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Frequency Stability Using MPC-Based Inverter Power Control in Low-Inertia Power Systems

机译:低惯性电力系统中基于MPC的逆变器功率控制的频率稳定性

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The electrical grid is evolving from a network consisting of mostly synchronous machines to a mixture of synchronous machines, and inverter-based resources such as wind, solar, and energy storage. This transformation has led to a decrease in mechanical inertia, which necessitate a need for the new resources to provide frequency responses through their inverter interfaces. In this paper we proposed a new strategy based on model predictive control to determine the optimal active-power set-point for inverters in the event of a disturbance in the system. Our framework explicitly takes the hard constraints in power, and energy into account, and we show that it is robust to measurement noise, limited communications, and delay by using an observer to estimate the model mismatches in real-time. We demonstrate the proposed controller significantly outperforms an optimally tuned virtual synchronous machine on a standard 39-bus system under a number of scenarios. In turn, this implies optimized inverter-based resources can provide better frequency responses compared to conventional synchronous machines.
机译:电网正在从由大多数同步机器组成的网络,以及同步机的混合和基于逆变器的资源,如风,太阳能和能量存储。这种转变导致机械惯性减少,这需要需要新资源通过逆变器接口提供频率响应。在本文中,我们提出了一种基于模型预测控制的新策略,以确定系统中干扰的逆变器的最佳有源功率设定点。我们的框架明确地将电力和能量的难度约束,并且我们表明它是通过使用观察者实时估计模型不匹配的测量噪声,有限的通信和延迟来稳健。我们展示所提出的控制器在许多场景下显着优于标准的39总线系统上的最佳调谐虚拟同步机。反过来,这意味着与传统的同步机相比,基于逆变器的资源可以提供更好的频率响应。

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