Enhancing Frequency Regulation Support through Several Synthetic Inertial Approaches for WDPS

Asad, Muhammad ORCID: https://orcid.org/0000-0003-4851-8602 and Sánchez Fernández, José Ángel ORCID: https://orcid.org/0000-0003-2425-5422 (2024). Enhancing Frequency Regulation Support through Several Synthetic Inertial Approaches for WDPS. "Electronics", v. 13 (n. 5); pp. 1-20. ISSN 0883-4989. https://doi.org/10.3390/electronics13050852.

Descripción

Título: Enhancing Frequency Regulation Support through Several Synthetic Inertial Approaches for WDPS
Autor/es:
Tipo de Documento: Artículo
Título de Revista/Publicación: Electronics
Fecha: 23 Febrero 2024
ISSN: 0883-4989
Volumen: 13
Número: 5
Materias:
ODS:
Palabras Clave Informales: frequency deviation, hybrid WDPS, modified synthetic inertial control, primary frequency control, SPBA, wind turbines
Escuela: E.T.S.I. Industriales (UPM)
Departamento: Ingeniería Civil: Hidráulica, Energía y Medio Ambiente
Licencias Creative Commons: Reconocimiento - Sin obra derivada - No comercial

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Resumen

The aim of this paper is to propose an enhancement to the primary frequency control (PFC) of the San Cristobal Island hybrid wind-diesel power system (WDPS). Naturally, variable speed wind turbines (VSWT) provide negligible inertia. Therefore, various control strategies, i.e., modified synthetic inertial control, droop control and traditional inertial control, if introduced into VSWT, enable them to release hidden inertia. Based on these strategies, a WDPS has been simulated under seven different control strategies, to evaluate the power system performance for frequency regulation (FR). Furthermore, the student psychology-based algorithm (SBPA) methodology is used to optimize the WDPS control. The results show that modified synthetic inertial control is the most suitable approach to provide FR. However, further exhaustive research validates that droop control is a better alternative than modified synthetic inertial control due to the negligible system performance differences. In addition, droop control does not require a frequency derivative function in the control system. Therefore, the hybrid system is more robust. Moreover, it reduces the steady state error, which makes the power system more stable. In addition, a pitch compensation control is introduced in blade pitch angle control (BPAC) to enhance the pitch angle smoothness and to help the power system to return to normal after perturbations. Moreover, to justify the performance of hybrid WDPS, it is tested under certain real-world contingency events, i.e., loss of a wind generator, increased wind speed, fluctuating wind speed, and simultaneously fluctuating load demand and wind speed. The simulation results validate the proposed WDPS control strategy performance.

Proyectos asociados

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Código
Acrónimo
Responsable
Título
Universidad Politécnica de Madrid
RP2304330031
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Más información

ID de Registro: 90577
Identificador DC: https://oa.upm.es/90577/
Identificador OAI: oai:oa.upm.es:90577
URL Portal Científico: https://portalcientifico.upm.es/es/ipublic/item/10206267
Identificador DOI: 10.3390/electronics13050852
URL Oficial: https://www.mdpi.com/2079-9292/13/5/852
Depositado por: iMarina Portal Científico
Depositado el: 05 Sep 2025 15:48
Ultima Modificación: 05 Sep 2025 15:48