Multi-water-source collaborative energy-saving scheduling method, system and equipment and storage medium

By collecting the water storage amount of water storage sources in real time and responding to the application water request signal, matching the target water storage sources and generating a water scheduling strategy, the problem of water transfer operation in the existing technology is solved, and automated water source call and water resource conservation are achieved.

CN120069454APending Publication Date: 2025-05-30SHENHUA HUANGHUA PORT
View PDF 0 Cites 1 Cited by

Patent Information

Application Number
CN202510235284.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-28
Publication Date
2025-05-30

AI Technical Summary

Technical Problem

In the prior art, water diversion in water systems mainly relies on human experience, lacking unified water inlet and outlet control standards, optimized water diversion strategies and efficient information technology means, resulting in troublesome water diversion operations, difficult to accurately meet water usage needs, and easy to cause waste of water resources.

Method used

By collecting the water storage volume of multiple water storage sources in real time, responding to the water request signal, matching the target water storage source suitable for use, determining whether it meets the preset scheduling conditions, and generating a water scheduling strategy based on the water storage volume, realizing automated water source calls.

Benefits of technology

It has realized automatic water source call, rationally managed water storage sources of different water source types, saved water costs, avoided waste of water resources, and formed a unified water inlet and outlet control standard and an optimized water transfer strategy.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120069454A_ABST
    Figure CN120069454A_ABST
Patent Text Reader

Abstract

The embodiment of the invention relates to the field of resource scheduling, and discloses a multi-water-source collaborative energy-saving scheduling method, system and device and a storage medium, and the method comprises the steps: collecting the water storage amounts corresponding to a plurality of water storage sources in real time: responding to a current water use request signal, and obtaining the current water use; matching a target water storage source from a plurality of water source types based on the current water use; based on the target water storage source, matching a target scheduling condition from a preset scheduling condition library, and judging whether the target water storage source meets the target scheduling condition or not; and when the condition is met, generating a water scheduling strategy, and performing water resource scheduling according to the water scheduling strategy. According to the multi-water-source collaborative energy-saving scheduling method disclosed by the invention, the problems that waste is easily caused and operation is troublesome due to the fact that manual scheduling of water resources is difficult to accurately meet water demands are solved, so that automatic water source calling is realized, water storage sources of different water source types are reasonably managed, water cost is saved, and water resource waste is avoided.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The embodiments of the present invention relate to the field of resource scheduling, and in particular, to a multi-source collaborative energy-saving scheduling method, system, device, and storage medium. Background Art

[0002] In large coal ports, the scheduling and utilization of multiple water resources are usually required. Generally, there are five major water intake sources in the port system: municipal water, power plant water, ballast water, coal sewage, and rainwater. Among them, municipal water and power plant water are fresh water sources, and ballast water, coal sewage, and rainwater are low-value water sources. Fresh water sources are used for production, living, and ecological water use, and low-value water sources are used for production and ecological water use, so as to facilitate the reuse of low-value water sources for saving water costs and avoiding water resource waste.

[0003] However, currently, the water system water transfer is based on the principle of water volume. The dispatcher judges, formulates, and issues water transfer strategies based on experience, with a lot of human participation. There is a lack of unified inlet and outlet water control standards, optimized water transfer strategies, and efficient information means, resulting in troublesome water transfer, difficult to accurately transfer water according to demand, and easy to cause water resource waste. Summary of the Invention

[0004] The purpose of the present invention is to provide at least one multi-source collaborative energy-saving scheduling method, system, device, and storage medium, which can at least solve the technical problems that it is difficult for manual water resource scheduling to accurately meet water use requirements, easy to cause waste, and troublesome to operate, and can at least achieve automatic water source calling, reasonably manage the storage water sources of different water source types, save water costs, and avoid water resource waste.

[0005] To solve the above technical problems, at least one embodiment of the present application provides a multi-source collaborative energy-saving scheduling method, including:

[0006] Real-time collect the water storage amounts respectively corresponding to multiple storage water sources: the multiple storage water sources respectively correspond to different water source types;

[0007] Respond to the current water use request signal, and obtain the current water use purpose corresponding to the current water use request signal;

[0008] Based on the current water use purpose, match the target storage water source of the water source type corresponding to the current water use request signal from multiple water source types;

[0009] Based on the target storage water source, match the target scheduling condition corresponding to the water source type of the target storage water source from the preset scheduling condition library, and judge whether the target storage water source meets the target scheduling condition;

[0010] When the target water storage source meets the target scheduling condition, a water use scheduling strategy is generated according to the water storage volume of the target water storage source, and water resources are mobilized according to the water use scheduling strategy.

[0011] At least one embodiment of the present application further provides a multi-source collaborative energy-saving scheduling system, including:

[0012] A data acquisition module, configured to acquire in real time the water storage volumes respectively corresponding to a plurality of water storage sources: the plurality of water storage sources respectively correspond to different water source types;

[0013] A signal receiving module, configured to obtain the corresponding water use purpose of the current water use request signal in response to the current water use request signal;

[0014] A water source type matching module, configured to match, based on the current water use purpose, a target water storage source of the water source type corresponding to the current water use request signal from a plurality of water source types;

[0015] An analysis module, configured to match, based on the target water storage source, a target scheduling condition corresponding to the water source type of the target water storage source from a preset scheduling condition library, and determine whether the target water storage source meets the target scheduling condition;

[0016] A scheduling processing module, configured to, when the target water storage source meets the target scheduling condition, generate a water use scheduling strategy according to the water storage volume of the target water storage source, and mobilize water resources according to the water use scheduling strategy.

[0017] At least one embodiment of the present application further provides an electronic device, including: at least one processor; and a memory communicatively connected to the at least one processor; wherein, the memory stores instructions executable by the at least one processor, and the instructions are executed by the at least one processor so that the at least one processor can execute the above-mentioned multi-source collaborative energy-saving scheduling method.

[0018] At least one embodiment of the present application further provides a computer-readable storage medium, storing a computer program, and when the computer program is executed by a processor, the above-mentioned multi-source collaborative energy-saving scheduling method is implemented.

[0019] The multi-source collaborative energy-saving scheduling method, system, device and storage medium provided by the embodiments of the present application can automatically match the corresponding target water storage source by analyzing the current water use purpose, and analyze whether the target water storage source meets the target scheduling conditions. After meeting the target scheduling conditions, a water use scheduling strategy is automatically generated based on the water storage volume of the target water storage source, so as to mobilize water resources through the water use scheduling strategy, realize automatic water source calling, form a unified inlet and outlet control standard, an optimized water transfer strategy, and adopt efficient information means to manage and trace water service calls; at the same time, reasonably manage the water storage sources of different water source types, and call them separately according to the current water use purpose and water source type, save water use costs, and avoid water resource waste.

[0020] In some alternative embodiments, the water source types include high-quality water sources and low-quality water sources; the judging whether the target water storage source meets the target scheduling conditions includes:

[0021] When the water source type of the target water storage source is a high-quality water source, judge whether the water storage volume of the target water storage source meets a first preset threshold; if not, determine whether there is a standby water storage source among the multiple water storage sources that can be used as a standby for the target water storage source according to the water source type corresponding to the current water use request signal. If there is a standby water storage source, judge whether the target scheduling conditions are met by combining the water storage volume of the standby water storage source and the water storage volume of the target water storage source;

[0022] When the water source type of the target water storage source is a low-quality water source, the target scheduling conditions corresponding to the low-quality water source are defaulted to meet the scheduling, and a water use scheduling strategy is generated according to the water storage volume of the target water storage source.

[0023] In some alternative embodiments, the high-quality water sources include municipal water and power plant water; the determining whether there is a standby water storage source among the multiple water storage sources that can be used as a standby for the target water storage source according to the water source type corresponding to the current water use request signal includes:

[0024] When the water source type of the target water storage source is municipal water, it is determined that the target water storage source has no standby water storage source;

[0025] When the water source type of the target water storage source is power plant water, judge whether the water storage volume of the municipal water is greater than a second preset threshold. If so, determine that the municipal water is the standby water storage source of the target water storage source.

[0026] In some alternative embodiments, the step of, if there is a standby water storage source, judging whether the target scheduling conditions are met by combining the water storage volume of the standby water storage source and the water storage volume of the target water storage source includes:

[0027] Determine whether the current water consumption is greater than a third preset threshold, where the third preset threshold is the difference between the second preset threshold and the first preset threshold corresponding to the municipal water;

[0028] If so, adjust the current water consumption corresponding to the current water use request signal to the third preset threshold, change the water source type of the target water storage source to municipal water, and generate a water use transfer strategy based on the water storage volume of the municipal water.

[0029] In some alternative embodiments, the low-quality water source includes at least one of ballast water, rainwater, and coal sewage;

[0030] When the water source type of the target water storage source is a low-quality water source, the target scheduling condition corresponding to the low-quality water source is defaulted to meet the scheduling, and a water use scheduling strategy is generated according to the water storage volume of the target water storage source, including:

[0031] Add up the water storage volumes of each low-quality water source to generate the total water storage volume of the total low-quality water source;

[0032] Compare the total water storage volume of the total water quality source with the current water consumption corresponding to the current water use request signal to determine the water volume comparison result;

[0033] Generate a corresponding water use scheduling strategy according to the water volume comparison result.

[0034] In some alternative embodiments, the generating a corresponding water use scheduling strategy according to the water volume comparison result includes:

[0035] When the water volume comparison result is that the total water storage volume of the total water quality source is greater than or equal to the current water consumption, use the water source type of the target water storage source as the highest priority water use scheduling strategy;

[0036] When the water volume comparison result is that the total water storage volume of the total water quality source is less than the current water consumption, take half of the corresponding water storage volume from each low-quality water source for water supply.

[0037] In some alternative embodiments, several water storage pools are set for each of the water storage sources; the generating a water use scheduling strategy according to the current water consumption and the water storage volume of the target water storage source includes: dividing the water supply priorities of each of the water storage pools corresponding to the target water storage source according to the water storage volume in each of the water storage pools, and determining the water use scheduling strategy according to the water supply priorities. BRIEF DESCRIPTION OF THE DRAWINGS

[0038] One or more embodiments are illustrated by way of example in the accompanying drawings, and these exemplary illustrations do not constitute a limitation on the embodiments.

[0039] Figure 1 It is the flow of the multi-source collaborative energy-saving scheduling method provided by an embodiment of the present application Figure 1 ;

[0040] Figure 2 It is the flow of the multi-source collaborative energy-saving scheduling method provided by an embodiment of the present application Figure 2 ;

[0041] Figure 3 It is the flow of the multi-source collaborative energy-saving scheduling method provided by an embodiment of the present application Figure 3 ;

[0042] Figure 4 It is the flow of the multi-source collaborative energy-saving scheduling method provided by an embodiment of the present application Figure 4 ;

[0043] Figure 5 It is the flow of the multi-source collaborative energy-saving scheduling method provided by an embodiment of the present application Figure 5 ;

[0044] Figure 6 It is the flow of the multi-source collaborative energy-saving scheduling method provided by an embodiment of the present application Figure 6 ;

[0045] Figure 7 It is the flow of the multi-source collaborative energy-saving scheduling method provided by an embodiment of the present application Figure 7 ;

[0046] Figure 8 It is the flow of the multi-source collaborative energy-saving scheduling method provided by another specific embodiment of the present application Figure 1 ;

[0047] Figure 9 It is the schematic diagram of the multi-source collaborative energy-saving scheduling system provided by another embodiment of the present application;

[0048] Figure 10 It is the schematic diagram of the structure of the electronic device provided by another embodiment of the present application;

[0049] Figure 11 It is the schematic diagram of the structure of the computer-readable storage medium provided by another embodiment of the present application. Specific Embodiments

[0050] To make the objectives, technical solutions, and advantages of the embodiments of the present application clearer, the embodiments of the present application will be described in detail below with reference to the accompanying drawings. However, those of ordinary skill in the art can understand that in the embodiments of the present application, many technical details are provided to help readers better understand the present application. However, even without these technical details and various changes and modifications based on the following embodiments, the technical solutions claimed in the present application can still be implemented. The following division of each embodiment is for convenience of description and should not constitute any limitation on the specific implementation manner of the present application. Each embodiment can be combined and cross-referenced with each other on the premise of no contradiction.

[0051] To facilitate the understanding of the embodiments of the present application, the relevant content regarding the port water resource scheduling is introduced here first.

[0052] For large coal ports, various water resource scheduling and utilization methods are usually required. Generally, there are five major water intake sources in the port system: municipal water, power plant water, ballast water, coal sewage, and rainwater. Among them, municipal water and power plant water are fresh water sources, while ballast water, coal sewage, and rainwater are low-value water sources. Fresh water sources are used for production, living, and ecological water use, and low-value water sources are used for production and ecological water use, so as to facilitate the recycling of low-value water sources to save water costs and avoid water resource waste.

[0053] However, currently, the water system water transfer is based on the principle of water volume. The dispatcher judges, formulates, and issues water transfer strategies based on experience, with a lot of human participation. There is a lack of unified inlet and outlet water control standards, optimized water transfer strategies, and efficient information technology means, resulting in troublesome water transfer, difficult to accurately transfer water according to demand, and easy to cause water resource waste.

[0054] To solve the above technical problems that it is difficult for manual water resource scheduling to accurately meet water use requirements, easy to cause waste and troublesome to operate, the present invention proposes a multi-source collaborative energy-saving scheduling method. The implementation details of the multi-source collaborative energy-saving scheduling method in this embodiment are specifically described below. The following content is only the implementation details provided for convenience of understanding and is not necessary for implementing this solution.

[0055] Embodiment 1:

[0056] The multi-source collaborative energy-saving scheduling method of this embodiment can be applied to an electronic device with communication, computing, and data storage capabilities. Its specific process can be as Figure 1 shown, including steps 101-105, specifically including:

[0057] Step 101, collect the water storage amounts corresponding to multiple water storage sources in real time: The multiple water storage sources respectively correspond to different water source types.

[0058] Specifically, by obtaining the water storage data collected by sensors in real time, it is convenient to monitor the water storage of each water storage source in real time, and then schedule according to the water use demand in a timely manner to achieve automated data monitoring. Among them, different water source types can be configured according to the water storage needs of the actual scenario. Generally speaking, the water source types include high-quality water sources and low-quality water sources. High-quality water sources are used for production, living and ecological water use, and low-quality water sources are used for production and ecological water use, so as to store the low-quality water in the recycling scenario and schedule it when low-quality water sources are needed, saving water resources.

[0059] In some examples, for the storage of port water resources, its water source types include municipal water, power plant water, ballast water, rainwater and coal sewage; among them, municipal water and power plant water are high-quality water sources, and ballast water, coal sewage and rainwater are low-quality water sources, so as to schedule appropriate amounts of water sources for use according to needs respectively, saving water cost and avoiding water resource waste.

[0060] Step 102, in response to the current water use request signal, obtain the current water use purpose corresponding to the current water use request signal;

[0061] Specifically, by obtaining the current water use request signal, the current water use purpose is analyzed through the current water use request signal, which is convenient for automatically scheduling the corresponding water storage source in combination with the current water consumption and the current water use purpose.

[0062] Among them, the current water use purpose in the current water use request signal can be input by the signal requester or automatically identified in combination with the water use purpose of the signal requester, so as to match the water storage source of the corresponding water source type according to the actual water use demand for water supply and save water cost.

[0063] In some examples, the current water use request signal may include the current water consumption, so as to estimate the corresponding amount of water in advance for scheduling and achieve automated multi-source collaborative energy-saving scheduling.

[0064] Step 103, based on the current water use purpose, match the target water storage source of the water source type corresponding to the current water use request signal from multiple water source types.

[0065] Specifically, by sequentially matching the preset water source type library with the current water use purpose through the water use purpose until the target water storage source is matched, it is convenient to automatically provide the corresponding target water storage source for water supply use according to the current water use purpose and save water cost.

[0066] In some examples, when there are multiple target water storage sources that are all consistent with the water source type for the current water use purpose, the various target water storage sources can be comprehensively analyzed, or one target water storage source can be selected for analysis. Specifically, it can be analyzed according to the current water use request signal. When the water consumption of the current water use request exceeds the target amount, at least one type can be arbitrarily selected from the multiple target water storage sources for water supply, or a partial water source can be provided from each of the multiple target water sources to supply the current water use demand, ensuring the water use requirements and avoiding waste of water resources.

[0067] Step 104: Based on the target water storage source, match the target scheduling condition corresponding to the water source type of the target water storage source from the preset scheduling condition library, and determine whether the target water storage source meets the target scheduling condition.

[0068] Specifically, the system pre-sets the scheduling conditions for each different water source type and forms a scheduling condition library, so that after the current water use request signal is responded to, the corresponding target scheduling condition can be matched through the water source type corresponding to the target water storage source, and then automatically analyze whether the water storage volume of the current water storage source meets the target scheduling condition.

[0069] In some examples, when it is determined that the target water storage source does not meet the target scheduling condition, a non-schedulable signal is generated, and the non-schedulable signal and the current water use request signal are forwarded to the background administrator for emergency handling to ensure the water use rights and the reasonable scheduling of water resources.

[0070] In some embodiments, such as Figure 2 and Figure 3 shown, step 104 includes:

[0071] Step 1041: When the water source type of the target water storage source is a high-quality water source, determine whether the water storage volume of the target water storage source meets the first preset threshold;

[0072] If it meets, it is determined that the target water storage source meets the target scheduling condition;

[0073] If it does not meet, determine whether there is a standby water storage source among the multiple water storage sources that can be used as a standby for the target water storage source according to the water source type corresponding to the current water use request signal;

[0074] If there is a standby water storage source, determine whether it meets the target scheduling condition by combining the water storage volume of the standby water storage source and the water storage volume of the target water storage source;

[0075] If there is no standby water storage source, it is determined that the target water storage source does not meet the target scheduling condition;

[0076] Step 1042: When the water source type of the target water storage source is a low-quality water source, the target scheduling condition corresponding to the low-quality water source is defaulted to meet the scheduling, and a water use scheduling strategy is generated according to the water storage volume of the target water storage source.

[0077] Specifically, by setting a reasonable threshold for the high-quality water source to analyze whether the scheduling condition is met, the low-quality water source is defaulted to be schedulable. Since high-quality water sources are relatively rare and low-quality water sources can be obtained by recycling various wastewaters, reasonable allocation of different target scheduling conditions can rationally utilize water resources of different qualities, save water resources, and avoid waste of water resources.

[0078] In some examples, the high-quality water sources include municipal water and power plant water. Based on this, in step 1041, according to the water source type corresponding to the current water use request signal, it is determined whether there is a standby water storage source among the multiple water storage sources that can be used as a standby for the target water storage source, as Figure 4 shown, including:

[0079] Step 201: When the water source type of the target water storage source is municipal water, it is determined that the target water storage source has no standby water storage source;

[0080] Step 202: When the water source type of the target water storage source is power plant water, it is judged whether the water storage volume of the municipal water is greater than a second preset threshold. If so, it is determined that the municipal water is the standby water storage source of the target water storage source.

[0081] Specifically, different water source types of high-quality water sources respectively correspond to their own first preset thresholds. When the water source type of the target water storage source is municipal water, it is determined whether the water storage volume of the municipal water is greater than the corresponding first preset threshold. If the water storage volume of the municipal water is greater than the corresponding first preset threshold, it is determined that it can be called; if the water storage volume of the municipal water is not greater than the corresponding first preset threshold, it is determined that it cannot be called; when the water source type of the target water storage source is power plant water, the municipal water can be used as a standby water storage source. If the power plant water cannot meet the requirements, the municipal water can be used for water supply, which is convenient for reasonable water supply by combining multiple different high-quality water sources and ensuring water use requirements.

[0082] Among them, when the water source type of the target water storage source is power plant water, first judge whether the water storage volume of the power plant water is greater than the first preset threshold corresponding to the power plant water. If it is greater, it is also necessary to further judge whether the water consumption of the current water use request signal is less than the water storage volume of the power plant water. If the water consumption of the current time is less than the water storage volume of the power plant water, it is determined that the power plant water can be called, and the water supply is directly carried out according to the power plant water; if the water consumption of the current time is not less than the water storage volume of the power plant water, then according to the warning water storage volume preset for the power plant water, the water consumption of the current time is modified to the latest water supply volume for calling, where the latest water supply volume is the absolute value of the difference between the first preset threshold corresponding to the power plant water and the warning water storage volume, so as to ensure that the power plant water has a water storage volume that meets the warning water storage volume after water supply, which is convenient for emergency water supply use.

[0083] Further, when there is a standby water storage source, it is judged whether the target scheduling condition is met by combining the water storage volume of the standby water storage source and the water storage volume of the target water storage source, as Figure 5 shown, including:

[0084] Step 301, judge whether the water consumption of the current time is greater than the third preset threshold; the third preset threshold is the difference between the second preset threshold and the first preset threshold corresponding to the municipal water;

[0085] Step 302, if so, adjust the water consumption of the current water use request signal to the third preset threshold, change the water source type of the target water storage source to municipal water, and generate a water use transfer strategy based on the water storage volume of the municipal water.

[0086] Step 105, when the target water storage source meets the target scheduling condition, generate a water use scheduling strategy according to the water consumption of the current time and the water storage volume of the target water storage source, and carry out water resource transfer with the water use scheduling strategy.

[0087] In some embodiments, the low-quality water source includes at least one of ballast water, rainwater, and coal sewage. Based on this, when the water source type of the target water storage source is a low-quality water source, the target scheduling condition corresponding to the low-quality water source is defaulted to meet the scheduling, and a water use scheduling strategy is generated according to the water storage volume of the target water storage source, as Figure 6 shown, including:

[0088] Step 401, add up the water storage volumes of each low-quality water source to generate the total water storage volume of the total low-quality water source;

[0089] Step 402, compare the total water storage volume of the total water quality source with the water consumption of the current water use request signal to determine the water volume comparison result;

[0090] Step 403, generate a corresponding water use scheduling strategy according to the water volume comparison result.

[0091] By combining the water storage volumes of multiple low-quality water sources, it is convenient to jointly serve as the water use dispatch for this water use request signal in the current year, ensuring the demand of the current water use request signal. Moreover, the storage channels for low-quality water sources are relatively easy, and the storage cost is relatively low, mainly for actual recycling. With such a setting, it is possible to separately call according to the storage situations of different types of water sources, achieve cost savings in water use, and avoid waste of water resources.

[0092] Further, step 403, as Figure 7 shown, includes:

[0093] Step 4031: When the water volume comparison result is that the total water storage volume of the total water quality water source is greater than or equal to the current water use volume, use the water source type of the target storage water source as the highest-priority water use dispatch strategy;

[0094] Step 4032: When the water volume comparison result is that the total water storage volume of the total water quality water source is less than the current water use volume, take half of the corresponding water storage volume from each low-quality water source for water supply.

[0095] Among them, when using the water source type of the target storage water source as the highest-priority water use dispatch strategy, if the water storage volume of the target storage water source is less than the current water use volume, it can be called in the priority order of ballast water, rainwater, and coal sewage, with the priority decreasing in turn to ensure the water use demand for low-quality water.

[0096] In some embodiments, several water storage pools are set for each of the storage water sources; generating a water use dispatch strategy according to the current water use volume and the water storage volume of the target storage water source includes: dividing the water supply priorities of each of the water storage pools corresponding to the target storage water source according to the water storage volumes in the water storage pools, and determining the water use dispatch strategy according to the water supply priorities.

[0097] By dividing the priorities of each water storage pool, it is convenient to reasonably call the water volumes of each water storage pool, ensure the balance of the water volumes in each water storage pool, and be able to ensure the water use demand to meet the water use demands in different situations.

[0098] The multi-source collaborative energy-saving scheduling method provided in this embodiment can automatically match the corresponding target water storage source by analyzing the current water use purpose, and analyze whether the target water storage source meets the target scheduling conditions. After meeting the target scheduling conditions, a water use scheduling strategy is automatically generated based on the water storage volume of the target water storage source, so as to mobilize water resources through the water use scheduling strategy, realize automatic water source calling, form a unified inlet and outlet control standard, an optimized water transfer strategy, and adopt efficient information means to manage and trace water service calls; at the same time, reasonably manage the water storage sources of different water source types, and call them separately according to the current water use purpose and water source type, save water use costs, and avoid water resource waste. At the same time, for the difference problems of different water storage pools, balanced management can be carried out to avoid the management differences of different storage pools of the same type of water source. Each time water is transferred, it starts from the pool with more water storage, which can form a virtuous cycle of the water storage pool and effectively manage the operation of the water storage pool. In addition, reasonably regulating the water use purposes of different water source types can effectively guarantee the supply of fresh water sources, and ensure the water use of power plants without affecting municipal water use. At the same time, unified management of low-value water sources can save water use costs and avoid water resource waste while effectively saving system resources, and avoid the subjectivity problem that dispatchers judge, formulate, and issue water transfer strategies based on experience.

[0099] Embodiment 2:

[0100] A specific embodiment is provided in the embodiment of the present application to illustrate the multi-source collaborative energy-saving scheduling method. As Figure 8 shown, the specific embodiment of the multi-source collaborative energy-saving scheduling method includes the following steps:

[0101] S1. Real-time collect the municipal water storage volume Vs, the power plant water storage volume Vd, the ballast water storage volume Vy, the rainwater storage volume Vr, and the medium sewage storage volume Vm;

[0102] S2. Obtain a water use request signal, and extract the current water use purpose from the water use request signal;

[0103] S3. Based on the current water use purpose, query the use type comparison table to obtain the current scheduling water source type L;

[0104] S4. Based on the current scheduling water source type L, query whether the water storage volume of the current type L can be called;

[0105] S41. If it cannot be called, execute step S42. If it can be called, execute step S5;

[0106] The determination process of whether the water storage volume of the current type L can be called is specifically as follows:

[0107] SA. Judge whether the current scheduling water source type is municipal water,

[0108] If it is municipal water, determine whether the water storage volume Vs of the municipal water is greater than the first threshold.

[0109] If the water storage volume Vs of the municipal water is greater than the first threshold, it is determined that it can be called.

[0110] If the water storage volume Vs of the municipal water is not greater than the first threshold, it is determined that it cannot be called.

[0111] If it is not municipal water, execute step SB.

[0112] SB. Determine whether the water source type of the current scheduling is power plant water.

[0113] If it is not power plant water, execute step SC.

[0114] If it is power plant water, determine whether the water storage volume Vd of the power plant water is greater than the second threshold. If the water storage volume Vd of the power plant water is greater than the second threshold and the water source volume Vt of the current scheduling is less than the water storage volume Vd of the power plant water, it is determined that it can be called.

[0115] If the water storage volume Vd of the power plant water is greater than the second threshold and the water source volume Vt of the current scheduling is not less than the water storage volume Vd of the power plant water, after retaining the first warning water storage volume Vv, modify the water source volume of the current scheduling to the water supply volume Vh for calling, where Vh is the absolute value of the difference between the second threshold and the first warning water storage volume Vv.

[0116] If the water storage volume Vd of the power plant water is not greater than the second threshold, determine whether the water storage volume Vs of the municipal water is greater than the third threshold. If the water storage volume Vs of the municipal water is not greater than the third threshold, it cannot be called.

[0117] Among them, the third threshold is greater than the first threshold.

[0118] The difference between the third threshold and the first threshold is the fourth threshold.

[0119] If the water storage volume Vs of the municipal water is greater than the third threshold, determine whether the water source volume Vt of the current scheduling is greater than the fourth threshold.

[0120] If the water source volume Vt of the current scheduling is greater than the fourth threshold, modify the water source volume of the current scheduling to the fourth threshold, modify the water source type of the current scheduling to municipal water, and execute S5.

[0121] If the water source volume Vt of the current scheduling is not greater than the fourth threshold, modify the water source type of the current scheduling to municipal water, and execute S5.

[0122] SC. If the water source type of the current scheduling is ballast water, sewage or rainwater, determine whether the water volume Vt of the current scheduling source is not greater than the sum of the ballast water storage volume Vy, the rainwater storage volume Vr, and the sewage storage volume Vm.

[0123] If Vt ≤ Vy + Vr + Vm, use the water source type of the current scheduling as the highest priority. If the water source type of the current scheduling is less than Vt, call in descending order of priority according to the sequence of ballast water, rainwater, and sewage.

[0124] If Vt > Vy + Vr + Vm, call half of the storage volume of each of the three types of water sources: ballast water, rainwater storage, and sewage.

[0125] S42. Forward the current call request to the background administrator.

[0126] S5. If it can be called, generate a water use scheduling signal D1 based on the storage volume of the current type L.

[0127] S6. Send the water use scheduling signal D1 to the port central control platform.

[0128] S7. The port central control platform mobilizes water resources based on the water use scheduling signal D1.

[0129] Furthermore, the municipal water storage volume Vs is the total water storage volume of multiple in-port municipal water storage pools. Each in-port municipal water storage pool has its own serial number.

[0130] Vs = [Vs1, Vs2 ··· Vsn1], where n1 is a natural number and n1 is the number of in-port water storage pools.

[0131] Furthermore, the power plant water storage volume Vd is the total water storage volume of multiple in-port power plant water storage pools. Each in-port power plant water storage pool has its own serial number.

[0132] Vd = [Vd1, Vd2 ··· Vdn2], where n2 is a natural number and n2 is the number of power plant water storage pools.

[0133] Furthermore, the ballast water storage volume Vy is the total water storage volume of multiple in-port ballast water storage pools. Each in-port ballast water storage pool has its own serial number.

[0134] Vy = [Vy1, Vy2 ··· Vyn3], where n3 is a natural number and n3 is the number of ballast water storage pools.

[0135] Furthermore, the rainwater storage volume Vr is the total water storage volume of multiple in-port rainwater storage pools. Each in-port rainwater storage pool has its own serial number.

[0136] Vr = [Vr1, Vr2 ··· Vrn4], where n4 is a natural number and n4 is the number of rainwater storage pools.

[0137] Further, the coal sewage storage volume Vr is the total storage volume of multiple in-port coal sewage storage pools, and each in-port coal sewage storage pool has its own serial number.

[0138] Vm = [Vm1, Vm2 ··· Vmn5], where n5 is a natural number and n5 is the number of coal sewage storage pools.

[0139] Further, generating a water use scheduling signal D1 based on the current type L storage volume specifically includes:

[0140] L = [Ls, Ld, Ly, Lr, Lm],

[0141] where Ls is municipal water, Ld is power plant water, Ly is ballast water, Lr is rainwater, and Lm is coal sewage.

[0142] Further, combining Vs = [Vs1, Vs2 ··· Vsn1], Vd = [Vd1, Vd2 ··· Vdn2], Vy = [Vy1, Vy2 ··· Vyn3], Vr = [Vr1, Vr2 ··· Vrn4], and Vm = [Vm1, Vm2 ··· Vmn5], obtaining the specific storage volume Lq of each storage pool of type L, and dividing the priority Gq according to the storage volume from more to less, and generating the water use scheduling signal D1 based on the priority.

[0143] It can be seen from the above specific examples that this multi-source collaborative energy-saving scheduling method, through intelligent water transfer research, reasonably reuses low-value water sources such as coal sewage, ballast water, and rainwater, solves problems such as dust and coal sewage discharge, saves water costs, and avoids water resource waste. At present, the water transfer of the water system is based on the principle of water volume. Dispatchers judge, formulate, and issue water transfer strategies based on experience, with a lot of human participation, lacking unified inlet and outlet control standards, optimized water transfer strategies, and efficient information means.

[0144] Further, the multi-source collaborative energy-saving scheduling method provided in this embodiment is executed by a system, and the system includes a port central control platform, a dispatching center, a data analysis server, and a data acquisition system, so as to execute the multi-source collaborative energy-saving scheduling method provided in the above specific embodiment according to the port central control platform, the dispatching center, the data analysis server, and the data acquisition system.

[0145] Embodiment Three:

[0146] Another embodiment of the present application relates to a multi-source collaborative energy-saving scheduling system. The implementation details of the multi-source collaborative energy-saving scheduling system of this embodiment will be specifically described below. The following content is only the implementation details provided for convenience of understanding and is not necessary for implementing this solution. The schematic diagram of the multi-source collaborative energy-saving scheduling system of this embodiment can be as follows Figure 9 shown, including a data acquisition module 801, a signal reception module 802, a water source type matching module 803, an analysis module 804, and a scheduling processing module 805.

[0147] The data acquisition module 801 is used to collect the water storage amounts corresponding to multiple water storage sources in real time: the multiple water storage sources respectively correspond to different water source types;

[0148] The signal reception module 802 is used to obtain the corresponding water use purpose of the current water use request signal in response to the current water use request signal;

[0149] The water source type matching module 803 is used to match the target water storage source of the water source type corresponding to the current water use request signal from multiple water source types based on the current water use purpose;

[0150] The analysis module 804 is used to match the target scheduling condition corresponding to the water source type of the target water storage source from the preset scheduling condition library based on the target water storage source, and judge whether the target water storage source meets the target scheduling condition;

[0151] The scheduling processing module 805 is used to generate a water use scheduling strategy according to the water storage amount of the target water storage source and conduct water resource mobilization with the water use scheduling strategy when the target water storage source meets the target scheduling condition.

[0152] Among them, the data acquisition module 801, the signal reception module 802, the water source type matching module 803, the analysis module 804, and the scheduling processing module 805 are sequentially connected to each other. The data acquisition module 801 is also connected to the water source type matching module 803, the analysis module 804, and the scheduling processing module 805 to facilitate real-time processing and analysis in combination with the water storage amounts corresponding to the water storage sources respectively.

[0153] It is worth mentioning that each module involved in this embodiment is a logical module. In actual applications, a logical unit can be a physical unit, a part of a physical unit, or a combination of multiple physical units. In addition, in order to highlight the innovative part of this application, units that are not closely related to solving the technical problems proposed in this application are not introduced in this embodiment, but this does not mean that there are no other units in this embodiment.

[0154] Embodiment 4:

[0155] Another embodiment of the present application relates to an electronic device, such as Figure 10 shown, including: at least one processor 901; and a memory 902 communicatively connected to the at least one processor 901; wherein the memory 902 stores instructions executable by the at least one processor 901, and the instructions are executed by the at least one processor 901 to enable the at least one processor 901 to execute the multi-source collaborative energy-saving scheduling method in the above embodiments.

[0156] Among them, the memory and the processor are connected by a bus. The bus can include any number of interconnected buses and bridges, and the bus connects various circuits of one or more processors and memories together. The bus can also connect various other circuits such as peripheral devices, voltage regulators, and power management circuits, which are well known in the art, so they will not be further described herein. The bus interface provides an interface between the bus and the transceiver. The transceiver can be one element or multiple elements, such as multiple receivers and transmitters, and provides a unit for communicating with various other devices on the transmission medium. The data processed by the processor is transmitted on the wireless medium through the antenna. Further, the antenna also receives data and transmits the data to the processor.

[0157] The processor is responsible for managing the bus and general processing, and can also provide various functions, including timing, peripheral interface, voltage regulation, power management, and other control functions. The memory can be used to store data used by the processor when executing operations.

[0158] Embodiment Five:

[0159] Another embodiment of the present application relates to a computer-readable storage medium, such as Figure 11 shown, storing a computer program 31. When the computer program 31 is executed by a processor, the above method embodiments are implemented.

[0160] That is, those skilled in the art can understand that all or part of the steps in implementing the above method embodiments can be completed by a program instructing relevant hardware. The program is stored in a storage medium, including several instructions for enabling a device (which can be a single-chip microcomputer, a chip, etc.) or a processor to execute all or part of the steps of the method described in various embodiments of the present application. The foregoing storage medium includes: various media such as USB flash drives, mobile hard disks, read-only memories (ROM), random access memories (RAM), magnetic disks, or optical discs that can store program codes.

[0161] Those of ordinary skill in the art can understand that the above embodiments are specific embodiments for implementing the present application. In actual applications, various changes can be made to them in form and details without departing from the spirit and scope of the present application.

Claims

1. A multi-water source collaborative energy-saving scheduling method, characterized in that: include: Real-time collection of water storage volumes corresponding to a plurality of water storage sources, wherein the plurality of water storage sources correspond to different water source types; In response to the current water use request signal, obtaining the current water use purpose corresponding to the current water use request signal; Based on the water use at that time, matching a target water storage source of a water source type corresponding to the water use request signal at that time from a plurality of water source types; Based on the target water storage source, matching the target scheduling condition corresponding to the water source type of the target water storage source from a preset scheduling condition library, and determining whether the target water storage source meets the target scheduling condition; When the target water storage source meets the target scheduling condition, a water use scheduling strategy is generated according to the water storage capacity of the target water storage source, and water resources are mobilized according to the water use scheduling strategy.

2. A multi-water source collaborative energy-saving scheduling method according to claim 1, characterized in that: The water source type includes a high-quality water source and a low-quality water source; the determining whether the target water storage source meets the target scheduling condition includes: When the water source type of the target water storage source is a high-quality water source, determine whether the water storage capacity of the target water storage source meets a first preset threshold; if not, determine whether there is a backup water storage source that can be used as a backup for the target water storage source among the multiple water storage sources according to the water source type corresponding to the current water use request signal; if there is a backup water storage source, determine whether the target scheduling condition is met by combining the water storage capacity of the backup water storage source with the water storage capacity of the target water storage source; When the water source type of the target water storage source is a low-quality water source, the target scheduling condition corresponding to the low-quality water source is defaulted to satisfying the scheduling, and a water use scheduling strategy is generated according to the water storage capacity of the target water storage source.

3. A multi-water source collaborative energy-saving scheduling method according to claim 2, characterized in that: The high-quality water source includes municipal water and power plant water; the step of determining whether there is a backup water storage source among the multiple water storage sources that can be used as a backup for the target water storage source according to the water source type corresponding to the current water use request signal includes: When the water source type of the target water storage source is municipal water, determining that the target water storage source has no backup water storage source; When the water source type of the target water storage source is power plant water, it is determined whether the water storage volume of the municipal water is greater than a second preset threshold value. If so, it is determined that the municipal water is a backup water storage source for the target water storage source.

4. A multi-water source collaborative energy-saving scheduling method according to claim 3, characterized in that: If there is a backup water storage source, combining the water storage capacity of the backup water storage source with the water storage capacity of the target water storage source to determine whether the target scheduling condition is met includes: Determine whether the water consumption at that time is greater than a third preset threshold, where the third preset threshold is a difference between the second preset threshold and a first preset threshold corresponding to the municipal water; If so, the current water consumption corresponding to the current water use request signal is adjusted to the third preset threshold, and the water source type of the target water storage source is changed to municipal water, and a water use mobilization strategy is generated based on the water storage capacity of the municipal water.

5. The method for coordinated energy-saving scheduling of multiple water sources according to claim 2 is characterized in that: The low-quality water source includes at least one of ballast water, rainwater and sewage; When the water source type of the target water storage source is a low-quality water source, the target scheduling condition corresponding to the low-quality water source is defaulted to satisfying the scheduling, and a water use scheduling strategy is generated according to the water storage capacity of the target water storage source, including: The water storage capacity of each low-quality water source is added together to generate the total water storage capacity of the total low-quality water source; Compare the total water storage volume of the total water quality water source with the current water consumption corresponding to the current water consumption request signal to determine a water consumption comparison result; A corresponding water use scheduling strategy is generated according to the water volume comparison result.

6. A multi-water source collaborative energy-saving scheduling method according to claim 5, characterized in that: Generating a corresponding water use scheduling strategy according to the water volume comparison result includes: When the water volume comparison result is that the total water volume of the total water quality water source is greater than or equal to the current water consumption, the water source type of the target water storage source is used as the highest priority water use scheduling strategy; When the water volume comparison result is that the total water storage volume of the total water quality water sources is less than the water consumption at that time, half of the corresponding water storage volume is taken from each low water quality water source for water supply.

7. The method for coordinated energy-saving scheduling of multiple water sources according to claim 1 is characterized in that: Each of the water storage sources is set with a number of water storage tanks; the water use scheduling strategy generated according to the current water consumption and the water storage capacity of the target water storage source includes: dividing the water supply priority of each of the water storage tanks according to the water storage capacity in each of the water storage tanks corresponding to the target water storage source, and determining the water use scheduling strategy according to the water supply priority.

8. A multi-water source collaborative energy-saving scheduling system, characterized in that: include: A data acquisition module, used for real-time acquisition of water storage amounts corresponding to a plurality of water storage sources, wherein the plurality of water storage sources correspond to different water source types; A signal receiving module, configured to obtain the current water use corresponding to the current water use request signal in response to the current water use request signal; A water source type matching module, configured to match a target water storage source of a water source type corresponding to the current water use request signal from a plurality of water source types based on the current water use; An analysis module, configured to match a target scheduling condition corresponding to the water source type of the target water storage source from a preset scheduling condition library based on the target water storage source, and determine whether the target water storage source satisfies the target scheduling condition; The scheduling processing module is used to generate a water use scheduling strategy according to the water storage capacity of the target water storage source when the target water storage source meets the target scheduling condition, and mobilize water resources according to the water use scheduling strategy.

9. An electronic device, characterized in that: include: at least one processor; as well as, a memory communicatively connected to the at least one processor; wherein, The memory stores instructions that can be executed by the at least one processor, and the instructions are executed by the at least one processor so that the at least one processor can execute the multi-water source collaborative energy-saving scheduling method as described in any one of claims 1 to 7.

10. A computer-readable storage medium storing a computer program, characterized in that: When the computer program is executed by a processor, the multi-water source collaborative energy-saving scheduling method described in any one of claims 1 to 7 is implemented.

Citation Information

Cited By

  • Comprehensive utilization scheduling method based on mine water quality difference

    CN120725369A