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Article

Small-Signal Stability Analysis of Converter-Interfaced Systems in DC Voltage Timescale Based on Amplitude/Frequency Operating Points

State Key Laboratory of Advanced Electromagnetic Engineering and Technology, School of Electrical and Electronic Engineering, Huazhong University of Science and Technology, Wuhan 430074, China
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Author to whom correspondence should be addressed.
Processes 2025, 13(8), 2583; https://doi.org/10.3390/pr13082583
Submission received: 18 July 2025 / Revised: 9 August 2025 / Accepted: 13 August 2025 / Published: 15 August 2025

Abstract

The oscillations induced by voltage source converters (VSCs) in DC voltage timescale dynamics pose significant challenges to the safe and stable operation of VSC-dominated power systems. However, previous studies have conducted simplified analyses without fully understanding the fundamental roles of different timescale control loops in converter-interfaced systems. In light of this, this study first identifies the key state variables and operating points that directly characterize the energy storage levels of devices and networks in AC systems. A model for the converter-interfaced system is then established in the specified DC voltage timescale. The key contribution of this work is the proposal of an analytical framework that decomposes system stability into self-stabilizing (Self-stable) and externally coupled stabilizing (En-stable) paths based on internal voltage amplitude and frequency, aiming to reveal the physical mechanisms behind internal voltage amplitude and frequency oscillations in DC voltage timescale dynamics. Based on this framework, the Self-stable path and En-stable path of the internal voltage amplitude/frequency of converter-interfaced systems are derived. This novel analytical method mathematically decouples the stability of a single variable into a direct self-influence path and an indirect path coupled through other system variables. Subsequently, the causes of internal voltage amplitude/frequency oscillations in the specified voltage timescale are explained using the Self-stability and En-stability analysis method. A key finding of this study is that the stability of the internal voltage amplitude and frequency exhibits a dual relationship: for amplitude stability, the Self-stable path is stabilizing, whereas the coupled path is destabilizing; for frequency stability, the roles are reversed. Finally, the results are verified through simulations.
Keywords: operating point; DC voltage timescale; self-stability; En-stability operating point; DC voltage timescale; self-stability; En-stability

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MDPI and ACS Style

Lyu, J.; Wang, S.; Hu, J. Small-Signal Stability Analysis of Converter-Interfaced Systems in DC Voltage Timescale Based on Amplitude/Frequency Operating Points. Processes 2025, 13, 2583. https://doi.org/10.3390/pr13082583

AMA Style

Lyu J, Wang S, Hu J. Small-Signal Stability Analysis of Converter-Interfaced Systems in DC Voltage Timescale Based on Amplitude/Frequency Operating Points. Processes. 2025; 13(8):2583. https://doi.org/10.3390/pr13082583

Chicago/Turabian Style

Lyu, Jin, Sicheng Wang, and Jiabing Hu. 2025. "Small-Signal Stability Analysis of Converter-Interfaced Systems in DC Voltage Timescale Based on Amplitude/Frequency Operating Points" Processes 13, no. 8: 2583. https://doi.org/10.3390/pr13082583

APA Style

Lyu, J., Wang, S., & Hu, J. (2025). Small-Signal Stability Analysis of Converter-Interfaced Systems in DC Voltage Timescale Based on Amplitude/Frequency Operating Points. Processes, 13(8), 2583. https://doi.org/10.3390/pr13082583

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