Movable intelligent pump station

By introducing filtration and conveying mechanisms into mobile smart pumping stations, the problem of reduced filtration efficiency caused by flexible waste entanglement has been solved, enabling intelligent waste separation and periodic output, and improving the operational stability and efficiency of the equipment.

CN223838183UActive Publication Date: 2026-01-27YIYANG SANMU ELECTRICAL APPLIANCE TECH CO LTD
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Patent Information

Application Number
CN202520161041.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-23
Publication Date
2026-01-27
Estimated Expiration
2035-01-23

AI Technical Summary

Technical Problem

During the pumping process, plastic bags and flexible waste can easily enter the specialized equipment of the mobile smart pump. Existing technologies cannot effectively solve the problem of flexible waste getting tangled on precision filter screens or grids, leading to a decrease in filtration efficiency.

Method used

A mobile smart pump station was designed, which includes a filtration mechanism and a conveying mechanism. The filtration mechanism realizes automatic separation and cleaning of waste through a conveyor belt assembly and drive rollers, while the conveying mechanism realizes the periodic output of waste through a screw shaft and a motor, preventing flexible waste from getting tangled.

Benefits of technology

It effectively prevents flexible waste from tangling, ensures filtration efficiency, realizes intelligent waste cleaning and output, and improves the operational stability and efficiency of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a mobile intelligent pump station, which relates to the technical field of mobile intelligent pump stations and comprises an outer box, an intelligent pump station body is fixedly arranged in the outer box, and a moving assembly convenient for moving the outer box is arranged at the bottom of the outer box. The intelligent pump station further comprises a filtering mechanism used for filtering water and a conveying mechanism used for outputting filtered garbage regularly, the input end of the intelligent pump station body is fixedly connected with a filtering box, and a water inlet is formed in one side of the filtering box. During use and when filtering is needed, the first motor is started to drive the group of driving rollers to rotate so as to drive the conveyor belt assembly to move, the conveyor belt assembly moves to drive all the transverse handrails to move, so that flexible garbage is conveyed to the lower end of the conveyor belt assembly at one end, and the shovel plate is inserted among the conveyor belt assembly, the transverse handrails and the garbage; therefore, the conveyor belt assembly and the transverse handrail are separated from the garbage.
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Description

Technical Field

[0001] This utility model relates to the field of mobile smart pumping station technology, specifically to a mobile smart pumping station. Background Technology

[0002] A mobile smart pumping station is a type of pumping station equipment that integrates modern mechatronics control concepts and intelligent technologies. It is not only portable and mobile, but also features remote monitoring, automatic control, and data analysis capabilities. Through its built-in intelligent system, the mobile smart pumping station can monitor the pumping station's operating status in real time and automatically adjust the pump's operation according to demand, achieving efficient and stable water supply.

[0003] Mobile smart pumping stations have built-in precision filters or grilles that can automatically intercept and collect impurities and debris in the water, effectively preventing solid waste and garbage from entering the water supply system and ensuring water quality safety.

[0004] The shortcomings of the existing technical solutions are that during the pumping operation, flexible waste such as plastic bags and rags are often sucked into the mobile smart pump station. This waste can easily cover and become entangled on the precision filter screen or grid, resulting in a significant decrease in filtration efficiency. Utility Model Content

[0005] The purpose of this utility model is to provide a mobile smart pumping station to solve the technical problem in the prior art where flexible debris may become entangled on the precision filter screen or grid during the pumping operation, thus affecting the filtration efficiency of the mobile smart pumping station.

[0006] The technical problem to be solved by this utility model can be achieved through the following technical solution:

[0007] A mobile smart pumping station includes an outer casing, inside which the smart pumping station body is fixedly installed. A movable component is located at the bottom of the outer casing to facilitate its movement. The device also includes a filtration mechanism for filtering water and a conveying mechanism for periodically outputting filtered waste. A filter box is fixedly connected to the input end of the smart pumping station body, and a water inlet is provided on one side of the filter box. The filtration mechanism includes conveyor belt assemblies and multiple sets of drive rollers rotatably connected to the inner cavity of the filter box. At least two sets of conveyor belt assemblies are provided, and all conveyor belt assemblies are fitted onto all drive rollers. Conveyor belts are located at both ends of the drive rollers. The conveyor belt components are respectively fitted to the inner walls on both sides of the filter box. Multiple sets of transverse rails serving a filtering function are fixedly connected at equal intervals between adjacent sets of conveyor belt components. A first drive component is fixedly installed on the filter box, and the output end of the first drive component is connected to a set of drive rollers. A collection box is fixedly connected to the bottom of the filter box, and the collection box is in communication with the filter box. The conveying mechanism includes a spiral shaft rotatably connected to the bottom of the collection box. A second drive component is fixedly installed on one side of the collection box, and the output end of the second drive component is connected to the spiral shaft. An opening and closing control component is installed on the other side of the collection box at a position corresponding to the spiral shaft.

[0008] As a further embodiment of this utility model: the conveyor belt assembly is provided in two sets and distributed at both ends of all the drive rollers, and longitudinal warp threads for connecting all the transverse rails are wound on multiple sets of the transverse rails.

[0009] As a further embodiment of this utility model: an upper baffle that cooperates with the upper end of the conveyor belt assembly is fixedly connected to the top of the filter box, and a shovel plate that cooperates with the conveyor belt assembly and the transverse railing is fixedly connected between the filter box and the collection box.

[0010] As a further embodiment of this utility model: the two side walls at the bottom of the collection box are inclined inward, and the bottom of the collection box is provided with an arc-shaped plate that cooperates with the spiral shaft.

[0011] As a further embodiment of this utility model: the opening and closing control component includes an output pipe fixedly connected to one side of the collection box, and an output valve for controlling the through state of the output pipe is provided on the output pipe.

[0012] As a further embodiment of this utility model: the first driving assembly includes a first motor fixedly connected to the filter box, and the output end of the first motor is coaxially fixedly connected to a set of driving rollers; the second driving assembly includes a second motor fixedly connected to the collection box, and the output end of the second motor is coaxially fixedly connected to the spiral shaft.

[0013] The beneficial effects of this utility model are:

[0014] 1. In use, when the pump station is started, the horizontal railings filter the water. Larger pieces of waste are blocked on one side of the horizontal railings and fall into the collection box under gravity. However, plastic bags, rags, or other flexible waste may cover the horizontal railings, affecting their filtration efficiency. At this time, the first motor starts, driving a set of drive rollers to rotate, which in turn drives the conveyor belt assembly. The movement of the conveyor belt assembly drives all the horizontal railings, transporting the flexible waste to the lower end of one end of the conveyor belt assembly. When the conveyor belt assembly and the horizontal railings move the waste to the shovel position, the shovel inserts between the conveyor belt assembly and the horizontal railings and the waste, thus separating the conveyor belt assembly and the horizontal railings from the waste. The front end of the shovel is equipped with a slope and blades to prevent flexible waste from getting tangled on the horizontal railings, thereby ensuring filtration efficiency.

[0015] 2. When using this utility model, after the pump station body stops, when it is necessary to output garbage, the output valve is opened to make the inside of the output pipe open. Then the second motor is started, and the second motor drives the spiral shaft to rotate, transporting the garbage that has fallen to the bottom of the collection box to the inside of the output pipe, thereby realizing the output of garbage. Attached Figure Description

[0016] The present invention will be further described below with reference to the accompanying drawings.

[0017] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0018] Figure 2 This is a schematic diagram of the overall longitudinal section structure of this utility model;

[0019] Figure 3 This is a schematic diagram of the filter mechanism of this utility model.

[0020] In the diagram: 1. Outer casing; 2. Pump station body; 3. Filter box; 4. Filtering mechanism; 401. First motor; 402. Drive roller; 403. Conveyor belt assembly; 404. Horizontal railing; 405. Longitudinal warp; 5. Collection box; 6. Moving assembly; 7. Conveying mechanism; 701. Second motor; 702. Screw shaft; 703. Output pipe; 704. Output valve; 8. Shovel plate; 9. Upper baffle. Detailed Implementation

[0021] 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 skilled in the art without creative effort are within the protection scope of the present utility model.

[0022] like Figures 1-3 As shown, a mobile smart pump station includes an outer casing 1, inside which a smart pump station body 2 is fixedly installed. A movable component 6 is provided at the bottom of the outer casing 1 to facilitate its movement. The movable component 6 may include front and rear wheels rotatably mounted at the bottom of the outer casing 1. A filter box 3 is fixedly connected to the input end of the smart pump station body 2. A water inlet is provided on one side of the filter box 3, which can be connected to a water pumping pipe. The device also includes a filter mechanism 4 for filtering water. The filter mechanism 4 includes a conveyor belt assembly 403 and multiple sets of drive rollers 402 rotatably connected to the inner cavity of the filter box 3. At least two sets of components 403 are provided. All conveyor belt assemblies 403 are fitted on all drive rollers 402. The conveyor belt assemblies 403 located at both ends of the drive rollers 402 are fitted with the inner walls on both sides of the filter box 3. Multiple sets of transverse rails 404 that serve a filtering function are fixedly connected at equal intervals between adjacent sets of conveyor belt assemblies 403. A first motor 401 is fixedly installed on the filter box 3. The output end of the first motor 401 is coaxially fixedly connected to a set of drive rollers 402. The first motor 401 drives a set of drive rollers 402 to rotate, thereby driving the conveyor belt assemblies 403 to move.

[0023] In this embodiment, four sets of drive rollers 402 are arranged in a parallelogram shape at the four corners. Two sets of conveyor belt assemblies 403 are arranged at both ends of all drive rollers 402. The first motor 401 drives the drive rollers 402 to rotate, thereby driving the conveyor belt assembly 403 to move. Each set of transverse rails 404 is wound with longitudinal warp threads 405 to connect all the transverse rails 404. The longitudinal warp threads 405 sequentially bind all the transverse rails 404. When a portion of the transverse rails 404 is impacted or compressed, the longitudinal warp threads 405 can stretch the rails, improving their impact resistance and simultaneously dividing the gaps between adjacent transverse rails 404, thereby improving the filtration effect.

[0024] The top of the filter box 3 is fixedly connected to an upper baffle 9 that cooperates with the upper end of the conveyor belt assembly 403 to prevent the water to be filtered from passing over the conveyor belt assembly 403. A shovel 8 that cooperates with the conveyor belt assembly 403 and the transverse railing 404 is fixedly connected between the filter box 3 and the collection box 5. The shovel 8 has a slope and a blade at the front end. The transverse railing 404 is a smooth cylindrical shape, which makes it easy to shovel off the flexible waste on the conveyor belt assembly 403 and the transverse railing 404.

[0025] A collection box 5 is fixedly connected to the bottom of the filter box 3. The collection box 5 and the filter box 3 are interconnected, allowing the filtered waste to fall into the collection box 5. A conveying mechanism 7 is installed on the collection box 5. The conveying mechanism 7 includes a spiral shaft 702 rotatably connected to the bottom of the collection box 5. A second motor 701 is fixedly installed on one side of the collection box 5. The output end of the second motor 701 is coaxially and fixedly connected to the spiral shaft 702. The second motor 701 drives the spiral shaft 702 to rotate, thereby realizing the transportation of waste.

[0026] An opening and closing control assembly is provided on the other side of the collection box 5, corresponding to the position of the screw shaft 702. The opening and closing control assembly includes an output pipe 703 fixedly connected to one side of the collection box 5, and an output valve 704 is provided on the output pipe 703 to control the through state of the output pipe 703. The two side walls at the bottom of the collection box 5 are inclined inward to facilitate the centralized processing of waste, and an arc-shaped plate is provided at the bottom of the collection box 5 to cooperate with the screw shaft 702, thereby facilitating the implementation of the screw shaft 702.

[0027] The first motor 401 can be set to start intermittently at regular intervals, or a flow rate monitoring device can be installed inside the filter box 3 to detect the blockage of the filter mechanism 4. When a slow flow rate is detected, the first motor 401 is started to clean up the debris, making it more intelligent to use.

[0028] To facilitate understanding of the embodiments of this solution by those skilled in the art, the working principle of the embodiments of this solution will now be explained in conjunction with specific application scenarios:

[0029] When in use, a water pumping pipe is connected to the filter box 3, and a delivery pipe is connected to the output end of the pump station body 2. When the pump station body 2 is started, the outside water will enter the water pumping pipe under the action of the pump station body 2, pass through the filter box 3 and enter the interior of the pump station body 2, and finally enter the interior of the delivery pipe from the output end of the pump station body 2, thus realizing the delivery of water resources.

[0030] When the pump station body 2 is started, the water can be filtered through the horizontal railing 404. Larger garbage is blocked on one side of the horizontal railing 404 and then falls into the collection box 5 under the action of gravity. Items such as plastic bags, rags, or other flexible waste may cover the horizontal railings 404, affecting their filtration efficiency. At this time, the first motor 401 starts, driving a set of drive rollers 402 to rotate. The rotation of these drive rollers 402 drives the conveyor belt assembly 403 to move, thereby driving all the remaining drive rollers 402 to rotate. The movement of the conveyor belt assembly 403 drives all the horizontal railings 404 to move, thus transporting the flexible waste to the lower end of one end of the conveyor belt assembly 403. When the conveyor belt assembly 403 and the horizontal railings 404 move the waste to the position of the shovel plate 8, the shovel plate 8 will insert between the conveyor belt assembly 403 and the horizontal railings 404 and the waste, thereby separating the conveyor belt assembly 403 and the horizontal railings 404 from the waste. The front end of the shovel plate 8 is provided with a slope and blades to prevent flexible waste from getting tangled on the horizontal railings 404.

[0031] After the pump station body 2 stops, when garbage needs to be discharged, the discharge valve 704 is opened, making the inside of the discharge pipe 703 open. Then, the second motor 701 is started, which drives the screw shaft 702 to rotate, transporting the garbage that has fallen to the bottom of the collection box 5 into the discharge pipe 703, thus realizing the discharge of garbage. It should be noted that the discharge valve 704 should not be opened when the pump station body 2 is started, so as to avoid backflow of water inside the discharge pipe 703, which could cause garbage to flow back.

[0032] The above description provides a detailed account of one embodiment of the present invention. However, this description is merely a preferred embodiment and should not be construed as limiting the scope of the present invention. All equivalent variations and improvements made within the scope of the claims of the present invention should still fall within the patent coverage of the present invention.

Claims

1. A mobile smart pumping station, comprising an outer casing (1), wherein a smart pumping station body (2) is fixedly installed inside the outer casing (1), and a movable component (6) for facilitating the movement of the outer casing (1) is provided at the bottom of the outer casing (1), characterized in that... It also includes: A filtration mechanism (4) for filtering water, wherein a filter box (3) is fixedly connected to the input end of the smart pump station body (2), and an inlet is provided on one side of the filter box (3). The filtration mechanism (4) includes a conveyor belt assembly (403) and multiple sets of drive rollers (402) rotatably connected to the inner cavity of the filter box (3). At least two sets of conveyor belt assemblies (403) are provided. All conveyor belt assemblies (403) are arranged on all drive rollers (402). The conveyor belt assemblies (403) located at both ends of the drive rollers (402) are respectively matched with the inner walls on both sides of the filter box (3). Multiple sets of horizontal railings (404) that play a filtering role are fixedly connected at equal intervals between two adjacent sets of conveyor belt assemblies (403). A first drive assembly is fixedly provided on the filter box (3). The output end of the first drive assembly is matched with a set of drive rollers (402). A conveying mechanism (7) for periodically outputting filtered waste. A collection box (5) is fixedly connected to the bottom of the filter box (3). The collection box (5) and the filter box (3) are interconnected. The conveying mechanism (7) includes a spiral shaft (702) rotatably connected to the bottom of the collection box (5). A second drive assembly is fixedly provided on one side of the collection box (5). The output end of the second drive assembly is connected to the spiral shaft (702). An opening and closing control assembly is provided on the other side of the collection box (5) at a position corresponding to the spiral shaft (702).

2. A mobile intelligent pumping station according to claim 1, characterized in that, The conveyor belt assembly (403) is provided in two sets and distributed at both ends of all drive rollers (402). The longitudinal warp (405) used to connect all the transverse rails (404) is wound on multiple sets of transverse rails (404).

3. A mobile intelligent pumping station according to claim 1, characterized in that, The filter box (3) is fixedly connected to the top of the filter box (3) and is fitted with an upper baffle (9) that cooperates with the upper end of the conveyor belt assembly (403). The filter box (3) and the collection box (5) are fixedly connected with a shovel plate (8) that cooperates with the conveyor belt assembly (403) and the horizontal railing (404).

4. A mobile intelligent pumping station according to claim 1, characterized in that, The bottom two side walls of the collection box (5) are inclined inward, and the bottom of the collection box (5) is provided with an arc-shaped plate that cooperates with the spiral shaft (702).

5. A mobile intelligent pumping station according to claim 1, characterized in that, The opening and closing control component includes an output pipe (703) fixedly connected to one side of the collection box (5), and an output valve (704) is provided on the output pipe (703) for controlling the through state of the output pipe (703).

6. A mobile intelligent pumping station according to claim 1, characterized in that, The first drive assembly includes a first motor (401) fixedly connected to the filter box (3), and the output end of the first motor (401) is coaxially fixedly connected to a set of drive rollers (402). The second drive assembly includes a second motor (701) fixedly connected to the collection box (5), and the output end of the second motor (701) is coaxially fixedly connected to the spiral shaft (702).