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现行 EN IEC 61970-302:2024
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Energy management system application program interface (EMS-API) - Part 302: Common information model (CIM) dynamics 能源管理系统应用程序接口(EMS-API).第302部分:公共信息模型(CIM)动力学
发布日期: 2024-03-15
实施日期: 2024-03-15
IEC 61970-302:2024规定了一个动力学包,其中包含CIM的一部分,以支持软件应用程序之间的模型交换,这些软件应用程序对IEEE/CIGRE定义的电力系统的稳态稳定性(小信号稳定性)或瞬态稳定性进行分析,电力系统稳定性的定义和分类IEEE/CIGRE-稳定性术语和定义联合工作组。 本文档中的模型描述提供了每种类型的动态模型的规范,以及在规划/研究应用程序之间的动态案例交换中需要包含的信息。 本文档中指定的CIM Dynamics包的范围包括: •标准模型:一种描述动态模型的简化方法,其中表示电力系统元件动态行为的模型包含在以标准方式互连的预定义类库中。 只需要模型中选定元素的名称及其属性来描述动态行为。 •专有用户定义模型:一种方法,使用户能够定义代表供应商或用户专有设备的动态行为模型的参数,而本文档没有提供模型的明确描述。专有用户定义模型和标准模型都使用相同的库和标准互连。本文档中没有记录模型的行为细节,只有模型参数。 •一个能够交换模型描述的模型。这种方法可用于描述用户定义和标准模型。 •一个能够交换模拟结果的模型。 第二版取消并取代了2018年出版的第一版。 本版本为技术修订版。 与上一版相比,本版包括以下重大技术更改: a) IEC 61970-302:2018中检测到的大多数问题都得到了解决; b) 完全涵盖了IEEE 421.5-2016关于励磁系统的内容; c) 考虑了2013年的IEEE涡轮机报告,因此增加了许多燃气、蒸汽和水力涡轮机/调速器; d) 关于风力涡轮机的IEC 61400-27-1:2020已完全纳入; e) 增加了WECC基于逆变器的资源(IBR)模型、混合STATCOM模型和存储模型; f) 用户定义的模型通过一个模型得到了增强,该模型能够对详细的动态模型进行建模; g) 增加了一个能够交换仿真结果的模型; h) 高压直流输电模型的工作尚未完成。高压直流输电动力学模型是一个复杂的领域,其中没有国际上认可或广泛认可的模型。 e.只有基于项目的模型。在这个阶段,IEC 61970-302:2022只规定了一些通用类别。然而,人们认识到,要更好地覆盖高压直流输电,需要对本文件进行进一步修订; i) 增加了IEEE 1547-2018“IEEE分布式能源与相关电力系统接口的互连和互操作性标准”中的模型。 j) 在整个文档中,某些数字、表格、模式和枚举中添加了声明,表明它们是在UCA国际用户组(UCIug)的许可下复制的。这些项目源自CIM。
IEC 61970-302:2024 specifies a Dynamics package which contains part of the CIM to support the exchange of models between software applications that perform analysis of the steady-state stability (small-signal stability) or transient stability of a power system as defined by IEEE / CIGRE, Definition and classification of power system stability IEEE/CIGRE joint task force on stability terms and definitions. The model descriptions in this document provide specifications for each type of dynamic model as well as the information that needs to be included in dynamic case exchanges between planning/study applications. The scope of the CIM Dynamics package specified in this document includes: • standard models: a simplified approach to describing dynamic models, where models representing dynamic behaviour of elements of the power system are contained in predefined libraries of classes which are interconnected in a standard manner. Only the names of the selected elements of the models along with their attributes are needed to describe dynamic behaviour. • proprietary user-defined models: an approach providing users the ability to define the parameters of a dynamic behaviour model representing a vendor or user proprietary device where an explicit description of the model is not provided by this document. The same libraries and standard interconnections are used for both proprietary user-defined models and standard models. The behavioural details of the model are not documented in this document, only the model parameters. • A model to enable exchange of models’ descriptions. This approach can be used to describe user defined and standard models. • A model to enable exchange of simulation results. This second edition cancels and replaces the first edition published in 2018. This edition constitutes a technical revision. This edition includes the following significant technical changes with respect to the previous edition: a) The majority of issues detected in IEC 61970-302:2018 are addressed; b) IEEE 421.5-2016 on Excitation systems is fully covered; c) The IEEE turbine report from 2013 was considered and as a result a number of gas, steam and hydro turbines/governors are added; d) IEC 61400-27-1:2020 on wind turbines is fully incorporated; e) WECC Inverter-Based Resource (IBR) models, Hybrid STATCOM models and storage models are added; f) The user defined models are enhanced with a model which enables modelling of detailed dynamic model; g) A model to enable exchange of simulation results is added; h) The work on the HVDC models is not complete. The HVDC dynamics models are a complex domain in which there are no models that are approved or widely recognised on international level, i.e. there are only project-based models. At this stage IEC 61970-302:2022 only specifies some general classes. However, it is recognised that better coverage of HVDC will require a further edition of this document; i) Models from IEEE 1547-2018 "IEEE Standard for Interconnection and Interoperability of Distributed Energy Resources with Associated Electric Power Systems Interfaces" are added. j) Statements have been added to certain figures, tables, schemas, and enumerations throughout the document that indicate that they are reproduced with the permission of the UCA International User Group (UCAIug). These items are derived from the CIM.
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