The backflow prevention assembly comprises vertical grooves opened in the inner walls on both sides of the connecting pipe (202), a vertical rod (217) installed between the top and bottom of the vertical grooves, a sliding block sleeved on the vertical rod (217), a sealing head (215) installed between the two sliding blocks, a spring (216) installed between the bottom inner wall of the vertical groove and the bottom outer wall of the sliding block and surrounding the vertical rod (217), a top ring (214) installed on the inner wall of the connecting pipe (202) at the top of the sealing head (215), a circular truncated cone groove opened in the inner wall of the top ring (214), the sealing head (215) being in the shape of a circular truncated cone corresponding to the circular truncated cone groove, and the sealing head (215) being lifted to the top ring (214) by the pressurizing mechanism (3) to complete the sealing of the connecting pipe (202).

4. The intelligent water seepage collection and reuse device for a municipal conduit of claim 1, wherein: The anti-overflow assembly comprises a first liquid level sensor (205) embeddedly installed on the inner wall of the middle part of the horizontal box (101), a flow guide pipe (203) installed on the connecting pipe (202), an installation groove opened in the middle part of the outer wall of the horizontal box (101), the flow guide pipe (203) being inserted into the installation groove, a sealing ring installed on the contact part of the flow guide pipe (203) and the installation groove, a first gas valve installed on the flow guide pipe (203), and a filter box (204) installed on the middle part of the flow guide pipe (203), an annular groove opened in the outer wall of the filter box (204), and a semicircular ring (207) inserted into the annular groove, a filter disc (206) installed on the inner wall of the semicircular ring (207).

5. The intelligent water seepage collection and reuse device for a municipal conduit of claim 1, wherein: The pressurizing mechanism (3) comprises a pressurizing box (301), a box cover installed on the pressurizing box (301), an air pump (302) installed on the box cover, a plurality of heat-resistant mounting bases (303) installed on the inner wall bottom and top of the pressurizing box (301), an electric heating wire (304) installed between the corresponding heat-resistant mounting bases (303) on the top and bottom, a gas delivery pipe (305) installed on the pressurizing box (301) and connected with the delivery mechanism (4), and a second gas valve installed on the gas delivery pipe (305).

6. The intelligent water seepage collection and reuse device for a municipal conduit of claim 1, wherein: The delivery mechanism (4) comprises a delivery pipe (401), the gas delivery pipe (305) and the connecting pipe (202) being connected with the delivery pipe (401), flanges (403) installed on the pipe openings of the delivery pipe (401), adjacent delivery pipes (401) being communicated through a connecting assembly, the connecting assembly comprising two connecting discs, a connecting hose (402) installed between the two connecting discs, and adjacent delivery pipes (401) being communicated through the connecting hose (402) through the cooperation of the flanges (403) and the connecting discs.

7. The intelligent water seepage collection and reuse device for a municipal conduit of claim 1, wherein: The processing mechanism (5) includes a processing barrel (501), a communication pipe (510) connected with the conveying pipe (401) is installed in the processing barrel (501), the L-shaped outer wall top of the communication pipe (510) is provided with a plurality of through grooves (509), the bottom inner wall of the processing barrel (501) is provided with a bottom plate (512), the top outer wall of the processing barrel (501) is provided with a top cover, the top cover is provided with a storage barrel (504), the bottom outer wall of the storage barrel (504) is provided with a discharging pipe, the discharging pipe is provided with a flowmeter valve (503), the bottom outer wall of the top cover is provided with a plurality of transfer boxes (502) corresponding to the storage barrel (504), the bottom outer wall of the transfer box (502) is provided with a discharging pipe (506), the discharging pipe (506) is provided with a control valve, the L-shaped top outer wall of the communication pipe (510) is provided with a connecting box (507) connected with the communication pipe (510), the circumferential outer wall of the connecting box (507) is provided with a plurality of L-shaped pipes (508) with the outlet ports facing the bottom of the processing barrel (501).

8. The intelligent water seepage collection and reuse device for a municipal conduit of claim 7, wherein: The top outer wall of the connecting box (507) is provided with a plurality of air guide pipes (505) connected with the transfer box (502), the air guide pipe (505) is provided with a third air valve, the outer wall of the communication pipe (510) is sleeved with a sleeve ring, the outer wall of the sleeve ring is provided with an air bag (511), the bottom outer wall of the air bag (511) is attached to the top outer wall of the bottom plate (512), the inner wall of the conveying pipe (401) is provided with a second liquid level sensor, the skeleton (103) is provided with a flow guide groove (105), the skeleton (103) is attached to the wall and the bottom of one end is provided with a connecting groove matched with the connecting plate (102), the connecting groove is provided with a plug-in groove, the connecting plate (102) is provided with a plug column (106) plugged into the plug-in groove.

Citation Information

Patent Citations

  • Green roof rainwater collection and utilization device and method

    CN117926975A