Intelligent water supply scheduling control system and method

By obtaining the status of the main water supply network pipe in a time-sharing manner, using auxiliary pipes and mobile carts for detection, and combining flatness and wetness judgment, the problems of high cost and low accuracy of traditional water supply network monitoring are solved, and efficient water supply scheduling and maintenance are achieved.

CN117027115BActive Publication Date: 2025-09-16LINXIA WATER SUPPLY & DRAINAGE CO
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Patent Information

Application Number
CN202310942635.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-07-31
Publication Date
2025-09-16
Estimated Expiration
2043-07-31

AI Technical Summary

Technical Problem

Existing water supply network monitoring methods rely on water pressure sensors, which leads to high layout costs and heavy data processing pressure. They are also unable to effectively monitor problems such as water seepage and pipe deformation. The monitoring accuracy is low and it is difficult to meet water supply needs.

Method used

By obtaining the operating status of the main pipe of the water supply network through time-sharing, using the auxiliary pipe for water supply scheduling, combining the surface flatness and wetness to judge the status of the main pipe, and displaying it in real time on the monitoring terminal, setting up auxiliary pipes and mobile carts to detect the surface condition of the water pipe, reducing data processing load and system maintenance costs.

Benefits of technology

It improves the timeliness and monitoring accuracy of pipeline maintenance, reduces the system construction and maintenance budget, reduces the pressure detection points in the water pipes, realizes flexible water supply scheduling control, and is suitable for complex pipe network structures.

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Abstract

The present invention relates to an intelligent water supply scheduling control system and method, and relates to the field of water supply control or regulation systems in general areas. The intelligent water supply scheduling control system and method, in part, include the following steps: obtaining the operating status of each main pipe in the water supply network in a time-sharing manner; when the operating status of a main pipe is abnormal, obtaining the operating status of the main pipe adjacent to the upstream main pipe of the main pipe, until obtaining the main pipe in a normal state upstream of the main pipe in the abnormal state; based on the position of the main pipe, starting the corresponding sub-pipe, and judging whether the operating status of its adjacent downstream main pipe is normal after a predetermined time; wherein the predetermined time is pre-configured; if the operating status of the downstream main pipe is abnormal after the predetermined time, starting the corresponding sub-pipe of the main pipe; the intelligent water supply scheduling control system and method are flexible to use, easy to operate, and relatively intelligent to solve the problem of water supply scheduling in the area.
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Description

Technical Field

[0001] The present invention belongs to the technical field of water supply scheduling control, and in particular relates to an intelligent water supply scheduling control system and method. Background Art

[0002] The quality of water supply significantly impacts residents' quality of life. For a long time, water supply alarms and emergency repairs have been given high priority. Traditional manual methods for warning of water supply network damage have largely been eliminated. Various sensors combined with algorithms are now used to alert users of abnormal water supply network conditions. Currently, these methods rely on pressure sensors to detect changes in water pressure. However, due to long pipeline runs, a large number of pressure sensors are generally required. Furthermore, the monitoring terminals of the pressure sensors must be installed within the pipes, resulting in high deployment costs. Furthermore, centralized data collection places significant pressure on backend data processing. When the number of pressure sensors exceeds the required quantity, water pressure fluctuates due to distance, branching, and peak water usage, reducing monitoring accuracy. Furthermore, water pressure monitoring is limited in its scope, making it difficult to effectively monitor and address water seepage and pipe deformation. Therefore, relying solely on water pressure monitoring cannot effectively meet the monitoring requirements of water supply pipelines. Summary of the Invention

[0003] The purpose of the present invention is to provide an intelligent water supply scheduling control system and method with a simple structure and reasonable design in order to solve the above problems.

[0004] The present invention achieves the above-mentioned purpose through the following technical solutions:

[0005] The first aspect of the present invention provides an intelligent water supply scheduling control method, which includes the following steps:

[0006] Obtain the operating status of each main pipe in the water supply network in a time-sharing manner;

[0007] When the operation status of a certain main pipe is abnormal, the operation status of the adjacent upstream main pipe of the main pipe is obtained, until the operation status of the main pipe upstream of the abnormal main pipe is obtained;

[0008] Based on the main pipe position, the corresponding secondary pipe is activated to determine whether the operation status of the adjacent downstream main pipe is normal after a predetermined time period; wherein the predetermined time period is pre-configured;

[0009] If the downstream main pipe is in an abnormal operating state after a predetermined period of time, the corresponding sub-pipe of the main pipe is activated, and the determination of whether the downstream main pipe is in a normal state is continued; the above steps are repeated until the operating state of a downstream main pipe is normal;

[0010] Based on the above information, it is displayed on the monitoring terminal in real time in a preset manner.

[0011] As a further optimization solution of the present invention, a method for judging whether the state of the main pipe is normal is specifically to determine whether the surface of each main pipe in the water supply network is damaged.

[0012] As a further optimization scheme of the present invention, based on the preset area, the corresponding main pipe range is divided, and the entire company pipeline network is divided into multiple sections of single main pipes. Corresponding detection points are established based on the single main pipes. Based on the detection points, the signals of each monitor corresponding to the single main pipe are obtained, and based on the monitor signals, it is determined whether the main pipe is in a normal state.

[0013] As a further optimization solution of the present invention, the flatness of the surface of a single main pipe is obtained, and the state of the main pipe is judged based on the flatness.

[0014] As a further optimization solution of the present invention, the wettability of the surface of a single main pipe is obtained, and the state of the main pipe is determined based on the wettability.

[0015] As a further optimization scheme of the present invention, when the operating state of the main pipe is switched from normal to abnormal, the water inlet control gate valve and the water outlet control gate valve of the corresponding subsidiary pipe are started, and the water flow in the upstream main pipe in normal state is guided into the downstream main pipe in normal state through the subsidiary pipe; when the operating state of the main pipe is switched from abnormal to normal, the water inlet control gate valve of the corresponding subsidiary pipe is closed, and based on the characteristic data of the subsidiary pipe, the air valve is started and closed after a corresponding time, and the water outlet control gate valve of the corresponding subsidiary pipe is closed.

[0016] A second aspect of the present invention provides an intelligent water supply scheduling control system, the system comprising a memory and a processor, the memory comprising an intelligent water supply scheduling control method program, the intelligent water supply scheduling control method program, when executed by the processor, implementing the following steps:

[0017] Obtain the operating status of each main pipe in the water supply network in a time-sharing manner;

[0018] When the operation status of a certain main pipe is abnormal, the operation status of the adjacent upstream main pipe of the main pipe is obtained, until the operation status of the main pipe upstream of the abnormal main pipe is obtained;

[0019] Based on the main pipe position, the corresponding secondary pipe is activated to determine whether the operation status of the adjacent downstream main pipe is normal after a predetermined time period; wherein the predetermined time period is pre-configured;

[0020] If the downstream main pipe is in an abnormal operating state after a predetermined period of time, the corresponding sub-pipe of the main pipe is activated, and the determination of whether the downstream main pipe is in a normal state is continued; the above steps are repeated until the operating state of a downstream main pipe is normal;

[0021] Based on the above information, it is displayed on the monitoring terminal in real time in a preset manner.

[0022] As a further optimized solution of the present invention, the secondary pipe is arranged inside the main pipe or below the main pipe.

[0023] As a further optimization solution of the present invention, the water inlet control gate valve of the auxiliary pipe is set at the outer lower part of the water supply end of the upstream main pipe of the corresponding main pipe, and the water outlet control gate valve of the auxiliary pipe is set at the outer lower part of the water supply head end of the next main pipe.

[0024] As a further optimization solution of the present invention, the system also includes a fixed and / or movable water detection sensor, based on which the water output of a single main pipe surface is obtained, and the state of the main pipe is judged based on the water output.

[0025] As a further optimization scheme of the present invention, the system also includes a protective tube arranged outside the main pipe, a gap is left between the protective tube and the surface of the main pipe, a track part is arranged in the gap, the single main pipe can be made up of multiple water pipes, the track part is arranged on the surface of the water pipe, and the track parts on the surfaces of multiple water pipes are arranged accordingly. The system also includes a mobile cart with a pressure sensor on the moving end face, the mobile cart slides on the surface of the track part, when the pressure of the pressure sensor on its moving end face exceeds the set value, the mobile cart stops moving and sends a warning message to the background computer.

[0026] The beneficial effects of the present invention are as follows: the present invention obtains the operating status of each main pipe in the water supply network by time-sharing, that is, obtains information such as gate valves and sensors in the corresponding pipeline by time-sharing, which can effectively reduce the centralized processing of data by the background computer, prevent data overload, and the occurrence of bugs in information processing, and at the same time reduce the budget for system construction and maintenance; at the same time, a secondary pipe is set up, and water supply scheduling is temporarily carried out through the secondary pipe to prevent the subsequent pipelines from being unable to supply water in time due to damage to the main pipe. At the same time, the monitoring of pressure detection points in the water pipe is relatively reduced, and new improvements are made to the long-distance pipeline monitoring method, which facilitates the construction of a highly transparent underground pipeline monitoring system, effectively improves the timeliness of pipeline maintenance and repair, and reduces the impact of pipeline damage on water supply, and is carried out on the basis of the original pipeline setting, and does not require large-scale civil engineering reconstruction; and the system can be set up for use in areas where parallel pipes intersect and there are many branch flows; the entire system and method are flexible to use, easy to operate, and more intelligently solve the problem of water supply scheduling within the area. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 A schematic flow chart of an intelligent water supply scheduling control method in the present invention is shown;

[0028] Figure 2The system block diagram of an intelligent water supply scheduling and control system in the present invention is shown. DETAILED DESCRIPTION

[0029] The present application is described in further detail below in conjunction with the accompanying drawings. It is necessary to point out that the following specific implementation methods are only used to further illustrate the present application and cannot be understood as limiting the scope of protection of the present application. Technicians in this field can make some non-essential improvements and adjustments to the present application based on the above application content.

[0030] Example 1

[0031] Figure 1 A flow chart of an intelligent water supply scheduling control method in the present invention is shown.

[0032] The intelligent water supply scheduling control method includes the following steps:

[0033] S102, obtaining the operating status of each main pipe in the water supply network in a time-sharing manner;

[0034] S104, when the operation status of a certain main pipe is abnormal, the operation status of the main pipe adjacent to the main pipe upstream of the main pipe is obtained, until the operation status of the main pipe upstream of the abnormal main pipe is obtained;

[0035] S106: Based on the position of the main pipe, start the corresponding secondary pipe and determine whether the operation status of the adjacent downstream main pipe is normal after a predetermined time period; wherein the predetermined time period is pre-configured;

[0036] S108, if the downstream main pipe is in an abnormal operating state after a predetermined period of time, the corresponding sub-pipe of the main pipe is activated, and the downstream main pipe is continuously determined to be in a normal state; the above steps are repeated until the operating state of a downstream main pipe is normal;

[0037] S110, based on the above information, display it on the monitoring terminal in real time in a preset manner.

[0038] In this embodiment, the operating status of each main pipe in the water supply network is obtained in a time-sharing manner, that is, information such as gate valves and sensors in the corresponding pipes is obtained in a time-sharing manner. This can effectively reduce the centralized data processing of the backend computer, prevent data overload and the occurrence of information processing bugs, and at the same time reduce the budget for system construction and maintenance. When the operating status of a main pipe is determined to be abnormal, the position of the upstream main pipe in normal state is first locked, and then the corresponding auxiliary pipe is started based on the position of the normal main pipe. The auxiliary pipe bypasses the abnormal main pipe and performs water injection scheduling on other main pipes connected to the abnormal main pipe. Then, by observing the situation in the main pipe being injected, it is determined whether the main pipe is affected.

[0039] To further illustrate, pipe A is connected to pipe B, and pipe B is connected to pipe C. When pipe B is in an abnormal state, it may be caused by a pipe burst, or it may be accidentally dug up by the construction team, or it may be caused by an installation problem or an unstable installation foundation due to water seepage. At this time, the upstream pipelines of pipe B are all flowing water normally. Therefore, first determine whether pipe A upstream of pipe B is in a normal state. When it is normal, pass through the auxiliary pipe corresponding to pipe B and inject water into pipe C to observe the operating status of pipe C. If the operating status of pipe C is normal, the entire pipeline is normal. At this time, it is only necessary to remind the background staff to perform maintenance and repairs on pipe B. If the operating status of pipe C is abnormal, it is necessary to start the auxiliary pipe in the corresponding pipe C to inject water into pipe D connected to it, and so on.

[0040] It should be further explained that, based on the preset area, the corresponding main pipe range is divided, and the entire company pipeline network is divided into multiple sections of single main pipes. Based on the single main pipe, corresponding detection points are established. Based on the detection points, the signals of each monitor corresponding to the single main pipe are obtained, and based on the monitor signals, it is determined whether the main pipe is in a normal state. In the existing technology, the pressure detection method is often used to judge the condition of the pipeline by monitoring the data of the pressure detection point. However, in actual use, the pipeline is laid for a long time. If the main pipe is damaged due to ground factors, it is naturally easy to locate. However, if the main pipe is damaged due to factors below the ground, it is not possible to locate the position of the main pipe well. Based on this, the traditional method requires the addition of more pressure sensors and the coordination of more electrical components. The cost is not low and the effect is also average. The solution of this embodiment retains the setting of some pressure sensors as a means of inspection. It is set at the detection point. The pressure sensor is used to detect whether the pressure value at different times is within the normal range and whether the pressure value change rate is within the normal range.

[0041] Furthermore, the method for determining whether the state of the main pipe is normal is specifically to determine whether the surface of each main pipe in the water supply network is damaged.

[0042] Specifically, the flatness of the surface of a single main pipe is obtained, and the condition of the main pipe is determined based on the flatness.

[0043] Specifically, the wetness of the surface of a single main pipe is obtained, and the state of the main pipe is determined based on the wetness.

[0044] Specifically, dividing the corresponding main pipe range based on the preset area means that within the preset area, a single main pipe can include a bent pipe section and a straight pipe section. The bent pipe section and the straight pipe section are both composed of multiple water pipes, not just one pipe in the real sense. Moreover, for an area, the pipeline is not single, and many pipelines are parallel and staggered. Therefore, after an abnormality occurs in a main pipe, such as a burst, the gushing water itself will penetrate into the positions of each parallel pipe. Therefore, it is not possible to judge whether the pipeline is normal based solely on the above-mentioned flatness and wetness method (flatness judgment can be used, but the effect is not good at this time, because the method in this application can only judge the flatness of its upper surface). The above-mentioned flatness and wetness detection method can only be used as an auxiliary reference downstream, and needs to be coordinated with the actual water pressure conditions. Moreover, since the auxiliary pipe is connected at this time, the water flow of the auxiliary pipe is smaller than the water flow of the main pipe. During the injection detection stage, the water flow of the auxiliary pipe can be controlled to assist in detection and judgment.

[0045] Furthermore, generally taking the four pipes ABCD as an example, if pipe C is broken, but the water pressure, flatness and wetness in pipe B are normal, then pipe B can be directly connected to the auxiliary pipe corresponding to pipe C, and pipe D can be tested. If the wetness of pipe B is abnormal, but the water pressure is normal, it can be traced back to pipe A, and pipe B can be used directly. If the wetness and water pressure of pipe B are abnormal, it must be traced back to pipe A; if the wetness of pipe B is abnormal, but the water pressure is normal, and the wetness of pipe A is abnormal, but the water pressure is normal, then pipes AB can be freely selected, but if the water pressure of pipe A is abnormal, it must be traced back upstream of pipe A.

[0046] Furthermore, when the operating state of the main pipe is switched from normal to abnormal, the water inlet control gate valve and the water outlet control gate valve of the corresponding subsidiary pipe are started, and the water flow in the upstream main pipe in normal state is guided into the downstream main pipe in normal state through the subsidiary pipe; when the operating state of the main pipe is switched from abnormal to normal, the water inlet control gate valve of the corresponding subsidiary pipe is closed, and based on the characteristic data of the subsidiary pipe, the air valve is started and closed after a corresponding time, and the water outlet control gate valve of the corresponding subsidiary pipe is closed.

[0047] It should be noted that the water inlet control gate valve of the auxiliary pipe has two water inlets, which are respectively connected to the upper main pipe and the auxiliary pipe corresponding to the upper main pipe to complete the scheduling control. The water inlet port of the auxiliary pipe is also provided with a corresponding air pump assembly and an air valve. These parts are all arranged in the detection point. After the scheduling work is completed in the auxiliary pipe, the liquid in the pipe is emptied by flushing in gas through the air pump assembly and the air valve. Optimally, the gas can be a sterile gas, or a corresponding sterilization coating can be provided on the inner wall of the auxiliary pipe.

[0048] Figure 2 The system block diagram of an intelligent water supply scheduling and control system in the present invention is shown.

[0049] The intelligent water supply scheduling control system 2 includes a memory 21 and a processor 22. The memory 21 includes an intelligent water supply scheduling control method program. When the intelligent water supply scheduling control method program is executed by the processor 22, the following steps are implemented:

[0050] Obtain the operating status of each main pipe in the water supply network in a time-sharing manner;

[0051] When the operation status of a certain main pipe is abnormal, the operation status of the adjacent upstream main pipe of the main pipe is obtained, until the operation status of the main pipe upstream of the abnormal main pipe is obtained;

[0052] Based on the main pipe position, the corresponding secondary pipe is activated to determine whether the operation status of the adjacent downstream main pipe is normal after a predetermined time period; wherein the predetermined time period is pre-configured;

[0053] If the downstream main pipe is in an abnormal operating state after a predetermined period of time, the corresponding sub-pipe of the main pipe is activated, and the determination of whether the downstream main pipe is in a normal state is continued; the above steps are repeated until the operating state of a downstream main pipe is normal;

[0054] Based on the above information, it is displayed on the monitoring terminal in real time in a preset manner.

[0055] Wherein, the secondary pipe is arranged inside the main pipe or below the main pipe.

[0056] Furthermore, the water inlet control gate valve of the auxiliary pipe is arranged at the outer lower part of the water supply end of the upstream main pipe of the corresponding main pipe, and the water outlet control gate valve of the auxiliary pipe is arranged at the outer lower part of the water supply head end of the next main pipe. That is, general control gate valves are arranged on the outside, staggered with the connecting valve and control gate valve of the main pipe itself, and arranged at the bottom, in order to reduce the possible damage it may receive.

[0057] Furthermore, the system also includes a fixed and / or movable water detection sensor, which is used to obtain the water output of a single main pipe surface based on the water detection sensor, and to judge the state of the main pipe based on the water output.

[0058] Furthermore, the system also includes a protective tube arranged outside the main pipe, a gap is left between the protective tube and the surface of the main pipe, a track part is arranged in the gap, the single main pipe can be made up of multiple water pipes, the track part is arranged on the surface of the water pipe, and the track parts on the surfaces of multiple water pipes are arranged accordingly. The system also includes a mobile cart with a pressure sensor on the moving end face, the mobile cart slides on the surface of the track part, when the pressure of the pressure sensor on its moving end face exceeds the set value, the mobile cart stops moving and sends a warning message to the background computer.

[0059] For water detection sensors, when they are fixed, multiple groups can be installed. Alternatively, the bottom of the protective tube can be tilted (staged tilt), with the sensor positioned at the bottom of the tilted portion. When they are mobile, they only need to be moved around the bottom of the protective tube. Specifically, the water detection sensor can be a raindrop sensor or a sensor based on similar principles.

[0060] For the mobile trolley itself, the moving wheels at its bottom should preferably be set to engage in the track to move along the track. The track can be set on the upper surface of the pipeline. Based on the pressure sensor and the movement status of the trolley itself, the user can obtain whether it is obstructed and whether the track is deformed. When it moves to a place where it cannot move, the background computer can judge its situation based on the pressure signal of the pressure sensor. When the pressure sensor has a pressure signal, it means that the protective tube itself is broken. When the pressure sensor has no signal, it means that the connection of the pipeline may be deformed. Both of the above situations need to be reported to the background for processing.

[0061] It should be noted that the intelligent water supply scheduling control system and method, when in use, obtains the operating status of each main pipe in the water supply network by time-sharing, that is, obtains information such as gate valves and sensors in the corresponding pipeline by time, which can effectively reduce the centralized processing of data by the background computer, prevent data overload, and the occurrence of bugs in information processing, and at the same time reduce the budget for system construction and maintenance; at the same time, a secondary pipe is set up, and water supply scheduling is temporarily carried out through the secondary pipe to prevent the subsequent pipelines from being unable to supply water in time due to damage to the main pipe. At the same time, the monitoring of pressure detection points in the water pipe is relatively reduced, and new improvements are made to the long-distance pipeline monitoring method, which facilitates the construction of a highly transparent underground pipeline monitoring system, effectively improves the timeliness of pipeline maintenance and repair, and reduces the impact of pipeline damage on water supply, and is carried out on the basis of the original pipeline setting, and does not require large-scale civil construction and reconstruction. The entire system and method are flexible to use, easy to operate, and relatively intelligently solve the problem of water supply scheduling in the area.

[0062] In the several embodiments provided in this application, it should be understood that the disclosed devices and methods can be implemented in other ways. The device embodiments described above are merely schematic. For example, the division of the units is merely a logical function division. In actual implementation, there may be other division methods, such as: multiple units or components can be combined, or can be integrated into another system, or some features can be ignored or not executed. In addition, the coupling, direct coupling, or communication connection between the components shown or discussed can be through some interfaces, and the indirect coupling or communication connection of the devices or units can be electrical, mechanical or other forms.

[0063] The units described above as separate components may or may not be physically separated, and the components displayed as units may or may not be physical units; they may be located in one place or distributed across multiple network units; some or all of the units may be selected according to actual needs to achieve the purpose of the scheme of this embodiment.

[0064] In addition, all functional units in the embodiments of the present invention may be integrated into one processing unit, or each unit may be separately used as a unit, or two or more units may be integrated into one unit; the above-mentioned integrated units may be implemented in the form of hardware or in the form of hardware plus software functional units.

[0065] Those skilled in the art will understand that all or part of the steps of the above-mentioned method embodiments can be completed by hardware related to program instructions, and the aforementioned program can be stored in a computer-readable storage medium. When the program is executed, it executes the steps of the above-mentioned method embodiments; and the aforementioned storage medium includes: mobile storage devices, read-only memories (ROMs), random access memories (RAMs), magnetic disks, optical disks, and other media that can store program codes.

Claims

1. An intelligent water supply scheduling control method, characterized in that: The method comprises the following steps: obtaining the operating status of each main pipe in the water supply network in a time-sharing manner; when the operating status of a main pipe is abnormal, obtaining the operating status of the main pipe upstream of the main pipe, until obtaining the main pipe in a normal state upstream of the abnormal main pipe; Based on the position of the abnormal main pipe, the corresponding sub-pipe is activated to determine whether the operating status of the adjacent downstream main pipe returns to normal after a predetermined time period; wherein the predetermined time period is pre-configured; if the operating status of the downstream main pipe is abnormal after the predetermined time period, the corresponding sub-pipe of the main pipe is activated, and the determination of whether the downstream main pipe is normal is continued; the above steps are repeated until the operating status of a downstream main pipe returns to normal; based on the above information, the monitoring terminal is displayed in real time in a preset manner; Based on the preset area, the corresponding main pipe range is divided, and the entire company pipeline network is divided into multiple sections of single main pipes. Based on the single main pipe, the corresponding detection points are established. Based on the detection points, the signals of each monitor corresponding to the single main pipe are obtained. Based on the monitor signals, it is determined whether the main pipe is in normal status.

2. The intelligent water supply scheduling control method according to claim 1, characterized in that: The method for judging whether the state of the main pipe is normal is specifically to determine whether the surface of each pipe in the water supply network is damaged.

3. The intelligent water supply scheduling control method according to claim 2, characterized in that: The wettability of the surface of a single main pipe is obtained, and the state of the main pipe is judged based on the wettability; the flatness of the surface of a single main pipe is obtained, and the state of the main pipe is judged based on the flatness.

4. The intelligent water supply scheduling control method according to claim 1, characterized in that: When the operating state of the main pipe switches from normal to abnormal, the water inlet control gate valve and the water outlet control gate valve of the corresponding subsidiary pipe are started, and the water flow in the upstream normal main pipe is guided into the downstream normal main pipe through the subsidiary pipe; when the operating state of the main pipe switches from abnormal to normal, the water inlet control gate valve of the corresponding subsidiary pipe is closed, and based on the characteristic data of the subsidiary pipe, the air valve is closed after a corresponding time of activation, and the water outlet control gate valve of the corresponding subsidiary pipe is closed.

5. An intelligent water supply scheduling control system, characterized in that: The system includes a memory and a processor. The memory includes an intelligent water supply scheduling control method program. When the intelligent water supply scheduling control method program is executed by the processor, the following steps are implemented: obtaining the operating status of each main pipe in the water supply network in a time-sharing manner; when the operating status of a main pipe is abnormal, obtaining the operating status of the adjacent upstream main pipe of the main pipe, until the operating status of the main pipe in a normal state upstream of the abnormal main pipe is obtained; Based on the position of the abnormal main pipe, the corresponding sub-pipe is activated to determine whether the operating status of the adjacent downstream main pipe returns to normal after a predetermined time period; wherein the predetermined time period is pre-configured; if the operating status of the downstream main pipe is abnormal after the predetermined time period, the corresponding sub-pipe of the main pipe is activated, and the determination of whether the downstream main pipe is normal is continued; the above steps are repeated until the operating status of a downstream main pipe returns to normal; based on the above information, the monitoring terminal is displayed in real time in a preset manner.

6. The intelligent water supply scheduling and control system according to claim 5, characterized in that: in, The secondary pipe is arranged inside the main pipe or below the main pipe.

7. The intelligent water supply scheduling and control system according to claim 6, characterized in that: The water inlet control gate valve of the auxiliary pipe is arranged at the outer lower part of the water supply end of the upstream main pipe of the corresponding main pipe, and the water outlet control gate valve of the auxiliary pipe is arranged at the outer lower part of the water supply head end of the next main pipe.

8. The intelligent water supply scheduling and control system according to claim 7, characterized in that: The system also includes a fixed or / and movable water detection sensor, which is used to obtain the water output of a single main pipe surface based on the water detection sensor, and to judge the state of the main pipe based on the water output.

9. The intelligent water supply scheduling and control system according to claim 8, characterized in that: The system also includes a protective tube arranged outside the main pipe, with a gap between the protective tube and the surface of the main pipe, and a track member arranged in the gap. The single main pipe is made up of multiple water pipes, and the track member is arranged on the surface of the water pipe. The track members on the surfaces of multiple water pipes are arranged accordingly. The system also includes a mobile cart with a pressure sensor on its moving end face. The mobile cart slides on the surface of the track member. When the pressure of the pressure sensor on its moving end face exceeds the set value, the mobile cart stops moving and sends a warning message to the background computer.

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