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Interfacing challenges in PHIL simulations for investigations on P-Q controls of grid connected generation units in electric power systems

机译:菲尔仿真对电力系统电网电网电网P-Q控制调查的挑战

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Real-time simulation and in particular power hardware-in-the-loop (PHIL) technology allows for the testing of power electronic inverters acting as grid-connected generation units in a simulation environment that closely mirrors existing and future smart grid networks. The interface between the real-time simulation model and physical devices is a system theoretic challenge as its design implies significant impact on both stability and accuracy of the real-time control system. In general, small time steps of the PHIL simulation model support either way stability and accuracy and these limitations are defined by well-given real-time constraints by the digital real-time simulator (DRTS). Different interface designs address this issue by using a minimum time-step at the power interface (PI) in combination with applying a staged adaptation related to stability for the digital model in accordance with given real-time constraints. The stability of the resulting closed-loop PHIL simulation system is verified by means of the classical Nyquist stability criterion. A test setup is built up with multiple photovoltaic inverters connected to different nodes within a distribution network and investigations of the behaviors of active and reactive power delivery with respect to the P-Q trajectories are discussed. Simulation results with different interface topologies are compared with waveforms obtained by a hardware test setup with the same network configuration. Statements on interactions of the inverter control algorithms and the impact on the grid voltage stability can be made and represent a basis for future analysis of smart grid testing platforms.
机译:实时仿真和特定的电源硬件循环(PHIL)技术允许测试电力电子逆变器,该电源电子逆变器在模拟环境中充当网格连接的生成单元,密切镜像现有和未来的智能电网网络。实时仿真模型和物理设备之间的接口是系统理论挑战,因为其设计意味着对实时控制系统的稳定性和准确性的显着影响。通常,菲尔仿真模型的少量时间步长支持任何方式稳定性和准确性,这些限制由数字实时模拟器(DRTS)提供良好的实时约束来定义。通过使用电源接口(PI)的最小时间步骤(PI)的最小时间步骤组合使用根据给定的实时约束使用与数字模型的稳定性相关的分阶段适配相关的最小时间步骤来解决此问题。通过经典的奈奎斯特稳定性标准验证所得闭环素仿真系统的稳定性。建立了测试设置,其中多个光伏逆变器连接到分配网络内的不同节点,并讨论了相对于P-Q轨迹的主动和无功输电的行为的研究。使用具有相同网络配置的硬件测试设置而获得的具有不同接口拓扑的模拟结果。可以对逆变器控制算法的相互作用和对电网电压稳定性的影响的陈述,并表示智能电网测试平台的未来分析的基础。

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