Power generation energy storage type automatic siphon system
By designing a power generation and energy storage type automatic siphon system, a data exchange system is realized between the electric shock device and the power supply device in a humid environment using a water level sensor and an energy storage device powered by an energy storage device. This solves the problem that existing siphon drainage systems require manual start-up and external power supply, and realizes fully automatic siphon drainage without external power supply, which is suitable for scenarios with poor terrain and difficult power supply.
Patent Information
- Application Number
- CN202520426206.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-12
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2035-03-12
AI Technical Summary
Existing siphon drainage systems require manual start-up and external power supply, making it impossible to achieve fully automatic operation in scenarios where power supply is difficult or there is a risk of electric shock, and they cannot cope with the problem of siphon stopping due to changes in water level.
Design an automatic siphon system with power generation and storage. Utilize a water level sensor to control the siphon filling device and the water flow power generation control component. The energy storage device supplies power to the system control module, enabling automatic siphoning and remote terminal data exchange. The system uses a built-in energy storage device for power supply, and the water flow power generation device feeds back energy to the energy storage device. The energy storage device supplies power to the liquid level sensor and the system control module. Data exchange is achieved between the system control module and the remote terminal device, allowing for remote monitoring of the power generation and energy storage device and enabling manual/automatic function switching.
It achieves a fully automatic siphon system that requires no external power supply, eliminating the risk of electric shock in humid environments and enabling automatic siphon drainage without manual intervention. It is suitable for scenarios with poor terrain and difficult power supply.
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Figure CN223708099U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to siphon drainage technical field more specifically relates to a kind of power generation energy storage type automatic siphon system technical field. BACKGROUND
[0002] The method for draining by siphon effect is very common, and the siphon drainage is not affected by power supply compared with electric drainage such as water pump. In some operating scenarios, it can avoid the risk of electric shock, and using potential energy for drainage can also achieve the effect of energy saving and emission reduction. For flow channels with a drop advantage, pits, ponds and other power supply difficulties and personnel need to monitor the scene, siphon drainage has certain advantages compared to other drainage methods. However, the current common siphon drainage method needs to be started by manual irrigation. Once the siphon stops, manual irrigation is needed again. When the siphon stops, if the water level rises again, the equipment cannot operate automatically. For special places with limited water level, failure to drain in time can cause disastrous consequences. Therefore, a fully automatic siphon system is very important.
[0003] Although there have been electrically controlled fully automatic siphon drainage methods in recent years, external power supply is still needed, which cannot solve the problem of power supply difficulty and electric shock in special scenarios. Therefore, it is urgent to solve the problem of realizing fully automatic siphon drainage without external power supply.
[0004] Therefore, for the scene with terrain difference, power supply difficulty and no punching, it is of great practical significance to design a power generation energy storage type automatic siphon system. UTILITY MODEL CONTENTS
[0005] The utility model aims at: in order to solve the above technical problem, the utility model provides a kind of power generation energy storage type automatic siphon system.
[0006] The utility model specifically adopts the following technical solutions to achieve the above-mentioned purpose:
[0007] The first aspect of the utility model provides a kind of power generation energy storage type automatic siphon system, including siphon pipe water filling device, water flow power generation control component, adjustable magnetic drainage device and remote terminal device, the position of water flow power generation control component is higher than the position of siphon pipe water filling device and the position of adjustable magnetic drainage device, siphon pipe water filling device and water flow power generation control component, water flow power generation control component and adjustable magnetic drainage device are connected by siphon pipe, and water filling pipeline component is further arranged between siphon pipe water filling device and water flow power generation control component, and the drainage pressure of adjustable magnetic drainage device is adjustable.
[0008] The siphon water filling device is provided with a liquid level sensor, the water flow power generation control assembly is provided with a water flow power generation device, an energy storage device and a system control module, the energy storage device supplies power to the liquid level sensor, the system control module and the adjustable magnetic suction drainage device, the water flow power generation device, the liquid level sensor and the adjustable magnetic suction drainage device are signal connected with the system control module, and the system control module is signal connected with a remote terminal device.
[0009] Specifically, the main principle of the power generation and energy storage type automatic siphon system is that: the power is supplied by the built-in energy storage device, the siphon water filling device fills water into the water flow power generation device through the water filling pipe under the control of the water level sensor, when the water pressure reaches the peak pressure of the drainage pipe terminal pressure valve (the peak pressure of the pressure valve is adjustable), the valve is automatically opened (the exhaust valve is opened during the water filling process), the siphon is realized (the exhaust valve is closed during the siphon process), the water flow power generation device feeds back energy to the energy storage device during the siphon process, and the system control module detects that the energy feedback of the water flow power generation device is stable, so that the water filling pipe of the siphon water filling device is automatically stopped, the siphon stops automatically when the water level drops to the limit, and the cycle is repeated.
[0010] The siphon process can exchange data with the remote terminal device through the system control module, and the working state of the power generation and energy storage type automatic siphon system can be remotely viewed, so that manual and automatic function switching is realized.
[0011] The siphon process can exchange data with the remote terminal device through the system control module, and the working state of the power generation and energy storage type automatic siphon system can be remotely viewed, so that manual and automatic function switching is realized.
[0012] In one embodiment, the siphon water filling device further comprises a siphon shell, a first siphon pipe inlet and a water filling pipe inlet arranged on one side of the siphon shell, a first siphon pipe and a water filling pipe arranged on the other side of the shell, a liquid level sensor arranged in the siphon shell, the water filling pipe inlet and the first siphon pipe are communicated through a pipeline, a water adding pump is arranged on the pipeline, the first siphon pipe inlet is communicated with the first siphon pipe, and the first siphon pipe and the water filling pipe are both communicated with the inside of the water flow power generation device.
[0013] In one embodiment, the water filling pipe inlet and the first siphon pipe inlet are arranged in an up-down arrangement on the same side of the siphon shell, and the water filling pipe and the first siphon pipe are arranged in an up-down arrangement on the other opposite side of the siphon shell.
[0014] In one embodiment, the first siphon pipe and the first siphon pipe inlet are communicated through a pipeline, an anti-backflow check valve device is arranged on the pipeline, and the anti-backflow check valve device is signal connected with the system control module.
[0015] In one embodiment, the water flow power generation control assembly further comprises a power generation shell and a second siphon pipe; the water flow power generation device is located at the inner top of the power generation shell, and the energy storage battery and the control system module are arranged at the bottom of the water flow power generation device in the power generation shell.
[0016] In one embodiment, one end of the second siphon pipe is in communication with the water outlet end of the water flow power generation device, the other end of the second siphon pipe is in communication with the adjustable magnetic suction drainage device, the water outlet end of the first siphon pipe and the water filling pipe is in communication with the water inlet end of the water flow power generation device, and the water inlet end of the first siphon pipe and the water filling pipe is in communication with the water outlet end of the siphon shell.
[0017] In one embodiment, the water flow power generation control assembly further comprises a one-way exhaust device in communication with the inside of the water flow power generation device, the one-way exhaust device comprises an exhaust pipe and a one-way exhaust valve, the exhaust pipe is partially located outside the power generation shell, the one-way exhaust valve is located at the end of the exhaust pipe outside the power generation shell, the exhaust pipe is in communication with the water flow power generation device inside the power generation shell away from the one-way exhaust valve, the one-way exhaust valve is signal connected with the system control module, and the one-way exhaust valve comprises an exhaust valve body and an exhaust valve flap arranged at the top of the exhaust valve body.
[0018] In one embodiment, the energy storage device is a lithium battery.
[0019] The utility model discloses the beneficial effects are as follows:
[0020] 1, the device is convenient to install, need not external power supply, and there is no risk of electric shock in humid environment.
[0021] 2, the device has no other safety risk, and manual attendance is not needed, and full-automatic siphoning can be realized.
[0022] 3, the device can be charged in the form of solar energy, wind energy and the like according to different use scenes. DRAWINGS
[0023] In order to more clearly illustrate the technical scheme of the embodiment of the utility model, the following will be to the drawings needed in the embodiment used briefly introduce, should understand, the following drawings only shows some embodiments of the utility model, therefore should not be regarded as the limitation to the scope, for ordinary skilled person in the art comes, under the premise of not paying the creative labor, can also obtain other related drawings according to these drawings.
[0024] Figure 1 It is a structure schematic diagram of the utility model kind of power generation energy storage formula automatic siphoning system;
[0025] Figure 2 It is the structure schematic diagram of siphon pipe water filling device;
[0026] Figure 3is a structural schematic view of a one-way exhaust valve;
[0027] Figure 4 is Figure 3 a front view;
[0028] Figure 5 is a logic diagram of a process method of the power generation and energy storage type automatic siphon system of the utility model;
[0029] Reference signs: 1-siphon pipe water filling device, 2-water flow power generation control assembly, 3-adjustable magnetic suction drainage device;
[0030] 11-water filling pipe inlet, 12-first siphon pipe inlet, 13-liquid level sensor, 14-first siphon pipe, 15-water filling pipe, 16-anti-backflow one-way valve device;
[0031] 21-water flow power generation device, 22-exhaust pipe, 23-one-way exhaust valve, 24-system control module, 25-energy storage device, 26-second siphon pipe;
[0032] 231-exhaust valve body, 232-exhaust valve flap. DETAILED DESCRIPTION
[0033] In order to make the technical problems, technical solutions and technical effects of the utility model clearer, the technical solutions in the embodiments of the utility model will be described clearly and completely in combination with the drawings in the embodiments of the utility model below. Obviously, the described embodiments are part of the embodiments of the utility model, rather than all the embodiments. The components of the embodiments of the utility model described and shown in the drawings here can be arranged and designed in various different configurations.
[0034] Therefore, the following detailed description of the embodiments of the utility model provided in the drawings is not intended to limit the scope of the claimed utility model, but only represents selected embodiments of the utility model. Based on the embodiments in the utility model, all other embodiments obtained by those of ordinary skill in the art without creative labor fall within the scope of protection of the utility model.
[0035] It should be noted that: similar reference numbers and letters represent similar items in the following drawings, therefore, once an item is defined in one drawing, it does not need to be further defined and explained in subsequent drawings. In addition, the terms "first", "second" and the like are only used to distinguish description, and cannot be understood as indicating or implying relative importance.
[0036] In the description of the embodiments of the utility model, it needs to be explained that the directions or position relations indicated by the terms "inner", "outer", "upper" and the like are based on the directions or position relations shown in the drawings, or are the directions or position relations in which the utility model product is usually placed during use, and are only for the convenience of describing the utility model and simplifying the description, and thus cannot be understood as limiting the utility model in that the indicated devices or elements must have a specific direction, be constructed and operated in a specific direction, and thus cannot be understood as limiting the utility model.
[0037] Embodiment 1
[0038] As Figures 1 to 4 shown, the embodiment provides a power generation energy storage type automatic siphon system, which comprises a siphon water filling device 1, a water flow power generation control assembly 2, an adjustable magnetic drainage device 3 and a remote terminal device, the position of the water flow power generation control assembly 2 is higher than the positions of the siphon water filling device 1 and the adjustable magnetic drainage device 3, the siphon water filling device 1 and the water flow power generation control assembly 2 and the water flow power generation control assembly 2 and the adjustable magnetic drainage device 3 are connected through siphon pipes, and a water filling pipe assembly is further arranged between the siphon water filling device 1 and the water flow power generation control assembly 2, and the drainage pressure of the adjustable magnetic drainage device 3 is adjustable.
[0039] The siphon water filling device 1 is provided with a liquid level sensor 13, the water flow power generation control assembly 2 is provided with a water flow power generation device 21, an energy storage device 25 and a system control module 24, the energy storage device 25 supplies power to the liquid level sensor 13, the system control module 24 and the adjustable magnetic drainage device 3, the water flow power generation device 21, the liquid level sensor 13 and the adjustable magnetic drainage device 3 are signal connected with the system control module 24, and the system control module 24 is signal connected with the remote terminal device.
[0040] Specifically, the main principle of the power generation energy storage type automatic siphon system is that the power is supplied by the built-in energy storage device 25, the siphon water filling device 1 fills water into the water flow power generation device 21 through the water filling pipe 15 under the control of the water level sensor, when the water pressure reaches the peak pressure of the drainage pipe terminal pressure valve (the peak pressure of the pressure valve is adjustable), the valve is automatically opened (the exhaust valve is opened during the water filling process), siphoning is realized (the exhaust valve is closed during the siphoning process), the water flow power generation device 21 feeds back energy to the energy storage device 25 during the siphoning process, the system control module 24 detects that the energy feedback of the water flow power generation device 21 is stable, and the water filling pipe 15 of the siphon water filling device 1 automatically stops, when the water level drops to the limit, the siphoning stops automatically, and the cycle is repeated.
[0041] The siphoning process can exchange data with the remote terminal device through the system control module 24, the working state of the power generation energy storage type automatic siphon system can be viewed remotely, and manual and automatic function switching can be realized.
[0042] Example 2
[0043] like Figures 2 to 4 As shown, this embodiment provides a power generation and energy storage type automatic siphon system, including a siphon tube water filling device 1, a water flow power generation control component 2, an adjustable magnetic drainage device 3, and a remote terminal device. The water flow power generation control component 2 is positioned higher than the positions of the siphon tube water filling device 1 and the adjustable magnetic drainage device 3. The siphon tube water filling device 1 and the water flow power generation control component 2, as well as the water flow power generation control component 2 and the adjustable magnetic drainage device 3, are all connected through a siphon tube. The drainage pressure of the adjustable magnetic drainage device 3 is adjustable.
[0044] The siphon water filling device 1 is equipped with a liquid level sensor 13. The water flow power generation control component 2 is equipped with a water flow power generation device 21, an energy storage device 25, and a system control module 24. The energy storage device 25 supplies power to the liquid level sensor 13, the system control module 24, and the adjustable magnetic drainage device 3. The water flow power generation device 21, the liquid level sensor 13, and the adjustable magnetic drainage device 3 are all connected to the system control module 24 by signal. The system control module 24 is connected to the remote terminal device by signal.
[0045] The siphon tube water filling device 1 also includes a siphon shell, a first siphon tube inlet 12 and a water filling pipe inlet 11 disposed on one side of the siphon shell, a first siphon tube 14 and a water filling pipe 15 disposed on the other side of the shell, a liquid level sensor 13 disposed inside the siphon shell, the water filling pipe inlet 11 and the first siphon tube 14 are connected by a pipe, a water pump is disposed on the pipe, the first siphon tube inlet 12 is connected to the first siphon tube 14, and both the first siphon tube 14 and the water filling pipe 15 are connected to the inside of the power generation device.
[0046] The water filling pipe inlet 11 and the first siphon pipe inlet 12 are arranged vertically on the same side of the siphon shell, while the water filling pipe 15 and the first siphon pipe 14 are arranged vertically on the opposite side of the siphon shell.
[0047] The first siphon pipe 14 is connected to the first siphon pipe inlet 12 through a pipe. An anti-backflow one-way valve device 16 is installed on the pipe, and the anti-backflow one-way valve device 16 is connected to the system control module 24 via a signal.
[0048] Example 3
[0049] This embodiment is a further optimization based on embodiment 2, specifically:
[0050] The water flow power generation control component 2 also includes a power generation housing and a second siphon pipe 26; the water flow power generation device 21 is located at the top inside the power generation housing, and the energy storage battery and control system module are located at the bottom of the water flow power generation device 21 inside the power generation housing.
[0051] One end of the second siphon pipe 26 is connected to the outlet end of the water flow power generation device 21, and the other end of the second siphon pipe 26 is connected to the adjustable magnetic drainage device 3. The outlet ends of the first siphon pipe 14 and the water filling pipe 15 are connected to the inlet end of the water flow power generation device 21, and the inlet ends of the first siphon pipe 14 and the water filling pipe 15 are connected to the outlet end of the siphon shell.
[0052] Example 4
[0053] This embodiment is a further optimization based on embodiment 3, specifically:
[0054] The water flow power generation control component 2 also includes a one-way exhaust device that communicates with the interior of the water flow power generation device 21. The one-way exhaust device includes an exhaust pipe 22 and a one-way exhaust valve 23. The exhaust pipe 22 is located outside the power generation housing, and the one-way exhaust valve 23 is located at the end of the exhaust pipe 22 outside the power generation housing. The exhaust pipe 22 passes through the power generation housing away from the one-way exhaust valve 23 and communicates with the water flow power generation device 21 inside. The one-way exhaust valve 23 is signal connected to the system control module 24. The one-way exhaust valve 23 includes an exhaust valve body 231 and an exhaust valve valve 232 located on the top of the exhaust valve body.
[0055] The energy storage device 25 is a lithium battery.
[0056] Example 5
[0057] like Figure 5 As shown, this embodiment provides a process method for a power generation and energy storage type automatic siphon system, including the following steps:
[0058] S1. The automatic siphon system for power generation and energy storage is assembled and begins operation;
[0059] S2. The system control module 24 detects and determines whether the water flow power generation device 21 is in the power generation state. If it is, the system enters the siphon working state and battery charging state, and stops the water filling pipe 15 of the siphon tube water filling device 1 from filling the water flow power generation device 21 with water; otherwise, proceed to the next step.
[0060] S4. The system enters the siphon stop state and battery maintenance state. The liquid level sensor 13 determines whether the water level has reached the siphon condition. If so, the water filling pipe 15 of the siphon tube filling device 1 fills water into the water flow power generation device 21 and enters the siphon filling state. Otherwise, it returns to step S1.
Claims
1. A power generating energy storing automatic siphon system, characterized in that, The application relates to a water flow power generation control assembly (2) which is arranged above a siphon water filling device (1) and an adjustable magnetic drainage device (3), the siphon water filling device (1) and the water flow power generation control assembly (2) are connected through a siphon, the siphon water filling device (1) and the water flow power generation control assembly (2) are further connected through a water filling pipeline assembly, and the drainage pressure of the adjustable magnetic drainage device (3) can be adjusted. The siphon water filling device (1) is provided with a liquid level sensor (13), the water flow power generation control assembly (2) is provided with a water flow power generation device (21), an energy storage device (25) and a system control module (24), the energy storage device (25) supplies power to the liquid level sensor (13), the system control module (24) and the adjustable magnetic drainage device (3), the water flow power generation device (21), the liquid level sensor (13) and the adjustable magnetic drainage device (3) are signal-connected with the system control module (24), and the system control module (24) is signal-connected with a remote terminal device.
2. A power generating and energy storing automatic siphon system according to claim 1, characterized in that, The siphon water filling device (1) further comprises a siphon shell, a first siphon inlet (12) and a water filling pipe inlet (11) arranged on one side of the siphon shell, a first siphon pipe (14) and a water filling pipe (15) arranged on the other side of the siphon shell, the liquid level sensor (13) is arranged in the siphon shell, the water filling pipe inlet (11) is connected with the first siphon pipe (14) through a pipeline, a water adding pump is arranged on the pipeline, the first siphon inlet (12) is connected with the first siphon pipe (14), and the first siphon pipe (14) and the water filling pipe (15) are connected with the inside of the water flow power generation device.
3. A power generating and energy storing automatic siphon system according to claim 2, characterized in that, The water filling pipe inlet (11) and the first siphon inlet (12) are arranged in an up-down mode on the same side of the siphon shell, and the water filling pipe (15) and the first siphon pipe (14) are arranged in an up-down mode on the other side of the siphon shell.
4. A power generating and energy storing automatic siphonic greywater system according to claim 3, wherein, The first siphon pipe (14) is connected with the first siphon inlet (12) through a pipeline, an anti-backflow one-way valve device (16) is arranged on the pipeline, and the anti-backflow one-way valve device (16) is signal-connected with the system control module (24).
5. A power generating and energy storing automatic siphon system according to claim 3, wherein, The water flow power generation control assembly (2) further comprises a power generation shell and a second siphon pipe (26), the water flow power generation device (21) is arranged on the inner top of the power generation shell, and the energy storage battery and the control system module are arranged on the bottom of the water flow power generation device (21) in the power generation shell.
6. A power generating and energy storing automatic siphonic greywater system according to claim 5, wherein, One end of the second siphon pipe (26) is communicated with the water outlet end of the water current power generation device (21), the other end of the second siphon pipe (26) is communicated with the water inlet end of the adjustable magnetic suction drainage device (3), the water outlet end of the first siphon pipe (14) and the water filling pipe (15) is communicated with the water inlet end of the water current power generation device (21).
7. A power generating and energy storing automatic siphon system according to claim 1, wherein, The water current power generation control assembly (2) further comprises a one-way exhaust device communicated with the water current power generation device (21) inside, the one-way exhaust device comprises an exhaust pipe (22) and a one-way exhaust valve (23), the exhaust pipe (22) is partially located outside the power generation shell, the one-way exhaust valve (23) is located at the end of the exhaust pipe (22) outside the power generation shell, the exhaust pipe (22) is communicated with the water current power generation device (21) inside the power generation shell away from the one-way exhaust valve (23), the one-way exhaust valve (23) is signal connected with the system control module (24).
8. A power generating and energy storing automatic siphonic greywater system according to claim 1, wherein, The one-way exhaust valve (23) comprises an exhaust valve body (231) and an exhaust valve flap (232) arranged at the top of the exhaust valve body (231).
9. A power generating and energy storing automatic siphonic greywater system according to claim 1, wherein, The energy storage device (25) is a lithium battery.