Integrated pump station management method, system, computer and readable storage medium

By obtaining the water level and configuration information of the pump station, planning work rules and converting control instructions, the automatic control of the pump machine is achieved, and the problems of inefficiency and high cost in the existing technology are solved, and the management efficiency of urban drainage is improved and the cost is reduced.

CN116146472BActive Publication Date: 2025-08-12NANCHANG URBAN PLANNING & DESIGN RES INST GRP CO LTD
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Patent Information

Application Number
CN202310036957.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-01-10
Publication Date
2025-08-12
Estimated Expiration
2043-01-10

AI Technical Summary

Technical Problem

The existing urban drainage lifting pump station management lacks reliable automation methods and mainly relies on manual operations, resulting in inefficient and high cost.

Method used

By obtaining the water level information of the reservoir in front of the pump station and the pump configuration information, the pump working rules are planned and converted into control instructions in real time, and the automatic control of the pump is achieved by using the control chassis.

Benefits of technology

The automatic control of the pump machine is realized, the operation and management efficiency of the pump station is improved, and the management cost is reduced.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The present invention provides an integrated pump station management method, system, computer and readable storage medium, the method comprising: obtaining the water level information of the front water reservoir corresponding to the current pump station, and obtaining the configuration information corresponding to the pump in the current pump station; planning the working rules corresponding to the pump according to the water level information and the configuration information, and converting the working rules into corresponding control instructions in real time, wherein the working rules are unique; inputting the control instructions into the control box of the current pump station so that the control box automatically controls the pump according to the control instructions in real time. Through the above-mentioned method, the working rules of the pumps in each pump station can be simply and effectively formulated to realize the automatic control of the pumps in each pump station, thereby eliminating manual operation, correspondingly greatly improving the control efficiency of the pumps, thereby improving the operation and management efficiency of the pump station, and reducing management costs.
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Description

Technical Field

[0001] The present invention relates to the technical field of urban drainage, and in particular to an integrated pump station management method, system, computer and readable storage medium. Background Art

[0002] With the development of the times, the scale of cities is getting bigger and bigger. In the process of urban construction, the urban drainage system is one of the important construction links, which is used to collect, transport and treat and discharge urban sewage and rainwater to ensure the cleanliness of the city.

[0003] The existing urban drainage system is usually composed of drainage pipes, sewage treatment plants and several pumping stations. The drainage pipes are used to collect sewage and rainwater and transport the sewage to the sewage treatment plants for treatment.

[0004] However, existing technologies lack reliable automated means for the management of urban drainage lifting pump stations, and most existing pump stations still use manual measurement of water level, flow, pump operation and other parameters, and only rely on telephone calls to issue instructions to complete the operation and management of each pump station, which is inefficient and has high operating and management costs. Summary of the Invention

[0005] Based on this, the purpose of the present invention is to provide an integrated pump station management method, system, computer and readable storage medium to solve the problem that the existing technology lacks reliable automated means for the management of urban drainage lifting pump stations, and most of the existing pump stations still use manual measurement of water level, flow and pump operation parameters, and only rely on telephone to issue instructions to complete the operation and management of each pump station, which is inefficient and has high operating and management costs.

[0006] A first aspect of an embodiment of the present invention provides an integrated pump station management method, the method comprising:

[0007] Obtain the water level information of the front water reservoir corresponding to the current pumping station, and obtain the configuration information corresponding to the pump in the current pumping station;

[0008] Planning a working rule corresponding to the pump according to the water level information and the configuration information, and converting the working rule into a corresponding control instruction in real time, wherein the working rule is unique;

[0009] The control instruction is input into the control box of the current pump station, so that the control box automatically controls the pump according to the control instruction in real time.

[0010] The beneficial effects of the present invention are as follows: first, the water level information of the front water reservoir corresponding to the current pump station is obtained, and the configuration information corresponding to the pump in the current pump station is obtained; further, the working rules corresponding to the pump are planned according to the water level information and the configuration information, and the working rules are converted into corresponding control instructions in real time, and the working rules are unique; finally, the above control instructions only need to be input into the control box of the current pump station, so that the control box can automatically control the pump according to the control instructions in real time. In the above manner, the working rules of the pumps in each pump station can be simply and effectively formulated to realize the automatic control of the pumps in each pump station, thereby eliminating manual operation, greatly improving the control efficiency of the pumps, and then improving the operation and management efficiency of the pump station, while reducing the cost of management, and suitable for large-scale promotion and use.

[0011] Preferably, the step of planning a working rule corresponding to the pump according to the water level information and the configuration information includes:

[0012] Extracting the real-time water level corresponding to the real-time water storage capacity in the front water reservoir from the water level information in real time, and determining whether the real-time water level is higher than the pump start-up water level or lower than the pump stop-up water level;

[0013] If it is determined that the real-time water level is higher than the pump start-up water level, the pump is turned on by the control box to start the pump;

[0014] If it is determined that the real-time water level is lower than the pump stop water level, the pump is shut down through the control box to stop the pump from working.

[0015] Preferably, the configuration information includes pump station distribution information corresponding to the pump station, and the step of planning a working rule corresponding to the pump according to the water level information and the configuration information includes:

[0016] Find the corresponding head-end pumping station, intermediate pumping station and terminal pumping station according to the pumping station distribution information, and determine whether the first real-time flow rate of the terminal pumping station entering the sewage treatment plant pumping station is greater than the second real-time flow rate of the sewage treatment plant pumping station entering the sewage treatment plant;

[0017] If it is determined that the first real-time flow rate from the terminal pump station to the sewage treatment plant pump station is greater than the second real-time flow rate from the sewage treatment plant pump station to the sewage treatment plant, then it is determined whether the water storage tank in the sewage treatment plant has reached the alarm water level;

[0018] If it is determined that the water reservoir in the sewage treatment plant has reached the alarm water level, the pump in the terminal pumping station will be forcibly shut down, and after the real-time water level of the water reservoir in the sewage treatment plant is lower than the alarm water level, the pump in the terminal pumping station will continue to be activated.

[0019] Preferably, the step of planning a working rule corresponding to the pump according to the water level information and the configuration information includes:

[0020] Extracting the cycle working duration corresponding to the pump from the configuration information, and planning a rotation cycle corresponding to the pump according to the cycle working duration, wherein the duration of the rotation cycle is less than the cycle working duration;

[0021] When the working time of a certain pump reaches the rotation cycle, the current pump is turned off, and another target pump with the same working parameters and the longest pump stop time is enabled to work in rotation.

[0022] Preferably, the step of converting the working rules into corresponding control instructions in real time includes:

[0023] Characterizing the working rules using a DTW algorithm to generate a number of corresponding feature sequences, each of which includes a number of feature factors;

[0024] Cluster analysis is performed on the characteristic factors using a k-means clustering algorithm to generate a number of corresponding target characteristic matrices, and the target characteristic matrices are converted into the control instructions using a BWT data conversion algorithm.

[0025] A second aspect of an embodiment of the present invention provides an integrated pump station management system, the system comprising:

[0026] The acquisition module is used to obtain the water level information of the front water reservoir corresponding to the current pumping station and the configuration information corresponding to the pump in the current pumping station;

[0027] A planning module, configured to plan a working rule corresponding to the pump according to the water level information and the configuration information, and convert the working rule into a corresponding control instruction in real time, wherein the working rule is unique;

[0028] The control module is used to input the control instruction into the control box of the current pump station, so that the control box can automatically control the pump according to the control instruction in real time.

[0029] Among them, in the above-mentioned integrated pump station management system, the planning module is specifically used to:

[0030] Extracting the real-time water level corresponding to the real-time water storage capacity in the front water reservoir from the water level information in real time, and determining whether the real-time water level is higher than the pump start-up water level or lower than the pump stop-up water level;

[0031] If it is determined that the real-time water level is higher than the pump start-up water level, the pump is turned on by the control box to start the pump;

[0032] If it is determined that the real-time water level is lower than the pump stop water level, the pump is shut down through the control box to stop the pump from working.

[0033] Wherein, in the above-mentioned integrated pump station management system, the configuration information includes pump station distribution information corresponding to the pump station, and the planning module is specifically used to:

[0034] Find the corresponding head-end pumping station, intermediate pumping station and terminal pumping station according to the pumping station distribution information, and determine whether the first real-time flow rate of the terminal pumping station entering the sewage treatment plant pumping station is greater than the second real-time flow rate of the sewage treatment plant pumping station entering the sewage treatment plant;

[0035] If it is determined that the first real-time flow rate from the terminal pump station to the sewage treatment plant pump station is greater than the second real-time flow rate from the sewage treatment plant pump station to the sewage treatment plant, then it is determined whether the water storage tank in the sewage treatment plant has reached the alarm water level;

[0036] If it is determined that the water reservoir in the sewage treatment plant has reached the alarm water level, the pump in the terminal pumping station will be forcibly shut down, and after the real-time water level of the water reservoir in the sewage treatment plant is lower than the alarm water level, the pump in the terminal pumping station will continue to be activated.

[0037] Among them, in the above-mentioned integrated pump station management system, the planning module is specifically used to:

[0038] Extracting the cycle working duration corresponding to the pump from the configuration information, and planning a rotation cycle corresponding to the pump according to the cycle working duration, wherein the duration of the rotation cycle is less than the cycle working duration;

[0039] When the working time of a certain pump reaches the rotation cycle, the current pump is turned off, and another target pump with the same working parameters and the longest pump stop time is enabled to work in rotation.

[0040] Among them, in the above-mentioned integrated pump station management system, the planning module is specifically used to:

[0041] Characterizing the working rules using a DTW algorithm to generate a number of corresponding feature sequences, each of which includes a number of feature factors;

[0042] Cluster analysis is performed on the characteristic factors using a k-means clustering algorithm to generate a number of corresponding target characteristic matrices, and the target characteristic matrices are converted into the control instructions using a BWT data conversion algorithm.

[0043] A third aspect of an embodiment of the present invention provides a computer comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor implements the above-described integrated pump station management method when executing the computer program.

[0044] A fourth aspect of an embodiment of the present invention provides a readable storage medium having a computer program stored thereon, which, when executed by a processor, implements the integrated pump station management method as described above.

[0045] Additional aspects and advantages of the present invention will be set forth in part in the description which follows and, in part, will be obvious from the description which follows, or may be learned by practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0046] Figure 1 A flow chart of the integrated pump station management method provided by the first embodiment of the present invention;

[0047] Figure 2 This is a structural block diagram of the integrated pump station management system provided by the sixth embodiment of the present invention.

[0048] The following specific embodiments will further illustrate the present invention in conjunction with the above-mentioned drawings. DETAILED DESCRIPTION

[0049] To facilitate understanding of the present invention, the present invention will be described more fully below with reference to the accompanying drawings. The drawings illustrate several embodiments of the present invention. However, the present invention may be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and comprehensive understanding of the present invention.

[0050] It should be noted that when an element is referred to as being "fixed to" another element, it may be directly on the other element or there may be an intermediate element. When an element is referred to as being "connected to" another element, it may be directly connected to the other element or there may be an intermediate element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only.

[0051] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one skilled in the art to which this invention pertains. The terms used in this specification of the present invention are for the purpose of describing specific embodiments only and are not intended to limit the present invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.

[0052] Existing technologies lack reliable automated means for the management of urban drainage lifting pumping stations, and most existing pumping stations still use manual measurement of water level, flow, pump operation and other parameters, and only rely on telephone calls to issue instructions to complete the operation and management of each pumping station. This is inefficient and the cost of operation and management is high.

[0053] See also Figure 1 , shown is the integrated pump station management method provided by the first embodiment of the present invention. The integrated pump station management method provided by this embodiment can simply and effectively formulate the working rules of the pumps in each pump station to realize automatic control of the pumps in each pump station, thereby eliminating manual operation, and correspondingly greatly improving the control efficiency of the pumps, thereby improving the operation and management efficiency of the pump station, while reducing the management cost, and is suitable for large-scale promotion and use.

[0054] Specifically, the integrated pump station management method provided in this embodiment includes the following steps:

[0055] Step S10, obtaining the water level information of the front water reservoir corresponding to the current pumping station, and obtaining the configuration information corresponding to the pump in the current pumping station;

[0056] Specifically, in this embodiment, it should be noted that the integrated pump station management method provided in this embodiment is specifically applied in the lift pump stations in various cities to discharge the sewage generated in the city into the sewage treatment plant to ultimately complete the purification of urban sewage.

[0057] It should be noted that each pumping station is equipped with a pump and a control box for controlling the pump. However, most existing technologies rely on manual control of the control box to control the pump and ultimately complete the sewage treatment. In addition, it should be pointed out that existing technologies will set up a front water reservoir in front of each pumping station for temporary storage of urban sewage to improve the efficiency of urban sewage treatment.

[0058] Therefore, it should be noted that this step first obtains the real-time water level information of the front reservoir corresponding to the current pumping station. Specifically, this water level information includes the real-time water level of the front reservoir. Furthermore, this step also obtains the configuration information corresponding to the pumps in the current pumping station. Specifically, this configuration information may include parameters such as the rated power, rated operating time, and model of the current pumps.

[0059] Step S20, planning a working rule corresponding to the pump according to the water level information and the configuration information, and converting the working rule into a corresponding control instruction in real time, wherein the working rule is unique;

[0060] Furthermore, after the water level information and configuration information are respectively obtained through the above steps, this embodiment will further plan the working rules of the current pump based on the current real-time water level information and configuration information. On this basis, this step will further convert the real-time generated working rules into corresponding control instructions, that is, convert the real-time generated working rules into corresponding computer codes to complete the control of the current pump.

[0061] Step S30: input the control instruction into the control box of the current pump station, so that the control box automatically controls the pump according to the control instruction in real time.

[0062] Finally, in this step, it should be noted that after this embodiment obtains the required control instructions in the above manner, this step will further input the real-time generated control instructions into the control box in the current pump station. Preferably, this embodiment pre-installs a PLC program in the control box, and the PLC program is adapted to the current control instructions, so that the control box can complete the automatic control of the current pump in real time according to the received control instructions.

[0063] When in use, first obtain the water level information of the front water reservoir corresponding to the current pump station, and obtain the configuration information corresponding to the pump in the current pump station; further, plan the working rules corresponding to the pump according to the water level information and configuration information, and convert the working rules into corresponding control instructions in real time. The working rules are unique; finally, just input the above control instructions into the control box of the current pump station, so that the control box can automatically control the pump according to the control instructions in real time. Through the above method, the working rules of the pumps in each pump station can be simply and effectively formulated to realize the automatic control of the pumps in each pump station, thereby eliminating manual operation, greatly improving the control efficiency of the pumps, and then improving the operation and management efficiency of the pump station, while reducing the management cost, and suitable for large-scale promotion and use.

[0064] It should be noted that the above implementation process is only to illustrate the feasibility of this application, but this does not mean that the integrated pump station management method of this application has only the above-mentioned implementation process. On the contrary, as long as the integrated pump station management method of this application can be implemented, it can be included in the feasible implementation plan of this application.

[0065] In summary, the integrated pump station management method provided by the above embodiments of the present invention can simply and effectively formulate the working rules of the pumps in each pump station to realize automatic control of the pumps in each pump station, thereby eliminating manual operation and greatly improving the control efficiency of the pumps. In turn, it improves the operation and management efficiency of the pump station, while reducing management costs, and is suitable for large-scale promotion and use.

[0066] The second embodiment of the present invention also provides an integrated pump station management method. The integrated pump station management method provided by this embodiment differs from the integrated pump station management method provided by the first embodiment in that:

[0067] Specifically, in this embodiment, it should be noted that the step of planning the working rules corresponding to the pump according to the water level information and the configuration information includes:

[0068] Extracting the real-time water level corresponding to the real-time water storage capacity in the front water reservoir from the water level information in real time, and determining whether the real-time water level is higher than the pump start-up water level or lower than the pump stop-up water level;

[0069] If it is determined that the real-time water level is higher than the pump start-up water level, the pump is turned on by the control box to start the pump;

[0070] If it is determined that the real-time water level is lower than the pump stop water level, the pump is shut down through the control box to stop the pump from working.

[0071] Specifically, in this embodiment, it should be noted that in order to accurately realize the automatic start and stop of the pump, this embodiment will immediately extract the real-time water storage capacity in the above-mentioned front water reservoir according to the current water level information after obtaining the water level information of the front water reservoir of the current pump station, so as to calculate the real-time water level height corresponding to the current front water reservoir according to the current real-time water storage capacity, and further judge whether the real-time calculated water level height is less than the preset minimum alarm water level or higher than the preset maximum alarm water level.

[0072] Furthermore, if it is determined that the calculated water level is less than the minimum alarm water level or higher than the maximum alarm water level, it means that the real-time water storage capacity in the above-mentioned front water reservoir is too low or too high. At this time, it is necessary to turn on the above-mentioned pump through the above-mentioned control box to make the pump start working, so that the real-time water storage capacity in the front water reservoir is within a normal range.

[0073] Correspondingly, if it is determined that the calculated water level is not less than the minimum alarm water level or not higher than the maximum alarm water level, it means that the real-time water storage capacity in the above-mentioned front water reservoir is within the normal range. At this time, the pump is shut down by controlling the chassis to stop the pump from working and extend the service life of the pump.

[0074] It should be pointed out that the implementation principle and some technical effects of the method provided in the second embodiment of the present invention are the same as those of the first embodiment. For the sake of brief description, for matters not mentioned in this embodiment, reference may be made to the corresponding content provided in the first embodiment.

[0075] In summary, the integrated pump station management method provided by the above embodiments of the present invention can simply and effectively formulate the working rules of the pumps in each pump station to realize automatic control of the pumps in each pump station, thereby eliminating manual operation and greatly improving the control efficiency of the pumps. In turn, it improves the operation and management efficiency of the pump station, while reducing management costs, and is suitable for large-scale promotion and use.

[0076] The third embodiment of the present invention also provides an integrated pump station management method. The integrated pump station management method provided by this embodiment differs from the integrated pump station management method provided by the first embodiment in that:

[0077] Specifically, in this embodiment, it should be noted that the configuration information includes pump station distribution information corresponding to the pump station, and the step of planning the working rules corresponding to the pump according to the water level information and the configuration information includes:

[0078] Find the corresponding head-end pumping station, intermediate pumping station and terminal pumping station according to the pumping station distribution information, and determine whether the first real-time flow rate of the terminal pumping station entering the sewage treatment plant pumping station is greater than the second real-time flow rate of the sewage treatment plant pumping station entering the sewage treatment plant;

[0079] If it is determined that the first real-time flow rate from the terminal pump station to the sewage treatment plant pump station is greater than the second real-time flow rate from the sewage treatment plant pump station to the sewage treatment plant, then it is determined whether the water storage tank in the sewage treatment plant has reached the alarm water level;

[0080] If it is determined that the water reservoir in the sewage treatment plant has reached the alarm water level, the pump in the terminal pumping station will be forcibly shut down, and after the real-time water level of the water reservoir in the sewage treatment plant is lower than the alarm water level, the pump in the terminal pumping station will continue to be activated.

[0081] Furthermore, in this embodiment, it should be noted that since the area of existing cities is relatively large, it is necessary to set up head-end pumping stations, intermediate pumping stations and terminal pumping stations to collect sewage from different areas in the city into sewage treatment plants to ultimately complete the cleaning of urban sewage.

[0082] Therefore, in this embodiment, it should be noted that this embodiment will extract the pump station distribution information of each pump station based on the acquired configuration information of the pump station, and further find out the corresponding head pump station, intermediate pump station and terminal pump station based on the pump station information, and judge in real time whether the first real-time flow rate of the terminal pump station entering the sewage treatment plant pump station is greater than the second real-time flow rate of the sewage treatment plant pump station entering the sewage treatment plant.

[0083] Furthermore, if it is determined that the first real-time flow rate of the terminal pumping station entering the sewage treatment plant pumping station is greater than the second real-time flow rate of the sewage treatment plant pumping station entering the sewage treatment plant, it is further determined whether the water level in the water reservoir in the current sewage treatment plant has reached the alarm water level. Specifically, if it is determined that the water level in the water reservoir in the sewage treatment plant has reached the alarm water level, it indicates that the water level is too high and the pump in the terminal pumping station needs to be forcibly shut down. Correspondingly, when the real-time water level of the water reservoir in the sewage treatment plant is lower than the alarm water level, the pump in the terminal pumping station is reactivated.

[0084] It should be pointed out that the implementation principle and some technical effects of the method provided in the third embodiment of the present invention are the same as those of the first embodiment. For the sake of brief description, for matters not mentioned in this embodiment, reference may be made to the corresponding content provided in the first embodiment.

[0085] In summary, the integrated pump station management method provided by the above embodiments of the present invention can simply and effectively formulate the working rules of the pumps in each pump station to realize automatic control of the pumps in each pump station, thereby eliminating manual operation and greatly improving the control efficiency of the pumps. In turn, it improves the operation and management efficiency of the pump station, while reducing management costs, and is suitable for large-scale promotion and use.

[0086] The fourth embodiment of the present invention also provides an integrated pump station management method. The integrated pump station management method provided by this embodiment differs from the integrated pump station management method provided by the first embodiment in that:

[0087] Furthermore, in this embodiment, it should be noted that the step of planning a working rule corresponding to the pump according to the water level information and the configuration information includes:

[0088] Extracting the cycle working duration corresponding to the pump from the configuration information, and planning a rotation cycle corresponding to the pump according to the cycle working duration, wherein the duration of the rotation cycle is less than the cycle working duration;

[0089] When the working time of a certain pump reaches the rotation cycle, the current pump is turned off, and another target pump with the same working parameters and the longest pump stop time is enabled to work in rotation.

[0090] Furthermore, in this embodiment, it should be noted that in order to effectively extend the service life of the pump in the pump station, this embodiment will extract the cycle working time corresponding to the current pump from the acquired configuration information, and further plan the rotation cycle corresponding to the current pump based on the current cycle working time. It can be understood that the duration of the planned rotation cycle is less than the cycle working time of the current pump.

[0091] During the actual working process, when the working time of the pump in the pump station reaches the pre-set rotation cycle, this embodiment will immediately shut down the pump in the current pump station, and enable another target pump in the current pump station that has the same working parameters as the currently shut down pump and has the longest pump stop time for rotation work, so that each pump can work for an appropriate time, which is beneficial to extending the service life of the pump.

[0092] It should be pointed out that the implementation principle and some technical effects of the method provided in the fourth embodiment of the present invention are the same as those of the first embodiment. For the sake of brief description, for matters not mentioned in this embodiment, reference may be made to the corresponding content provided in the first embodiment.

[0093] In summary, the integrated pump station management method provided by the above embodiments of the present invention can simply and effectively formulate the working rules of the pumps in each pump station to realize automatic control of the pumps in each pump station, thereby eliminating manual operation and greatly improving the control efficiency of the pumps. In turn, it improves the operation and management efficiency of the pump station, while reducing management costs, and is suitable for large-scale promotion and use.

[0094] The fifth embodiment of the present invention also provides an integrated pump station management method. The integrated pump station management method provided by this embodiment differs from the integrated pump station management method provided by the first embodiment in that:

[0095] Furthermore, in this embodiment, it should be noted that the step of converting the working rules into corresponding control instructions in real time includes:

[0096] Characterizing the working rules using a DTW algorithm to generate a number of corresponding feature sequences, each of which includes a number of feature factors;

[0097] Cluster analysis is performed on the characteristic factors using a k-means clustering algorithm to generate a number of corresponding target characteristic matrices, and the target characteristic matrices are converted into the control instructions using a BWT data conversion algorithm.

[0098] Specifically, in this embodiment, in order to accurately complete the automatic control of the pump, after formulating the corresponding working rules, this embodiment will further characterize the working rules formulated in real time through a pre-set DTW algorithm to generate several corresponding feature sequences, where each feature sequence includes several feature factors.

[0099] On this basis, the current characteristic factors are further clustered and analyzed using the preset k-means clustering algorithm to generate several corresponding target characteristic matrices. Finally, the current target characteristic matrices can be converted into corresponding control instructions simply through the preset BWT data conversion algorithm.

[0100] It should be pointed out that the implementation principle and some technical effects of the method provided in the fifth embodiment of the present invention are the same as those of the first embodiment. For the sake of brief description, for matters not mentioned in this embodiment, reference may be made to the corresponding content provided in the first embodiment.

[0101] In summary, the integrated pump station management method provided by the above embodiments of the present invention can simply and effectively formulate the working rules of the pumps in each pump station to realize automatic control of the pumps in each pump station, thereby eliminating manual operation and greatly improving the control efficiency of the pumps. In turn, it improves the operation and management efficiency of the pump station, while reducing management costs, and is suitable for large-scale promotion and use.

[0102] See also Figure 2 , shown is an integrated pump station management system provided by a sixth embodiment of the present invention, the system comprising:

[0103] The acquisition module 12 is used to obtain the water level information of the front water reservoir corresponding to the current pumping station and the configuration information corresponding to the pump in the current pumping station;

[0104] A planning module 22 is configured to plan a working rule corresponding to the pump according to the water level information and the configuration information, and convert the working rule into a corresponding control instruction in real time, wherein the working rule is unique;

[0105] The control module 32 is used to input the control instruction into the control box of the current pump station, so that the control box can automatically control the pump according to the control instruction in real time.

[0106] Among them, in the above-mentioned integrated pump station management system, the planning module 22 is specifically used to:

[0107] Extracting the real-time water level corresponding to the real-time water storage capacity in the front water reservoir from the water level information in real time, and determining whether the real-time water level is higher than the pump start-up water level or lower than the pump stop-up water level;

[0108] If it is determined that the real-time water level is higher than the pump start-up water level, the pump is turned on by the control box to start the pump;

[0109] If it is determined that the real-time water level is lower than the pump stop water level, the pump is shut down through the control box to stop the pump from working.

[0110] In the above-mentioned integrated pump station management system, the configuration information includes pump station distribution information corresponding to the pump stations, and the planning module 22 is specifically used to:

[0111] Find the corresponding head-end pumping station, intermediate pumping station and terminal pumping station according to the pumping station distribution information, and determine whether the first real-time flow rate of the terminal pumping station entering the sewage treatment plant pumping station is greater than the second real-time flow rate of the sewage treatment plant pumping station entering the sewage treatment plant;

[0112] If it is determined that the first real-time flow rate from the terminal pump station to the sewage treatment plant pump station is greater than the second real-time flow rate from the sewage treatment plant pump station to the sewage treatment plant, then it is determined whether the water storage tank in the sewage treatment plant has reached the alarm water level;

[0113] If it is determined that the water reservoir in the sewage treatment plant has reached the alarm water level, the pump in the terminal pumping station will be forcibly shut down, and after the real-time water level of the water reservoir in the sewage treatment plant is lower than the alarm water level, the pump in the terminal pumping station will continue to be activated.

[0114] Among them, in the above-mentioned integrated pump station management system, the planning module 22 is specifically used to:

[0115] Extracting the cycle working duration corresponding to the pump from the configuration information, and planning a rotation cycle corresponding to the pump according to the cycle working duration, wherein the duration of the rotation cycle is less than the cycle working duration;

[0116] When the working time of a certain pump reaches the rotation cycle, the current pump is turned off, and another target pump with the same working parameters and the longest pump stop time is enabled to work in rotation.

[0117] Among them, in the above-mentioned integrated pump station management system, the planning module 22 is specifically used to:

[0118] Characterizing the working rules using a DTW algorithm to generate a number of corresponding feature sequences, each of which includes a number of feature factors;

[0119] Cluster analysis is performed on the characteristic factors using a k-means clustering algorithm to generate a number of corresponding target characteristic matrices, and the target characteristic matrices are converted into the control instructions using a BWT data conversion algorithm.

[0120] The seventh embodiment of the present invention provides a computer, comprising a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, the integrated pump station management method provided in the above embodiment is implemented.

[0121] An eighth embodiment of the present invention provides a readable storage medium having a computer program stored thereon. When the program is executed by a processor, the integrated pump station management method provided in the above embodiment is implemented.

[0122] To sum up, the integrated pump station management method, system, computer and readable storage medium provided by the above embodiments of the present invention can simply and effectively formulate the working rules of the pumps in each pump station to realize automatic control of the pumps in each pump station, thereby eliminating manual operation and greatly improving the control efficiency of the pumps, thereby improving the operation and management efficiency of the pump station, while reducing management costs, and is suitable for large-scale promotion and use.

[0123] It should be noted that the above modules can be functional modules or program modules, and can be implemented through software or hardware. For modules implemented through hardware, the above modules can be located in the same processor; or the above modules can be located in different processors in any combination.

[0124] The logic and / or steps represented in the flowcharts or otherwise described herein, for example, can be considered as a sequenced list of executable instructions for implementing the logical functions, and can be embodied in any computer-readable medium for use by, or in conjunction with, an instruction execution system, apparatus, or device (e.g., a computer-based system, a system including a processor, or other system that can fetch and execute instructions from an instruction execution system, apparatus, or device). For purposes of this specification, a "computer-readable medium" can be any device that can contain, store, communicate, propagate, or transport a program for use by, or in conjunction with, an instruction execution system, apparatus, or device.

[0125] More specific examples (a non-exhaustive list) of computer-readable media include the following: an electrical connection with one or more wires (electronic devices), a portable computer disk cartridge (magnetic devices), a random access memory (RAM), a read-only memory (ROM), an erasable and programmable read-only memory (EPROM or flash memory), a fiber optic device, and a portable compact disc read-only memory (CDROM). In addition, the computer-readable medium may even be paper or other suitable medium on which the program is printed, since the program may be obtained electronically, for example, by optically scanning the paper or other medium and then editing, interpreting, or processing it in another suitable manner as necessary, and then storing it in a computer memory.

[0126] It should be understood that various components of the present invention may be implemented using hardware, software, firmware, or a combination thereof. In the above-described embodiments, multiple steps or methods may be implemented using software or firmware stored in a memory and executed by a suitable instruction execution system. For example, if implemented using hardware, as in another embodiment, any one of the following technologies known in the art or a combination thereof may be used: a discrete logic circuit having logic gate circuits for implementing logic functions on data signals, an application-specific integrated circuit having suitable combinational logic gate circuits, a programmable gate array (PGA), a field-programmable gate array (FPGA), etc.

[0127] Throughout this specification, reference to terms such as "one embodiment," "some embodiments," "examples," "specific examples," or "some examples" means that a specific feature, structure, material, or characteristic described in conjunction with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, schematic representations of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.

[0128] The above-described embodiments merely illustrate several implementations of the present invention, and while their descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the present invention. It should be noted that a person skilled in the art would be able to make numerous variations and improvements without departing from the spirit of the present invention, all of which fall within the scope of protection of the present invention. Therefore, the scope of protection of the present invention shall be determined by the appended claims.

Claims

1. An integrated pump station management method, characterized in that: The method comprises: Obtain the water level information of the front water reservoir corresponding to the current pump station, and obtain the configuration information corresponding to the pump in the current pump station, wherein the configuration information includes the rated power, rated working time and model of the pump; Planning a working rule corresponding to the pump according to the water level information and the configuration information, and converting the working rule into a corresponding control instruction in real time, wherein the working rule is unique; Inputting the control instruction into the control box of the current pump station so that the control box automatically controls the pump according to the control instruction in real time; The step of planning a working rule corresponding to the pump according to the water level information and the configuration information comprises: Extracting the real-time water level corresponding to the real-time water storage capacity in the front water reservoir from the water level information in real time, and determining whether the real-time water level is higher than the pump start-up water level or lower than the pump stop-up water level; If it is determined that the real-time water level is higher than the pump start-up water level, the pump is turned on by the control box to start the pump; If it is determined that the real-time water level is lower than the pump stop water level, the pump is turned off through the control box to stop the pump; The configuration information includes pump station distribution information corresponding to the pump station, and the step of planning a working rule corresponding to the pump according to the water level information and the configuration information includes: Find the corresponding head-end pumping station, intermediate pumping station and terminal pumping station according to the pumping station distribution information, and determine whether the first real-time flow rate of the terminal pumping station entering the sewage treatment plant pumping station is greater than the second real-time flow rate of the sewage treatment plant pumping station entering the sewage treatment plant; If it is determined that the first real-time flow rate from the terminal pump station to the sewage treatment plant pump station is greater than the second real-time flow rate from the sewage treatment plant pump station to the sewage treatment plant, then it is determined whether the water storage tank in the sewage treatment plant has reached the alarm water level; If it is determined that the water reservoir in the sewage treatment plant has reached the alarm water level, the pump in the terminal pump station is forcibly shut down, and after the real-time water level of the water reservoir in the sewage treatment plant falls below the alarm water level, the pump in the terminal pump station is resumed; The step of planning a working rule corresponding to the pump according to the water level information and the configuration information comprises: Extracting the cycle working duration corresponding to the pump from the configuration information, and planning a rotation cycle corresponding to the pump according to the cycle working duration, wherein the duration of the rotation cycle is less than the cycle working duration; When the working time of a certain pump reaches the rotation period, the current pump is turned off and another target pump with the same working parameters and the longest pumping time is activated for rotation; The step of converting the working rules into corresponding control instructions in real time includes: Characterizing the working rules using a DTW algorithm to generate a number of corresponding feature sequences, each of which includes a number of feature factors; Cluster analysis is performed on the characteristic factors using a k-means clustering algorithm to generate a number of corresponding target characteristic matrices, and the target characteristic matrices are converted into the control instructions using a BWT data conversion algorithm.

2. An integrated pump station management system, characterized in that: For implementing the integrated pump station management method according to claim 1, the system comprises: The acquisition module is used to obtain the water level information of the front water reservoir corresponding to the current pumping station and the configuration information corresponding to the pump in the current pumping station; A planning module, configured to plan a working rule corresponding to the pump according to the water level information and the configuration information, and convert the working rule into a corresponding control instruction in real time, wherein the working rule is unique; A control module, configured to input the control instruction into a control box of the current pump station, so that the control box automatically controls the pump according to the control instruction in real time; The planning module is specifically used for: Extracting the real-time water level corresponding to the real-time water storage capacity in the front water reservoir from the water level information in real time, and determining whether the real-time water level is higher than the pump start-up water level or lower than the pump stop-up water level; If it is determined that the real-time water level is higher than the pump start-up water level, the pump is turned on by the control box to start the pump; If it is determined that the real-time water level is lower than the pump stop water level, the pump is turned off through the control box to stop the pump; The configuration information includes pump station distribution information corresponding to the pump stations, and the planning module is specifically used to: Find the corresponding head-end pumping station, intermediate pumping station and terminal pumping station according to the pumping station distribution information, and determine whether the first real-time flow rate of the terminal pumping station entering the sewage treatment plant pumping station is greater than the second real-time flow rate of the sewage treatment plant pumping station entering the sewage treatment plant; If it is determined that the first real-time flow rate from the terminal pump station to the sewage treatment plant pump station is greater than the second real-time flow rate from the sewage treatment plant pump station to the sewage treatment plant, then it is determined whether the water storage tank in the sewage treatment plant has reached the alarm water level; If it is determined that the water reservoir in the sewage treatment plant has reached the alarm water level, the pump in the terminal pumping station will be forcibly shut down, and after the real-time water level of the water reservoir in the sewage treatment plant is lower than the alarm water level, the pump in the terminal pumping station will continue to be activated.

3. A computer comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein: When the processor executes the computer program, the integrated pump station management method according to claim 1 is implemented.

4. A readable storage medium having a computer program stored thereon, characterized in that: When the program is executed by a processor, the integrated pump station management method as claimed in claim 1 is implemented.

Citation Information

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