Stability of power networks with time-varying inertia

A. Kasis, S. Timotheou, M. Polycarpou
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引用次数: 3

Abstract

A major transition in modern power systems is the replacement of conventional generation units with renewable sources of energy. The latter results in lower rotational inertia which compromises the stability of the power system, as testified by the growing number of frequency incidents. To resolve this problem, numerous studies have proposed the use of virtual inertia to improve the stability properties of the power grid. In this study, we consider how inertia variations, resulting from the application of control action associated with virtual inertia and fluctuations in renewable generation, may affect the stability properties of the power network within the primary frequency control timeframe. We consider the interaction between the frequency dynamics and a broad class of non-linear power supply dynamics at the presence of time-varying virtual inertia and provide suitable conditions such that stability is guaranteed. In particular, we impose two conditions; a decentralized passivity-related condition on the power supply dynamics and a condition that associates the maximum rate of growth of virtual inertia with the local power supply dynamics. The presented conditions are locally verifiable and applicable to arbitrary network configurations. In addition, in case of linear power supply dynamics, they can be efficiently verified by solving suitable linear matrix inequalities. Our analytic results are validated with simulations on the Northeast Power Coordinating Council (NPCC) 140-bus system, where we demonstrate how varying virtual inertia may induce large frequency oscillations and show that the application of the proposed conditions yields a stable response.
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时变惯性电网的稳定性
现代电力系统的一个重大转变是用可再生能源取代传统发电机组。后者导致较低的转动惯量,这损害了电力系统的稳定性,正如越来越多的频率事件所证明的那样。为了解决这一问题,许多研究都提出利用虚拟惯性来提高电网的稳定性能。在本研究中,我们考虑了可再生能源发电中与虚拟惯性和波动相关的控制作用的应用所产生的惯性变化如何影响电网在一次频率控制时间范围内的稳定性。我们考虑了在时变虚惯性存在下频率动力学与广义非线性电源动力学之间的相互作用,并提供了保证稳定性的合适条件。特别地,我们施加了两个条件;一个与电源动态相关的分散无源条件和一个将虚拟惯性的最大增长率与局部电源动态相关联的条件。所提出的条件是局部可验证的,适用于任意网络配置。此外,对于线性电源动态,可以通过求解合适的线性矩阵不等式进行有效验证。我们的分析结果在东北电力协调委员会(NPCC)的140总线系统上进行了仿真验证,在那里我们展示了不同的虚拟惯性如何引起大频率振荡,并表明所提出的条件的应用产生了稳定的响应。
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