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Optimal Design of Virtual Inertia and Damping Coefficients for Virtual Synchronous Machines

机译:虚拟同步机虚拟惯性和阻尼系数的最佳设计

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Increased penetration of inverter-connected renewable energy sources (RES) in the power system has resulted in a decrease in available rotational inertia which serves as an immediate response to frequency deviation due to disturbances. The concept of virtual inertia has been proposed to combat this decrease by enabling the inverters to produce active power in response to a frequency deviation like a synchronous generator. In this paper, we present an algorithm to optimally design the inertia and damping coefficient required for an inverter-based virtual synchronous machine (VSM) to participate efficiently in the inertia response portion of primary frequency control. We design the objective function to explicitly trade-off between competing objectives such as the damping rate the the frequency nadir. Specifically, we formulate the design problem as a constrained and regularized H2 norm minimization problem, and develop an efficient gradient algorithm for this non-convex problem. This proposed algorithm is applied to a test case to demonstrate its performance against existing methods.
机译:增加电力系统中的逆变器连接的可再生能源(RES)的渗透导致可用的旋转惯性的减少,其用作由于干扰引起的频率偏差的立即响应。已经提出了虚拟惯性的概念来通过使逆变器能够响应于同步发电机等频率偏差来产生有功功率来打击这种减少。在本文中,我们介绍了一种算法来最佳地设计逆变器的虚拟同步机(VSM)所需的惯性和阻尼系数,以有效地参与初级频率控制的惯性响应部分。我们设计客观函数,明确地在竞争目标之间明确折衷,例如阻尼率频率Nadir。具体而言,我们将设计问题作为受约束和正则化的H2规范最小化问题,并为该非凸问题开发了一种有效的梯度算法。该提出的算法应用于测试用例以展示其对现有方法的性能。

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