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Derivative-free Kalman filtering based approaches to dynamic state estimation for power systems with unknown inputs

机译:基于无导数卡尔曼滤波的输入未知电力系统动态状态估计方法

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摘要

This paper proposes a decentralized derivative-free dynamic state estimation method in the context of a power system with unknown inputs, to address cases when system linearisation is cumbersome or impossible. The suggested algorithm tackles situations when several inputs, such as the excitation voltage, are characterized by uncertainty in terms of their status. The technique engages one generation unit only and its associated measurements, and it remains totally independent of other system wide measurements and parameters, facilitating in this way the applicability of this process on a decentralized basis. The robust- ness of the method is validated against different contingencies. The impact of parameter errors, process and measurement noise on the unknown input estimation performance is discussed. This understanding is further supported through detailed studies in a realistic power system model.
机译:本文提出了一种在输入未知的情况下,采用分散式无导数动态状态估计方法,以解决系统线性化麻烦或不可能的情况。当几种输入(例如励磁电压)的状态不确定时,建议的算法可以解决这种情况。该技术仅使用一个发电单元及其相关的测量值,并且完全不依赖于其他系统范围的测量值和参数,从而简化了该过程在分散基础上的适用性。该方法的鲁棒性已针对不同情况进行了验证。讨论了参数错误,过程和测量噪声对未知输入估计性能的影响。通过在现实的电源系统模型中进行详细研究,进一步支持了这种理解。

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    Anagnostou, G; Pal, BC;

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