Scheduling operation order visual generation method and system
By obtaining the application of real-time grid data and GIS models, automatically generate and review the scheduling operation tickets, and monitoring the execution progress in real time, the problems of operation ticket accuracy and execution progress monitoring in the existing technology are solved, and efficient and stable grid operation is achieved.
Patent Information
- Application Number
- CN202510016075.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-06
- Publication Date
- 2025-05-06
AI Technical Summary
The existing distribution network dispatch operation tickets need to be filled in and reviewed manually, and cannot be flexibly changed, resulting in low accuracy of operation tickets and the inability to monitor the execution progress of operation tickets in real time.
By obtaining real-time data of the power grid system, using the GIS model to display the power grid operation status, automatically generate scheduling operation tickets, and automatically review them through the operation ticket rule library. Send the approved operation ticket to the dispatching department and display the execution progress through the GIS model.
It realizes automatic audit of operation tickets and real-time monitoring of execution progress, improves the accuracy of operation tickets and the stability of power grid operation, and reduces the workload of manual audits and the occurrence of operational errors.
Smart Images

Figure CN119941232A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of power systems, and in particular to a method and system for visually generating a dispatching operation ticket. Background Art
[0002] As the scale of the power grid expands and the number of equipment increases, a large number of operations are generated every year due to maintenance, testing, commissioning of new equipment and troubleshooting, and the operating mode changes frequently. The creation, execution and archiving of power system operation tickets are an important part of power grid operation management. For example, the patent document with publication number CN109214639A proposes a method for intelligently generating power grid dispatching operation tickets, and the specific steps include: first obtaining the real-time operating status of the target power grid; then obtaining the target operating status to be achieved; then collecting relevant configuration rules; finally, based on the obtained target operating status and real-time operating status, these configuration rules are used to automatically generate operation tasks and their steps, thereby forming a complete operation ticket. For example, the patent document with publication number CN114595541A proposes a method and device for generating dispatching operation tickets. The steps of the method include: using SVG technology, combining the preset GIS model of the distribution network and the acquired distribution network data, to generate a distribution network topology map, which includes a GIS single-line diagram and a trunk switch distribution map; selecting predetermined equipment from the topology map to configure power supply transfer operations, which include equipment transfer back and equipment transfer out; based on the selected power supply transfer operation, generating a corresponding dispatching power supply operation ticket, which covers the connection point equipment, line power supply equipment, line ring-breaking equipment, and power supply task instructions and specific execution steps under normal operation. However, the existing distribution network dispatching operation ticket needs to be filled in and reviewed manually, and often only one operation plan can be given, which cannot be flexibly changed according to the on-site situation. At the same time, relying on manual experience cannot guarantee the accuracy of the operation ticket, and the execution progress of the operation ticket cannot be monitored in real time. Summary of the invention
[0003] In view of the problems existing in the prior art, the present invention provides a method and system for visually generating a dispatch operation ticket.
[0004] In one aspect, the present invention provides a method for visually generating a dispatch operation ticket, the method comprising the following steps:
[0005] Step S1: Acquire real-time data of the power grid system, and display the real-time operation status of the power grid system through the GIS model corresponding to the power grid system;
[0006] Step S2: Generate a corresponding dispatching operation ticket through an operation ticket template according to the real-time data of the power grid system;
[0007] Step S3: Automatically review the dispatch operation ticket through the operation ticket rule library, and display and output the review results through the GIS model;
[0008] Step S4: Send the approved dispatching operation ticket to the corresponding dispatching department and display the execution progress of the dispatching operation ticket through the GIS model;
[0009] Step S5: Obtain the dispatch operation ticket feedback information, and update the operation ticket template according to the dispatch operation ticket feedback information.
[0010] Furthermore, in step S2, the specific steps of generating a corresponding dispatching operation ticket through an operation ticket template according to the real-time data of the power grid system include:
[0011] Step S21: determining the specific operation type to be performed according to the real-time data of the power grid system;
[0012] Step S22: The operation ticket template determines the operation location, equipment number, operation plan, emergency measures, dispatch department, execution personnel, and estimated duration according to the specific operation type.
[0013] Furthermore, the step S22 also includes: the operation ticket template determines whether there are multiple operation plans according to the equipment number, and if there are multiple operation plans, sorting the multiple operation plans.
[0014] Furthermore, the specific steps of displaying the execution progress of the dispatch operation ticket through the GIS model in step S4 include:
[0015] The operation steps are determined according to the operation plan selected by the executor, and the execution progress of the scheduling operation ticket is displayed according to the progress of the operation steps.
[0016] Furthermore, the specific step of displaying the execution progress of the dispatch operation ticket through the GIS model in step S4 also includes:
[0017] Compare the progress of the operation steps with the estimated duration, and determine whether to issue a timeout warning based on the comparison result.
[0018] On the other hand, the present invention provides a system for visually generating a dispatching operation ticket, which is applied to the above-mentioned method for visually generating a dispatching operation ticket, and the system comprises:
[0019] A data acquisition module, wherein the data acquisition module is used to obtain real-time data of the power grid system;
[0020] A GIS model, wherein the GIS model is used to display the real-time operation status of the power grid system according to the real-time data of the power grid system;
[0021] An operation ticket template, wherein the operation ticket template is used to generate a corresponding dispatch operation ticket according to a real-time data set of a power grid system;
[0022] An automatic review module, which is used to automatically review the dispatch operation ticket through the operation ticket rule library and display the review result through the GIS model;
[0023] A progress monitoring module, which is used to send the approved dispatch operation ticket to the corresponding dispatch department and display the execution progress of the dispatch operation ticket through the GIS model;
[0024] The information feedback module is used to obtain the dispatch operation ticket feedback information and update the operation ticket template according to the dispatch operation ticket feedback information.
[0025] Furthermore, the specific steps of generating a corresponding dispatching operation ticket according to the real-time data of the power grid system include:
[0026] Determine the specific type of operation that needs to be performed based on real-time data from the power grid system;
[0027] The operation ticket template determines the operation location, equipment number, operation plan, emergency measures, dispatching department, execution personnel, and estimated duration according to the specific operation type.
[0028] Furthermore, the operation ticket template determines whether there are multiple operation plans according to the equipment number, and if there are multiple operation plans, the multiple operation plans are sorted.
[0029] Furthermore, the specific steps of displaying the execution progress of the dispatch operation ticket through the GIS model include:
[0030] The operation steps are determined according to the operation plan selected by the executor, and the execution progress of the scheduling operation ticket is displayed according to the progress of the operation steps.
[0031] Furthermore, the system also includes: a timeout warning module, which is used to compare the progress of the operation step with the expected duration, and determine whether to issue a timeout warning based on the comparison result.
[0032] The present invention provides a method and system for visually generating a dispatching operation ticket. The dispatching operation ticket is automatically audited through an operation ticket rule base, and potential errors or non-compliant contents can be found in time after the dispatching operation ticket is generated, so as to reduce the workload of manual auditing and reduce the risk of human omissions, thereby effectively avoiding the occurrence of dispatching misoperation and ensuring the accuracy of the operation ticket and the stability of power grid operation. In the process of generating a dispatching operation ticket according to the real-time data of the power grid system, a plurality of operation schemes are provided according to the equipment number, so as to provide a variety of decision-making references for dispatching personnel. This can not only improve the operation efficiency of dispatching personnel, but also help to select the most appropriate operation scheme in complex situations and reduce the time waste in the execution process. The present invention uses a GIS model to visually monitor the execution progress of the dispatching operation ticket and track the progress of each dispatching operation in real time. Through this function, the dispatching personnel can obtain the operation progress and potential execution problems in time. If any abnormal situation is found, the early warning mechanism can be immediately activated, and measures can be taken in advance to avoid operations that may cause unsafe power grids. The present invention can dynamically update the operation ticket template according to the feedback information of the dispatching operation ticket, so as to improve the intelligence and adaptability of the operation ticket generation. The present invention effectively reduces operational errors and improves the accuracy of dispatching decisions through automated review of dispatching operation tickets, improved execution efficiency and visual monitoring, thereby ensuring the safe operation of the power grid. The present invention is particularly suitable for the complex dispatching needs of modern power grids, and can cope with high-frequency and large-scale dispatching tasks to ensure efficient and safe operation of the power grid. BRIEF DESCRIPTION OF THE DRAWINGS
[0033] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative labor.
[0034] Figure 1 A flowchart of a method for visually generating a dispatch operation ticket provided by an embodiment of the present invention;
[0035] Figure 2 A structural diagram of a visual generation system for dispatching operation tickets provided by an embodiment of the present invention;
[0036] Figure 3 A structural diagram of another scheduling operation ticket visualization generation system provided in an embodiment of the present invention. DETAILED DESCRIPTION
[0037] In order to make the purpose, technical solution and advantages of the present invention clearer, the technical solution in the embodiment of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiment of the present invention. Obviously, the described embodiment is only a unit embodiment of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0038] As an embodiment of the present invention, Figure 1 As shown, this embodiment provides a method for visually generating a scheduling operation ticket, the method comprising the following steps:
[0039] Step S1: Acquire real-time data of the power grid system, and display the real-time operation status of the power grid system through the GIS model corresponding to the power grid system;
[0040] Step S2: Generate a corresponding dispatching operation ticket through an operation ticket template according to the real-time data of the power grid system;
[0041] Step S3: Automatically review the dispatch operation ticket through the operation ticket rule library, and display and output the review results through the GIS model;
[0042] Step S4: Send the approved dispatching operation ticket to the corresponding dispatching department and display the execution progress of the dispatching operation ticket through the GIS model;
[0043] Step S5: Obtain the dispatch operation ticket feedback information, and update the operation ticket template according to the dispatch operation ticket feedback information.
[0044] Specifically, in the process of power grid dispatching, the acquisition of real-time data is crucial. To this end, this embodiment collects real-time operation data of the power grid through the monitoring equipment and sensors of the power grid system. These data include but are not limited to key parameters such as current, voltage, frequency, equipment status (such as the operation of switches, transformers, and circuits). During specific implementation, the power grid management system (EMS) and the GIS model are connected to the data to transmit the real-time data to the operation ticket generation system. The GIS model presents the overall operation status of the power grid system through visualization technology, including the real-time working status of each power grid equipment, possible fault points and warning information. For example, the GIS system displays each node, line, and equipment of the power grid through a map, and provides real-time feedback on the operation status and alarm information of the equipment.
[0045] Specifically, in step S2, the specific steps of generating a corresponding dispatching operation ticket through an operation ticket template according to the real-time data of the power grid system include:
[0046] Step S21: determining the specific operation type to be performed according to the real-time data of the power grid system;
[0047] First, the system determines whether there are devices or lines that require immediate action based on real-time data. For example, if a device exceeds the normal operating parameters (such as excessive current or unstable voltage), the system will automatically mark the device as "pending action". Based on these states, the system automatically identifies the type of action that needs to be performed, including but not limited to switching devices, adjusting current and voltage, repairing equipment failures, and conducting equipment inspections.
[0048] Step S22: The operation ticket template determines the operation location, equipment number, operation plan, emergency measures, dispatch department, execution personnel, and estimated duration according to the specific operation type.
[0049] After determining the operation type, the operation ticket template is further refined to generate the operation ticket. According to the operation type, the operation ticket template will fill in the specific operation location, equipment number, operation plan, emergency measures, dispatch department, execution personnel and estimated duration. For example, if a certain equipment needs emergency maintenance, the operation ticket will show the equipment number, maintenance location, required operation plan (such as power off, disassembly, maintenance), emergency plan (such as backup power switching plan) and the list of execution personnel.
[0050] Specifically, the step S22 also includes: the operation ticket template determines whether there are multiple operation plans according to the equipment number, and if there are multiple operation plans, sorting the multiple operation plans.
[0051] The operation ticket template will also determine whether there are multiple operation plans based on the equipment number. If there are multiple operation plans (for example, the equipment has multiple switching plans or maintenance plans), the system will sort the plans and give priority to the most appropriate operation plan. Specifically, the system records each time the operator selects a plan and counts the number of times the plan is selected, and gives priority to the plan with the most selections, thereby simplifying the operation decision-making process and improving execution efficiency.
[0052] Suppose there is a transformer in the power grid that needs to be operated, and the system provides three operation plans for the transformer: Plan A (equipment switching), Plan B (emergency fault handling) and Plan C (shutdown for maintenance). Every time the operator faces these three plans, the system will record the operator's choice and calculate the number of times each plan was selected. For example: Plan A: The operator selected 40 times. Plan B: The operator selected 15 times. Plan C: The operator selected 5 times. When the system needs to select an operation plan for a transformer or equipment, the sorting rule is based only on the above number of selections. In other words, Plan A will be recommended to the operator first because it has been selected the most times. The system will give priority to the plan with the most selections, and the operator can directly refer to the recommendation to make a decision without re-evaluating all the operation plans.
[0053] After the dispatch operation ticket is generated, it needs to go through the automatic review process to ensure the rationality and safety of all operation steps. This embodiment reviews the operation ticket through the operation ticket rule library, which includes a series of review rules for different operation types. For example:
[0054] Equipment operation rules: Check whether the equipment operation complies with safety regulations and whether there is a risk of overload operation.
[0055] Operational process rules: Check whether the operating steps are reasonable, whether they comply with industry standards, and whether any safety steps are omitted.
[0056] Time limit rules: Check whether a reasonable estimated time is set for each operation step to avoid operation times that are too long or too short.
[0057] When the operation ticket passes the automatic review, the system will display the review results through the GIS model, including the status of the operation ticket, whether the review is passed or not, and the review comments. If the review fails, the system will prompt an error and suggest modifications.
[0058] Specifically, the specific steps of displaying the execution progress of the dispatch operation ticket through the GIS model in step S4 include:
[0059] The operation steps are determined according to the operation plan selected by the executor, and the execution progress of the scheduling operation ticket is displayed according to the progress of the operation steps.
[0060] Specifically, the specific step of displaying the execution progress of the dispatch operation ticket through the GIS model in step S4 also includes:
[0061] Compare the progress of the operation steps with the estimated duration, and determine whether to issue a timeout warning based on the comparison result.
[0062] The approved operation ticket will be automatically sent to the corresponding dispatch department or executor. The executor can confirm the operation details through the operation ticket and start to perform specific tasks. At this time, the GIS model plays a role in visual monitoring. Through the GIS system, the operator can view the execution status of each operation step in real time to ensure the smooth progress of the dispatch task. The specific steps include:
[0063] Select an operation plan: The executor selects the most appropriate operation steps based on the multiple operation plans provided on the operation ticket.
[0064] Display operation progress: The GIS model displays the operation progress according to the selected operation steps. For example, if the device is switching operations, the system will display the switching progress bar, remaining time and other information.
[0065] Timeout warning: During the execution process, the system will continuously track the progress of each operation step. If a step fails to be completed within the expected time, the system will automatically trigger a timeout warning to remind the dispatcher to take action.
[0066] After each dispatch operation, the system will record the specific operation plan selected by the operator and accumulate the number of times each plan is selected. Each operation ticket or dispatch record will be automatically associated with the system and the feedback data will be updated. The system counts the selection frequency of each operation plan based on historical records. Plans with more selections will automatically receive higher priority. In the next operation of the same type, the system will sort the operation plans according to the number of selections that have been counted. The plan with the most selections will be ranked first and recommended to the operator. The operator can directly adopt the plan or make fine adjustments based on the actual situation. As the operation proceeds, the system will continuously update the number of plan selections. Every time the operator selects a plan, the feedback data will be updated in real time so that the actual operation experience can be more accurately reflected in the next sorting.
[0067] In summary, the rule of sorting the options based on the number of choices fed back by operators has significant advantages in improving operational efficiency, reducing decision-making time, and ensuring the safety of power grid dispatching. Through this simplified and effective method, operators can make decisions more quickly and accurately in a complex power grid dispatching environment to ensure the stable and efficient operation of the power grid.
[0068] On the other hand, as an embodiment of the present invention, Figure 2 As shown, this embodiment provides a visual generation system for a dispatch operation ticket, which is applied to the above-mentioned visual generation method for a dispatch operation ticket, and the system includes:
[0069] A data acquisition module, wherein the data acquisition module is used to obtain real-time data of the power grid system;
[0070] A GIS model, wherein the GIS model is used to display the real-time operation status of the power grid system according to the real-time data of the power grid system;
[0071] Specifically, suppose that in a certain power grid, there are multiple transformers that need to be monitored. The dispatcher can intuitively view the operating status of each transformer through the GIS model, including voltage, current, load, temperature, etc. The specific implementation process is as follows: A real-time monitoring device is installed on each transformer in the power grid to collect data such as current, voltage, and load. For example, the current of transformer 1 is 50A, the voltage is 220V, and the load is 80%, and the current of transformer 2 is 45A, the voltage is 225V, and the load is 70%. These real-time data are transmitted to the data acquisition module through the wireless network, and then processed by the data processing module and transmitted to the GIS model module. In the GIS model, transformer 1 and transformer 2 are displayed on the power grid map in the form of icons. The icon of transformer 1 is green, indicating that the device is operating normally, and "current: 50A, voltage: 220V, load: 80%" is displayed next to it. The icon of transformer 2 is also green, and "current: 45A, voltage: 225V, load: 70%" is displayed next to it, indicating that both transformers are operating normally.
[0072] If a transformer (such as transformer 1) is overloaded, the GIS model will update the device status in real time. The icon color of transformer 1 will change from green to yellow, and the words "current overload" will be displayed, prompting the dispatcher to pay attention to the device. If the current continues to rise and reaches a dangerous value, the icon of transformer 1 will turn red, display "current overload, equipment failure", and detailed fault information will pop up on the GIS interface.
[0073] When a transformer fails or is abnormal, the system automatically triggers an alarm and displays it on the GIS interface. For example, when the current of transformer 1 exceeds the limit, the system will issue an alarm, indicating "transformer 1 current overload" and recommend that the dispatcher immediately transfer the load or perform maintenance.
[0074] The GIS model not only displays the status of each transformer, but also displays the load of the entire power grid. Peak load areas in the power grid are highlighted in different colors. For example, areas with loads exceeding 80% are displayed in red, reminding dispatchers to make timely dispatch adjustments to avoid overloading the power grid.
[0075] Through the GIS model, dispatchers can obtain the status, parameters and operating data of power grid equipment in real time, helping to quickly grasp the overall operating status of the power grid. The GIS model provides an intuitive map view, allowing dispatchers to see the geographical location, operating status and fault information of the equipment at a glance, which helps improve decision-making efficiency. The system can automatically trigger alarms and warnings based on real-time data, and display them through the GIS model, helping dispatchers to discover and solve problems in a timely manner to avoid the expansion of faults.
[0076] An operation ticket template, wherein the operation ticket template is used to generate a corresponding dispatch operation ticket according to a real-time data set of a power grid system;
[0077] An automatic review module, which is used to automatically review the dispatch operation ticket through the operation ticket rule library and display the review result through the GIS model;
[0078] A progress monitoring module, which is used to send the approved dispatch operation ticket to the corresponding dispatch department and display the execution progress of the dispatch operation ticket through the GIS model;
[0079] Specifically, in the GIS model, the geographical layout of the power grid and each transformer, switchgear, etc. will be intuitively marked. The location of the transformer is displayed as a point on the map. At the same time, the current status of the transformer (such as "under maintenance") will also be displayed next to the equipment icon to help dispatchers understand the basic information of the equipment. During the operation, the GIS model will dynamically update the execution progress of each operation step. For example, when the operator completes the power-off operation of the transformer, the operation step in the GIS model will change from "not started" to "completed". Similarly, when the standby equipment access operation is completed, the progress bar of the step will be displayed as 100% completed. For each step, the system sets a progress bar for it, indicating the current progress percentage. Dispatchers can directly view the completion status of each step through the GIS interface to ensure that all operations are completed on time. The estimated time and actual time will be displayed below the progress bar of each step to help dispatchers determine whether the operation has timed out. If the progress of the operation step lags behind, the system will automatically update the timeout and remind the dispatcher. The GIS model is connected to the progress monitoring module in real time. Whenever an operation step is completed or the status changes, the progress bar is automatically updated to ensure that the dispatcher can always understand the latest status of the operation. The execution time, equipment status and other relevant information of each operation step are synchronized to the GIS model to keep it dynamically updated.
[0080] The information feedback module is used to obtain the dispatch operation ticket feedback information and update the operation ticket template according to the dispatch operation ticket feedback information.
[0081] Furthermore, the specific steps of generating a corresponding dispatching operation ticket according to the real-time data of the power grid system include:
[0082] Determine the specific type of operation that needs to be performed based on real-time data from the power grid system;
[0083] The operation ticket template determines the operation location, equipment number, operation plan, emergency measures, dispatching department, execution personnel, and estimated duration according to the specific operation type.
[0084] Furthermore, the operation ticket template determines whether there are multiple operation plans according to the equipment number, and if there are multiple operation plans, the multiple operation plans are sorted.
[0085] Furthermore, the specific steps of displaying the execution progress of the dispatch operation ticket through the GIS model include:
[0086] The operation steps are determined according to the operation plan selected by the executor, and the execution progress of the scheduling operation ticket is displayed according to the progress of the operation steps.
[0087] Furthermore, if Figure 3 As shown, the system also includes: a timeout warning module, which is used to compare the progress of the operation step with the expected duration, and determine whether to issue a timeout warning based on the comparison result.
[0088] The judgment of timeout is based on three data: Maintenance work time used: the maintenance work time currently completed. Remaining work time: the time required to complete the remaining work according to the actual operation progress forecast. Estimated time: the planned time given by the system before the operation starts.
[0089] By comparing these data, the system can determine whether there is a timeout. The specific judgment rules are as follows:
[0090] Timeout condition: If the sum of the used working time and the remaining working time is greater than the estimated time, the operation has timed out.
[0091] Specifically, the estimated duration is T 预计 , the working time used is T 已用 , the remaining working time is T 剩余 .
[0092] If, T 已用 +T 剩余 >T 预计 , it means that the maintenance operation has timed out and the system will trigger a timeout warning.
[0093] More specifically, suppose that during the maintenance of a power grid transformer, the dispatching system obtains relevant data through real-time monitoring: Estimated duration: Based on the complexity of the transformer and the maintenance requirements, the system estimates that the maintenance operation will take a total of 120 minutes at the beginning of the operation, T 预计 = 120. Elapsed working time: After the maintenance personnel start the operation, after 60 minutes of work, the system records the elapsed time T 已用 =60. Remaining working time: Based on the current operation progress, the system estimates that the remaining working time is 45 minutes, T 剩余 =45.
[0094] At this point, the timeout warning module will compare these three data:
[0095] T 已用 +T 剩余 =105<T 预计 =120
[0096] Compared with the estimated duration of 120 minutes, the system finds that the current maintenance operation has not timed out, so the timeout warning is not triggered.
[0097] Assume that after a period of time,: Elapsed working time: Due to additional problems with the equipment, the maintenance personnel need an additional 30 minutes, and the current elapsed working time is updated to 90 minutes, T 已用 =90. Remaining working time: Due to the complexity of the fault, the remaining working time is re-evaluated by the system to 60 minutes, T 剩余 =60.
[0098] At this point, the timeout warning module calculates again:
[0099] T 已用 +T 剩余 =150>T 预计 =120
[0100] Compared with the estimated duration of 120 minutes, it is found that the current maintenance operation has timed out. Therefore, the system will trigger a timeout warning and notify the dispatcher to take emergency measures.
[0101] The timeout warning module also provides suggestions for emergency measures. For example, the system may suggest that the dispatcher add additional resources to speed up the operation, or consider adjusting the maintenance plan if necessary. The system will also provide a preliminary analysis of the cause of the timeout, such as whether it is due to the complexity of the equipment failure, insufficient staff or other external factors. In addition, after the timeout event occurs, the information feedback module will update the operation ticket template according to the timeout record to optimize the future estimated duration. The system will adjust the expected duration of similar operations in the future based on the timeout historical data to improve the accuracy of the estimated duration. Through real-time monitoring and timeout judgment, dispatchers can promptly detect potential delays during the operation and take appropriate measures to avoid delays that affect the safety of the power grid. The timeout warning module helps dispatchers adjust the operation progress through real-time feedback to ensure that equipment maintenance can be completed in time and avoid the impact of long-term outages on the power grid.
[0102] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or replace some or all of the technical features therein with equivalents. However, these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.
Claims
1. A method for visually generating a dispatching operation ticket, characterized in that: The method comprises the following steps: Step S1: Acquire real-time data of the power grid system, and display the real-time operation status of the power grid system through the GIS model corresponding to the power grid system; Step S2: Generate a corresponding dispatching operation ticket through an operation ticket template according to the real-time data of the power grid system; Step S3: Automatically review the dispatch operation ticket through the operation ticket rule library, and display and output the review results through the GIS model; Step S4: Send the approved dispatching operation ticket to the corresponding dispatching department and display the execution progress of the dispatching operation ticket through the GIS model; Step S5: Obtain the dispatch operation ticket feedback information, and update the operation ticket template according to the dispatch operation ticket feedback information.
2. The method according to claim 1, characterized in that In step S2, the specific steps of generating a corresponding dispatching operation ticket through an operation ticket template according to the real-time data of the power grid system include: Step S21: determining the specific operation type to be performed according to the real-time data of the power grid system; Step S22: The operation ticket template determines the operation location, equipment number, operation plan, emergency measures, dispatch department, execution personnel, and estimated duration according to the specific operation type.
3. The method according to claim 2, characterized in that The step S22 also includes: the operation ticket template determines whether there are multiple operation plans according to the equipment number, and if there are multiple operation plans, sorting the multiple operation plans.
4. The method according to claim 3, characterized in that The specific steps of displaying the execution progress of the dispatching operation ticket through the GIS model in step S4 include: The operation steps are determined according to the operation plan selected by the executor, and the execution progress of the scheduling operation ticket is displayed according to the progress of the operation steps.
5. The method according to claim 4, characterized in that The specific step of displaying the execution progress of the dispatch operation ticket through the GIS model in step S4 also includes: Compare the progress of the operation steps with the estimated duration, and determine whether to issue a timeout warning based on the comparison result.
6. A visual generation system for dispatching operation tickets, applied to the method according to any one of claims 1 to 5, characterized in that: The system comprises: A data acquisition module, wherein the data acquisition module is used to obtain real-time data of the power grid system; A GIS model, wherein the GIS model is used to display the real-time operation status of the power grid system according to the real-time data of the power grid system; An operation ticket template, wherein the operation ticket template is used to generate a corresponding dispatch operation ticket according to a real-time data set of a power grid system; An automatic review module, which is used to automatically review the dispatch operation ticket through the operation ticket rule library and display the review result through the GIS model; A progress monitoring module, which is used to send the approved dispatch operation ticket to the corresponding dispatch department and display the execution progress of the dispatch operation ticket through the GIS model; The information feedback module is used to obtain the dispatch operation ticket feedback information and update the operation ticket template according to the dispatch operation ticket feedback information.
7. The system according to claim 6, characterized in that The specific steps of generating corresponding dispatching operation tickets based on real-time data of the power grid system include: Determine the specific type of operation that needs to be performed based on real-time data from the power grid system; The operation ticket template determines the operation location, equipment number, operation plan, emergency measures, dispatching department, execution personnel, and estimated duration according to the specific operation type.
8. The system according to claim 7, characterized in that The operation ticket template determines whether there are multiple operation plans according to the equipment number, and if there are multiple operation plans, the multiple operation plans are sorted.
9. The system according to claim 8, characterized in that The specific steps to display the progress of dispatch operation ticket execution through GIS model include: The operation steps are determined according to the operation plan selected by the executor, and the execution progress of the scheduling operation ticket is displayed according to the progress of the operation steps.
10. The system according to claim 9, characterized in that The system further comprises: a timeout warning module, which is used to compare the progress of the operation step with the estimated duration, and determine whether to issue a timeout warning according to the comparison result.
Citation Information
Patent Citations
Grid dispatching operation order intelligent generation method and device
CN109214639A
Scheduling operation ticket generation method and device
CN114595541A
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Safety protection system and method for distribution network maintenance
CN122092493A