Sep 2026· IAES International Journal of Robotics and Automation· 0 citations· 24 references
Abstract
Grid-connected hybrid photovoltaic (PV) wind systems are widely recognized as a promising solution for mitigating renewable intermittency; however, most existing studies focus either on component-level modeling or basic integration without detailed analysis of power conditioning, control coordination, and grid-side performance. In particular, the functional role of DC–DC converters and energy management strategies in stabilizing hybrid outputs under variable environmental conditions remains insufficiently explored. This paper proposes a structured grid-connected PV wind hybrid system incorporating coordinated DC–DC conversion with maximum power point tracking (MPPT) and centralized control for voltage stabilization and power smoothing. The proposed architecture explicitly defines the operational role of each subsystem, including PV array, wind turbine generator, DC–DC converters, controller, and grid interface to ensure stable power delivery under fluctuating irradiance and wind speed. A MATLAB-based model is developed to evaluate system behavior under standalone and hybrid operating modes. Simulation results demonstrate improved voltage stability and enhanced power continuity in the hybrid configuration compared to standalone PV operation. The findings confirm that coordinated power conditioning significantly improves grid reliability and supports effective renewable energy integration.
In grid- connected applications featuring a large share of renewable generation, the output fluctuations of photovoltaic (PV) generation deteriorate the power quality of grid-connected systems, and the improper power allocation within the hybrid energy storage system (HESS) further degrades the operational performance....
Yu-Yan Liu, Yi-Hua Zhu, Chao Luo et al.· International Conference on...· 0 citations
This study proposes a flexible power management strategy (FPMS) for a hybrid renewable energy system integrating a doubly fed induction generator-based wind turbine (DFIG-WT) and a photovoltaic generator (PVG). The system employs three power electronic converters to regulate power flows and interface the generators wit...
F. Bouaziz, Achraf Abdelkafi, Abdelkarim Masmoudi et al.· Wind Engineering : The Inter...· 0 citations
A high penetration of grid-following inverter-based resources can degrade voltage stability because these inverters depend on grid voltage references and provide limited dynamic support during disturbances. This paper proposes a virtual synchronous generator (VSG)-based grid-forming (GFM) inverter controlled by finite...
Budara Abeysinghe, Lishani Walpita, Vishwa Vincent et al.· Moratuwa Engineering Researc...· 0 citations
To address rapid frequency decline, transient voltage violations, and excessive configuration costs caused by competition between active and reactive power support in weak grids, this paper proposes an optimal configuration method that incorporates the fault-period voltage-support capability of photovoltaic (PV) invert...
In the context of energy transition, the increasing integration of renewable energy sources, particularly solar and wind energy, into electricity grids presents significant challenges in terms of stability, disruption management, and resource optimization. These challenges necessitate the development of integration mod...
Robust frameworks are needed to make the transition to sustainable energy, that make use of several renewable resources at once. This paper proposes a comprehensive study of a solar-wind hybrid power generation system optimized by Hybrid Grid-Based Grey Wolf Optimization (HG-GWO) algorithm which is integrated in the gr...
K. Vijetha· Journal of Intelligent Decis...· 0 citations
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