Energy storage standard system construction method and device, computer equipment and storage medium
By obtaining the current status standards and demand information of energy storage power plants, and generating and dynamically updating the energy storage standard system, the problem of inadequate energy storage standard system in the existing technology is solved, and the reliable construction and timely application of the standard system of energy storage power plants is realized.
Patent Information
- Application Number
- CN202510301825.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-14
- Publication Date
- 2025-07-29
AI Technical Summary
The existing energy storage standard system construction method is not reliable enough to effectively guide the healthy and orderly development of energy storage power plants.
By obtaining the current energy storage standard information of the energy storage status of the energy storage power station and the energy storage demand information of the target object, the initial energy storage standard system architecture is generated, the standard information is determined, and the standard detailed information is compiled in the initial architecture, and the energy storage standard system is finally generated and dynamically updated to adapt to changes.
It has achieved a more reliable construction of an energy storage standard system, ensuring the timely application of standards, reducing work delays caused by unfinished preparation, and adapting to the full life cycle needs of energy storage power plants.
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Figure CN120387609A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of energy storage, and particularly to a method, device, computer device, and storage medium for constructing an energy storage standard system. Background Art
[0002] The healthy and orderly development of the energy storage industry depends on the support of standardization work. Therefore, it is necessary to establish a sound energy storage standard system to escort the healthy and sustainable development of the industry.
[0003] Currently, in the application and development of energy storage technologies by power generation enterprises, they mainly rely on existing domestic and foreign energy storage technology standards and specifications. For example, foreign standardization organizations such as IEC (International Electrotechnical Commission) and IEEE (Institute of Electrical and Electronics Engineers) have all carried out the formulation of energy storage-related standards, and a sound energy storage standard system is established through existing domestic and foreign energy storage technology standards and specifications.
[0004] However, the current method of constructing an energy storage standard system has the problem of being unreliable. Summary of the Invention
[0005] Based on this, it is necessary to provide a reliable method, device, computer device, computer-readable storage medium, and computer program product for constructing an energy storage standard system in view of the above technical problems.
[0006] In a first aspect, the present application provides a method for constructing an energy storage standard system, including:
[0007] Obtain the energy storage status standard information of an energy storage power station and the energy storage demand information of the target objects maintaining the operation of the energy storage power station;
[0008] Generate an initial energy storage standard system architecture for the energy storage power station based on the energy storage demand information and the energy storage status standard information, where the initial energy storage standard system architecture includes multiple pieces of standard information;
[0009] Determine the compilation priorities of the multiple pieces of standard information, and compile the standard detail information of the multiple pieces of standard information in the initial energy storage standard system architecture according to the compilation priorities;
[0010] Generate an energy storage standard system for the energy storage power station based on all the compiled standard detail information.
[0011] In one embodiment, determining the compilation priorities of the multiple pieces of standard information includes:
[0012] Obtain the scheduling end time of multiple standard information and the association information between each piece of standard information and the target object;
[0013] Based on the scheduling end time and the association information, generate the compilation priorities of multiple standard information.
[0014] In one embodiment, based on the energy storage demand information and the energy storage status standard information, generate the initial energy storage standard system architecture of the energy storage power station, including:
[0015] According to the full life cycle of the energy storage power station, divide the energy storage demand information and the energy storage status standard information;
[0016] Based on the energy storage demand information and the energy storage status standard information under each divided life cycle, generate multiple pieces of standard information under each life cycle;
[0017] Combine the multiple pieces of standard information under all life cycles to generate the initial energy storage standard system architecture of the energy storage power station.
[0018] In one embodiment, the energy storage status standard information includes multiple pieces of status standard information; based on the energy storage demand information and the energy storage status standard information under each divided life cycle, generate multiple pieces of standard information under each life cycle, including:
[0019] For each life cycle, obtain the quantitative evaluation value of multiple pieces of status standard information, and the quantitative evaluation value is used to evaluate whether the status standard information can guide the energy storage power station to normally execute the pending work within the full life cycle;
[0020] Determine the status defect standard information for the status standard information with a quantitative evaluation value lower than the preset quantitative evaluation threshold, and filter the status defect standard information to obtain the target status standard information;
[0021] Generate new standard information based on the energy storage demand information;
[0022] Combine the target status standard information and the new standard information to obtain multiple pieces of standard information.
[0023] In one embodiment, generate new standard information based on the energy storage demand information, including:
[0024] Generate initial new standard information based on the energy storage demand information;
[0025] Detect the similarity between the initial new standard information and the target status standard information;
[0026] Filter the initial new standard information with a similarity lower than the preset threshold, and use the remaining initial new standard information as the new standard information.
[0027] In one embodiment, based on the energy storage demand information and the energy storage status standard information for each life cycle, multiple standard information for each life cycle is generated, including:
[0028] For each life cycle, obtain the energy storage application scenario and the energy storage development route of the target object;
[0029] Based on the energy storage application scenario, the energy storage development route, the energy storage demand information, and the energy storage status standard information, generate multiple standard information.
[0030] In one embodiment, after generating the energy storage standard system based on the compiled standard detail information, the method further includes:
[0031] Obtain the target energy storage status standard information of the energy storage power station and the target energy storage demand information of the target object that maintains the operation of the energy storage power station;
[0032] In the case where the target energy storage status standard information is inconsistent with the energy storage status standard information or the target energy storage demand information is inconsistent with the energy storage demand information, update the energy storage standard system.
[0033] In a second aspect, the present application also provides an energy storage standard system construction device, including:
[0034] An information acquisition module, configured to acquire the energy storage status standard information of the energy storage power station and the energy storage demand information of the target object that maintains the operation of the energy storage power station;
[0035] An initial architecture generation module, configured to generate an initial energy storage standard system architecture of the energy storage power station based on the energy storage demand information and the energy storage status standard information, and the initial energy storage standard system architecture includes multiple standard information;
[0036] A standard detail compilation module, configured to determine the compilation priority of multiple standard information, and compile the standard detail information of multiple standard information in the initial energy storage standard system architecture according to the compilation priority;
[0037] A standard system generation module, configured to generate an energy storage standard system of the energy storage power station based on all the compiled standard detail information.
[0038] In a third aspect, the present application also provides a computer device, including a memory and a processor, the memory stores a computer program, and when the processor executes the computer program, the following steps are implemented:
[0039] Obtain the energy storage status standard information of the energy storage power station and the energy storage demand information of the target object that maintains the operation of the energy storage power station;
[0040] Based on the energy storage demand information and the energy storage status standard information, generate an initial energy storage standard system architecture of the energy storage power station, and the initial energy storage standard system architecture includes multiple standard information;
[0041] Determine the compilation priorities of multiple standard information, and compile the standard details of multiple standard information in the initial energy storage standard system architecture according to the compilation priorities;
[0042] Generate an energy storage standard system for the energy storage power station based on all the compiled standard details.
[0043] Fourthly, the present application also provides a computer-readable storage medium, on which a computer program is stored. When the computer program is executed by a processor, the following steps are implemented:
[0044] Obtain the energy storage status standard information of the energy storage power station and the energy storage demand information of the target object for maintaining the operation of the energy storage power station;
[0045] Generate an initial energy storage standard system architecture for the energy storage power station based on the energy storage demand information and the energy storage status standard information. The initial energy storage standard system architecture includes multiple standard information;
[0046] Determine the compilation priorities of multiple standard information, and compile the standard details of multiple standard information in the initial energy storage standard system architecture according to the compilation priorities;
[0047] Generate an energy storage standard system for the energy storage power station based on all the compiled standard details.
[0048] Fifthly, the present application also provides a computer program product, including a computer program. When the computer program is executed by a processor, the following steps are implemented:
[0049] Obtain the energy storage status standard information of the energy storage power station and the energy storage demand information of the target object for maintaining the operation of the energy storage power station;
[0050] Generate an initial energy storage standard system architecture for the energy storage power station based on the energy storage demand information and the energy storage status standard information. The initial energy storage standard system architecture includes multiple standard information;
[0051] Determine the compilation priorities of multiple standard information, and compile the standard details of multiple standard information in the initial energy storage standard system architecture according to the compilation priorities;
[0052] Generate an energy storage standard system for the energy storage power station based on all the compiled standard details.
[0053] The above-mentioned method, device, computer equipment, computer-readable storage medium, and computer program product for constructing an energy storage standard system comprehensively maintain the energy storage demand information of the target object for maintaining the operation of the energy storage power station and the energy storage status standard information of the energy storage power station. From the perspective of demand and the perspective of the status quo, a comprehensive analysis of the energy storage standard system architecture is carried out to generate an initial energy storage standard system architecture for the energy storage power station. The initial energy storage standard system architecture includes multiple standard information. According to the compilation priorities of the multiple standard information, the standard detail information of the multiple standard information is compiled in the standard system architecture to achieve timely compilation of the standard information with higher priority, so as to reduce the possibility of being unable to apply relevant standards in a timely manner due to incomplete compilation for energy storage-related work. And based on the compiled standard detail information, an energy storage standard system for the energy storage power station is generated. Compared with relying on existing domestic and foreign energy storage technology standards and specifications, this method can more reliably construct the energy storage standard system of the energy storage power station. BRIEF DESCRIPTION OF THE DRAWINGS
[0054] In order to more clearly illustrate the technical solutions in the embodiments of the present application or related technologies, the following will briefly introduce the drawings required for the description in the embodiments of the present application or related technologies. Obviously, the drawings in the following description are some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other related drawings can also be obtained based on these drawings.
[0055] Figure 1 It is an application environment diagram of the method for constructing an energy storage standard system in an embodiment;
[0056] Figure 2 It is a flowchart of the method for constructing an energy storage standard system in an embodiment;
[0057] Figure 3 It is a flowchart of the method for constructing an energy storage standard system in another embodiment;
[0058] Figure 4 It is a structural block diagram of the device for constructing an energy storage standard system in an embodiment;
[0059] Figure 5 It is an internal structure diagram of a computer device in an embodiment. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0060] In order to make the purpose, technical solutions, and advantages of the present application clearer, the following will further describe the present application in detail with reference to the drawings and embodiments. It should be understood that the specific embodiments described here are used to explain the present application, not to limit the present application.
[0061] The method for constructing an energy storage standard system provided by the embodiments of the present application can be applied to, for example Figure 1In the application environment shown. Among them, the terminal 102 communicates with the server 104 through the network. The data storage system can store the data that the server 104 needs to process. The data storage system can be integrated on the server 104, or can be placed on the cloud or other network servers.
[0062] The user triggers the energy storage standard system construction control on the energy storage standard system construction interface of the terminal 102. The terminal 102 responds to the trigger request of the energy storage standard system construction control, generates an energy storage standard system construction request, and sends the energy storage standard system construction request to the server 104. The server 104 obtains the energy storage status standard information of the energy storage power station and the energy storage demand information of the target object for maintaining the operation of the energy storage power station; based on the energy storage demand information and the energy storage status standard information, generates an initial energy storage standard system architecture for the energy storage power station, and the initial energy storage standard system architecture includes multiple standard information; determines the compilation priority of the multiple standard information, and according to the compilation priority, compiles the standard detail information of the multiple standard information in the initial energy storage standard system architecture; based on all the compiled standard detail information, generates the energy storage standard system of the energy storage power station. Further, the server 104 can also push the generated energy storage standard system of the energy storage power station to the terminal 102, and the terminal 102 displays it to the staff of the energy storage power station.
[0063] Among them, the terminal 102 can be but is not limited to various personal computers, laptop computers, smart phones, tablet computers, Internet of Things devices and portable wearable devices. The Internet of Things devices can be smart speakers, smart TVs, smart air conditioners, smart in-vehicle devices, projection devices, etc. The portable wearable devices can be smart watches, smart bracelets, head-mounted devices, etc. The head-mounted device can be a virtual reality (VR) device, an augmented reality (AR) device, smart glasses, etc. The server 104 can be an independent physical server, or a server cluster or distributed system composed of multiple physical servers, or a cloud server providing cloud computing services.
[0064] In an exemplary embodiment, as Figure 2 shown, a method for constructing an energy storage standard system is provided, and this method is applied to Figure 1 the server 104 in
[0065] S100, obtain the energy storage status standard information of the energy storage power station and the energy storage demand information of the target object for maintaining the operation of the energy storage power station.
[0066] Among them, the current energy storage standard information refers to the standard information on the current status of energy storage technologies, and the standard information refers to the norms and standards of a certain industry. The target object can refer to an individual or an enterprise, generally an enterprise. The target object is the entity participating in maintaining the operation of the energy storage power station, which can be the investor, builder, or operator of the energy storage power station. The energy storage demand information refers to the demand information of the target object in the application of energy storage technologies, including technical demands, management demands, safety demands, etc.
[0067] Specifically, the user triggers the energy storage standard system construction control on the energy storage standard system construction interface of the terminal. The terminal responds to the trigger request of the energy storage standard system construction control, generates an energy storage standard system construction request, and sends the energy storage standard system construction request to the server. The server obtains the current energy storage standard information of the energy storage power station and the energy storage demand information of the target object maintaining the operation of the energy storage power station.
[0068] The server can query the pre-stored current energy storage standard information and energy storage demand information from the database, or obtain the current energy storage standard information and energy storage demand information from the outside world in real time.
[0069] Furthermore, the server queries the pre-stored current energy storage standard information and energy storage demand information from the database, including: obtaining the current energy storage standard information of the energy storage power station by researching the current situation of energy storage technology standardization at home and abroad, and obtaining the energy storage demand information of the target object by analyzing the demands of the target object in the application of new energy storage technologies, including technical demands, management demands, safety demands, etc., and storing the current energy storage standard information of the energy storage power station and the energy storage demand information of the target object in the database for the server to query the pre-stored current energy storage standard information of the energy storage power station and the energy storage demand information of the target object from the database.
[0070] S200. Generate the initial energy storage standard system architecture based on the energy storage demand information and the current energy storage standard information.
[0071] Among them, the initial energy storage standard system architecture includes multiple pieces of standard information. The definition of the initial energy storage standard system architecture is: "a scientific organic whole formed by the internal connection of standards within a certain range". Essentially, it is a logical combination of standards, which is a combination made to enable the standardized object to have certain functions and characteristics. This definition covers the key elements such as the scope, internal connection, and integrity of the standard system.
[0072] Specifically, based on the energy storage demand information and the energy storage status standard information, the initial energy storage technology standard system architecture of the energy storage power station is designed. Specifically, according to the energy storage status standard information and the energy storage status standard information, the guiding ideology and basic principles for the design of the initial energy storage technology standard system architecture of the energy storage power station are determined. Based on the guiding ideology and basic principles, multiple standard information is designed. And based on the multiple standard information, the initial energy storage technology standard system architecture of the energy storage power station is generated.
[0073] S300, determine the compilation priorities of the multiple standard information, and according to the compilation priorities, compile the standard detail information of the multiple standard information in the initial energy storage standard system architecture.
[0074] Specifically, the initial energy storage standard system architecture of the energy storage power station includes multiple standard information. At this time, the standard information defines the standard types existing in the initial energy storage standard system architecture. It is also necessary to compile the standard detail information corresponding to the multiple standard information in the initial energy storage standard system architecture.
[0075] Therefore, the compilation priorities of the multiple standard information can be obtained. The compilation priority refers to the priority of writing the standard detail information corresponding to the multiple standard information in the initial energy storage standard system architecture. Based on the compilation priorities, the compilation time sequence of the standard information is obtained. Based on the compilation time sequence of the standard information, the standard detail information of the multiple standard information is successively compiled step by step in the initial energy storage standard system architecture to ensure the gradual improvement of the energy storage standard system. In practical applications, each standard detail information includes the content, scope of application, and implementation requirements of each standard information.
[0076] S400, based on all the compiled standard detail information, generate the energy storage standard system of the energy storage power station.
[0077] Specifically, based on all the compiled standard detail information, the energy storage standard system of the energy storage power station is generated by combination. Further, the server can also push the generated energy storage standard system to the terminal, and the terminal displays it to the staff of the energy storage power station.
[0078] In the above method for constructing the energy storage standard system, the energy storage demand information of the target object for maintaining the operation of the energy storage power station and the energy storage status standard information of the energy storage power station are comprehensively maintained. From the perspective of demand and the current situation, a comprehensive analysis of the energy storage standard system architecture is carried out to generate the initial energy storage standard system architecture of the energy storage power station. The initial energy storage standard system architecture includes multiple standard information items. According to the compilation priorities of the multiple standard information items, the standard detailed information of the multiple standard information items is compiled in the standard system architecture, so as to realize the timely compilation of the standard information with higher priority, reduce the possibility of being unable to apply relevant standards in a timely manner for energy storage-related work due to incomplete compilation, and generate the energy storage standard system of the energy storage power station based on the compiled standard detailed information. Compared with relying on existing domestic and foreign energy storage technology standards and specifications, this method can more reliably construct the energy storage standard system of the energy storage power station.
[0079] In an exemplary embodiment, determining the compilation priorities of multiple standard information items includes:
[0080] Obtaining the planned compilation end times of the multiple standard information items and the association information between the multiple standard information items and the target object respectively; generating the compilation priorities of the multiple standard information items based on the planned compilation end times and the association information.
[0081] Among them, the planned compilation end times of the multiple standard information items can refer to the urgency degrees of the multiple standards.
[0082] Specifically, this application mainly determines the compilation priorities of the multiple standard information items from two dimensions: the planned compilation end times of the multiple standard information items and the association information between the multiple standard information items and the target object respectively.
[0083] Furthermore, obtain the planned compilation end times of the multiple standard information items, obtain the importance degrees of the multiple standard information items through the planned compilation end times, and generate the compilation priorities of the multiple standard information items based on the importance degrees of the multiple standard information items and the association information between the multiple standard information items and the target object respectively. Generally, the association information of the target object is represented in the form of an association percentage.
[0084] More specifically, the shorter the planned compilation end time of the standard information, the more urgently the standard information is needed, so the higher the importance degree of the standard information. The longer the planned compilation end time of the standard information, the less urgently the standard information is needed, so the lower the importance degree of the standard information.
[0085] For example, from the perspective of the planned compilation end times of each standard information item, it can be divided into 3 evaluation levels: "general, urgent, and extremely urgent". "Extremely urgent" means that this technical standard needs to be established and compiled within 1 year, "urgent" means that this standard needs to be established and compiled within 3 years, and "general" means that this standard can be established and compiled within 5 years.
[0086] Furthermore, from the perspective of the association information between multiple standard information and the target object, it can be divided into three evaluation levels: "strong correlation, correlation, and weak correlation". Among them, "strong correlation" means that this standard has strong guidance for the work that the target object needs to carry out, can directly guide the target object to carry out relevant work, and the target object is the executor of the standard; "correlation" means that this standard does not directly guide the target object to carry out work, but can be used as the basis for the target object to carry out work, or the technical type involved in this standard has been applied within the target object, but there is no national or industry standard for reference; "weak correlation" means that the technical type involved in this standard has not been applied within the target object, and there is no national or industry standard for reference.
[0087] Finally, considering the relationship between the above-mentioned priority evaluation dimensions comprehensively, couple them into a set of priority evaluation criteria to determine the compilation priority of multiple standard information. For example, the compilation priorities of multiple standard information are divided into three levels: A, B, and C in sequence.
[0088] It should be explained that this application does not consider the influence of other factors on the compilation priority for the time being. In fact, although there may be mandatory guiding opinions or management measures regarding new energy storage issued irregularly, this time is not regular and has great randomness, making it difficult to predict in advance. Therefore, the possible influence on the compilation priority in this case is not considered for the time being.
[0089] In this embodiment, from the two dimensions of the planned compilation end time of multiple standard information and the association information between multiple standard information and the target object respectively, generate the compilation priority of multiple standard information comprehensively and accurately, so as to accurately and efficiently compile the standard details of multiple standard information in the standard system architecture.
[0090] In an exemplary embodiment, as Figure 3 shown, S200 includes:
[0091] S220, divide the energy storage demand information and the energy storage status standard information according to the whole life cycle of the energy storage power station.
[0092] S240, based on the energy storage demand information and the energy storage status standard information under each divided life cycle, generate multiple standard information under each life cycle.
[0093] S260, combine the multiple standard information under all life cycles to generate the initial energy storage standard system architecture of the energy storage power station.
[0094] Specifically, the target object can be the investor, constructor, and operator of a new energy storage power station. To comprehensively cover the entire life cycle of the energy storage power station, the initial energy storage standard system architecture can divide the energy storage demand information and the energy storage status standard information according to different stages of the life cycle of the energy storage power station, that is, the process of the power station "from scratch".
[0095] More specifically, the entire life cycle of the energy storage power station includes, but is not limited to: 8 major categories of life cycles such as basic general, planning and design, equipment and facilities, power station construction, installation and commissioning, grid connection, power station acceptance, production operation, etc.
[0096] The energy storage demand information and the energy storage status standard information are divided into the above 8 major categories of life cycles, and based on the energy storage demand information and the energy storage status standard information under each divided life cycle, multiple standard information is generated for each life cycle. Finally, the multiple standard information under all life cycles is combined to generate the initial energy storage standard system architecture of the energy storage power station.
[0097] In an exemplary embodiment, the standard information obtained by dividing the energy storage demand information and the energy storage status standard information according to the entire life cycle of the energy storage power station is specific application standard information. In addition, the multiple standard information also includes basic general standard information, which is the most basic technical standard required for the target object to carry out work related to the construction of a new energy storage power station, mainly term-based standards. For example, there are currently national standard GB / T 42313-2023 "Terms for Power Energy Storage Systems" and industry standard DL / T 2528-2022 "Basic Terms for Power Energy Storage", which basically cover the terms in various fields and stages of power energy storage, have strong applicability and authority in the industry, and can support the target object to carry out work. Therefore, in the new energy storage standard system of the target object, the basic general standard information directly refers to and uses the above standards without additional new ones.
[0098] In the above embodiment, by dividing the energy storage demand information and the energy storage status standard information according to the entire life cycle of the energy storage power station, multiple standard information for each life cycle can be accurately generated, and the efficiency of dividing according to the entire life cycle of the energy storage power station to generate multiple standard information for each life cycle is also higher. Finally, the efficiency of combining the multiple standard information under all life cycles to generate the initial energy storage standard system architecture of the energy storage power station is also higher.
[0099] In an exemplary embodiment, the energy storage status standard information includes multiple status standard information; based on the energy storage demand information and the energy storage status standard information under each divided life cycle, generating multiple standard information for each life cycle includes:
[0100] For each life cycle, obtain the quantitative evaluation values of multiple current standard information; determine the current defective standard information whose quantitative evaluation value is lower than the preset quantitative evaluation threshold, and filter the current defective standard information to obtain the target current standard information; generate new standard information based on the energy storage demand information; combine the target current standard information and the new standard information to obtain multiple standard information.
[0101] Among them, the quantitative evaluation value is used to evaluate whether the current standard information can guide the energy storage power station to normally perform the work to be processed during the whole life cycle. That is to say, by evaluating whether the current standard information can clearly and effectively guide the energy storage power station to carry out various types of work during this life cycle, the quantitative evaluation value of the current standard information can be obtained.
[0102] Specifically, for each life cycle, obtain the quantitative evaluation values of multiple current standard information, that is, analyze the advantages and disadvantages of multiple current standard information. The higher the quantitative evaluation value, the better the current standard information and the more suitable it is for the standards of the energy storage power station, and it can clearly and effectively guide the energy storage power station to carry out various types of work during this life cycle. The lower the quantitative evaluation value, the less suitable the current standard information is for the standards of the energy storage power station and it cannot clearly and effectively guide the energy storage power station to carry out various types of work during this life cycle. Therefore, determine the current defective standard information whose quantitative evaluation value is lower than the preset quantitative evaluation threshold, and filter the current defective standard information, and retain the current standard information whose quantitative evaluation value is greater than or equal to the preset quantitative evaluation threshold to obtain the target current standard information.
[0103] Furthermore, new standard information can also be generated based on the energy storage demand information of the target object.
[0104] Finally, combine the target current standard information and the new standard information to obtain multiple standard information. The above method can be used to generate multiple standard information for each life cycle.
[0105] In the above embodiment, by filtering the current defective standard information and generating new standard information based on the energy storage demand information, more accurate multiple standard information can be combined. The newly obtained multiple standard information not only retains the better standards but also expands the scope of the standards.
[0106] In an exemplary embodiment, generating new standard information based on the energy storage demand information includes:
[0107] Generate initial new standard information based on the energy storage demand information; detect the similarity between the initial new standard information and the target current standard information; filter the initial new standard information whose similarity is lower than the preset threshold, and use the remaining initial new standard information as the new standard information.
[0108] Specifically, based on the energy storage demand information, initial new standard information is generated. The new standard information may be the same as or different from multiple pieces of current standard information. To remove the initial new standard information, the similarity between the initial new standard information and the target current standard information can be tested. If the similarity is higher than a preset similarity threshold, the initial new standard information is filtered out. If the similarity is lower than or equal to the preset similarity threshold, the initial new standard information is retained. Finally, the remaining initial new standard information is used as the new standard information.
[0109] In the above embodiment, the similarity between the initial new creation standard information and the target current status standard information is detected, and the initial new creation standard information with a similarity lower than a preset threshold is filtered, so that the initial new creation standard information can be accurately deduplicated.
[0110] In an exemplary embodiment, based on the energy storage demand information and energy storage status standard information in each life cycle, multiple standard information in each life cycle is generated, including:
[0111] For each life cycle, the target object's energy storage application scenario and energy storage development path are obtained; based on the energy storage application scenario, energy storage development path, energy storage demand information and energy storage status standard information, multiple standard information are generated.
[0112] Specifically, the technical requirements for energy storage power stations vary across different energy storage application scenarios, including those focused on improving the flexibility of thermal power units, "Shagohuang" new energy bases, coastal wind and solar clusters, and independent shared energy storage. Therefore, the various standards within the energy storage standards system require scientific consideration of relevant factors, differentiating between energy storage application scenarios, and ensuring the applicability of the technical standards.
[0113] It should be noted that currently, the majority of the target's energy storage projects are electrochemical energy storage projects, and the majority of existing national and industry standards also target electrochemical energy storage power stations and their equipment, many of which can be directly referenced and applied. However, current national and industry standards for electrochemical energy storage are still relatively weak in areas such as engineering construction, commissioning, and acceptance. The target lacks reference standards when carrying out related work, so target standards can fill this gap. Furthermore, the target also has relevant plans for physical energy storage, but there is a lack of national and industry standards for reference. The target can summarize a set of enterprise standards based on the actual construction and operation experience of physical energy storage projects such as supercapacitors, flywheels, gravity, compressed air, and thermal storage.
[0114] Therefore, it is necessary to obtain the energy storage application scenarios and energy storage development routes of the target object. For example, whether the energy storage application scenario is to improve the flexibility of thermal power or energy bases in sandy, gobi, and desert areas, and whether the energy storage development route is an electrochemical energy storage route or a physical energy storage route. Starting from the four aspects of energy storage application scenarios, energy storage development routes, energy storage demand information, and energy storage status standard information, multiple standard information under this life cycle is generated.
[0115] For example, in the case of the life cycle being planning and design, from the perspective of energy storage application scenarios, currently there is only the national standard GB / T 51437-2021 "Design Standard for Wind-Solar-Energy Storage Combined Power Stations", which is applicable to the design of wind-solar-energy storage, wind-energy storage, and solar-energy storage combined power stations. However, there is still a lack of reference standards for the coastal wind-solar clusters and the scenarios of improving the flexibility of thermal power units of the target object. Therefore, on the basis of referring to and following the national standard, it is planned to newly add 2 standards, namely "Design Specification for New Energy Storage Power Stations Built in Coastal Wind-Solar Clusters" and "Design Specification for New Energy Storage Projects to Improve the Flexibility of Thermal Power Units", to meet the application requirements of the target object; from the perspective of energy storage development routes, the current national and industry standards mainly focus on the design of electrochemical energy storage power stations. Among them, the national standard GB 51048-2014 "Design Specification for Electrochemical Energy Storage Power Stations" can be regarded as the core standard guiding the design of electrochemical energy storage power stations; the power industry standards DL / T 5860-2023 "Depth Requirements for the Content of Feasibility Study Reports of Electrochemical Energy Storage Power Stations", DL / T 5861-2023 "Depth Requirements for the Content of Preliminary Design of Electrochemical Energy Storage Power Stations", and DL / T 5862-2023 "Depth Requirements for the Content of Construction Drawing Design of Electrochemical Energy Storage Power Stations" can be used as important bases for reviewing design documents. In addition, during the design process of electrochemical energy storage power stations, the relevant provisions of the national standard GB / T 42288-2022 "Safety Regulations for Electrochemical Energy Storage Power Stations" also need to be referred to and implemented. Further, according to the new energy storage development plan of the target object, the other energy storage types that may be applied within the target object in the future mainly include supercapacitor energy storage, flywheel energy storage, gravity energy storage, compressed air energy storage, and thermal energy storage. Therefore, on the basis of referring to and following the above national and industry standards, it is planned to newly add multiple standards such as "Design Specification for Supercapacitor Energy Storage Power Stations", "Design Specification for Flywheel Energy Storage Power Stations", "Design Specification for Gravity Energy Storage Power Stations", "Design Specification for Compressed Air Energy Storage Power Stations", and "Design Specification for Thermal Energy Storage Projects to Improve the Flexibility of Thermal Power Units".
[0116] Therefore, this application can also generate multiple standard information by combining energy storage application scenarios, energy storage development routes, energy storage demand information, and energy storage status standard information.
[0117] In the above embodiments, multiple standard information under each life cycle is generated more accurately and comprehensively from multiple aspects of energy storage application scenarios, energy storage development routes, energy storage demand information, and energy storage status standard information.
[0118] In an exemplary embodiment, after generating the energy storage standard system based on the compiled standard detailed information, the method further includes:
[0119] Obtain the target energy storage status standard information of the energy storage power station and the target energy storage demand information of the target object that are newly detected; when the target energy storage status standard information is inconsistent with the energy storage status standard information or the target energy storage demand information is inconsistent with the energy storage demand information, update the energy storage standard system.
[0120] Specifically, in a future time period, obtain the target energy storage status standard information of the energy storage power station and the target energy storage demand information of the target object that are newly detected. When the target energy storage status standard information is inconsistent with the energy storage status standard information or the target energy storage demand information is inconsistent with the energy storage demand information, update the energy storage standard system. For example, the energy storage standard system can be updated when the target energy storage status standard information is inconsistent with the energy storage status standard information, or the energy storage standard system can be updated when the target energy storage demand information is inconsistent with the energy storage demand information, or the energy storage standard system can also be updated when the target energy storage status standard information is inconsistent with the energy storage status standard information and the target energy storage demand information is inconsistent with the energy storage demand information.
[0121] Furthermore, the energy storage standard system can also be updated based on the latest energy storage application scenario of the target object, the latest energy storage development route of the target object, the target energy storage demand information, and the target energy storage status standard information.
[0122] In the above embodiment, by establishing a dynamic update mechanism for the energy storage standard system, the energy storage standard system can be continuously improved according to the target energy storage status standard information, the target energy storage demand information of the target object, and the development and application of new energy storage technologies.
[0123] In an exemplary embodiment, taking the target object as a power generation enterprise as an example, this application aims to solve how to systematically construct a new energy storage technology standard system for power generation enterprises, ensure the comprehensiveness, hierarchy, and applicability of the standard system, and achieve the dynamic update and continuous improvement of the standard system.
[0124] 1. Analysis of energy storage demand information: Analyze the demands of power generation enterprises in the application of new energy storage technologies, including technical demands, management demands, safety demands, etc.
[0125] 2. Investigation of energy storage status standard information: Investigate the current situation of energy storage technology standardization at home and abroad, analyze the advantages and disadvantages of the existing standard system, and filter out the standards with defects in the existing standard system.
[0126] 3. Initial energy storage standard system architecture design: According to the full life cycle of the energy storage power station, classify the energy storage demand information and the current situation standard information of energy storage. For each life cycle, obtain the quantitative evaluation values of multiple pieces of current situation standard information, and the quantitative evaluation values are used to evaluate whether the current situation standard information can clearly and effectively guide the energy storage power station to perform various tasks within the full life cycle;
[0127] Determine the current situation defect standard information for the current situation standard information with a quantitative evaluation value lower than the preset quantitative evaluation threshold, and filter the current situation defect standard information to obtain the target current situation standard information. Based on the energy storage demand information, generate the initial new construction standard information, detect the similarity between the initial new construction standard information and the target current situation standard information, filter the initial new construction standard information with a similarity lower than the preset threshold, and use the remaining initial new construction standard information as the new construction standard information. Combine the target current situation standard information and the new construction standard information to obtain multiple pieces of standard information; combine the multiple pieces of standard information under all life cycles to generate the initial energy storage standard system architecture of the energy storage power station. In some other embodiments, it is also possible to obtain the energy storage application scenario and the energy storage development route of the target object, and generate multiple pieces of standard information based on the energy storage application scenario, the energy storage development route, the energy storage demand information, and the current situation standard information of energy storage.
[0128] Among them, the full life cycle of the energy storage power station includes categories such as basic general, planning and design, equipment and facilities, power station construction, installation and commissioning, grid connection, power station acceptance, and production operation.
[0129] 4. Standard details information formulation: Based on the initial energy storage standard system architecture, formulate detailed standard details information, and clarify the content, scope of application, and implementation requirements of each standard. Among them, it is possible to obtain the planned completion time of multiple pieces of standard information and the association information between multiple pieces of standard information and the target object respectively. Based on the planned completion time and the association information, generate the compilation priorities of multiple pieces of standard information, and compile the standard details information of multiple pieces of standard information in the initial energy storage standard system architecture according to the compilation priorities.
[0130] 5. Generate the energy storage standard system of the energy storage power station based on all the compiled standard details information.
[0131] 6. Dynamic update and continuous improvement: Establish a dynamic update mechanism for the energy storage standard system, and continuously improve the energy storage standard system according to the development and application of new energy storage technologies.
[0132] It should be understood that although the steps in the flowcharts involved in the above embodiments are sequentially shown according to the arrows, these steps are not necessarily executed in the order indicated by the arrows. Unless there is a clear indication in this article, the execution of these steps has no strict order limit, and these steps can be executed in other orders. Moreover, at least a part of the steps in the flowcharts involved in the above embodiments may include multiple steps or multiple stages. These steps or stages are not necessarily executed at the same time, but can be executed at different times. The execution order of these steps or stages is not necessarily sequential, but can be executed alternately or in turn with at least a part of other steps or steps or stages in other steps.
[0133] Based on the same inventive concept, an embodiment of the present application also provides an energy storage standard system construction device for implementing the energy storage standard system construction method involved above. The solution provided by this device to solve the problem is similar to the solution described in the above method. Therefore, the specific limitations in one or more embodiments of the energy storage standard system construction device provided below can refer to the limitations on the energy storage standard system construction method in the above text, and will not be repeated here.
[0134] In an exemplary embodiment, as Figure 4 shown, an energy storage standard system construction device is provided, including: an information acquisition module 100, an initial architecture generation module 200, a standard details compilation module 300, and a standard system generation module 400, where:
[0135] The information acquisition module 100 is used to acquire the energy storage status standard information of the energy storage power station and the energy storage demand information of the target object for maintaining the operation of the energy storage power station;
[0136] The initial architecture generation module 200 is used to generate an initial energy storage standard system architecture of the energy storage power station based on the energy storage demand information and the energy storage status standard information. The initial energy storage standard system architecture includes multiple standard information;
[0137] The standard details compilation module 300 is used to determine the compilation priority of multiple standard information, and compile the standard details information of multiple standard information in the initial energy storage standard system architecture according to the compilation priority;
[0138] The standard system generation module 400 is used to generate an energy storage standard system of the energy storage power station based on all the compiled standard details information.
[0139] In one embodiment, the standard details compilation module 300 is further used to acquire the planned compilation end time of multiple standard information and the association information between multiple standard information and the target object respectively; and generate the compilation priority of multiple standard information based on the planned compilation end time and the association information.
[0140] In one embodiment, the initial architecture generation module 200 is further configured to divide the energy storage demand information and the energy storage status standard information according to the entire life cycle of the energy storage power station; generate multiple standard information for each life cycle based on the energy storage demand information and the energy storage status standard information under each divided life cycle; combine the multiple standard information under all life cycles to generate the initial energy storage standard system architecture of the energy storage power station.
[0141] In one embodiment, the energy storage status standard information includes multiple status standard information; the initial architecture generation module 200 is further configured to, for each life cycle, obtain the quantitative evaluation values of the multiple status standard information, where the quantitative evaluation values are used to evaluate whether the status standard information enables the normal operation of the energy storage power station; determine the status defect standard information for the status standard information with a quantitative evaluation value lower than the preset quantitative evaluation threshold, and filter the status defect standard information to obtain the target status standard information; generate new standard information based on the energy storage demand information; combine the target status standard information and the new standard information to obtain multiple standard information.
[0142] In one embodiment, the initial architecture generation module 200 is further configured to generate initial new standard information based on the energy storage demand information; detect the similarity between the initial new standard information and the target status standard information; filter the initial new standard information with a similarity lower than the preset threshold, and use the remaining initial new standard information as the new standard information.
[0143] In one embodiment, the initial architecture generation module 200 is further configured to, for each life cycle, obtain the energy storage application scenarios and the energy storage development routes of the target object; generate multiple standard information based on the energy storage application scenarios, the energy storage development routes, the energy storage demand information, and the energy storage status standard information.
[0144] In one embodiment, the energy storage standard system construction device further includes an update module, and the update module is configured to obtain the target energy storage status standard information of the energy storage power station and the target energy storage demand information of the target object detected recently; update the energy storage standard system in the case where the target energy storage status standard information is inconsistent with the energy storage status standard information or the target energy storage demand information is inconsistent with the energy storage demand information.
[0145] Each module in the above energy storage standard system construction device can be implemented in whole or in part by software, hardware, and their combination. The above modules can be embedded in the processor in the computer device in the form of hardware or be independent of it, or be stored in the memory in the computer device in the form of software, so that the processor can call and execute the operations corresponding to the above modules.
[0146] In an exemplary embodiment, a computer device is provided. The computer device may be a server, and its internal structure diagram may be as shown in Figure 5 . The computer device includes a processor, a memory, an input / output interface (Input / Output, abbreviated as I / O), and a communication interface. Among them, the processor, the memory, and the input / output interface are connected through a system bus, and the communication interface is connected to the system bus through the input / output interface. Among them, the processor of the computer device is used to provide computing and control capabilities. The memory of the computer device includes a non-volatile storage medium and an internal memory. The non-volatile storage medium stores an operating system, a computer program, and a database. The internal memory provides an environment for the operation of the operating system and the computer program in the non-volatile storage medium. The database of the computer device is used to store data such as the energy storage status standard information of the energy storage power station and the energy storage demand information of the target objects for maintaining the operation of the energy storage power station. The input / output interface of the computer device is used to exchange information between the processor and external devices. The communication interface of the computer device is used to communicate with external terminals through a network connection. When the computer program is executed by the processor, it implements a method for constructing an energy storage standard system.
[0147] Those skilled in the art can understand that Figure 5 the structure shown in is a block diagram of some structures related to the solution of this application, and does not constitute a limitation on the computer device to which the solution of this application is applied. The specific computer device may include more or fewer components than those shown in the figure, or combine some components, or have different component arrangements.
[0148] In an embodiment, a computer device is further provided, including a memory and a processor. A computer program is stored in the memory, and when the processor executes the computer program, the steps in the above method embodiments are implemented.
[0149] In an embodiment, a computer-readable storage medium is provided, on which a computer program is stored. When the computer program is executed by the processor, the steps in the above method embodiments are implemented.
[0150] In an embodiment, a computer program product is provided, including a computer program. When the computer program is executed by the processor, the steps in the above method embodiments are implemented.
[0151] Those of ordinary skill in the art can understand that all or part of the processes in the methods of the above embodiments can be completed by instructing relevant hardware through a computer program. The computer program can be stored in a non-volatile computer-readable storage medium. When the computer program is executed, it can include the processes of the embodiments of the above methods. Among them, any reference to a memory, database, or other medium used in the embodiments provided in the present application can include at least one of non-volatile memory and volatile memory. Non-volatile memory can include read-only memory (ROM), magnetic tape, floppy disk, flash memory, optical memory, high-density embedded non-volatile memory, resistive random access memory (ReRAM), magnetoresistive random access memory (MRAM), ferroelectric random access memory (FRAM), phase change memory (PCM), graphene memory, etc. Volatile memory can include random access memory (RAM) or external cache memory, etc. By way of illustration and not limitation, RAM can be in various forms, such as static random access memory (SRAM) or dynamic random access memory (DRAM), etc. The databases involved in the embodiments provided in the present application can include at least one of relational databases and non-relational databases. Non-relational databases can include distributed databases based on blockchain, etc., without limitation. The processors involved in the embodiments provided in the present application can be general-purpose processors, central processing units, graphics processing units, digital signal processors, programmable logic devices, data processing logics based on quantum computing, artificial intelligence (AI) processors, etc., without limitation.
[0152] The technical features of the above embodiments can be combined arbitrarily. For the sake of concise description, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, it should be considered as the scope recorded in the present application.
[0153] The above embodiments merely represent several implementation manners of the present application. The description thereof is relatively specific and detailed, but it should not be construed as a limitation to the patent scope of the present application. It should be noted that for those of ordinary skill in the art, without departing from the concept of the present application, several modifications and improvements can still be made, and these all fall within the protection scope of the present application. Therefore, the protection scope of the present application shall be subject to the appended claims.
Claims
1. A method for constructing an energy storage standard system, characterized in that, The method includes: Obtaining the energy storage status standard information of the energy storage power station and the energy storage demand information of the target object for maintaining the operation of the energy storage power station; Generating an initial energy storage standard system architecture of the energy storage power station based on the energy storage demand information and the energy storage status standard information, where the initial energy storage standard system architecture includes multiple pieces of standard information; Determining the compilation priority of the multiple pieces of standard information, and compiling the standard detail information of the multiple pieces of standard information in the initial energy storage standard system architecture according to the compilation priority; Generating an energy storage standard system of the energy storage power station based on all the compiled standard detail information.
2. The method according to claim 1, characterized in that The determining the compilation priority of the multiple pieces of standard information includes: Obtaining the planned compilation end time of the multiple pieces of standard information and the association information between the multiple pieces of standard information and the target object respectively; Generating the compilation priority of the multiple pieces of standard information based on the planned compilation end time and the association information.
3. The method according to claim 1, wherein The generating an initial energy storage standard system architecture of the energy storage power station based on the energy storage demand information and the energy storage status standard information includes: Dividing the energy storage demand information and the energy storage status standard information according to the entire life cycle of the energy storage power station; Generating multiple pieces of standard information for each life cycle based on the energy storage demand information and the energy storage status standard information under each divided life cycle; Combining the multiple pieces of standard information under all life cycles to generate the initial energy storage standard system architecture of the energy storage power station.
4. The method according to claim 3, wherein The energy storage status standard information includes multiple pieces of status standard information; the generating multiple pieces of standard information for each life cycle based on the energy storage demand information and the energy storage status standard information under each divided life cycle includes: For each life cycle, obtaining the quantitative evaluation value of the multiple pieces of status standard information, where the quantitative evaluation value is used to evaluate whether the status standard information can guide the energy storage power station to normally execute the work to be processed within the entire life cycle; Determining the status defect standard information for the status standard information with the quantitative evaluation value lower than the preset quantitative evaluation threshold, and filtering the status defect standard information to obtain the target status standard information; Generating new standard information based on the energy storage demand information; Combining the target status standard information and the new standard information to obtain multiple pieces of standard information.
5. The method according to claim 4, wherein The generating new standard information based on the energy storage demand information includes: Generating initial new standard information based on the energy storage demand information; Detecting the similarity between the initial new standard information and the target status standard information; Filtering the initial new standard information with the similarity lower than the preset threshold, and using the remaining initial new standard information as the new standard information.
6. The method according to claim 3, characterized in that, The generating multiple pieces of standard information for each life cycle based on the energy storage demand information and the energy storage status standard information under each divided life cycle includes: For each life cycle, obtaining the energy storage application scenario and the energy storage development route of the target object; Generate multiple pieces of standard information based on the energy storage application scenario, the energy storage development route, the energy storage demand information, and the energy storage current situation standard information.
7. The method according to claim 1, wherein After generating the energy storage standard system based on the compiled standard detail information, the method further includes: Obtain the target energy storage current situation standard information of the energy storage power station and the target energy storage demand information of the target object that are newly detected; Update the energy storage standard system when the target energy storage current situation standard information is inconsistent with the energy storage current situation standard information or the target energy storage demand information is inconsistent with the energy storage demand information.
8. An energy storage standard system construction device, characterized in that The device includes: An information acquisition module, configured to acquire the energy storage current situation standard information of the energy storage power station and the energy storage demand information of the target object for maintaining the operation of the energy storage power station; An initial architecture generation module, configured to generate an initial energy storage standard system architecture of the energy storage power station based on the energy storage demand information and the energy storage current situation standard information, where the initial energy storage standard system architecture includes multiple pieces of standard information; A standard detail compilation module, configured to determine the compilation priority of the multiple pieces of standard information, and compile the standard detail information of the multiple pieces of standard information in the initial energy storage standard system architecture according to the compilation priority; A standard system generation module, configured to generate the energy storage standard system of the energy storage power station based on all the compiled standard detail information.
9. A computer device, comprising a memory and a processor, the memory storing a computer program, characterized in that, When the processor executes the computer program, it implements the steps of the method according to any one of claims 1 to 7.
10. A computer-readable storage medium having a computer program stored thereon, characterized in that, When the computer program is executed by the processor, it implements the steps of the method according to any one of claims 1 to 7.