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作 者:Moufida Saadi Dib Djalel Billel Meghni Djamila Rekioua
机构地区:[1]Electrical and Engineering Laboratory(LABGET),University of Tebessa,Tebessa 12000,Algeria [2]Mining Laboratory(Mine LAB),University of Tebessa,Tebessa 12000,Algeria [3]LSEM Laboratory,University Badji Mokhtar,Annaba 23000,Algeria [4]Industrial and Information Technology Laboratory(LTII),University of Bejaia,Bejaia 06000,Algeria
出 处:《Chinese Journal of Electrical Engineering》2024年第3期50-62,共13页中国电气工程学报(英文)
摘 要:In this study,a comprehensive approach is presented for the sizing and management of hybrid renewable energy systems(HRESs)that incorporate a variety of energy sources,while emphasizing the role of artificial neural networks(ANNs)in system management.For optimal sizing of an HRES,the monthly average method wherein historical weather data are used to calculate the monthly averages of solar irradiance and wind speed,offering a well-balanced strategy for system sizing.This ensures that the HRES is appropriately scaled to meet the actual energy requirements of the specified location,avoiding the pitfalls of over-and under-sizing,and thereby enhancing the operational efficiency.Furthermore,the study details a cutting-edge strategy that employs ANNs for managing the inherent complexities of HRESs.It elaborates on the design,modeling,and control strategies for the HRES components by utilizing Matlab/Simulink for implementation.The findings demonstrate the proficiency of the ANN-based power manager in determining the operational modes guided by a specifically designed flowchart.By integrating ANN-driven energy management strategies into an HRES,the proposed approach marks a significant advancement in system adaptability,precision control,and efficiency,thereby maximizing the effective utilization of renewable resources.
关 键 词:Hybrid renewable energy systems PHOTOVOLTAIC wind turbine energy management system artificial neural network(ANN) sizing methodology renewable energy integration
分 类 号:TM61[电气工程—电力系统及自动化]
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