Analysis of Frequency and Voltage Strength in Power Electronics-Dominated Power Systems Based on Eigen-subsystems
Huisheng Gao, Linbin Huang, Huanhai Xin, Zhiyi Li, Ping Ju

TL;DR
This paper introduces a unified eigen-subsystem framework to analyze frequency and voltage strength in inverter-based power systems, revealing the importance of global voltage response and providing new evaluation metrics.
Contribution
It develops a comprehensive modal analysis method that decomposes system responses into common-mode and differential-mode components, addressing limitations of existing fragmented approaches.
Findings
Unified framework for F/V strength analysis
Identification of the significance of global voltage response
Validation through simulation demonstrates effectiveness
Abstract
The large-scale integration of inverter-based resources (IBRs) has deteriorated the frequency/voltage (F/V) responses of power systems, leading to a higher risk of instability. Consequently, evaluating the F/V strength has become an important task in power electronics (PE)-dominated power systems. Existing methods typically examine F/V strength separately, employing fundamentally different metrics, such as inertia (focusing on device dynamics) and short-circuit ratio (SCR, addressing network characteristics). These fragmented approaches have resulted in a lack of comprehensive understanding of the overall system strength, potentially overlooking critical aspects. To address this problem, this paper proposes a unified framework for analyzing F/V strength. First, a unified modeling of F/V regulations is introduced. Then, based on modal decoupling, the power systems are decomposed into…
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Taxonomy
TopicsMicrogrid Control and Optimization · Power System Optimization and Stability · Wind Turbine Control Systems
