Intelligent data monitoring system for secondary water supply

Through the intelligent data monitoring system, the residual chlorine concentration is monitored and adjusted in real time, the problems of bacterial growth in pipelines and side effects of tap water toxicity caused by improper control of residual chlorine in the existing technology are solved, ensuring water quality safety and user health.

CN120406584AInactive Publication Date: 2025-08-01TENGZHOU GREEN ART LANDSCAPE ENGINEERING CO LTD
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Patent Information

Application Number
CN202510523450.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2025-08-01
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing data monitoring system for secondary water supply is difficult to effectively control the residual chlorine concentration, resulting in bacterial growth in the pipeline or tap water having toxic side effects on the human body.

Method used

An intelligent data monitoring system including a user terminal, a control terminal, a water supply selection module, a pool control module, a water level monitoring module and a water body monitoring module is designed. Through data collection, feedback and transmission modules, residual chlorine concentration can be monitored and adjusted in real time to ensure water quality safety.

Benefits of technology

Accurate control of residual chlorine concentration is achieved, preventing the growth of bacteria in pipelines and side effects of tap water toxicity, and ensuring the quality of water sources and the health of users.

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Abstract

The invention relates to the technical field of secondary water supply, in particular to an intelligent data monitoring system for secondary water supply, which comprises a user side, a control terminal, a water supply selection module, a pool control module, a water level monitoring module and a water body monitoring module, and is characterized in that the user side transmits a signal to the control terminal through a mobile phone; the system has the beneficial effects that the user side inputs user information and transmits the user information to the control terminal, the control terminal compares and judges the user information, gives an alarm and feeds back the information to the user side when the information is wrong, and transmits a signal to the pool control module and the water supply selection module when the information is correct, and the pool control module opens a master pump and a master valve in a reservoir to supply water. Meanwhile, the water supply selection module is compared with a user to open the corresponding user pipeline control module to supply water to the user, and the water level monitoring module, the water body monitoring module and the disinfection module monitor the reservoir in real time, control and adjust the water quantity and the water quality in the reservoir and monitor and guarantee the quality of a water source.
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Description

Technical Field

[0001] The present invention relates to the technical field of secondary water supply, and particularly to an intelligent data monitoring system for secondary water supply. Background Art

[0002] Secondary water supply refers to the form in which units or individuals store, pressurize the urban public water supply or self-built water supply, and then supply water to users or for self-use through pipelines. Secondary water supply is mainly established to compensate for the lack of pressure in the municipal water supply pipeline and ensure the water use of people living and working at high altitudes.

[0003] In the prior art, the residual chlorine in the tap water of the community can play a role in continuous disinfection, inhibiting bacteria in the pipeline. When the residual chlorine is insufficient, bacteria are likely to grow in the pipeline. When the residual chlorine is excessive, the tap water will have toxic and side effects on the human body. The existing data monitoring system for secondary water supply is difficult to effectively control the residual chlorine. For this reason, the present invention proposes an intelligent data monitoring system for secondary water supply to solve the above problems. Summary of the Invention

[0004] The purpose of the present invention is to provide an intelligent data monitoring system for secondary water supply to solve the problems in the above background art that the residual chlorine in the tap water of the community can play a role in continuous disinfection, inhibiting bacteria in the pipeline. When the residual chlorine is insufficient, bacteria are likely to grow in the pipeline. When the residual chlorine is excessive, the tap water will have toxic and side effects on the human body. The existing data monitoring system for secondary water supply is difficult to effectively control the residual chlorine.

[0005] To achieve the above purpose, the present invention provides the following technical solution: An intelligent data monitoring system for secondary water supply, including: A user terminal, a control terminal, a water supply selection module, a water tank control module, a water level monitoring module, and a water body monitoring module. The user terminal transmits signals to the control terminal through a mobile phone. The control terminal performs secondary water supply to the area where the user terminal is located through the water supply module according to the signals transmitted by the user terminal; The control terminal, which includes a data acquisition module, a user information database, an alarm module, a data feedback module, and a data transmission module. The data acquisition module receives the user information output by the user terminal. The data feedback module feeds back signals to the user terminal. The data transmission module transmits the received signals to the water supply selection module and the water tank control module respectively; The water supply selection module, which includes a data receiving module and several user pipeline control modules. The user pipeline control module includes a pump control module, a regulating valve control module, a flow detection module, and a water supply pipeline. The data receiving module receives the user information transmitted by the control terminal and selects the corresponding user control module; Pool control module. The pool control module includes a reservoir, a main pump control module, a main valve control module, a main pump, a main valve, and a main pipeline. The main pump control module receives signals from the control terminal to control the opening and closing of the main pump to supply water to the main pipeline. The main pipeline is connected to a number of user pipeline control modules through water supply pipelines. Water level monitoring module. The water level monitoring module includes a water level detection sensor, a signal receiving module, and a water level alarm module. The water level sensor detects the water level of the reservoir and transmits signals. Water body monitoring module. The water body monitoring module includes a chlorine dioxide detector, a concentration signal receiving module, and a water quality alarm module. The chlorine dioxide detector detects the concentration of chlorine dioxide disinfectant in the reservoir and transmits signals. Disinfection module. The disinfection module includes a liquid storage tank, a disinfectant regulating valve, a liquid level detection module, and a liquid level alarm module. The disinfectant regulating valve receives signals from the concentration signal receiving module to control the addition and shutdown of chlorine dioxide.

[0006] Preferably, the data acquisition module compares the user information input by the user with the user information database. When the user information is input incorrectly, the alarm module receives the signal to give an alarm and further transmits the signal to the user terminal through the data feedback module to enable the user to re-transmit the user information.

[0007] Preferably, the data receiving module transmits the collected user information to the corresponding user pipeline control module. The pump control module and the regulating valve in the user pipeline control module receive the signals to open and close the main body and the valve body to supply water to the area where the user terminal is located through the water supply pipeline. The flow detection module detects the flow rate in the water supply pipeline and controls the valve body to adjust the flow rate through the regulating valve. Each user pipeline control module corresponds to a water supply pipeline.

[0008] Preferably, the main valve control module controls the opening and closing of the main valve to open and close the main pipeline of the user. The main pipeline is connected to the water supply pipelines of several users.

[0009] Preferably, the water level detection sensor detects the water level height of the reservoir and transmits the information to the signal receiving module. When the water level in the reservoir is lower than the set value, the water level alarm module receives the signal to give an alarm to prompt the staff to supply water to the reservoir.

[0010] Preferably, the chlorine dioxide detector detects the concentration of the disinfectant in the reservoir and transmits the signal to the concentration signal receiving module. The water quality alarm module receives the signal from the concentration signal receiving module and gives an alarm when the disinfectant concentration is too high to remind the staff to increase the water in the reservoir.

[0011] Preferably, the disinfectant regulating valve receives a signal from the concentration signal receiving module and opens the valve to put the disinfectant in the liquid storage tank into the reservoir when the disinfectant concentration is too low.

[0012] Preferably, when the liquid level of the disinfectant in the liquid storage tank is lower than a certain height, the liquid level detection module transmits a signal to the liquid level alarm module to give an alarm to prompt the staff to add disinfectant.

[0013] Compared with the prior art, the beneficial effects of the present invention are as follows: The user inputs user information and transmits it to the control terminal. The control terminal compares and judges the user information. When the information is incorrect, it gives an alarm and feedbacks to the user terminal. When it is correct, the signal is transmitted to the water tank control module and the water supply selection module. The water tank control module turns on the main pump and the main valve in the reservoir for water supply. At the same time, the water supply selection module compares the user type and turns on the corresponding user pipeline control module to supply water to the user. At the same time, the water level monitoring module, the water body monitoring module and the disinfection module monitor the reservoir in real time to control and adjust the water volume and water quality in the reservoir and monitor to ensure the quality of the water source. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 is the overall system module flowchart of the present invention; Figure 2 is the schematic structural diagram of the control terminal of the present invention; Figure 3 is the schematic structural diagram of the water supply selection module of the present invention; Figure 4 is the schematic structural diagram of the user pipeline control module of the present invention; Figure 5 is the schematic structural diagram of the water tank control module of the present invention; Figure 6 is the schematic structural diagram of the water level monitoring module of the present invention; Figure 7 is the schematic structural diagram of the water body monitoring module of the present invention; Figure 8 is the schematic structural diagram of the disinfection module of the present invention.

[0015] In the figure: user terminal 1, control terminal 2, data acquisition module 21, user information database 22, alarm module 23, data feedback module 24, data transmission module 25, water supply selection module 3, data receiving module 31, user pipeline control module 32, pump control module 321, regulating valve control module 322, flow detection module 323, water supply pipeline 324, water tank control module 4, water storage tank 41, main pump control module 42, main valve control module 43, main pump 44, main valve 45, main pipeline 46, water level monitoring module 5, water level detection sensor 51, signal receiving module 52, water level alarm module 53, water body monitoring module 6, chlorine dioxide detector 61, concentration signal receiving module 62, water quality alarm module 63, disinfection module 7, liquid storage tank 71, disinfectant regulating valve 72, liquid level detection module 73, liquid level alarm module 74 Detailed implementation manners

[0016] In order to clearly and completely describe the objectives, technical solutions of the present invention and make the advantages more clearly understood, the following further elaborates on the embodiments of the present invention with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are part of the embodiments of the present invention, rather than all of the embodiments, and are only used to explain the embodiments of the present invention, not to limit the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art without creative efforts fall within the scope of protection of the present invention.

[0017] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "center", "middle", "upper", "lower", "left", "right", "inner", "outer", "top", "bottom", "side", "vertical", "horizontal", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus cannot be construed as a limitation of the present invention. In addition, the terms "one", "first", "second", "third", "fourth", "fifth", "sixth" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.

[0018] In the description of the present invention, it should be noted that unless otherwise clearly specified and limited, the terms "installed", "connected", "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected, or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.

[0019] For the purposes of simplicity and illustration, the principles of the embodiments are mainly described by reference to examples. In the following description, many specific details are set forth to provide a thorough understanding of the embodiments. However, it is apparent that, for those of ordinary skill in the art, these embodiments may not be limited to these specific details in practice. In some instances, well-known methods and structures are not described in detail to avoid unnecessarily obscuring these embodiments. Additionally, all embodiments may be used in combination with each other.

[0020] Please refer to Figures 1 to 8 , the present invention provides a technical solution: an intelligent data monitoring system for secondary water supply, including: A user terminal 1, a control terminal 2, a water supply selection module 3, a water tank control module 4, a water level monitoring module 5, and a water body monitoring module 6. The user terminal 1 transmits signals to the control terminal 2 through a mobile phone, and the control terminal 2 performs secondary water supply to the area belonging to the user terminal 1 through the water supply module 3 according to the signals transmitted by the user terminal 1; The control terminal 2, which includes a data acquisition module 21, a user information database 22, an alarm module 23, a data feedback module 24, and a data transmission module 25. The data acquisition module 21 receives the user information output by the user terminal 1, the data feedback module 24 feeds back signals to the user terminal 1, the data transmission module 25 transmits the received signals to the water supply selection module 3 and the water tank control module 4 respectively. The data acquisition module 21 compares the user information input by the user terminal 1 with the user information database 22. When the user information is input incorrectly, the alarm module 23 receives the signal to give an alarm and further feeds back the signal to the user terminal 1 through the data feedback module 24 to make it transmit the user information again; The water supply selection module 3, which includes a data receiving module 31 and several user pipeline control modules 32. The user pipeline control module 32 includes a pump control module 321, a regulating valve control module 322, a flow detection module 323, and a water supply pipeline. The data receiving module 31 receives the user information transmitted by the control terminal 2 and selects the corresponding user control module 32. The data receiving module 31 transmits the collected user information to the corresponding user pipeline control module 32. The pump control module 321 and the regulating valve 322 in the user pipeline control module 32 receive the signals to open and close the main body and the valve body, and supply water to the area of the user terminal through the water supply pipeline 324. The flow detection module 323 detects the flow rate in the water supply pipeline 324 and adjusts the flow rate by controlling the valve body through the regulating valve. Each user pipeline control module 32 corresponds to a water supply pipeline; Pool control module 4, the pool control module 4 includes a reservoir 41, a main pump control module 42, a main valve control module 43, a main pump 44, a main valve 45, and a main pipeline 46. The main pump control module 42 receives signals from the control terminal to control the opening and closing of the main pump 44 to supply water to the main pipeline 46. The main pipeline 46 is connected to a number of user pipeline control modules 32 through a water supply pipeline. The main valve control module 43 controls the opening and closing of the main valve 45 to open and close the main pipeline 46 for users. The main pipeline 46 is connected to the water supply pipelines of a number of users; Water level monitoring module 5, the water level monitoring module 5 includes a water level detection sensor 51, a signal receiving module 52, and a water level alarm module 53. The water level sensor 51 detects the water level of the reservoir 41 and transmits signals. The water level detection sensor 51 detects the water level height of the reservoir and transmits the information to the signal receiving module 52. The signal receiving module 52 receives the water level signal, and when the water level of the reservoir 41 is lower than the set value, the water level alarm module 53 receives the signal and gives an alarm to prompt the staff to supply water to the reservoir; Water body monitoring module 6, the water body monitoring module 6 includes a chlorine dioxide detector 61, a concentration signal receiving module 62, and a water quality alarm module 63. The chlorine dioxide detector 61 detects the concentration of chlorine dioxide disinfectant in the reservoir 41 and transmits signals. The chlorine dioxide detector 61 detects the concentration of disinfectant in the reservoir 42 and transmits the signal to the concentration signal receiving module 62. The water quality alarm module 63 receives the signal from the concentration signal receiving module 62 and gives an alarm when the disinfectant concentration is too high to remind the staff to increase the water in the reservoir 41; Disinfection module 7, the disinfection module 7 includes a liquid storage tank 71, a disinfectant regulating valve 72, a liquid level detection module 73, and a liquid level alarm module 74. The disinfectant regulating valve 72 receives signals from the concentration signal receiving module 62 to control the addition and closing of chlorine dioxide. The disinfectant regulating valve 72 receives signals from the concentration signal receiving module 62 and opens the valve to put the disinfectant in the liquid storage tank 71 into the reservoir 41 when the disinfectant concentration is too low. The liquid level detection module 73 transmits signals to the liquid level alarm module 74 when the disinfectant liquid level in the liquid storage tank 71 is lower than a certain height to give an alarm to prompt the staff to add disinfectant.

[0021] When the device is working, the user terminal 1 inputs user information and transmits it to the control terminal 2. The control terminal 2 compares and judges the user information. When the information is incorrect, it gives an alarm and feedbacks to the user terminal 1. When it is correct, the signal is transmitted to the pool control module 4 and the water supply selection module 3. The pool control module 4 opens the main pump 44 and the main valve 45 in the reservoir 41 to supply water. At the same time, the water supply selection module 3 compares the user type and opens the corresponding user pipeline control module 32 to supply water to the user. At the same time, the water level monitoring module 5, the water body monitoring module 6, and the disinfection module 7 monitor the reservoir in real time to control and adjust the water volume and water quality in the reservoir 41 and monitor to ensure the quality of the water source.

[0022] Although embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An intelligent data monitoring system for secondary water supply, characterized in that: Including: A client (1), a control terminal (2), a water supply selection module (3), a water tank control module (4), a water level monitoring module (5), and a water body monitoring module (6). The client (1) transmits signals to the control terminal (2) via a mobile phone. The control terminal (2) performs secondary water supply to the area where the client (1) is located through the water supply module (3) according to the signals transmitted by the client (1). The control terminal (2), which includes a data acquisition module (21), a user information database (22), an alarm module (23), a data feedback module (24), and a data transmission module (25). The data acquisition module (21) receives the user information output by the client (1). The data feedback module (24) feeds back signals to the client (1). The data transmission module (25) transmits the received signals to the water supply selection module (3) and the water tank control module (4) respectively. The water supply selection module (3), which includes a data receiving module (31) and a number of user pipeline control modules (32). The user pipeline control module (32) includes a pump control module (321), a regulating valve control module (322), a flow rate detection module (323), and a water supply pipeline. The data receiving module (31) receives the user information transmitted by the control terminal (2) and selects the corresponding user control module (32). The water tank control module (4), which includes a water storage tank (41), a main pump control module (42), a main valve control module (43), a main pump (44), a main valve (45), and a main pipeline (46). The main pump control module (42) receives the signals from the control terminal to control the opening and closing of the main pump (44) to supply water to the main pipeline (46). The main pipeline (46) is connected to a number of user pipeline control modules (32) through a water supply pipeline. The water level monitoring module (5), which includes a water level detection sensor (51), a signal receiving module (52), and a water level alarm module (53). The water level sensor (51) detects the water level of the water storage tank (41) and transmits signals. The water body monitoring module (6), which includes a chlorine dioxide detector (61), a concentration signal receiving module (62), and a water quality alarm module (63). The chlorine dioxide detector (61) detects the concentration of chlorine dioxide disinfectant in the water storage tank (41) and transmits signals. The disinfection module (7), which includes a liquid storage tank (71), a disinfectant regulating valve (72), a liquid level detection module (73), and a liquid level alarm module (74). The disinfectant regulating valve (72) receives the signals from the concentration signal receiving module (62) to control the addition and closing of chlorine dioxide.

2. The intelligent data monitoring system for secondary water supply according to claim 1, characterized in that: The data acquisition module (21) compares the user information input by the user terminal (1) with the user information database (22). When the user information is input incorrectly, the alarm module (23) receives a signal to give an alarm and further feeds the signal back to the user terminal (1) through the data feedback module (24) so that the user terminal (1) re-transmits the user information.

3. An intelligent data monitoring system for secondary water supply according to claim 1, characterized in that: The data receiving module (31) transmits the collected user information to the corresponding user pipeline control module (32). The pump control module (321) and the regulating valve (322) in the user pipeline control module (32) receive signals to open and close the main body and the valve body, and supply water to the area where the user terminal is located through the water supply pipeline (324). The flow rate detection module (323) detects the flow rate in the water supply pipeline (324) and controls the valve body to adjust the flow rate through the regulating valve. Each user pipeline control module (32) corresponds to a water supply pipeline.

4. An intelligent data monitoring system for secondary water supply according to claim 1, characterized in that: The main valve control module (43) controls the opening and closing of the main valve (45) to open and close the main pipeline (46) of the user. The main pipeline (46) is connected to the water supply pipelines of several users.

5. An intelligent data monitoring system for secondary water supply according to claim 1, characterized in that: The water level detection sensor (51) detects the water level height of the reservoir and transmits the information to the signal receiving module (52). When the water level in the reservoir (41) is lower than the set value, the water level alarm module (53) receives the signal to give an alarm to prompt the staff to supply water to the reservoir.

6. The intelligent data monitoring system for secondary water supply according to claim 1, wherein: The chlorine dioxide detector (61) detects the concentration of the disinfectant in the reservoir (42) and transmits the signal to the concentration signal receiving module (62). The water quality alarm module (63) receives the signal from the concentration signal receiving module (62) and gives an alarm when the disinfectant concentration is too high to remind the staff to increase the water in the reservoir (41).

7. An intelligent data monitoring system for secondary water supply according to claim 1, characterized in that: The disinfectant regulating valve (72) receives the signal from the concentration signal receiving module (62) and opens the valve to put the disinfectant in the liquid storage tank (71) into the reservoir (41) when the disinfectant concentration is too low.

8. An intelligent data monitoring system for secondary water supply according to claim 7, characterized in that: When the liquid level of the disinfectant in the liquid storage tank (71) is lower than a certain height, the liquid level detection module (73) transmits a signal to the liquid level alarm module (74) to give an alarm to prompt the staff to add disinfectant.