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Integration of flow battery for resilience enhancement of advanced distribution grids

机译:集成液流电池以增强高级配电网的弹性

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This paper presents a real-time simulation and hardware-based approach for systematic integration of Distributed Energy Resources (DERs) in advanced distribution grids with a special focus on resilience. Advanced distribution grids are considered to be functionally more sophisticated than traditional ones. The desirable advanced functionalities include - reconfiguration, real-time sensing, DERs, self-healing, etc. Some of these functionalities are currently being realized by microgrids as well. However, it is not feasible to convert each section of a distribution grid into a microgrid, but can be instituted with functionalities by design and controls at relatively lower costs. Interconnection of DERs, including energy storage to improve reliability and resilience is presented in details. Resilience of distribution grids is gaining greater importance and research towards enhancing it utilizing DERs is a key area. A real-time resilience framework with Analytical Hierarchical Processes (AHP) is developed that adapts to changing configurations, DERs, switching operations, grid conditions, etc. to provide an accurate and adoptable composite resilience metric. This framework and the composite resilience metric can play a unique role in operational and design decisions for operating future distribution grids. Advanced functionalities such as scenario-based reconfiguration in distribution grids are considered, with resilience metrics as performance criteria for choosing a preferred combination. Simulations are performed using Digital Real-Time Simulator (DRTS) and characterized response of flow battery validated against actual flow battery hardware is imposed to provide realistic results. Reconfiguration program is interfaced with DRTS for bidirectional real-time communication. Key contributions include enhancement of resilience of distribution grids using energy storage system under dynamic operating conditions.
机译:本文介绍了一种实时仿真和基于硬件的方法,用于高级配电网中分布式能源(DER)的系统集成,尤其侧重于弹性。先进的配电网在功能上要比传统的配电网更为先进。理想的高级功能包括-重新配置,实时感测,DER,自我修复等。这些功能中的某些功能目前也由微电网实现。但是,将配电网的每个部分转换为微网是不可行的,但是可以通过设计和控制以相对较低的成本实现功能。详细介绍了DER的互连,包括能量存储以提高可靠性和弹性。配电网的弹性越来越重要,利用DER来增强配电网的灵活性是一个关键领域。开发了带有层次分析流程(AHP)的实时弹性框架,该框架可适应不断变化的配置,DER,切换操作,电网条件等,从而提供准确且可采用的复合弹性指标。该框架和复合弹性指标可以在运营未来配电网的运营和设计决策中发挥独特作用。考虑了高级功能,例如配电网中基于方案的重新配置,并将弹性指标作为选择首选组合的性能标准。使用数字实时模拟器(DRTS)进行仿真,并针对实际液流电池硬件验证了液流电池的特征响应,以提供真实的结果。重新配置程序与DRTS进行接口以进行双向实时通信。主要贡献包括在动态运行条件下使用储能系统增强配电网的弹性。

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