Torna ai risultati
Scheda bibliografica · Consultazione e accesso
Artículo

Impact of AC Voltage Control and Reactive Power Control on Transient Stability of Grid-Forming Converters With Current Saturation Under Phase to Ground Faults and Phase Jumps

Yinru Chen et al · IEEE · 2026

Accesso aperto disponibile
Lettura rapida. Controlla i dati essenziali della risorsa e accedi al contenuto con il pulsante principale. La scheda mostra solo le informazioni necessarie per identificare, citare e aprire l’opera.

Accesso alla risorsa

Apri il contenuto dall’opzione principale o scegli un’altra fonte disponibile.

DOAJ DOAJ Articles
Entrar por DOAJ
Accesso principale

Accesso aperto disponibile

Recurso identificado como acceso abierto, sin confirmar automáticamente si es texto completo directo.
Apri risorsa

Riepilogo

Descripción general del contenido del recurso.

Grid-forming (GFM) converters are increasingly deployed to support power system stability in low-inertia grids. However, the impact of voltage magnitude control strategies on transient stability under fault conditions remains insufficiently understood. We investigate the transient stability of a droop-controlled GFM converter with a circular current limiter, taking into account the choice of voltage magnitude control strategy. Mathematical models are derived for both normal operation and, more importantly, current saturation, and numerical examples are provided to illustrate the implications of the proposed models. In fault scenarios, voltage sag and phase jumps are analyzed separately. These theoretical results are further validated through simulations in Simulink. Our results necessitate the individual analysis of phase jumps and reveal that different voltage magnitude control strategies result in substantially different transient behaviors. In particular, reactive power control enables the converter to exit current saturation, whereas AC voltage control may prevent recovery. These findings provide insights for converter control design and enhance the robustness of GFM converters under grid disturbances. Furthermore, the analysis of phase jumps shows that, under AC voltage control, a larger phase jump angle does not necessarily lead to more adverse transient behaviors, and this reveals that the current Grid Code testing requirements for transient stability of GFM converters with respect to phase jumps, which rely on a maximum phase jump angle, are inadequate and should be revised.

Come citare

Elegí el formato que necesitás y copiá la referencia al portapapeles.

APA 7

al, Y. C. E. (2026). Impact of AC Voltage Control and Reactive Power Control on Transient Stability of Grid-Forming Converters With Current Saturation Under Phase to Ground Faults and Phase Jumps. https://doi.org/10.1109/OAJPE.2026.3685192

MLA

al, Yinru Chen et. "Impact of AC Voltage Control and Reactive Power Control on Transient Stability of Grid-Forming Converters With Current Saturation Under Phase to Ground Faults and Phase Jumps." 2026. https://doi.org/10.1109/OAJPE.2026.3685192.

Chicago

al, Yinru Chen et. 2026. "Impact of AC Voltage Control and Reactive Power Control on Transient Stability of Grid-Forming Converters With Current Saturation Under Phase to Ground Faults and Phase Jumps.". https://doi.org/10.1109/OAJPE.2026.3685192.

Harvard

al, Y. C. E. 2026, Impact of AC Voltage Control and Reactive Power Control on Transient Stability of Grid-Forming Converters With Current Saturation Under Phase to Ground Faults and Phase Jumps, IEEE, available at: https://doi.org/10.1109/OAJPE.2026.3685192 [Accessed 8 Aug. 2026].

Condividi e stampa

Salva la scheda, copia il link permanente o stampala in PDF.

Esporta riferimento

Esporta il record nei formati più comuni per usarlo con un gestore bibliografico.

Dettagli della risorsa

Informazioni bibliografiche utili per verificare che sia il materiale corretto.

Titolo
Impact of AC Voltage Control and Reactive Power Control on Transient Stability of Grid-Forming Converters With Current Saturation Under Phase to Ground Faults and Phase Jumps
Autore / collaboratori
Yinru Chen et al
Editore
IEEE
Anno di pubblicazione
2026
ISSN
2687-7910
ISSN
2687-7910
Lingua
Inglés

Soggetti

Esplora risorse correlate a partire da questi soggetti.

Copiato