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<dim:field authority="0000-0001-8121-0752" element="contributor" qualifier="author" confidence="ACCEPTED" language="es-ES" mdschema="dc">Avila Martinez, Regulo Enrique</dim:field>
<dim:field authority="f32b0e49-5440-4020-8ad4-c9da8b783d4f" element="contributor" qualifier="author" confidence="ACCEPTED" language="es-ES" mdschema="dc">Rouco Rodríguez, Luis</dim:field>
<dim:field authority="0000-0002-1740-8729" element="contributor" qualifier="author" confidence="ACCEPTED" language="es-ES" mdschema="dc">Renedo Anglada, Javier</dim:field>
<dim:field authority="0000-0003-2177-2029" element="contributor" qualifier="author" confidence="ACCEPTED" language="es-ES" mdschema="dc">Sigrist, Lukas</dim:field>
<dim:field authority="0000-0003-1950-2927" element="contributor" qualifier="author" confidence="ACCEPTED" language="es-ES" mdschema="dc">García Cerrada, Aurelio</dim:field>
<dim:field element="date" qualifier="accessioned" mdschema="dc">2026-04-09T04:49:20Z</dim:field>
<dim:field element="date" qualifier="available" mdschema="dc">2026-04-09T04:49:20Z</dim:field>
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<dim:field element="description" qualifier="abstract" language="en-GB" mdschema="dc">Grid-forming voltage source converters (GFMVSCs) play a crucial role in the stability of power systems with large amounts of converter-based generation. Transient stability (angle stability under large disturbances) is a critical limiting factor in stressed power systems. Previous studies have proposed control strategies for GFM-VSCs to improve transient stability.These approaches typically rely on suitable current-limiting algorithms, voltage/reactive-power and active-power supplementary control strategies. This paper investigates and compares the effectiveness of three active-power control strategies in GFMVSCs to enhance transient stability in power systems with 100 % converter-based generation: (i) a wide-area control strategy (TSPWACS) using the centre of inertia (COI) frequency, (ii) a local transient damping method (TSP-TDM), and (iii) a novel local control strategy (TSP-L) proposed in this work. All strategies were implemented and assessed using short-circuit simulations on Kundur’s two-area test system with 100% GFM-VSC generators, demonstrating critical clearing time (CCT) improvement. The TSP-WACS strategy achieves the best performance but requires a communication infrastructure, while TSP-L strategy offers a simple, robust alternative using only local measurements.</dim:field>
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<dim:field element="title" language="es_ES" mdschema="dc">Active-power control strategies in grid-forming power converters to improve transient stability in power systems with 100% converter-based generation</dim:field>
<dim:field element="type" language="es_ES" mdschema="dc">info:eu-repo/semantics/workingPaper</dim:field>
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<dim:field element="keywords" language="es-ES" mdschema="dc"/>
<dim:field element="keywords" language="en-GB" mdschema="dc">Grid-forming power converters, VSC, transient stability, active-power control strategies, WACS, center of inertia (COI), transient damping method (TDM), TSP-L.</dim:field>
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