Unpowered energy storage pulse type sewage pipe network integrated flushing device
The pulse-type integrated flushing device for sewage pipe networks, which utilizes upstream gravity head energy storage to achieve pulse flushing, solves the problem of sewage pipe siltation in plain areas, reduces management costs and energy consumption, and improves sewage collection efficiency.
Patent Information
- Application Number
- CN202422895009.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-27
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2034-11-27
AI Technical Summary
In existing technologies, the shallow slope of sewage pipes in plain areas leads to low flow velocity, easy siltation, increased management and maintenance workload, and reduced sewage system efficiency.
The integrated pulse-type sewage pipe network flushing device adopts non-powered energy storage, which uses upstream gravity water head to store energy and intermittently flushes downstream pipes. Pulse flushing is achieved through multiple flushing modules and a control system, and remote control is achieved by combining water level gauges and valves.
It reduces the amount of manual dredging work, saves energy, lowers construction costs, enables intelligent management, and improves sewage collection rate through prefabricated installation.
Smart Images

Figure CN223577293U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to sewage pipe network technical field, concretely relates to pulse type sewage pipe network integrated flushing device of non -power energy storage. BACKGROUND
[0002] The plain area city because of gentle terrain, sewage pipeline gradient adopts smaller gradient laying, leads to sewage pipeline actual operation flow rate to be low.
[0003] The defects of prior art are:
[0004] 1. Because the sewage pipeline gradient of prior art adopts smaller gradient laying, leads to sewage pipeline actual operation flow rate to be low, thereby causes the along line pipe siltation in long distance sewage transportation process.
[0005] 2. Because the sewage pipeline of prior art is easy to silt, thereby increased the workload of later management maintenance.
[0006] 3. Because the sewage pipeline of prior art silt and carry a large number of organic matter cause the concentration of plant sewage to be low, thereby leads to sewage system operation inefficiency. SUMMARY
[0007] The utility model provides pulse type sewage pipe network integrated flushing device of non -power energy storage for above -mentioned problem, its purpose lies in reducing the workload of manual desilting, improving sewage collection rate, saving energy consumption, reducing construction cost, realizing water wisdom management, realizing assembly type installation and construction.
[0008] To solve above -mentioned problem, the technical scheme provided by the utility model is:
[0009] Pulse type sewage pipe network integrated flushing device of non -power energy storage, containing flushing module, pump station, control system, wherein: the water inlet end of flushing module is communicated with upstream pipe network through sewage pipe;The water outlet end of flushing module is communicated with downstream pipe network through the sewage pipe;The sewage pipe between flushing module and downstream pipe network is equipped with pump station;The control system is respectively with flushing module, pump station electric signal coupling.
[0010] Preferably, the flushing module is provided with a plurality of; The elevation of flushing module decreases along the direction of upstream pipe network to downstream pipe network.
[0011] Preferably, the flushing module contains first well chamber, valve well chamber, third well chamber, wherein:
[0012] The water inlet end of first well chamber is communicated with upstream pipe network through the sewage pipe;The water outlet end of first well chamber is communicated with the water inlet end of valve well chamber through the sewage pipe;
[0013] The water inlet end of the third well chamber is communicated with the water outlet end of the valve well chamber through the sewage pipe; and the water outlet end of the first well chamber is communicated with the downstream pipe network through the sewage pipe.
[0014] Preferably, the valve well chamber is a dry well; two valve well chamber sewage pipes are arranged in the valve well chamber; and the two ends of the valve well chamber sewage pipes are respectively communicated with the first well chamber and the third well chamber.
[0015] Preferably, a set of flashlight dual-purpose communication valve is arranged on each of the valve well chamber sewage pipes; and the flashlight dual-purpose communication valve is electrically coupled with the control system.
[0016] Preferably, a first water level meter for monitoring the water level in the first well chamber is arranged in the first well chamber; and the first water level meter is electrically coupled with the control system.
[0017] Preferably, a third water level meter for monitoring the water level in the third well chamber is arranged in the third well chamber; and the third water level meter is electrically coupled with the control system.
[0018] Preferably, the control system comprises a control cabinet for on-site control; and the control cabinet is electrically coupled with the pump station, the flashlight dual-purpose communication valve, the first water level meter and the third water level meter respectively.
[0019] Preferably, the control system comprises a remote control module for remote control; and the remote control module is electrically coupled with the pump station, the flashlight dual-purpose communication valve, the first water level meter and the third water level meter respectively.
[0020] Compared with the prior art, the utility model has the following advantages:
[0021] 1. Since the utility model adopts pulse flushing mode, uses the upstream self-flowing water energy storage, intermittently flushes the downstream pipeline, can flush the downstream pipeline sediment into the sewage treatment plant regularly, thereby saves a lot of manual dredging work.
[0022] 2. Since the utility model does not need external power energy storage, uses the upstream sewage self-flowing head to realize unpowered energy storage, thereby saves energy consumption.
[0023] 3. Since the utility model only needs to transform the pipeline inspection well, does not need to occupy the underground space or the surrounding land additionally, thereby reduces the construction cost.
[0024] 4. Since the water level meter and the valve of the utility model can realize remote data transmission and remote control, thereby realizes the intelligent management of water affairs.
[0025] 5. The utility model discloses a facility partition function, facility, structure is relatively fixed, can produce integrated equipment to realize assembly type installation and construction. BRIEF DESCRIPTION OF DRAWINGS
[0026] Figure 1 It is the overhead view schematic drawing of the flushing device of the embodiment of the utility model;
[0027] Figure 2 It is the cross section view schematic drawing of the flushing device of the embodiment of the utility model;
[0028] Figure 3 It is the system structure schematic drawing of the flushing device of the embodiment of the utility model.
[0029] Among them: 100. flushing module, 200. pump station, 300. control system, 400. sewage pipe, 110. first well room, 120. valve well room, 130. third well room, 121. valve well room sewage pipe, 122. flashlight dual-purpose communication valve, 111. first water level meter, 131. third water level meter, 310. control cabinet DETAILED DESCRIPTION
[0030] The utility model is further illustrated in combination with specific embodiments, and it should be understood that these embodiments are only used for illustrating the utility model and are not used for limiting the scope of the utility model, and after reading the utility model, the modification of various equivalent forms of the utility model by the person skilled in the art falls within the range defined by the claims attached to the present application.
[0031] As Figure 2 , Figure 3 Indicated, the pulse type sewage pipe network integrated flushing device of unpowered energy storage contains flushing module 100, pump station 200, control system 300, wherein: the water inlet end of flushing module 100 is communicated with the upstream pipe network through sewage pipe 400, the water outlet end of flushing module 100 is communicated with the downstream pipe network through sewage pipe 400, and pump station 200 is arranged on the sewage pipe 400 between flushing module 100 and the downstream pipe network, and control system 300 is electrically coupled with flushing module 100 and pump station 200 respectively.
[0032] It should be noted that the flushing module 100 is provided with a plurality of flushing modules 100, and the elevation of the flushing module 100 decreases along the direction from the upstream pipe network to the downstream pipe network.
[0033] As Figure 1 , 2 Further indicated, the flushing module 100 contains the first well room 110, the valve well room 120 and the third well room 130, wherein:
[0034] The water inlet end of the first well chamber 110 is communicated with an upstream pipe network through a sewage pipe 400; the water outlet end of the first well chamber 110 is communicated with the water inlet end of the valve well chamber 120 through the sewage pipe 400.
[0035] The water inlet end of the third well chamber 130 is communicated with the water outlet end of the valve well chamber 120 through the sewage pipe 400; the water outlet end of the first well chamber 110 is communicated with a downstream pipe network through the sewage pipe 400.
[0036] It should be noted that the valve well chamber 120 is a dry well; two valve well chamber sewage pipes 121 are arranged in the valve well chamber 120; the two ends of the valve well chamber sewage pipes 121 are respectively communicated with the first well chamber 110 and the third well chamber 130.
[0037] It should be further noted that a set of flashlight dual-purpose communication valves 122 are arranged on each valve well chamber sewage pipe 121; the flashlight dual-purpose communication valves 122 are electrically coupled with the control system 300.
[0038] It should be further noted that the flashlight dual-purpose communication valves 122 on the two valve well chamber sewage pipes 121 can be simultaneously opened and closed and used for controlling daily sewage pipe network flushing; or one of the flashlight dual-purpose communication valves 122 can be opened and the other can be closed, and used for maintenance work in the valve well chamber 120.
[0039] It should be noted that a first water level meter 111 for monitoring the water level in the first well chamber 110 is arranged in the first well chamber 110; the first water level meter 111 is electrically coupled with the control system 300.
[0040] It should be noted that a third water level meter 131 for monitoring the water level in the third well chamber 130 is arranged in the third well chamber 130; the third water level meter 131 is electrically coupled with the control system 300.
[0041] It should be noted that the control system 300 comprises a control cabinet 310 for on-site control; the control cabinet 310 is electrically coupled with the pump station 200, the flashlight dual-purpose communication valves 122, the first water level meter 111 and the third water level meter 131 respectively.
[0042] It should be further noted that the control system 300 comprises a remote control module for remote control; the remote control module is electrically coupled with the pump station 200, the flashlight dual-purpose communication valves 122, the first water level meter 111 and the third water level meter 131 respectively.
[0043] It should be noted that the working principle of the utility model is as follows:
[0044] In the daily operation stage, the valve is opened, the sewage pipe network is kept unobstructed, and the sewage is normally discharged.
[0045] When the pipeline needs to be flushed, the following steps are scheduled:
[0046] S100. Two sets of hand and electric dual-purpose communication valves 122 of the flushing module 100 upstream of the pump station 200 are closed at the same time.
[0047] S200. The pump station 200 increases the displacement to quickly empty the sewage in the pipeline section.
[0048] S300. The control system 300 monitors that the first water level gauge 111 in the flushing module 100 upstream of the pump station 200 reaches the manually preset water level height threshold value, determines that the upstream sewage is complete, and opens the two sets of hand and electric dual-purpose communication valves 122 of the flushing module 100 upstream of the pump station 200 at the same time.
[0049] S400. The potential energy of the upstream sewage is quickly converted into kinetic energy, and the sewage is flushed into the downstream pipeline to flush the downstream pipeline.
[0050] It should be noted that the flushing device of the utility model can be arranged in multiple groups and distributed in the sewage pipe network, and can be flushed multiple times according to the water level monitoring conditions of each online interval; at the same time, the automatic program can be used to jointly schedule each group of flushing devices and each flushing module 100 of each group of flushing devices to realize pulse flushing of the sewage pipeline in sections; the hand and electric dual-purpose communication valves 122 upstream and downstream are intermittently opened and closed, the water level of the sewage is temporarily raised and stored in sections, after the downstream sewage pipeline is empty or has a low water level, the hand and electric dual-purpose communication valves 122 are opened, the sewage after energy storage is flushed into the downstream sewage pipe, a working condition of a large flow rate in a short period is caused, the deposited sludge is flushed into the downstream sewage pipeline, and is gradually discharged into the sewage treatment plant.
[0051] In the detailed description above, various features are combined together in a single embodiment to simplify the disclosure. This disclosure method should not be interpreted as reflecting the intention that the embodiments of the claimed subject matter require more features clearly stated in each claim. On the contrary, the utility model is in a state of less than all the features of the disclosed single embodiment, as reflected in the appended claims. Therefore, the appended claims are hereby clearly incorporated into the detailed description, wherein each claim is separately as a separate preferred embodiment of the utility model.
[0052] In order for any person skilled in the art to implement or use the utility model, the disclosed embodiments are described above. Various modifications of these embodiments are obvious to those skilled in the art, and the general principles defined herein can also be applied to other embodiments without departing from the spirit and protection scope of the disclosure. Therefore, the disclosure is not limited to the embodiments given herein, but is consistent with the broadest scope of the principles and novel features disclosed in the present disclosure.
[0053] The above description includes examples of one or more embodiments. Of course, not all possible combinations of components or methods described above will be employed to make the described embodiment, however, one of ordinary skill in the art will recognize that further combinations and permutations of various embodiments are possible. Accordingly, the described embodiments are intended to embrace all such alterations, modifications and variations that fall within the scope of the appended claims. Additionally, description of the term "comprising", as used in the specification and in the claims, is analogous to the term "including", as the term is interpreted in the context of the claims. Furthermore, any use of the term "or" in the description or the claims is intended to encompass "and" as well.
[0054] The above description is only a specific implementation of the present application, and is intended to further explain the purpose, technical scheme and advantages of the present application. It should be understood that the above description is only a specific implementation of the present application, and is not intended to limit the protection scope of the present application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A non-powered, energy-stored, pulse-type sewer network integrated flushing device, characterized in that: The system comprises a flushing module (100), a pump station (200), and a control system (300), wherein: The water inlet end of the flushing module (100) is connected to the upstream pipe network through a sewage pipe (400); the water outlet end of the flushing module (100) is connected to the downstream pipe network through the sewage pipe (400); the sewage pipe (400) between the flushing module (100) and the downstream pipe network is provided with the pump station (200); The control system (300) is electrically connected to the flushing module (100) and the pump station (200) respectively.
2. A non-powered, accumulator-based, pulsed sewer network integrated flushing device according to claim 1, characterized in that: The flushing module (100) is provided with multiple modules; the elevation of the flushing module (100) decreases along the direction from the upstream pipe network to the downstream pipe network.
3. A non-powered, accumulator-based, pulse-type integrated sewer-pipeline flushing device according to claim 2, characterized in that: The flushing module (100) comprises a first well chamber (110), a valve well chamber (120), and a third well chamber (130), wherein: The water inlet end of the first well chamber (110) is connected to the upstream pipe network through the sewage pipe (400); the water outlet end of the first well chamber (110) is connected to the water inlet end of the valve well chamber (120) through the sewage pipe (400); The water inlet end of the third well chamber (130) is connected to the water outlet end of the valve well chamber (120) through the sewage pipe (400); the water outlet end of the first well chamber (110) is connected to the downstream pipe network through the sewage pipe (400).
4. A non-powered, accumulator-based, pulse-type integrated sewer-pipeline flushing device according to claim 3, characterized in that: The valve well chamber (120) is a dry well; two valve well chamber sewage pipes (121) are arranged in the valve well chamber (120); the two ends of the valve well chamber sewage pipes (121) are connected to the first well chamber (110) and the third well chamber (130) respectively.
5. A non-powered, energy-stored, pulse-type integrated sewer-pipeline flushing device according to claim 4, characterized in that: A set of flashlight dual-purpose communication valves (122) are arranged on each of the valve well chamber sewage pipes (121); the flashlight dual-purpose communication valves (122) are electrically connected to the control system (300).
6. A non-powered, energy-stored, pulse-type integrated sewer-pipeline flushing apparatus according to claim 5, characterized in that: A first water level gauge (111) is arranged in the first well chamber (110) to monitor the water level in the first well chamber (110); the first water level gauge (111) is electrically connected to the control system (300).
7. A non-powered, energy-stored, pulse-type integrated sewer-pipeline flushing apparatus according to claim 6, characterized in that: A third water level gauge (131) is arranged in the third well chamber (130) to monitor the water level in the third well chamber (130); the third water level gauge (131) is electrically connected to the control system (300).
8. A non-powered, energy-stored, pulse-type integrated sewer-pipeline flushing apparatus according to claim 7, characterized in that: The control system (300) comprises a control cabinet (310) for on-site control; the control cabinet (310) is electrically connected to the pump station (200), the flashlight dual-purpose communication valves (122), the first water level gauge (111), and the third water level gauge (131) respectively.
9. A non-powered, energy-stored, pulse-type integrated sewer-pipeline flushing apparatus according to claim 8, characterized in that: The control system (300) comprises a remote control module for remote control; the remote control module is electrically connected to the pump station (200), the flashlight dual-purpose communication valves (122), the first water level gauge (111), and the third water level gauge (131) respectively.