Secondary debugging acceptance method of booster station and related device thereof
Through automated multi-stage debugging methods and digital platform management, the problems of data dispersion and information lag during secondary debugging tests of traditional boost stations are solved, real-time monitoring of secondary debugging progress of boost stations and standardized data management are realized, and acceptance efficiency and safety are improved.
Patent Information
- Application Number
- CN202510777152.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-11
- Publication Date
- 2025-07-11
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The traditional booster station secondary adjustment test collection method relies on manual recording and paper document management, which leads to the decentralized storage of debugging data, making it difficult to achieve real-time correlation and comprehensive analysis, and the progress information is lagging, which affects work efficiency and information security.
It adopts an automated multi-stage debugging method to collect and generate debugging reports in real time, manage data and control permissions through digital platforms, generate acceptance pass forms, and realize standardization and real-time monitoring of debugging data.
Real-time acquisition of the secondary debugging progress of the boost station and standardized data management, improve acceptance efficiency and security of the debugging process, and reduce the risk of information loss and tampering.
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Figure CN120297919A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of power systems, and in particular, to a secondary commissioning and acceptance method for a booster station and related devices thereof. Background Art
[0002] The secondary commissioning of a booster station refers to a systematic test and parameter adjustment of the control, protection, measurement, signal, and communication systems related to secondary equipment in a power system to ensure its normal and reliable operation.
[0003] In related technologies, during the commissioning process, single devices, systems, etc. of the booster station are commissioned. However, traditional commissioning and acceptance work mainly relies on manual records and paper document management, resulting in scattered storage of commissioning data on different media, making it difficult to achieve real-time association and comprehensive analysis. Secondly, the update of commissioning progress information lags behind, and relevant personnel cannot timely grasp the on-site commissioning status, easily leading to low work efficiency and information loss. Summary of the Invention
[0004] To solve or partially solve the problems existing in related technologies, this application provides a secondary commissioning and acceptance method for a booster station and related devices thereof, which can obtain the secondary commissioning progress of the booster station in real time, realize standardized management of commissioning data, and improve the acceptance efficiency and the safety of the commissioning process.
[0005] In a first aspect of this application, a secondary commissioning and acceptance method for a booster station is provided, including performing multiple different commissioning stages on the booster station. The commissioning stages at least include a single device commissioning stage, a subsystem commissioning stage, a system joint commissioning stage, and a live commissioning stage; collecting commissioning data corresponding to the multiple commissioning stages respectively, and generating commissioning reports corresponding to the different commissioning stages according to the commissioning data. The commissioning data includes single device commissioning data, subsystem commissioning data, system joint commissioning data, and live commissioning data; judging whether the booster station passes the acceptance according to the different commissioning reports. If the booster station passes the acceptance, an acceptance passed form is generated and uploaded to the supervision platform.
[0006] In combination with the first aspect, in a possible implementation manner of the first aspect, performing multiple different commissioning stages on the booster station includes: performing the single device commissioning stage on the booster station, and when the single devices of the booster station meet the first preset condition, performing the subsystem commissioning stage on the booster station; in the subsystem commissioning stage, when the subsystems of the booster station meet the second preset condition, performing the system joint commissioning stage on the booster station; in the system joint commissioning stage, when the system joint commissioning of the booster station meets the third preset condition, performing the live commissioning stage on the booster station.
[0007] In combination with the first aspect, in a possible implementation manner of the first aspect, collecting the debugging data corresponding to the multiple debugging stages includes: collecting in real time the debugging data corresponding to the multiple debugging stages; and respectively displaying the debugging progress of different debugging stages in the display module according to the debugging data of the single device, the debugging data of the subsystem, the debugging data of the system joint debugging, and the debugging data of the live commissioning.
[0008] In combination with the first aspect, in a possible implementation manner of the first aspect, collecting the debugging data corresponding to the multiple debugging stages further includes: collecting the debugging data corresponding to the debugging stage. When the number of failure times of collecting the debugging data is greater than a preset number of times, a backup collection channel is called for collection; when the debugging data corresponding to the debugging stage collected is greater than a preset threshold and lasts for a preset duration, a warning message is generated, and the debugging data corresponding to the debugging stage is uploaded to the supervision platform.
[0009] In combination with the first aspect, in a possible implementation manner of the first aspect, judging whether the booster station passes the acceptance according to different debugging reports. If the booster station passes the acceptance, an acceptance pass form is generated, including: sending different debugging reports externally; receiving the acceptance information fed back externally. If the acceptance information indicates that the booster station passes the acceptance, the acceptance pass form is generated; and archiving the acceptance pass form.
[0010] In combination with the first aspect, in a possible implementation manner of the first aspect, it further includes: performing multi-level permission processing on the debugging data corresponding to the multiple debugging stages. The multi-level permission processing at least includes read-only permission processing, modification permission processing, and approval permission processing; receiving a permission instruction, performing permission authentication on the permission instruction to obtain an authentication result. The permission instruction is used to indicate the opening of the corresponding level of permission for the debugging data; and opening the corresponding level of permission for the debugging data according to the authentication result.
[0011] The second aspect of the present application provides a secondary commissioning and acceptance device for a booster station, including: a commissioning module for performing multiple different commissioning stages on the booster station, where the commissioning stages at least include a single equipment commissioning stage, a subsystem commissioning stage, a system joint commissioning stage, and a live commissioning stage; a collection module for collecting the commissioning data corresponding to the multiple commissioning stages respectively, and generating commissioning reports corresponding to the different commissioning stages according to the commissioning data, where the commissioning data includes single equipment commissioning data, subsystem commissioning data, system joint commissioning data, and live commissioning data; a processing module for judging whether the booster station passes the acceptance according to the different commissioning reports. If the booster station passes the acceptance, an acceptance passed form is generated and uploaded to the supervision platform.
[0012] Combined with the second aspect, in a possible implementation manner of the second aspect, the commissioning module is further configured to perform the single equipment commissioning stage on the booster station. After the single equipment of the booster station meets the first preset condition, the subsystem commissioning stage of the booster station is performed; in the subsystem commissioning stage, after the subsystem of the booster station meets the second preset condition, the system joint commissioning stage of the booster station is performed; in the system joint commissioning stage, after the system joint commissioning of the booster station meets the third preset condition, the live commissioning stage of the booster station is performed.
[0013] Combined with the second aspect, in a possible implementation manner of the second aspect, the collection module is further configured to collect the commissioning data corresponding to the multiple different commissioning stages in real time; and display the commissioning progress of the different commissioning stages in the display module according to the single equipment commissioning data, the subsystem commissioning data, the system joint commissioning data, and the live commissioning data.
[0014] Combined with the second aspect, in a possible implementation manner of the second aspect, the collection module is further configured to collect the commissioning data corresponding to the commissioning stage. When the number of failure times of collecting the commissioning data is greater than the preset number of times, a backup collection channel is called for collection; when the commissioning data corresponding to the commissioning stage collected is greater than the preset threshold and lasts for the preset duration, a warning message is generated and the commissioning data corresponding to the commissioning stage is uploaded to the supervision platform.
[0015] Combined with the second aspect, in a possible implementation manner of the second aspect, the processing module is further configured to send the different commissioning reports outward; receive the acceptance information feedback from the outside. If the acceptance information indicates that the booster station passes the acceptance, the acceptance passed form is generated; and the acceptance passed form is archived.
[0016] In combination with the second aspect, in a possible implementation manner of the second aspect, the processing module is further configured to perform multi-level permission processing on the debugging data corresponding to the multiple debugging phases respectively. The multi-level permission processing at least includes read-only permission processing, modification permission processing, and audit permission processing; receive a permission instruction, perform permission authentication on the permission instruction to obtain an authentication result, where the permission instruction is used to indicate the opening of permissions at the corresponding level for the debugging data; and open the permissions at the corresponding level for the debugging data according to the authentication result.
[0017] The third aspect of the present application provides an electronic device, including: a processor; and a memory storing executable code thereon, which when executed by the processor causes the processor to execute the method as described above.
[0018] The fourth aspect of the present application provides a computer-readable storage medium storing executable code thereon, which when executed by a processor of an electronic device causes the processor to execute the method as described above.
[0019] The fifth aspect of the present application provides a computer program product including computer programs / instructions, which when executed by a processor implement the method as described above.
[0020] The technical solution provided by the present application may include the following beneficial effects: A secondary commissioning and acceptance method for a booster station and its related device in the present application include performing multiple different debugging phases on the booster station. The debugging phases at least include a single-device debugging phase, a subsystem debugging phase, a system joint debugging phase, and a live commissioning debugging phase; collecting debugging data corresponding to the multiple debugging phases respectively, and generating debugging reports corresponding to different debugging phases according to the debugging data. The debugging data includes single-device debugging data, subsystem debugging data, system joint debugging data, and live commissioning debugging data; judging whether the booster station passes the acceptance according to different debugging reports. If the booster station passes the acceptance, an acceptance pass form is generated and uploaded to the supervision platform, which can obtain the secondary debugging progress of the booster station in real time, realize standardized management of debugging data, and improve the acceptance efficiency and the safety of the debugging process.
[0021] It should be understood that the above general description and the following detailed description are only exemplary and explanatory, and cannot limit the present application. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The above and other objects, features, and advantages of the present application will become more apparent by describing the exemplary embodiments of the present application in more detail with reference to the accompanying drawings. In the exemplary embodiments of the present application, the same reference numerals generally represent the same components.
[0023] Figure 1 It is a schematic flowchart of the secondary commissioning and acceptance method of the booster station shown in the embodiments of the present application; Figure 2 It is another schematic flowchart of the secondary commissioning and acceptance method of the booster station shown in the embodiments of the present application; Figure 3 It is a schematic structural diagram of the secondary commissioning and acceptance device of the booster station shown in the embodiments of the present application; Figure 4 It is a schematic structural diagram of the electronic device shown in the embodiments of the present application. Detailed Embodiments
[0024] The embodiments of the present application will be described in more detail below with reference to the accompanying drawings. Although the embodiments of the present application are shown in the drawings, it should be understood that the present application can be implemented in various forms and should not be limited by the embodiments set forth herein. On the contrary, these embodiments are provided to make the present application more thorough and complete, and to fully convey the scope of the present application to those skilled in the art.
[0025] The terms used in the present application are for the purpose of describing specific embodiments only and are not intended to limit the present application. The singular forms "a" and "the" used in the present application and the appended claims are also intended to include the plural forms unless the context clearly dictates otherwise. It should also be understood that the term "and / or" as used herein refers to and encompasses any and all possible combinations of one or more of the associated listed items.
[0026] It should be understood that although the terms "first", "second", "third", etc. may be used in the present application to describe various information, such information should not be limited to these terms. These terms are only used to distinguish the same type of information from each other. For example, without departing from the scope of the present application, the first information may also be referred to as the second information, and similarly, the second information may also be referred to as the first information. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present application, "a plurality" means two or more unless otherwise specifically defined.
[0027] In the related art, the secondary commissioning acceptance of step-up substations is mainly managed by paper records and scattered electronic documents, and there is an obvious lag in the update of commissioning progress information. Commissioning personnel need to manually fill in commissioning reports, and supervision personnel cannot obtain acceptance data in real time, resulting in the need to wait for document transmission in the acceptance process. For example, during the subsystem commissioning process of a 500 kV step-up substation, the delay in the transmission of paper records of the protection system setting verification data caused the live commissioning stage to be postponed by two weeks. The traditional method is difficult to achieve dynamic tracking of the commissioning process, and there are problems such as asynchronous acceptance information and untimely abnormal response, which directly affect the commissioning efficiency of the project.
[0028] In view of the above problems, the embodiments of the present application provide a secondary commissioning acceptance method and related device for a step-up substation, which can obtain the secondary commissioning progress of the step-up substation in real time, realize standardized management of commissioning data, and improve the acceptance efficiency and the safety of the commissioning process.
[0029] The technical solutions of the embodiments of the present application are described in detail below with reference to the accompanying drawings.
[0030] Figure 1 It is a schematic flow chart of the secondary commissioning acceptance method for a step-up substation shown in the embodiments of the present application.
[0031] See Figure 1 , a secondary commissioning acceptance method for a step-up substation, including: S110: Perform multiple different commissioning stages on the step-up substation, and the commissioning stages at least include a single device commissioning stage, a subsystem commissioning stage, a system joint commissioning stage, and a live commissioning stage.
[0032] Specifically, the division of commissioning stages refers to decomposing the complex commissioning process into four standardized links with a progressive relationship, which can be specifically realized by using the commissioning process decomposition method. For example, the circuit breaker drive test is classified into the single device commissioning stage, and the joint commissioning of the relay protection system is classified into the subsystem commissioning stage, including the single device commissioning stage, the subsystem commissioning stage, the system joint commissioning stage, and the live commissioning stage. The system can include, for example, a power supply system, a monitoring system, a protection system, a metering system, etc. Each system can include multiple single devices, and the single devices can include circuit breaker types, switch types, transformer types, instrument transformer types, power supplies, line equipment, metering equipment, monitor types, protection equipment, etc.
[0033] S120: Collect the commissioning data corresponding to the multiple commissioning stages respectively, and generate commissioning reports corresponding to different commissioning stages according to the commissioning data. The commissioning data includes single device commissioning data, subsystem commissioning data, system joint commissioning data, and live commissioning data.
[0034] Specifically, during the commissioning phase of individual devices, commissioning data corresponding to different individual devices can be collected respectively. During the commissioning process, the functions of individual devices are verified first. For example, a polarity test is performed on the current transformer, and the test data is uploaded to the data platform in real time. When the commissioning of all individual devices is completed and the data meets the preset standards, the subsystem commissioning process is carried out. For example, the cooperation logic between the relay protection system and the circuit breaker is verified. During the system joint commissioning phase, the collaborative working status of multiple systems is monitored with a focus. For example, the timing consistency between the fault recording device and the protection action signal is checked. During the live commissioning phase, the actual operating parameters of the equipment are collected. For example, the bus voltage fluctuation data within 72 hours of continuous monitoring is collected.
[0035] S130: According to different commissioning reports, determine whether the step-up substation passes the acceptance. If the step-up substation passes the acceptance, generate an acceptance passed form and upload the acceptance passed form to the supervision platform.
[0036] Specifically, after the commissioning of each commissioning phase of the step-up substation is completed, a formatted report can be generated based on the verified commissioning data of each phase and sent to the supervision platform. The supervision platform can automatically generate an acceptance conclusion by parsing the key index items in the commissioning report. Traditional commissioning methods rely on manual recording of commissioning parameters, which has the risk of data tampering and cannot be shared in real time. By collecting the commissioning data of different phases in real time, such as automatically recording the opening and closing times through a displacement sensor during the mechanical characteristic test of the circuit breaker, and directly transmitting the data to the cloud server to avoid human intervention, compared with the scattered paper-based acceptance process, data sharing and acceptance can be carried out in real time, improving the acceptance efficiency.
[0037] A secondary commissioning and acceptance method for a step-up substation in this application includes multiple different commissioning phases for the step-up substation. The commissioning phases at least include the individual device commissioning phase, the subsystem commissioning phase, the system joint commissioning phase, and the live commissioning phase; collect the commissioning data corresponding to the multiple commissioning phases respectively, and generate commissioning reports corresponding to different commissioning phases according to the commissioning data. The commissioning data includes individual device commissioning data, subsystem commissioning data, system joint commissioning data, and live commissioning data; according to different commissioning reports, determine whether the step-up substation passes the acceptance. If the step-up substation passes the acceptance, generate an acceptance passed form and upload the acceptance passed form to the supervision platform, which can obtain the secondary commissioning progress of the step-up substation in real time, realize the standardized management of commissioning data, and improve the acceptance efficiency and the safety of the commissioning process.
[0038] Figure 2 It is another schematic flow diagram of the secondary commissioning and acceptance method for the step-up substation shown in the embodiment of this application.
[0039] See Figure 2 , a secondary commissioning and acceptance method for a step-up substation, includes: S210: During the commissioning stage of individual equipment in the step-up substation, after the individual equipment in the step-up substation meets the first preset condition, the step-up substation enters the subsystem commissioning stage.
[0040] Specifically, the commissioning stage of individual equipment refers to verifying the functions of the independently operating equipment in the step-up substation. It can be specifically achieved by using automated test scripts or manual operations. For example, by judging whether the equipment is operating normally through preset voltage and current thresholds, the commissioning stage of individual equipment can be executed first. For example, independent function tests are carried out on equipment such as circuit breakers and instrument transformers. After the test is completed, the system automatically compares the commissioning data with the preset conditions. If the test results of all individual equipment meet the first preset condition, for example, when the failure rate of individual equipment is less than 1%, it is considered to meet the first preset condition, then the subsystem commissioning stage is triggered.
[0041] S220: During the subsystem commissioning stage, after the subsystems in the step-up substation meet the second preset condition, the step-up substation enters the system joint commissioning stage.
[0042] Specifically, the subsystem commissioning stage can be an integrated test of the subsystems composed of multiple individual equipment. It can be specifically achieved through simulating the operating environment or actual load testing. For example, detecting whether the communication protocols between subsystems match. For example, overall logical verification is carried out on the relay protection system. If the linkage response time of the subsystem is less than 100 ms and the number of misoperations is zero, it is determined to meet the second preset condition and enter the system joint commissioning stage.
[0043] S230: During the system joint commissioning stage, after the system joint commissioning of the step-up substation meets the third preset condition, the step-up substation enters the live commissioning stage.
[0044] Specifically, the system joint commissioning stage can be to verify the coordinated operation ability of the entire step-up substation. It can be specifically achieved by using multi-node synchronous monitoring means. For example, testing the stability of the system by simulating grid fluctuations. It can be coordinated commissioning of multiple systems. During the system joint commissioning stage, for example, testing the grid connection performance between the step-up substation and the power grid. If the voltage fluctuation range is controlled within ±2% and there is no abnormal alarm, it is determined to meet the third preset condition, and finally the live commissioning stage is executed.
[0045] Specifically, after completing the system joint commissioning phase, the live commissioning phase is entered. The live commissioning phase can verify the comprehensive performance of the step-up substation under real operating conditions, which can be specifically achieved by connecting to the actual power grid and collecting operation data. For example, monitor the temperature rise of the equipment under rated load. After passing the acceptance in the live commissioning phase, it can be considered that the entire step-up substation has passed the acceptance. This application can ensure that the output quality of each commissioning phase meets the input requirements of the subsequent phase through standardized control of the commissioning process. For example, when a polarity error of the transformer is found in the single equipment commissioning phase, the system will prevent the entry into the subsystem commissioning phase to avoid the error being transmitted to the protection system logic test link. The subsequent commissioning process is started only after ensuring that the commissioning results of the previous phase are fully up to standard. This stage isolation mechanism makes the commissioning process traceable. When an abnormality occurs in the live commissioning phase, the acceptance data of the specific commissioning phase can be quickly located, which can greatly improve the commissioning efficiency and timely locate the fault position, reducing the fault troubleshooting time.
[0046] S240: Collect the commissioning data corresponding to multiple commissioning phases respectively, and generate commissioning reports corresponding to different commissioning phases according to the commissioning data. The commissioning data includes single equipment commissioning data, subsystem commissioning data, system joint commissioning data, and live commissioning data.
[0047] Specifically, the commissioning data corresponding to different single equipment can be collected respectively in the single equipment commissioning phase. For example, data can be collected through sensors.
[0048] In a possible implementation manner, collecting the commissioning data corresponding to multiple commissioning phases respectively includes: collecting the commissioning data corresponding to multiple different commissioning phases in real time; and displaying the commissioning progress of different commissioning phases respectively in the display module according to the single equipment commissioning data, subsystem commissioning data, system joint commissioning data, and live commissioning data.
[0049] Specifically, the data generated in the commissioning phase can be continuously obtained through sensors, video monitoring, or test instruments. The commissioning progress display means presenting the completion ratio and acceptance status of different phases in a visual form, which can be specifically implemented by combining a graphical interface with a dynamic progress bar. For example, the lag, normal, and ahead statuses are distinguished by color coding.
[0050] Specifically, during the debugging process, the debugging verses can be collected through the data acquisition module. For example, the debugging signals can be captured in real time through intelligent sensors and video monitoring, and after being uniformly processed by the converter, they are transmitted to the processing unit. The processing unit classifies the data into stage types such as monomers and subsystems, calculates the completion percentage of each stage through algorithms, and the display module can display the progress of each debugging data. For example, in the display board interface, the progress bars of each stage are displayed in different regions, and the normal, lagging, or risky states are marked in green, yellow, and red respectively. The debugging personnel can view the completion rate of the current stage in real time through the display board. Through automatic acquisition and dynamic display, the debugging progress can be displayed in real time and intuitively, which is conducive to the debugging personnel to control the debugging progress.
[0051] In a possible implementation, collecting the debugging data corresponding to multiple debugging stages further includes: collecting the debugging data corresponding to the debugging stage. When the number of failure times of collecting the debugging data is greater than the preset number of times, the backup acquisition channel is called for acquisition; when the debugging data corresponding to the collected debugging stage is greater than the preset threshold and lasts for the preset duration, a warning message is generated, and the debugging data corresponding to the debugging stage is uploaded to the supervision platform.
[0052] Specifically, the number of failure times being greater than the preset number of times can be the threshold of the number of times that the data acquisition device fails to successfully obtain valid data continuously. The preset number of times can be 3 times. The counter module can be used to count the number of transmission interruptions. When the number of failure times of collecting the debugging data is greater than the preset number of times, the backup acquisition channel can be called for acquisition. The backup acquisition channel can be an alternative transmission path when the main data link fails, and is used to maintain the continuity of data acquisition when the main channel is abnormal. During the debugging data acquisition process, when the main data channel fails to return a valid signal three times in a row, it automatically switches to the pre-configured 4G wireless backup channel to continue the data acquisition task, which can ensure that key debugging data is not lost.
[0053] Specifically, the preset threshold refers to the critical warning value of the device operation parameters, which can be specifically implemented by setting the percentage offset according to the rated parameters of the device, and is used to identify abnormal working conditions beyond the safe range. The preset duration refers to the duration of abnormal data. The preset threshold can be set between 105% - 110%, and the preset duration can be set to 5 - 15 minutes. For example, when monitoring the operating current of the protection device during the subsystem debugging stage, if the collected value exceeds 105% of the rated value for ten consecutive minutes, the system generates a warning message and uploads it to the supervision platform. The warning message can include the device number, the exceeding amplitude, and the duration, etc., which can actively give a warning before the parameter abnormality accumulates to the dangerous threshold, so that the abnormal working conditions can be identified and processed in time, improving the safety of the debugging process and the credibility of the acceptance data.
[0054] S250: Determine whether the step-up substation passes the acceptance according to different debugging reports. If the step-up substation passes the acceptance, generate an acceptance passing form and upload the acceptance passing form to the supervision platform.
[0055] Specifically, debugging reports can be generated for each individual device and different system debugging. Based on multiple debugging reports, comprehensively determine whether the step-up substation can pass the acceptance.
[0056] In a possible implementation manner, to determine whether the step-up substation passes the acceptance according to different debugging reports. If the step-up substation passes the acceptance, generate an acceptance passing form, including: send different debugging reports externally; receive the acceptance information feedback from the outside. If the acceptance information indicates that the step-up substation passes the acceptance, generate an acceptance passing form; archive the acceptance passing form.
[0057] Specifically, the acceptance information refers to the review results of the external parties on the debugging reports. Specifically, blockchain technology can be used to implement an electronic confirmation form jointly signed by multiple parties to ensure that the information cannot be tampered with. The acceptance passing form can be an electronic certificate formed after being verified by multiple parties. After obtaining the acceptance passing form, it can be stored to improve the traceability of data.
[0058] Specifically, after the debugging report is generated, it is transmitted to external terminals such as supervisors and owners through a communication interface. The external parties conduct reviews based on preset acceptance criteria and feedback the acceptance status. If the acceptance result is passed, the system automatically calls the digital signature module to generate an acceptance passing form with a timestamp and stores it in an encrypted database. At the same time, a unique identification code is generated for subsequent retrieval. The debugging report and the acceptance passing form are associated through a data chain to form a complete acceptance evidence chain. For example, the equipment parameters, test records, and rectification information generated during the debugging process are all bound to the acceptance passing form to ensure full-process traceability. Through electronic transmission and blockchain evidence storage, real-time synchronization and irreversible modification of acceptance information are achieved, shortening the acceptance cycle and enhancing data credibility, and avoiding the risks of information lag, easy loss, or tampering caused by manual transmission of paper documents.
[0059] In a possible implementation manner, it further includes: performing multi-level permission processing on the debugging data corresponding to multiple debugging stages. The multi-level permission processing at least includes read-only permission processing, modification permission processing, and review permission processing; receiving a permission instruction, performing permission authentication on the permission instruction to obtain an authentication result. The permission instruction is used to indicate the opening of the corresponding level of permissions for the debugging data; opening the corresponding level of permissions for the debugging data according to the authentication result.
[0060] Specifically, the multi-level permission processing can be access control permissions at different levels for debugging data, including read-only permission processing, modification permission processing, and audit permission processing. For example, debug personnel can have the modification permission to update debug records, supervision engineers can have the audit permission to confirm whether the data is normal, and the owner side only has the read-only permission to view the final results.
[0061] Specifically, a permission instruction refers to a request for adjusting access permissions initiated by a system administrator or an authorized user. For example, identity authentication is implemented through digital signatures or encrypted tokens, and users can perform face recognition to generate permission instructions. Among them, permission authentication refers to verifying the legality of permission instructions. According to the authentication results, different levels of permission openings can be performed on the debugging data.
[0062] A secondary commissioning and acceptance method for a booster station in this application includes a single equipment commissioning stage for the booster station. When the single equipment of the booster station meets the first preset condition, a sub-system commissioning stage is carried out for the booster station; in the sub-system commissioning stage, when the sub-system of the booster station meets the second preset condition, a system joint commissioning stage is carried out for the booster station; in the system joint commissioning stage, when the system joint commissioning of the booster station meets the third preset condition, a live commissioning stage is carried out for the booster station; collecting the debugging data corresponding to multiple commissioning stages respectively, and generating debugging reports corresponding to different commissioning stages according to the debugging data. The debugging data includes single equipment debugging data, sub-system debugging data, system joint debugging data, and live commissioning data; judging whether the booster station passes the acceptance according to different debugging reports. If the booster station passes the acceptance, an acceptance pass form is generated and uploaded to the supervision platform, which can obtain the secondary commissioning progress of the booster station in real time, realize the standardized management of debugging data, and improve the acceptance efficiency and the safety of the commissioning process.
[0063] Corresponding to the foregoing method embodiment for implementing application functions, this application also provides a secondary commissioning and acceptance device for a booster station, an electronic device, and corresponding embodiments.
[0064] Figure 3 It is a schematic structural diagram of the secondary commissioning and acceptance device for a booster station shown in the embodiment of this application.
[0065] See Figure 3 , a secondary commissioning and acceptance device 300 for a booster station, includes: A debugging module 310, configured to perform different multiple commissioning stages on the booster station. The commissioning stages at least include a single equipment commissioning stage, a sub-system commissioning stage, a system joint commissioning stage, and a live commissioning stage.
[0066] In a possible implementation, the debugging module 310 is further configured to perform single-device debugging on the booster station. After the single devices of the booster station meet the first preset condition, the debugging of the subsystems of the booster station is carried out; in the subsystem debugging stage, after the subsystems of the booster station meet the second preset condition, the system joint debugging of the booster station is carried out; in the system joint debugging stage, after the system joint debugging of the booster station meets the third preset condition, the live commissioning debugging of the booster station is carried out.
[0067] The acquisition module 320 is configured to acquire debugging data corresponding to multiple debugging stages respectively, and generate debugging reports corresponding to different debugging stages according to the debugging data. The debugging data includes single-device debugging data, subsystem debugging data, system joint debugging data, and live commissioning debugging data.
[0068] In a possible implementation, the acquisition module 320 is further configured to acquire in real time the debugging data corresponding to multiple different debugging stages respectively; and display the debugging progress of different debugging stages in the display module according to the single-device debugging data, subsystem debugging data, system joint debugging data, and live commissioning debugging data.
[0069] In a possible implementation, the acquisition module 320 is further configured to acquire the debugging data corresponding to the debugging stage. When the number of failures in acquiring the debugging data is greater than the preset number, a backup acquisition channel is called for acquisition; when the debugging data corresponding to the acquired debugging stage is greater than the preset threshold and lasts for the preset duration, a warning message is generated, and the debugging data corresponding to the debugging stage is uploaded to the supervision platform.
[0070] The processing module 330 is configured to determine whether the booster station passes the acceptance according to different debugging reports. If the booster station passes the acceptance, an acceptance pass form is generated and uploaded to the supervision platform.
[0071] In a possible implementation, the processing module 330 is further configured to send different debugging reports externally; receive the acceptance information feedback from the outside. If the acceptance information indicates that the booster station passes the acceptance, an acceptance pass form is generated; and the acceptance pass form is archived.
[0072] In a possible implementation, the processing module 330 is further configured to perform multi-level permission processing on the debugging data corresponding to multiple debugging stages respectively. The multi-level permission processing at least includes read-only permission processing, modification permission processing, and approval permission processing; receive a permission instruction, perform permission authentication on the permission instruction to obtain an authentication result. The permission instruction is used to indicate the opening of the corresponding level of permission for the debugging data; and open the corresponding level of permission for the debugging data according to the authentication result.
[0073] Specifically, the debugging module 310 first executes the single-device debugging phase. When it detects that parameters such as device current and voltage meet the first preset conditions, it automatically enters the subsystem debugging phase. During the subsystem debugging phase, the acquisition module 320 collects the linkage data of subsystems such as the protection system and the monitoring system in real time through the sensor network, and synchronizes the data to the data processing unit to generate a debugging progress report. If the subsystem debugging result meets the second preset conditions, the debugging module 310 triggers the system joint debugging phase. At this time, the acquisition module 320 records the device operation status through the video monitoring device, and then the debugging module 310 can enter the live commissioning phase and generate a joint debugging report in combination with the test instrument data. The processing module 330 can call the blockchain technology to verify the multi-party digital signature of the acceptance conclusion according to indicators such as device stability and error range in the debugging report, and finally generate an acceptance pass form with an encrypted identifier.
[0074] A secondary commissioning and acceptance device for a booster station in this application includes multiple different debugging phases for the booster station. The debugging phases at least include a single-device debugging phase, a subsystem debugging phase, a system joint debugging phase, and a live commissioning debugging phase; collect the debugging data corresponding to the multiple debugging phases respectively, and generate debugging reports corresponding to different debugging phases according to the debugging data. The debugging data includes single-device debugging data, subsystem debugging data, system joint debugging data, and live commissioning debugging data; judge whether the booster station passes the acceptance according to different debugging reports. If the booster station passes the acceptance, generate an acceptance pass form and upload the acceptance pass form to the supervision platform, which can obtain the secondary debugging progress of the booster station in real time, realize the standardized management of debugging data, and improve the acceptance efficiency and the safety of the debugging process.
[0075] Regarding the device in the above embodiments, the specific manners in which each module performs operations have been described in detail in the embodiments related to the method, and will not be elaborated here.
[0076] The embodiments of this application also provide an electronic device. Figure 4 It is a schematic hardware structure diagram of an embodiment of the electronic device of this application. The electronic device includes a memory 410 and at least one processor 420. The memory 410 is electrically connected to the at least one processor 420. Instructions are stored in the memory 410. The at least one processor 420 calls the instructions in the memory 410 to enable the electronic device to execute the secondary commissioning and acceptance method for the booster station according to any one of the foregoing embodiments of this application.
[0077] Specifically, the above-mentioned processor 420 may include a central processing unit (CPU), or an application specific integrated circuit (ASIC), or may be configured as one or more integrated circuits implementing the embodiments of the present application.
[0078] The memory 410 may include a mass memory 410 for data or instructions. By way of example and not limitation, the memory 410 may include a hard disk drive (HDD), a floppy disk drive, a flash memory, an optical disk, a magneto-optical disk, a magnetic tape, or a universal serial bus (USB) drive, or a combination of two or more of these. Where appropriate, the memory 410 may include removable or non-removable (or fixed) media. Where appropriate, the memory 410 may be inside or outside the integrated gateway disaster recovery device. In a particular embodiment, the memory 410 is a non-volatile solid state memory. In a particular embodiment, the memory 410 includes a read-only memory (ROM). Where appropriate, the ROM may be a mask-programmed ROM, a programmable ROM (PROM), an erasable PROM (EPROM), an electrically erasable PROM (EEPROM), an electrically rewritable ROM (EAROM), or a flash memory, or a combination of two or more of these.
[0079] In one example, the control device may further include a communication interface 430 and a bus 440. The processor 420, the memory 410, and the communication interface 430 are connected through the bus 440 to complete communication with each other.
[0080] The communication interface 430 is mainly used to implement communication between the various modules, devices, units, and / or devices in the embodiments of the present application.
[0081] The bus 440 includes hardware, software, or both, and couples the components of the online data flow metering device to each other. By way of example and not limitation, the bus may include an Accelerated Graphics Port (AGP) or other graphics bus, an Enhanced Industry Standard Architecture (EISA) bus, a Front Side Bus (FSB), a HyperTransport (HT) interconnect, an Industry Standard Architecture (ISA) bus, an InfiniBand interconnect, a Low Pin Count (LPC) bus, a Memory 410 bus, a MicroChannel Architecture (MCA) bus, a Peripheral Component Interconnect (PCI) bus, a PCI-Express (PCI-X) bus, a Serial Advanced Technology Attachment (SATA) bus, a Video Electronics Standards Association Local (VLB) bus, or other suitable buses or a combination of two or more of these. Where appropriate, the bus 440 may include one or more buses. Although the embodiments of the present application describe and illustrate specific buses, the present application contemplates any suitable bus or interconnect.
[0082] In addition, in combination with the secondary commissioning and acceptance method of the booster station in the above embodiments, the embodiments of the present application can provide a computer-readable storage medium to implement. Instructions are stored on the computer-readable storage medium, and when the instructions are executed by a processor, any one of the secondary commissioning and acceptance methods of the booster station in the above embodiments is implemented.
[0083] The present application is not limited to the specific configurations and processes described above and shown in the figures. For the sake of brevity, detailed descriptions of known methods are omitted here. In the above embodiments, several specific steps are described and shown as examples. However, the method process of the present application is not limited to the specific steps described and shown, and those skilled in the art can make various changes, modifications, and additions, or change the order between steps after understanding the spirit of the present application.
[0084] The functional blocks shown in the above block diagrams can be implemented as hardware, software, firmware, or a combination thereof. When implemented in hardware, it can be, for example, an electronic circuit, an Application Specific Integrated Circuit (ASIC), appropriate firmware, a plug-in, a functional card, and so on. When implemented in software, the elements of the present application are programs or code segments for performing the required tasks. The program or code segment can be stored in a machine-readable medium or transmitted via a data signal carried in a carrier wave on a transmission medium or a communication link. "Machine-readable medium" can include any medium that can store or transmit information. Examples of machine-readable media include electronic circuits, semiconductor memory devices, ROMs, flash memories, Erasable ROMs (EROMs), floppy disks, CD-ROMs, optical discs, hard disks, fiber optic media, Radio Frequency (RF) links, and so on. The code segment can be downloaded via a computer network such as the Internet, an intranet, and so on.
[0085] It should also be noted that the exemplary embodiments mentioned in this application describe some methods or systems based on a series of steps or devices. However, this application is not limited to the order of the above steps. That is to say, the steps can be executed in the order mentioned in the embodiments, or different from the order in the embodiments, or several steps can be executed simultaneously.
[0086] Alternatively, this application also provides a computer program product that can implement some or all of the steps in the methods of the above embodiments. The computer program product includes computer programs / instructions, and when the computer programs / instructions are executed by a processor, they implement some or all of the steps in the methods of the above embodiments.
[0087] As described above, the foregoing are only specific implementation manners of this application. Those skilled in the art can clearly understand that for the convenience and brevity of description, the specific working processes of the systems, modules, and units described above can refer to the corresponding processes in the foregoing method embodiments and will not be elaborated herein. It should be understood that the protection scope of this application is not limited thereto. Any person skilled in the art within the technical scope disclosed in this application can easily think of various equivalent modifications or substitutions, and these modifications or substitutions should all be covered within the protection scope of this application.
Claims
1. A secondary commissioning and acceptance method for a booster station, characterized in that, Including: Performing multiple different commissioning phases on the step-up substation, where the commissioning phases at least include single equipment commissioning phase, subsystem commissioning phase, system joint commissioning phase, and live commissioning phase; Collecting the commissioning data corresponding to the multiple commissioning phases respectively, and generating commissioning reports corresponding to different commissioning phases according to the commissioning data. The commissioning data includes single equipment commissioning data, subsystem commissioning data, system joint commissioning data, and live commissioning data; Judging whether the step-up substation passes the acceptance according to different commissioning reports. If the step-up substation passes the acceptance, generating an acceptance pass form and uploading the acceptance pass form to the supervision platform.
2. The method according to claim 1, wherein The performing multiple different commissioning phases on the step-up substation includes: Performing the single equipment commissioning phase on the step-up substation, and when the single equipment of the step-up substation meets the first preset condition, performing the subsystem commissioning phase on the step-up substation; In the subsystem commissioning phase, when the subsystem of the step-up substation meets the second preset condition, performing the system joint commissioning phase on the step-up substation; In the system joint commissioning phase, when the system joint commissioning of the step-up substation meets the third preset condition, performing the live commissioning phase on the step-up substation.
3. The method according to claim 1, wherein The collecting the commissioning data corresponding to the multiple commissioning phases respectively includes: Collecting the commissioning data corresponding to the multiple commissioning phases respectively in real time; According to the single equipment commissioning data, the subsystem commissioning data, the system joint commissioning data, and the live commissioning data, displaying the commissioning progress of different commissioning phases in the display module respectively.
4. The method according to claim 1, wherein The collecting the commissioning data corresponding to the multiple commissioning phases respectively further includes: Collecting the commissioning data corresponding to the commissioning phase. When the number of failure times of collecting the commissioning data is greater than the preset number of times, calling the standby collection channel for collection; When the commissioning data corresponding to the commissioning phase collected is greater than the preset threshold and lasts for the preset duration, generating a warning message and uploading the commissioning data corresponding to the commissioning phase to the supervision platform.
5. The method according to claim 1, characterized in that, The judging whether the step-up substation passes the acceptance according to different commissioning reports. If the step-up substation passes the acceptance, generating an acceptance pass form includes: Sending different commissioning reports outward; Receiving the acceptance information feedback from the outside. If the acceptance information indicates that the step-up substation passes the acceptance, generating the acceptance pass form; Archiving the acceptance pass form.
6. The method according to claim 5, wherein Also including: Performing multi-level permission processing on the commissioning data corresponding to the multiple commissioning phases respectively. The multi-level permission processing at least includes read-only permission processing, modification permission processing, and approval permission processing; Receiving a permission instruction, performing permission authentication on the permission instruction to obtain an authentication result. The permission instruction is used to indicate the opening of the corresponding level of permission for the commissioning data; Opening the corresponding level of permission for the commissioning data according to the authentication result.
7. A secondary commissioning and acceptance device for a booster station, characterized in that, Including: A debugging module for performing multiple different debugging phases on a booster station, where the debugging phases at least include a single-device debugging phase, a subsystem debugging phase, a system joint debugging phase, and a live commissioning debugging phase; An acquisition module for acquiring debugging data corresponding to the multiple debugging phases respectively, and generating debugging reports corresponding to the different debugging phases according to the debugging data, where the debugging data includes single-device debugging data, subsystem debugging data, system joint debugging data, and live commissioning debugging data; A processing module for judging whether the booster station passes the acceptance according to the different debugging reports. If the booster station passes the acceptance, an acceptance passing form is generated and uploaded to the supervision platform.
8. A computer program product comprising computer programs / instructions, characterized in that, When the computer program / instructions are executed by a processor, the method according to any one of claims 1 to 6 is implemented.
9. An electronic device, characterized in that, Comprising: A processor; And A memory storing executable code thereon, which when executed by the processor causes the processor to execute the method according to any one of claims 1-6.
10. A computer-readable storage medium, characterized in that: Storing executable code thereon, which when executed by a processor of an electronic device causes the processor to execute the method according to any one of claims 1-6.
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