Coordinated control in multi-terminal VSC-HVDC systems to improve transient stability: Impact on electromechanical-oscillation damping
Javier Renedo, Luis Rouco, Aurelio Garcia-Cerrada, Lukas Sigrist

TL;DR
This paper investigates how supplementary controllers in multi-terminal VSC-HVDC systems can enhance transient stability and damping of electromechanical oscillations, using small-signal analysis and simulations on the Nordic32A system.
Contribution
It introduces and evaluates two control strategies based on active and reactive power modulation to improve stability and oscillation damping in VSC-MTDC systems.
Findings
Both control strategies significantly improve transient stability.
Controllers can be tuned to damp inter-area oscillations effectively.
Controller gains and communication latency impact damping performance.
Abstract
Multi-terminal high-voltage Direct Current technology based on Voltage-Source Converter stations (VSC-MTDC) is expected to be one of the most important contributors to the future of electric power systems. In fact, among other features, it has already been shown how this technology can contribute to improve transient stability in power systems by the use of supplementary controllers. Along this line, this paper will investigate in detail how these supplementary controllers may affect electromechanical oscillations, by means of small-signal stability analysis. The paper analyses two control strategies based on the modulation of active-power injections (P-WAF) and reactive-power injections (Q-WAF) in the VSC stations. Both control strategies use global signals of the frequencies of the VSC-MTDC system and they presented significant improvements on transient stability. The paper will…
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Taxonomy
TopicsHVDC Systems and Fault Protection · Power System Optimization and Stability · High-Voltage Power Transmission Systems
MethodsTest
