Pouring opening for realizing sewage diversion
By designing a pouring port that includes a pulverizing module, a filter diversion box, and a filter cover, the problem of sewage and rainwater mixing and entering the sewer system is solved, achieving sewage diversion, reducing river pollution, lowering treatment difficulty, saving energy, and automatically preventing blockages.
Patent Information
- Application Number
- CN202511209768.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-27
- Publication Date
- 2025-11-18
AI Technical Summary
The existing sewage dumping outlets are directly connected to the rainwater dumping outlets, causing sewage and rainwater to mix and enter the sewer system, resulting in river pollution. The treatment costs are high and the results are poor.
Design a pouring port that includes a crushing module, a filter diversion box, and a filter cover. The crushing module crushes sewage impurities, the filter cover rotates to filter, and the sewage is diverted to clean water and sewage pipes. The power generation module recovers the potential energy of the sewage to power the automatic cleaning and unblocking of the pipes.
It achieves the separation of sewage and rainwater, reduces river pollution, lowers treatment difficulty, saves energy, automates to prevent blockage, and ensures normal sewage discharge.
Smart Images

Figure CN120968068A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of drainage system technology, and in particular relates to a dumping outlet for achieving sewage diversion. Background Technology
[0002] As an important measure to improve the quality of the urban environment, the treatment of urban black and odorous water bodies has been accelerated. At present, some progress has been made in the treatment, but there are still problems such as the lack of environmental infrastructure construction and the instability of treatment results. In particular, the drainage in key non-point source areas is not standardized and there is a lack of facilities for collecting and dumping sewage.
[0003] Many existing sewage and rainwater dumping outlets are directly connected to pipes. During the rainy season, large amounts of sewage and rainwater mix together and enter the sewer system, eventually flowing into rivers. This not only causes significant environmental pollution to rivers but also results in incomplete sewage treatment, high subsequent treatment costs, and poor treatment effectiveness. Summary of the Invention
[0004] In view of the shortcomings of the prior art described above, the purpose of this invention is to provide a sewage diversion outlet to solve the problems existing in the background art.
[0005] To achieve the above and other related objectives, the present invention provides a wastewater diversion outlet, comprising a pouring trough with a wastewater inlet; a pulverizing module disposed below the pouring trough and connected to it, the pulverizing module being used to pulverize impurities in the wastewater; a filter diversion box connected to the pulverizing module via a first pipe; and a filter cover rotatably disposed within the filter box, the filter cover preventing pulverized impurity particles from passing through, and the bottom of the filter cover being flush with the filter diversion box. The inner bottom wall is in contact with each other, and the space enclosed by the filter cover forms a filtration zone, while the outer space of the filter cover forms a non-filtration zone; a first driving device is connected to the filter cover and can drive the filter cover to rotate; a second pipe has one end connected to the filter diversion box and located within the filtration zone, and the other end connected to the clean water drainage pipe; a third pipe has one end connected to the filter diversion box and located within the non-filtration zone, and the other end connected to the sewage drainage pipe.
[0006] Furthermore, the crushing module includes a mounting groove, in which a crushing blade roller is rotatably mounted. One end of the crushing blade roller is rotatably connected to the first end of the mounting groove, and the second end of the mounting groove is provided with a second driving device. The other end of the crushing blade roller is drivenly connected to the second driving device, and the second driving device can drive the crushing blade roller to rotate.
[0007] Furthermore, the second driving device includes a reduction gearbox and a second drive motor that is drivenly connected to the reduction gearbox, and the other end of the crushing roller is drivenly connected to the reduction gearbox.
[0008] Furthermore, the filter cover is conical in shape, and a connecting shaft is provided at the top of the filter cover; the first driving device is disposed at the top of the filter diversion box, the connecting shaft is rotatably connected to the top plate of the filter diversion box, and protrudes from the top plate of the filter diversion box and is connected to the first driving device.
[0009] Furthermore, the filter cover is provided with a plurality of filter holes, the diameter of which is 1mm to 3mm.
[0010] Furthermore, the clean water drainage pipe is provided with two on / off valves spaced apart, and a fourth pipe is provided on the clean water drainage pipe. One end of the fourth pipe is connected to the clean water drainage pipe and is located between the two on / off valves. The other end of the fourth pipe is connected to a centrifugal pump. The centrifugal pump is provided with a first spray pipe and a second spray pipe. Both the first spray pipe and the second spray pipe extend into the sewage drainage pipe, and the outlet of the first spray pipe faces the opposite direction to the outlet of the second spray pipe.
[0011] Furthermore, a liquid level sensor is installed inside the sewage drainage pipe, and the liquid level sensor, the centrifugal pump, and the two on / off valves are all electrically connected to the control unit.
[0012] Furthermore, it also includes a power generation module, which is disposed between the tilting trough and the crushing module. The power generation module includes a drainage trough, the upper end of which is connected to the tilting trough, and the lower end of which is connected to the crushing module through a fifth pipe. Multiple blade rollers are rotatably arranged inside the drainage trough, and the multiple blade rollers are evenly spaced in the vertical direction. Multiple left generator sets are arranged inside the left side plate of the drainage trough, and multiple right generator sets are arranged inside the right side plate of the drainage trough. One end of each of the multiple blade rollers is connected to a corresponding left generator set, and the other end of each of the multiple blade rollers is connected to a corresponding right generator set. The left and right generator sets are electrically connected to the first drive device.
[0013] Furthermore, overflow pipes are provided at the top of both the left and right sides of the pouring trough. The first end of the overflow pipe is connected to the pouring trough, and the first end of the overflow pipe is provided with a filter screen. The other end of the overflow pipe is connected to the clean water drainage pipe.
[0014] Furthermore, the top of the pouring trough is provided with a top cover, and the top cover is provided with the sewage inlet.
[0015] As described above, the wastewater diversion outlet of the present invention has the following beneficial effects: The wastewater diversion outlet of the present invention first uses a crushing module to crush impurities in the wastewater, thereby achieving the purpose of breaking down the impurities in the wastewater and preventing the subsequent blockage of the wastewater drainage pipe. Then, the wastewater can be filtered using a filter cover. The rotation of the filter cover can prevent the filter cover from becoming blocked, and it can also allow some of the wastewater mixed with crushed impurity particles to enter the wastewater drainage pipe. This not only reduces the difficulty of wastewater treatment at the wastewater treatment plant, but also avoids excessive wastewater flowing into rivers, causing river pollution and affecting the ecological environment. Attached Figure Description
[0016] Figure 1 The diagram shown is a structural schematic of the sewage diversion outlet provided by the present invention.
[0017] Figure 2 The diagram shown is a structural schematic of the pulverizing module provided by the present invention.
[0018] Figure 3 The diagram shown is a structural schematic of the filter cover provided by the present invention.
[0019] Figure 4 The diagram shown is a structural schematic of the power generation module provided by the present invention.
[0020] Figure 5 The diagram shown is a structural schematic of the top cover provided by the present invention.
[0021] Figure 6 The diagram shows the usage status of the sewage diversion outlet provided by the present invention.
[0022] Explanation of reference numerals in the attached figures
[0023] 10. Tilting spout 11. Top cover
[0024] 101 Sewage inlet 102 Overflow pipe
[0025] 1021 Filter screen 20 Crushing module
[0026] 21 Mounting slot 22 Crushing roller
[0027] 23 Second drive unit 231 Gearbox
[0028] 232 Second drive motor 30 Filter distribution box
[0029] 301 Non-filtered area; 302 Second pipeline
[0030] 303 Third Pipe 40 Filter Cover
[0031] 401 Filtering Zone 41 Connecting Shaft
[0032] 42 filter holes 50 first drive motor
[0033] 60 Power generation module 61 Drainage trough
[0034] 610 Fifth Pipeline; 611 Left Side Plate
[0035] 612 Right side plate 62 Blade roller
[0036] 70 Centrifugal pump 701 First spray pipe
[0037] 702 Second water spray pipe 100 Clean water drainage pipe
[0038] 1001 On / off valve 1002 Fourth pipeline
[0039] 200 Sewage drainage pipe; 2001 Liquid level sensor Detailed Implementation
[0040] The following specific examples illustrate the implementation of the present invention. Those skilled in the art can easily understand other advantages and effects of the present invention from the content disclosed in this specification. The present invention can also be implemented or applied through other different specific embodiments, and various details in this specification can also be modified or changed based on different viewpoints and applications without departing from the spirit of the present invention.
[0041] In the description of this invention, it should be noted that, unless otherwise specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or a connection through an intermediate medium; and they can refer to the internal communication between two components. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0042] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., used to indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, are used only for the convenience of describing the invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the invention. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0043] Please see Figures 1 to 6 It should be noted that the illustrations provided in this embodiment are only schematic representations of the basic concept of the present invention. Therefore, the drawings only show the components related to the present invention and are not drawn according to the actual number, shape and size of the components in the actual implementation. In the actual implementation, the form, quantity and proportion of each component can be arbitrarily changed, and the layout of the components may also be more complex.
[0044] This invention provides a wastewater diversion outlet, such as... Figure 1 As shown, the wastewater diversion outlet includes a pouring trough 10 with a wastewater inlet 101. A pulverizing module 20 is located below the pouring trough 10 and is connected to it. The pulverizing module 20 is used to pulverize impurities in the wastewater. The pulverizing module 20 is connected to a filter diversion box 30 via a first pipe 201. A filter cover 40 is rotatably mounted inside the filter diversion box 30. The filter cover 40 prevents pulverized impurity particles from passing through. The bottom of the filter cover 40 is in contact with the bottom wall inside the filter diversion box 30. The space enclosed by the filter cover 40 forms a filtration zone 401, and the external space of the filter cover 40 forms a... In the non-filtration zone 301, the filter cover 40 is connected to the first driving device, which can drive the filter cover 40 to rotate. Specifically, a second pipe 302 is provided on the filter diversion box 30. One end of the second pipe 302 is connected to the filter diversion box 30 and is located in the filtration zone 401. The other end of the second pipe 302 is connected to the clean water drainage pipe 100. A third pipe 303 is also provided on the filter diversion box 30. One end of the third pipe 303 is connected to the filter diversion box 30 and is located in the non-filtration zone 301. The other end of the third pipe 303 is connected to the sewage drainage pipe 200.
[0045] The beneficial effects of the wastewater diversion outlet of this invention are as follows: When in use, such as... Figure 6As shown, the pouring port can be set at each drain outlet. Sewage enters the pouring trough 10 through the sewage inlet 101 and then flows into the crushing module 20 below. The crushing module 20 can crush impurities (such as leaves, garbage, etc.) in the sewage to prevent impurities from flowing into the sewage drain pipe 200 and causing blockage. The crushed sewage flows through the first pipe 201 into the filter distribution box 30 and is then filtered by the filter cover 40 in the filter distribution box 30. Since the filter cover 40 cannot allow the crushed impurity particles to pass through, the filter cover 40 needs to be driven to rotate by the first driving device when filtering sewage. The rotation of the filter cover 40 can prevent the crushed impurity particles from sticking to the filter cover 40, thereby preventing the crushed impurity particles in the sewage from being removed. The filter cover 40 is clogged by particles. At the same time, the rotation of the filter cover 40 also prevents some sewage from passing through the filter cover 40 during the filtration process (the rotation of the filter cover 40 will throw the sewage outward, thus throwing some sewage to the surrounding areas, i.e., the non-filtration zone). The mixed and crushed impurities remain in the non-filtration zone. Therefore, after being filtered by the filter cover 40, a portion of the sewage without impurities passes through the filter cover 40 and enters the filtration zone 401. Then, it is discharged into the clean water drainage pipe 100 through the second pipe 302. Finally, it is discharged into the river along with rainwater through the clean water drainage pipe 100. The other portion of the sewage mixed with crushed impurities remains in the non-filtration zone 301. Then, it is discharged into the sewage drainage pipe 200 through the third pipe 303. Finally, it is sent to the sewage treatment plant for treatment through the sewage drainage pipe 200. In summary, compared with the prior art, the wastewater diversion outlet of the present invention first uses a crushing module to crush impurities in the wastewater, thereby achieving the purpose of breaking down the impurities in the wastewater and preventing the subsequent blockage of the wastewater drainage pipe. Then, the wastewater can be filtered using a filter cover 40. The rotation of the filter cover 40 can prevent the filter cover from becoming clogged, and it can also allow some of the wastewater mixed with crushed impurity particles to enter the wastewater drainage pipe. This not only reduces the difficulty of wastewater treatment at the subsequent wastewater treatment plant, but also avoids excessive wastewater flowing into rivers, causing river pollution and affecting the ecological environment.
[0046] Specifically, such as Figure 5 As shown, in this embodiment, the top of the pouring trough 10 is provided with a top cover 11, and the sewage inlet 101 is provided on the top cover 11.
[0047] Furthermore, such as Figure 1 and Figure 2As shown, in this embodiment, the pulverizing module 20 includes a mounting groove 21, within which a pulverizing roller 22 is rotatably mounted. One end of the pulverizing roller 22 is rotatably connected to the first end of the mounting groove 21, and a second driving device 23 is provided at the second end of the mounting groove 21. The other end of the pulverizing roller 22 is drively connected to the second driving device 23, which can drive the pulverizing roller 22 to rotate. During operation, the second driving device 23 drives the pulverizing roller 22 to rotate. When wastewater passes through the pulverizing module 20, i.e., flows through the mounting groove 21, the rotating pulverizing roller 22 pulverizes impurities in the wastewater, such as leaves, plastic bags, and other garbage, to prevent long-term discharge from causing blockage in the wastewater drainage pipes.
[0048] Specifically, in order to improve the pulverization effect of impurities in wastewater, such as Figure 2 As shown, in this embodiment, two crushing rollers 22 are provided in the mounting groove 21.
[0049] Furthermore, such as Figure 1 As shown, in this embodiment, the second drive device 23 includes a reduction gearbox 231 and a second drive motor 232 that is drivenly connected to the reduction gearbox 231, and the other end of the crushing roller 22 is drivenly connected to the reduction gearbox 231.
[0050] Furthermore, such as Figure 1 and Figure 3 As shown, in this embodiment, the filter cover 40 is conical, and a connecting shaft 41 is provided at the top of the filter cover 40. Specifically, the first driving device is disposed at the top of the filter diversion box 30, and the connecting shaft 41 of the filter cover 40 is rotatably connected to the top plate of the filter diversion box 30, and the connecting shaft 41 protrudes from the top plate of the filter diversion box 30 and is connected to the first driving device. By setting the filter cover 40 to a conical shape, when filtering sewage, as the filter cover 40 rotates, it can better prevent some sewage from passing through the filter cover 40, thereby keeping the mixed and crushed impurity particles in the non-filtration area. Specifically, in this embodiment, the first driving device is a first driving motor 50.
[0051] Preferably, in this embodiment, the filter cover 40 is provided with a plurality of filter holes 42, the diameter of which is 1mm to 3mm.
[0052] Furthermore, such as Figure 1 and Figure 4As shown, the sewage diversion outlet also includes a power generation module 60, which is located between the sewage inlet 10 and the crushing module 20. Specifically, the power generation module 60 includes a drainage trough 61, the upper end of which is connected to the sewage inlet 10, and the lower end of which is connected to the crushing module 20 through a fifth pipe 610. Multiple blade rollers 62 are rotatably arranged inside the drainage trough 61, and the multiple blade rollers 62 are evenly spaced in the vertical direction. Specifically, multiple left generator sets (not shown in the figure) are provided inside the left side plate 611 of the drainage trough 61, and multiple right generator sets (not shown in the figure) are provided inside the right side plate 612 of the drainage trough 61. One end of the multiple blade rollers 62 is connected to the multiple left generator sets one by one, and the other end of the multiple blade rollers 62 is connected to the multiple right generator sets one by one. The left and right generator sets are electrically connected to the first drive motor 50 and also electrically connected to the second drive device 23, i.e., the second drive motor 232. With this structural design, sewage is poured into the pouring trough 10 through the sewage inlet 101 on the top cover 11. The sewage then flows downwards into the drainage trough 61 of the power generation module 60. The potential energy of the sewage flow is used to stimulate the blade roller 62 to rotate. The rotation of the blade roller 62 drives the left and right generator sets to generate electricity. When the left and right generator sets generate electricity, they supply power to the first drive motor 50 and the second drive motor 232. This causes the first drive motor 50 to drive the filter cover 40 to rotate, and the second drive motor 232 to drive the crushing roller 22 to rotate, thereby realizing the reuse of water resources and saving energy.
[0053] Specifically, in order to improve the power generation efficiency of the power generation module 60, such as Figure 4 As shown, in this embodiment, two vertical rows of impeller rollers 62 are provided inside the drainage trough 61.
[0054] Specifically, in this embodiment, four power generation modules 60 are provided below the pouring trough 10, and correspondingly, four crushing modules 20 are provided below the power generation modules 60. The four power generation modules 60 are respectively connected to the four crushing modules one by one through four fifth pipes 610.
[0055] Furthermore, such as Figure 1As shown, in this embodiment, two on / off valves 1001 are spaced apart on the clean water drainage pipe 100. A fourth pipe 1002 is provided on the clean water drainage pipe 100. One end of the fourth pipe 1002 is connected to the clean water drainage pipe 100 and is located between the two on / off valves 1001. The other end of the fourth pipe 1002 is connected to a centrifugal pump 70. The centrifugal pump 70 is provided with a first spray pipe 701 and a second spray pipe 702. Specifically, both the first spray pipe 701 and the second spray pipe 702 extend into the sewage drainage pipe 200, and the outlet of the first spray pipe 701 faces the opposite direction to the outlet of the second spray pipe 702. With this configuration, when the sewage drainage pipe 200 becomes blocked, the two on / off valves 1001 on the clean water drainage pipe 100 are closed, allowing water to accumulate between the two valves 1001. Then, the centrifugal pump 70 is activated to pump the water accumulated between the two on / off valves 1001 in the clean water drainage pipe and discharge it into the sewage drainage pipe 200. This allows the first spray pipe 701 and the second spray pipe 702 to impact the sludge or debris clogging the sewage drainage pipe 200, thereby achieving the purpose of cleaning and unblocking. Specifically, in this embodiment, the on / off valve 1001 is a solenoid valve.
[0056] Furthermore, in order to promptly detect blockages in the sewage drainage pipe 200 and automatically clean and dredge it, preferably, as follows: Figure 1 As shown, in this embodiment, a liquid level sensor 2001 is installed inside the sewage drainage pipe 200. The liquid level sensor 2001, the centrifugal pump 70, and the two on / off valves 1001 are all electrically connected to the control unit. When the sewage drainage pipe 200 becomes blocked, the water level inside triggers the liquid level sensor 2001. The liquid level sensor 2001 then sends a control signal to the control unit. Based on the control signal, the control unit controls the two on / off valves 1001 to close and controls the centrifugal pump 70 to start, thereby achieving the purpose of cleaning and unblocking the sewage drainage pipe. This method has a high degree of automation, reduces the workload of manual inspection, and has low operation and maintenance costs.
[0057] Furthermore, to prevent sewage from overflowing directly from the dumping trough 10 when the sewage volume is large, preferably, as follows: Figure 1 As shown, in this embodiment, overflow pipes 102 are provided on the top of both the left and right sides of the pouring trough 10. The first end of each overflow pipe 102 is connected to the pouring trough 10, and a filter screen 1021 is provided at the first end of the overflow pipe 102. The other end of the overflow pipe is connected to the clean water drainage pipe 100. With the overflow pipes 102, when the sewage volume is large enough to cause the pouring trough 10 to be unable to supply enough drainage, the sewage overflowing from the pouring trough 10 will be filtered by the filter screen 1021 and then discharged into the clean water drainage pipe 100 through the overflow pipes 102.
[0058] In summary, the working principle of the wastewater diversion pouring outlet of this invention is as follows: After wastewater enters the pouring outlet 10 through the wastewater inlet 101 of the top cover, it flows downward into the drainage tank 61 of the power generation module 60. The potential energy of the wastewater flow stimulates the blade roller 62 to rotate. The rotation of the blade roller 62 drives the left and right generator sets to generate electricity. When the left and right generator sets generate electricity, they supply power to the first drive motor 50 and the second drive motor 232. This causes the first drive motor 50 to drive the filter cover 40 to rotate, and the second drive motor 232 to drive the pulverizing roller 22 to rotate. The pulverizing blades on the pulverizing roller 22 then pulverize the impurities in the wastewater, which then enters the filter diversion box 30 and is filtered through the filter holes 42 on the filter cover 40. At the same time, the first drive motor 50 drives the filter cover... The filter hood 40 rotates to prevent impurities from clogging it. A portion of the wastewater mixed with the crushed impurities remains in the non-filtration zone 301 and is then discharged into the wastewater drainage pipe 200 through the third pipe 303. The wastewater is then sent to the wastewater treatment plant for treatment. A portion of the filtered water is discharged into the clean water drainage pipe 100 through the second pipe 302 and finally discharged into the river along with rainwater through the clean water drainage pipe 100. Simultaneously, when the level sensor 2001 detects blockage in the wastewater drainage pipe 200, the control unit closes the two on / off valves 1001 and starts the centrifugal pump 70 to draw water from the clean water drainage pipe 100 into the wastewater drainage pipe 200. The first spray pipe 701 and the second spray pipe 702 are used to flush the blocked sludge, thereby achieving the purpose of cleaning and unblocking.
[0059] In summary, the wastewater diversion outlet of this invention utilizes the potential energy of wastewater flow to generate electricity, which then powers the first and second drive motors, enabling water resource reuse and energy conservation. The pulverizing module crushes impurities in the wastewater, preventing blockages in subsequent drainage pipes. A filter hood further filters the wastewater; its rotation prevents clogging and allows some of the pulverized impurities to enter the drainage pipes. This not only reduces the difficulty of wastewater treatment at later wastewater treatment plants but also prevents excessive wastewater from flowing into rivers and polluting the ecosystem. Furthermore, the wastewater outlet automatically flushes sludge when drainage pipes become blocked, clearing blockages, preventing further blockages, ensuring normal sewage discharge, and preventing urban flooding. Therefore, this invention effectively overcomes the shortcomings of existing technologies and possesses high industrial value.
[0060] The above embodiments are merely illustrative of the principles and effects of the present invention and are not intended to limit the invention. Any person skilled in the art can modify or alter the above embodiments without departing from the spirit and scope of the present invention. Therefore, all equivalent modifications or alterations made by those skilled in the art without departing from the spirit and technical concept disclosed in the present invention should still be covered by the claims of the present invention.
Claims
1. A dumping outlet for achieving sewage diversion, characterized in that, include: A pouring trough, wherein a sewage inlet is provided on the pouring trough; A crushing module is provided below the pouring trough and is connected to the pouring trough. The crushing module is used to crush impurities in the wastewater. A filter diversion box, which is connected to the pulverizing module via a first pipe; A filter cover is rotatably mounted in the filter box. The filter cover prevents crushed impurity particles from passing through, and the bottom of the filter cover is in contact with the bottom wall inside the filter diversion box. The space enclosed by the filter cover forms a filtration zone, and the space outside the filter cover forms a non-filtration zone. A first driving device is connected to the filter cover and is capable of driving the filter cover to rotate. The second pipe has one end connected to the filter diversion box and located within the filter area, and the other end connected to the clean water drainage pipe. The third pipe has one end connected to the filter diversion box and located in the non-filtration zone, and the other end connected to the sewage drainage pipe.
2. The sewage diversion outlet according to claim 1, characterized in that, The crushing module includes a mounting groove, in which a crushing blade roller is rotatably mounted. One end of the crushing blade roller is rotatably connected to the first end of the mounting groove. A second driving device is provided at the second end of the mounting groove. The other end of the crushing blade roller is drivenly connected to the second driving device, which can drive the crushing blade roller to rotate.
3. The sewage diversion outlet according to claim 2, characterized in that, The second drive device includes a gearbox and a second drive motor that is driven by the gearbox, and the other end of the crushing roller is driven by the gearbox.
4. The sewage diversion outlet according to claim 1, characterized in that, The filter cover is conical in shape, and a connecting shaft is provided at the top of the filter cover; the first driving device is disposed at the top of the filter diversion box, and the connecting shaft is rotatably connected to the top plate of the filter diversion box and protrudes from the top plate of the filter diversion box and is connected to the first driving device.
5. The sewage diversion outlet according to claim 1, characterized in that, The filter cover has a number of filter holes, the diameter of which is 1mm to 3mm.
6. The sewage diversion outlet according to claim 1, characterized in that, Two on / off valves are spaced apart on the clean water drainage pipe. A fourth pipe is provided on the clean water drainage pipe. One end of the fourth pipe is connected to the clean water drainage pipe and is located between the two on / off valves. The other end of the fourth pipe is connected to a centrifugal pump. The centrifugal pump is provided with a first spray pipe and a second spray pipe. Both the first spray pipe and the second spray pipe extend into the sewage drainage pipe, and the outlet of the first spray pipe faces the opposite direction to the outlet of the second spray pipe.
7. The sewage diversion outlet according to claim 6, characterized in that, The sewage drainage pipe is equipped with a liquid level sensor, and the liquid level sensor, the centrifugal pump, and the two on / off valves are all electrically connected to the control unit.
8. The sewage diversion outlet according to claim 1, characterized in that, It also includes a power generation module, which is disposed between the tilting trough and the crushing module. The power generation module includes a drainage trough, the upper end of which is connected to the tilting trough, and the lower end of which is connected to the crushing module through a fifth pipe. Multiple blade rollers are rotatably arranged inside the drainage trough, and the multiple blade rollers are evenly spaced in the vertical direction. Multiple left generator sets are arranged inside the left side plate of the drainage trough, and multiple right generator sets are arranged inside the right side plate of the drainage trough. One end of each of the multiple blade rollers is connected to a corresponding left generator set, and the other end of each of the multiple blade rollers is connected to a corresponding right generator set. The left and right generator sets are electrically connected to the first drive device.
9. The sewage diversion outlet according to claim 1, characterized in that, Overflow pipes are provided on the top of both sides of the pouring trough. The first end of the overflow pipe is connected to the pouring trough and a filter screen is provided at the first end of the overflow pipe. The other end of the overflow pipe is connected to the clean water drainage pipe.
10. The sewage diversion outlet according to claim 1, characterized in that, The top of the pouring trough is provided with a cover, and the wastewater inlet is provided on the cover.