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Control of power electronics-based synchronous generator for the integration of renewable energies into the power grid

机译:基于电力电子技术的同步发电机的控制,用于将可再生能源整合到电网中

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This paper addresses a single synchronous controller (SSC) for interfaced converters with high penetration of renewable energy resources (RERs) into a low inertia power grid. The SSC is modelled based on a comprehensive dependence between each operative feature of a synchronous generator (SG) and a power electronics converter. This can properly improve the performance of the power grid in such scenarios in which large-scale penetration of RERs are detected. The main contribution of this paper is representing an exhaustive relation between active components of the proposed SSC and SG features which enables the proposed SSC-based interfaced converter to more accurately mimic the behaviour of SGs during active power generating along with providing controllable inertia. Due to containing sufficient decoupling, both components of the proposed SSC have no impact on each other, also the proposed SSC has a superior operational flexibility within a wide range of inertia from very low to high values. Thus, two closed-loop control systems are considered to separately analyse the characteristic effects of SGs in active and reactive power sharing apart from the power grid stability challenges. In addition, the impacts of active power variations on reactive power are subsequently evaluated. To further analyse the operation of the system, the effects of the virtual mechanical power (VMP) error embedded in the SSC are considered as an alternative option for assessing the power grid stability. Also, the variations of the virtual angular frequency (VAF) error are carefully deliberated for more considerations associated with the active and reactive power performance of the SSC. Simulation results are presented to demonstrate the high performance of the SSC in the control of the power electronics-based SG when high-penetration renewable energy sources are integrated into the low inertia power grid.
机译:本文针对接口转换器的单个同步控制器(SSC),将可再生能源(RER)高度渗透到低惯性电网中。 SSC基于同步发电机(SG)和电力电子转换器的每个操作功能之间的全面依赖关系进行建模。在检测到RER大规模渗透的情况下,这可以适当地改善电网的性能。本文的主要贡献是代表了所提出的SSC和SG功能的有源组件之间的穷举关系,这使得所提出的基于SSC的接口转换器能够更准确地模拟有功功率产生期间的SG行为,并提供可控的惯性。由于包含足够的去耦,因此建议的SSC的两个组件都不会相互影响,而且建议的SSC在从非常低的值到很高的较大惯性范围内也具有出色的操作灵活性。因此,除电网稳定性挑战外,考虑使用两个闭环控制系统分别分析SG在有功和无功功率共享中的特征效应。此外,随后评估了有功功率变化对无功功率的影响。为了进一步分析系统的运行情况,将SSC中嵌入的虚拟机械功率(VMP)错误的影响视为评估电网稳定性的替代选择。此外,还仔细考虑了虚拟角频率(VAF)误差的变化,以便与SSC的有功和无功功率性能相关联的更多考虑因素。仿真结果表明,当将高渗透率的可再生能源集成到低惯性电网中时,SSC在基于电力电子的SG控制中具有高性能。

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