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Damping Control in Power Systems Under Constrained Communication Bandwidth: A Predictor Corrector Strategy

机译:通信带宽受限的电力系统阻尼控制:预测器校正策略

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摘要

Damping electromechanical oscillations in power systems using feedback signals from remote sensors is likely to be affected by occasional low bandwidth availability due to increasing use of shared communication in future. In this paper, a predictor corrector (PC) strategy is applied to deal with situations of low-feedback data rate (bandwidth), where conventional feedback (CF) would suffer. Knowledge of nominal system dynamics is used to approximate (predict) the actual system behavior during intervals when data from remote sensors are not available. Recent samples of the states from a reduced observer at the remote location are used to periodically reset (correct) the nominal dynamics. The closed-loop performance deteriorates as the actual operating condition drifts away from the nominal dynamics. Nonetheless, significantly better performance compared to CF is obtained under low-bandwidth situations. The analytical criterion for closed-loop stability of the overall system is validated through a simulation study. It is demonstrated that even for reasonably low data rates the closed-loop stability is usually ensured for a typical power system application confirming the effectiveness of this approach. The deterioration in performance is also quantified in terms of the difference between the nominal and off-nominal dynamics.
机译:由于将来越来越多地使用共享通信,使用来自远程传感器的反馈信号来抑制电力系统中的机电振荡很可能会受到偶尔的低带宽可用性的影响。在本文中,预测器校正器(PC)策略用于处理传统反馈(CF)会受到影响的低反馈数据速率(带宽)的情况。标称系统动力学的知识用于在远程传感器数据不可用的时间间隔内近似(预测)实际系统行为。来自远程位置的减少的观察者的状态的最新样本用于周期性地重置(校正)标称动态。当实际工作条件偏离额定动态时,闭环性能会下降。尽管如此,在低带宽情况下仍可获得比CF更好的性能。通过仿真研究验证了整个系统闭环稳定性的分析标准。结果表明,即使对于相当低的数据速率,通常对于典型的电力系统应用也能确保闭环稳定性,从而证实了这种方法的有效性。性能的降低也可以通过名义动力和名义动力之外的差异来量化。

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