An intelligent river sewage outlet sewage interception and collection system based on an internet of things
The IoT-based intelligent river sewage outlet interception and collection system enables precise sewage classification and dynamic flow adjustment, solving the problems of low sewage treatment efficiency and resource waste in traditional systems, and improving the system's adaptability and operational efficiency.
Patent Information
- Application Number
- CN202411945160.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-27
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2044-12-27
AI Technical Summary
Traditional sewage interception and collection systems at river outfalls are rather crude in their sewage classification and treatment, failing to accurately distinguish between different types of sewage, resulting in low treatment efficiency and serious resource waste. At the same time, the system lacks adaptability in terms of time and cannot be flexibly adjusted according to changes in sewage flow at different times.
An intelligent river sewage interception and collection system based on the Internet of Things (IoT) is adopted, which includes a sewage classification module, a time peak judgment module, an interception and collection control module, and a remote monitoring and management module. Through IoT technology, the system enables accurate classification of sewage sources and dynamic adjustment of flow. Combined with time period division and remote monitoring and management, it optimizes resource utilization.
It enables precise classification and targeted treatment of wastewater, improves treatment efficiency, reduces resource waste, ensures efficient operation of the system at different times, and reduces environmental pollution.
Smart Images

Figure CN119909443B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of wastewater interception technology, specifically to an intelligent wastewater interception and collection system for river outfalls based on the Internet of Things. Background Technology
[0002] In today's era of rapid digital and intelligent development, Internet of Things (IoT) technology is gradually penetrating into various fields, bringing new opportunities for the efficient management and utilization of resources. At urban river sewage outlets, the effective interception and collection of sewage plays a key role in preventing water pollution and protecting the ecological environment.
[0003] In response, patent CN206751620U discloses an integrated domestic sewage collection and treatment system. By collecting and treating grey water and high-concentration sewage containing feces separately through vacuum collection units, the system simplifies the treatment process, makes it highly targeted, efficient, and has a large treatment capacity. It can effectively recover and reuse the substances generated after treatment. Furthermore, the system has a high degree of integration, a compact layout, a small footprint, and is easy to manage and maintain.
[0004] Currently, traditional sewage interception and collection systems for river outfalls have many limitations. On the one hand, their sewage classification and treatment is rather rudimentary, often failing to accurately distinguish between different types of sewage, leading to low treatment efficiency and significant resource waste. On the other hand, traditional systems lack adaptability in terms of time, unable to flexibly adjust to changes in sewage flow at different times.
[0005] To address the aforementioned issues, an intelligent sewage interception and collection system for river outfalls based on the Internet of Things is proposed. Summary of the Invention
[0006] The purpose of this invention is to provide an intelligent sewage interception and collection system for river outfalls based on the Internet of Things, which solves the problem of insufficient adaptability of sewage interception and collection systems in the background art.
[0007] To achieve the above objectives, the present invention provides the following technical solution: an intelligent river sewage outlet interception and collection system based on the Internet of Things, comprising:
[0008] Wastewater classification module, time peak judgment module, interception and collection control module, and remote monitoring and management module;
[0009] The Internet of Things (IoT) establishes a connection with the wastewater treatment plant information management system to obtain real-time marking information about the source of wastewater. The marking information is divided into domestic wastewater and mixed wastewater, where mixed wastewater refers to rainwater. The marking information is transmitted to the wastewater classification module of the intelligent river discharge outlet wastewater interception and collection system. Based on the wastewater source markings provided by the wastewater treatment plant, control commands are triggered according to the markings. The control commands send signals to control the opening and closing of valves.
[0010] The peak time determination module divides a day into four periods: morning peak, mid-peak, evening peak, and low-peak.
[0011] Formula for morning rush hour: ;
[0012] Formula for peak period: ;
[0013] Evening rush hour formula: ;
[0014] Low peak period formula: ;
[0015] The interception and collection control module adjusts the flow rate and efficiency of sewage collection, increasing sewage flow during peak periods, and adjusting the early peak sewage flow rate to... The sewage flow rate during peak hours was adjusted to The sewage flow rate during the evening peak hours will be adjusted to Wastewater flow adjustment during off-peak hours ;in ;
[0016] The remote monitoring and management module, the real-time monitoring peak judgment module for judging four time periods, and the real-time monitoring interception and collection module for adjusting traffic.
[0017] Preferably, the data in the wastewater classification module, time peak judgment module, interception and collection control module, and remote monitoring and management module are transmitted wirelessly to the terminal device via Internet of Things (IoT) technology.
[0018] Preferably, the wastewater classification module, the time peak judgment module, the interception and collection control module, and the remote monitoring and management module are installed on the intelligent river outlet wastewater interception and collection device;
[0019] The intelligent sewage interception and collection device for river outfalls includes a sewage interception and collection body. The top of the sewage interception and collection body is connected to an inlet pipe. An electromagnetic control valve is connected to the side of the inlet pipe away from the sewage interception and collection body. A valve core is embedded inside the electromagnetic control valve. A clean water tank is connected to the top of the sewage interception and collection body. A circulation pipe is connected to one side of the clean water tank, and a drain pipe is connected to the other side for discharging the purified sewage.
[0020] Preferably, a main control component is embedded inside the sewage interception and collection body. The main control component includes a collection cylinder installed inside the sewage interception and collection body. An impeller is also installed inside the collection cylinder. An outlet is installed on one side of the bottom of the collection cylinder. A transmission belt is sleeved on one end of the impeller. A cover is installed on the inner wall of the sewage interception and collection body. The cover covers the outside of the transmission belt. A connecting rod is connected to the inner wall of the cover. A roller is connected to one end of the connecting rod. The roller and the impeller are connected by a transmission belt. The rotation of the impeller drives the connecting rod and the roller to rotate through the transmission belt.
[0021] Preferably, the rollers are provided in two sets, one set of rollers is connected to the connecting rod, and the other set of rollers is connected to the collecting body. The outer surfaces of the two sets of rollers are also equipped with a propulsion belt, and the outer surface of the propulsion belt is also provided with boosting protrusions. The propulsion belt and boosting protrusions are used to guide impurities in the sewage.
[0022] Preferably, a conveyor belt is also installed inside the sewage interception and collection body. The conveyor belt is inclined inside the sewage interception and collection body, with the side of the conveyor belt closer to the outlet being lower. The conveyor belt extends through the interior of the sewage interception and collection body to the exterior of the sewage interception and collection body.
[0023] Preferably, a trapping component is fixedly connected to the outer surface of the conveyor belt. The trapping component includes a guide plate, which is installed on the outer surface of the conveyor belt. A trapping plate is installed at the top of the guide plate. A guide groove and a sliding groove are formed on the trapping plate, and a push rod is embedded inside the sliding groove.
[0024] Preferably, the guide plate and the intercepting plate are rotatably connected, and a torsion spring for resetting the intercepting plate is provided at the connection.
[0025] Preferably, the guide grooves are distributed laterally on the intercepting plate, the sliding grooves are distributed longitudinally on the intercepting plate, and the push rod is embedded in the sliding groove and slidably connected.
[0026] Preferably, the upper surface of the guide plate is inclined, and impurities in the sewage are intercepted and collected by the guide plate and the interception plate.
[0027] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0028] 1. This invention provides an intelligent sewage interception and collection system for river outfalls based on the Internet of Things (IoT). By connecting with the sewage treatment plant information management system through the IoT, it achieves accurate sewage classification and targeted treatment. The main control component in the sewage interception and collection device operates according to the sewage flow rate to achieve efficient interception and purification. The interception component enhances the ability to capture and treat impurities. The time peak judgment module divides the time period, and the interception and collection control module intelligently adjusts the flow rate to optimize resource utilization. Furthermore, the data from each module is wirelessly transmitted to the terminal device via the IoT, facilitating remote monitoring and management, effectively improving treatment efficiency, reducing pollution, and ensuring efficient system operation. Attached Figure Description
[0029] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0030] Figure 2 This is a schematic diagram of the circulating pipe and the purified water tank of the present invention;
[0031] Figure 3 This is a schematic diagram of the internal structure of the wastewater interception and collection unit of the present invention;
[0032] Figure 4 This is a schematic diagram of the propulsion belt and booster protrusions of the present invention;
[0033] Figure 5 This is a schematic diagram of the structure of the cover and connecting rod of the present invention;
[0034] Figure 6 This is a frontal cross-sectional view of the present invention.
[0035] Figure 7 This is a schematic diagram of the structure of the intercepting plate and the guide channel of the present invention;
[0036] Figure 8 This is a schematic diagram of the flow guide groove and sliding groove of the present invention;
[0037] Figure 9 This is a schematic diagram of the structure of the guide plate and sliding groove of the present invention.
[0038] In the diagram: 11. Wastewater interception and collection unit; 12. Inlet pipe; 13. Electromagnetic control valve; 14. Valve core; 15. Circulation pipe; 16. Clean water tank; 2. Main control component; 21. Collector cylinder; 22. Impeller; 23. Outlet; 24. Propulsion belt; 25. Boosting protrusion; 26. Conveyor belt; 27. Cover; 28. Connecting rod; 29. Roller; 3. Interception component; 31. Guide plate; 32. Interception plate; 33. Guide channel; 34. Sliding channel; 35. Push rod; 36. Drive belt. Detailed Implementation
[0039] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0040] To further understand the content of this invention, a detailed description of the invention will be provided in conjunction with the accompanying drawings.
[0041] Combination Figures 1-9 The present invention provides an intelligent river sewage outlet interception and collection system based on the Internet of Things, comprising:
[0042] Wastewater classification module, time peak judgment module, interception and collection control module, and remote monitoring and management module;
[0043] Data from the wastewater classification module, peak time judgment module, interception and collection control module, and remote monitoring and management module are rapidly transmitted wirelessly to terminal devices using Internet of Things (IoT) technology.
[0044] The Internet of Things (IoT) establishes a connection with the wastewater treatment plant information management system to obtain real-time marking information about the source of wastewater. The marking information is divided into domestic wastewater and mixed wastewater, where mixed wastewater refers to rainwater. The marking information is transmitted to the wastewater classification module of the intelligent river discharge outlet wastewater interception and collection system. Based on the wastewater source markings provided by the wastewater treatment plant, control commands are triggered according to the markings. The control commands send signals to control the opening and closing of valves.
[0045] The peak time determination module divides a day into four periods: morning peak, mid-peak, evening peak, and low-peak.
[0046] Formula for morning rush hour: ;
[0047] Formula for peak period: ;
[0048] Evening rush hour formula: ;
[0049] Low peak period formula: ;
[0050] The interception and collection control module adjusts the flow rate and efficiency of sewage collection, increasing sewage flow during peak periods, and adjusting the early peak sewage flow rate to... The sewage flow rate during peak hours was adjusted to The sewage flow rate during the evening peak hours will be adjusted to Wastewater flow adjustment during off-peak hours ;in ;
[0051] The remote monitoring and management module, the real-time monitoring peak judgment module for four time periods, and the real-time monitoring interception and collection module for flow adjustment ensure that sewage can be effectively intercepted and collected at different times, while avoiding waste of resources.
[0052] Data from the wastewater classification module, peak time judgment module, interception and collection control module, and remote monitoring and management module are rapidly transmitted wirelessly to terminal devices via IoT technology. This allows managers to access system operation information anytime, anywhere, enabling remote monitoring and management. Simultaneously, the application of IoT technology improves data transmission speed and accuracy, providing strong support for the system's efficient operation. Through connection with the wastewater treatment plant information management system, accurate wastewater classification is achieved, providing targeted treatment solutions for different types of wastewater. When treating domestic sewage, it is transported through pipelines to the corresponding intelligent river discharge outlet wastewater interception and collection device for purification. When mixed wastewater, i.e., rainwater, needs treatment, a separate intelligent river discharge outlet wastewater interception and collection device is used. Because domestic sewage and mixed wastewater differ in type, using more targeted intelligent river discharge outlet wastewater interception and collection devices results in higher treatment efficiency.
[0053] The system is adjusted according to the characteristics of sewage flow at different times to improve the treatment efficiency and energy utilization. In addition, the interception and collection control module ensures that sewage can be effectively intercepted and collected under different conditions, reducing environmental pollution.
[0054] The wastewater classification module, the time peak judgment module, the interception and collection control module, and the remote monitoring and management module are installed on the intelligent river sewage outlet wastewater interception and collection device;
[0055] The intelligent sewage interception and collection device for river outfalls includes a sewage interception and collection body 11. An inlet pipe 12 is connected to the top of the sewage interception and collection body 11. An electromagnetic control valve 13 is connected to the side of the inlet pipe 12 away from the sewage interception and collection body 11. A valve core 14 is embedded inside the electromagnetic control valve 13. A clean water tank 16 is connected to the top of the sewage interception and collection body 11. A circulation pipe 15 is connected to one side of the clean water tank 16, and a water pump is installed on the circulation pipe 15. A drain pipe is connected to the other side for discharging the purified sewage. In the sewage interception and purification process, the sewage is transported to the inside of the collection cylinder 21 through the electromagnetic control valve 13 and the inlet pipe 12. After being purified through multiple layers of circulation inside the sewage interception and collection body 11, it is finally transported to the inside of the clean water tank 16 through the circulation pipe 15. After further purification, it is finally discharged through the drain pipe.
[0056] In the wastewater interception and collection process, wastewater is transported to the inside of the collection cylinder 21 through the inlet pipe 12. When the valve core 14 installed inside the solenoid control valve 13 blocks the inlet pipe 12, the wastewater cannot be transported to the inside of the collection cylinder 21 through the inlet pipe 12. When the valve core 14 and the inlet pipe 12 are misaligned, the wastewater will then be transported to the inside of the collection cylinder 21 through the inlet pipe 12. After impurities in the wastewater are intercepted, water purification is achieved. The specific operation is as follows:
[0057] The main control component 2 is embedded inside the sewage interception and collection body 11. The main control component 2 includes a collection cylinder 21, which is installed inside the sewage interception and collection body 11. An impeller 22 is also installed inside the collection cylinder 21. An outlet 23 is installed on one side of the bottom of the collection cylinder 21. A drive belt 36 is sleeved on one end of the impeller 22. A conveyor belt 26 is also installed inside the sewage interception and collection body 11. The conveyor belt 26 is inclined inside the sewage interception and collection body 11, with the side of the conveyor belt 26 closer to the outlet 23 being lower. The conveyor belt 26 extends through the interior of the sewage interception and collection body 11 to the exterior. The wastewater interception and collection unit 11 has a cover 27 installed on its inner wall. The cover 27 is wrapped around the outside of the transmission belt 36. The inner wall of the cover 27 is connected to a connecting rod 28. One end of the connecting rod 28 is connected to a roller 29. The roller 29 and the impeller 22 are connected by the transmission belt 36. There are two sets of rollers 29. One set of rollers 29 is connected to the connecting rod 28, and the other set of rollers 29 is connected to the collection unit 11. The outer surface of the two rollers 29 is also equipped with a propulsion belt 24. The outer surface of the propulsion belt 24 is also equipped with a booster protrusion 25. The propulsion belt 24 and the booster protrusion 25 are used to guide impurities in the wastewater.
[0058] When sewage from the inlet pipe 12 flows into the collector cylinder 21, a large flow rate, especially during peak water usage, leads to increased sewage production. Consequently, the water flow velocity inside the inlet pipe 12 becomes more turbulent, resulting in a greater force on the impeller 22 and a higher rotation frequency. The impeller 22's rotation drives the drive belt 36, which in turn drives the connecting rod 28 and roller 29. The roller 29's rotation then drives the propulsion belt 24, which in turn provides a boosting effect. Impurities in the water are separated, thus cutting off impurities in the water flow and filtering the water. In addition, the rotation direction of the propulsion belt 24 is consistent with the direction of water flow. When sewage is poured into the inside of the collection cylinder 21, the sewage washes the impeller 22 and finally flows out through the outlet 23. Due to the setting of the installation position of the outlet 23, the water level gradually rises after the sewage is poured into the inside of the collection cylinder 21. When it rises to the outlet 23, it is discharged by overflow. This ensures that the direction of water flow is consistent. The water flows out and is finally separated by the conveyor belt 26 and the propulsion belt 24.
[0059] The conveyor belt 26 is inclined, with the lower side submerged in the water. As the conveyor belt 26 rotates, it can be used to retrieve impurities from the water. When the impurities are retrieved to the surface of the conveyor belt 26, they are transported out of the wastewater interception and collection body 11 by the conveyor belt 26. Due to the inclined design of the conveyor belt 26, the higher side is closer to the push belt 24. This creates an opening-like design between the push belt 24 and the conveyor belt 26, which can better capture impurities. To separate impurities from the water, both the push belt 24 and the conveyor belt 26 have filter holes on their surfaces. The push belt 24 rotates in the same direction as the water flow, promoting the forward movement of impurities. The conveyor belt 26 also retrieves the impurities from the water. As the distance between the push belt 24 and the conveyor belt 26 decreases, the impurities can be clamped, rotated, and transported out of the wastewater interception and collection body 11.
[0060] The outer surface of the conveyor belt 26 is fixedly connected to the interception component 3, which includes a guide plate 31. The top of the guide plate 31 is equipped with an interception plate 32. The upper surface of the guide plate 31 is inclined. Impurities in the sewage are intercepted and collected through the guide plate 31 and the interception plate 32. The interception plate 32 is provided with a guide groove 33 and a sliding groove 34. A push rod 35 is embedded in the sliding groove 34. The guide plate 31 and the interception plate 32 are rotatably connected. A torsion spring for resetting the interception plate 32 is provided at the connection. The guide groove 33 is distributed laterally on the interception plate 32, and the sliding groove 34 is distributed longitudinally on the interception plate 32. The push rod 35 is embedded in the sliding groove 34 and slidably connected.
[0061] To improve the capture of impurities in the water, a trapping component 3 is installed. When sewage is discharged from the inside of the outlet 23, it will wash onto the trapping plate 32. At this time, the trapping plate 32 can filter the impurities in the sewage. In order to avoid the trapping plate 32 from becoming blocked and affecting the flow of sewage, when blockage occurs, the effect of removing impurities through the guide channel 33 will also be reduced. This is because the permeability is reduced, and the separation of impurities and sewage cannot be achieved. The flow effect of sewage through the guide channel 33 will be poor, and the impact force of sewage hitting the trapping plate 32 will increase. Under the strong impact of the water flow, the trapping plate 32 will be knocked over. At this point, the impurities that were previously filtered out by the intercepting plate 32 will separate from the intercepting plate 32 under the impact of the water flow. The separated impurities will be pushed in the direction of the water flow under the impact of the water flow, so that the impurities can always move in the direction of the water flow. When the impurities are separated from the intercepting plate 32, they will be reset under the action of the torsion spring. That is, when the intercepting plate 32 is reset, the impurities can be blocked by the intercepting plate 32 and prevent backflow. As the intercepting plate 32 continues to advance, this cycle is repeated to remove impurities.
[0062] In order to further separate the impurities from the guide channel 33, after the guide channel 33 tilts, the water flow impacts the push rod 35, causing the push rod 35 to move inside the sliding channel 34. After moving, the push rod 35 will push the impurities, which plays an auxiliary role in detachment.
[0063] In summary, when the sewage flow rate is large, the rotation speed of the propulsion belt 24 will increase. As the rotation speed increases, the interception and treatment of impurities in the sewage can be accelerated. When the sewage flow rate is small, the propulsion belt 24 rotates slowly, and the interception speed is reduced. This allows for more precise interception. By setting different interception speeds under different conditions, the flexibility of the device is greatly improved.
[0064] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0065] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A smart river sewage outlet interception and collection system based on the Internet of Things, characterized in that, include: Wastewater classification module, time peak judgment module, interception and collection control module, and remote monitoring and management module; The Internet of Things (IoT) establishes a connection with the wastewater treatment plant information management system to obtain real-time marking information about the source of wastewater. The marking information is divided into domestic wastewater and mixed wastewater, where mixed wastewater refers to rainwater. The marking information is transmitted to the wastewater classification module of the intelligent river discharge outlet wastewater interception and collection system. Based on the wastewater source markings provided by the wastewater treatment plant, control commands are triggered according to the markings. The control commands send signals to control the opening and closing of valves. The peak time determination module divides a day into four periods: morning peak, mid-peak, evening peak, and low-peak. Formula for morning rush hour: ; Formula for peak period: ; Evening rush hour formula: ; Low peak period formula: ; The interception and collection control module adjusts the flow rate and efficiency of sewage collection, increasing sewage flow during peak periods, and adjusting the early peak sewage flow rate to... The sewage flow rate during peak hours was adjusted to The sewage flow rate during the evening peak hours will be adjusted to Wastewater flow adjustment during off-peak hours ;in ; The remote monitoring and management module, the real-time monitoring peak judgment module for the four time periods, and the real-time monitoring interception and collection module for traffic adjustment; The wastewater classification module, time peak judgment module, interception and collection control module, and remote monitoring and management module are installed on the intelligent river sewage outlet wastewater interception and collection device. The intelligent sewage interception and collection device for river outlets includes a sewage interception and collection body (11), and a conveyor belt (26) is installed inside the sewage interception and collection body (11). An interception component (3) is fixedly connected to the outer surface of the conveyor belt (26). The interception component (3) includes a guide plate (31), which is installed on the outer surface of the conveyor belt (26). An interception plate (32) is installed at the top of the guide plate (31). A guide groove (33) and a sliding groove (34) are provided on the interception plate (32). A push rod (35) is embedded inside the sliding groove (34). The guide plate (31) and the intercepting plate (32) are rotatably connected, and a torsion spring for resetting the intercepting plate (32) is provided at the connection.
2. The intelligent river sewage outlet interception and collection system based on the Internet of Things as described in claim 1, characterized in that: The data from the wastewater classification module, time peak judgment module, interception and collection control module, and remote monitoring and management module are transmitted wirelessly to the terminal device via Internet of Things (IoT) technology.
3. The intelligent river sewage outlet interception and collection system based on the Internet of Things as described in claim 1, characterized in that: The top of the sewage interception and collection body (11) is connected to an inlet pipe (12). An electromagnetic control valve (13) is connected to the side of the inlet pipe (12) away from the sewage interception and collection body (11). A valve core (14) is embedded inside the electromagnetic control valve (13). A clean water tank (16) is connected to the top of the sewage interception and collection body (11). A circulation pipe (15) is connected to one side of the clean water tank (16), and a drain pipe is connected to the other side for discharging the purified sewage.
4. The intelligent river sewage outlet interception and collection system based on the Internet of Things as described in claim 3, characterized in that: The sewage interception and collection machine (11) has a main control component (2) embedded inside. The main control component (2) includes a collection cylinder (21), which is installed inside the sewage interception and collection machine (11). An impeller (22) is also installed inside the collection cylinder (21). A water outlet (23) is installed on one side of the bottom end of the collection cylinder (21). A transmission belt (36) is sleeved on one end of the impeller (22). A cover (27) is installed on the inner wall of the sewage interception and collection machine (11). The cover (27) is wrapped around the outside of the transmission belt (36). A connecting rod (28) is connected to the inner wall of the cover (27). A roller (29) is connected to one end of the connecting rod (28). The roller (29) and the impeller (22) are connected by the transmission belt (36). The rotation of the impeller (22) drives the connecting rod (28) and the roller (29) to rotate through the transmission belt (36).
5. The intelligent river sewage outlet interception and collection system based on the Internet of Things according to claim 4, characterized in that: The rollers (29) are provided in two sets. One set of rollers (29) is connected to the connecting rod (28), and the other set of rollers (29) is connected to the collecting body (11). The outer surfaces of the two sets of rollers (29) are also equipped with a propulsion belt (24). The outer surface of the propulsion belt (24) is also provided with a boosting protrusion (25). The propulsion belt (24) and the boosting protrusion (25) are used to guide impurities in the sewage.
6. The intelligent river sewage outlet interception and collection system based on the Internet of Things according to claim 1, characterized in that: The conveyor belt (26) is inclined inside the sewage interception and collection body (11). The side of the conveyor belt (26) closer to the outlet (23) is lower. The conveyor belt (26) extends through the interior of the sewage interception and collection body (11) to the exterior of the sewage interception and collection body (11).
7. The intelligent river sewage outlet interception and collection system based on the Internet of Things according to claim 1, characterized in that: The guide groove (33) is distributed laterally on the intercepting plate (32), the sliding groove (34) is distributed longitudinally on the intercepting plate (32), and the push rod (35) is embedded in the sliding groove (34) and slidably connected.
8. The intelligent river sewage outlet interception and collection system based on the Internet of Things according to claim 1, characterized in that: The upper surface of the guide plate (31) is inclined, and impurities in the sewage are intercepted and collected through the guide plate (31) and the interception plate (32).
Citation Information
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