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Indirect adaptive soft computing based wavelet-embedded control paradigms for WT/PV/SOFC in a grid/charging station connected hybrid power system

机译:电网/充电站混合动力系统中基于间接自适应软计算的WT / PV / SOFC小波嵌入控制范式

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摘要

This paper focuses on the indirect adaptive tracking control of renewable energy sources in a grid-connected hybrid power system. The renewable energy systems have low efficiency and intermittent nature due to unpredictable meteorological conditions. The domestic load and the conventional charging stations behave in an uncertain manner. To operate the renewable energy sources efficiently for harvesting maximum power, instantaneous nonlinear dynamics should be captured online. A Chebyshev-wavelet embedded NeuroFuzzy indirect adaptive MPPT (maximum power point tracking) control paradigm is proposed for variable speed wind turbine-permanent synchronous generator (VSWT-PMSG). A Hermite-wavelet incorporated NeuroFuzzy indirect adaptive MPPT control strategy for photovoltaic (PV) system to extract maximum power and indirect adaptive tracking control scheme for Solid Oxide Fuel Cell (SOFC) is developed. A comprehensive simulation test-bed for a grid-connected hybrid power system is developed in Matlab/Simulink. The robustness of the suggested indirect adaptive control paradigms are evaluated through simulation results in a grid-connected hybrid power system test-bed by comparison with conventional and intelligent control techniques. The simulation results validate the effectiveness of the proposed control paradigms.
机译:本文重点研究并网混合动力系统中可再生能源的间接自适应跟踪控制。由于不可预测的气象条件,可再生能源系统效率低下且具有间歇性。家庭负载和常规充电站的运行方式不确定。为了有效地操作可再生能源以获取最大功率,应在线捕获瞬时非线性动力学。提出了一种Chebyshev-小波嵌入式NeuroFuzzy间接自适应MPPT(最大功率点跟踪)控制范例,用于变速风力发电机-永磁同步发电机(VSWT-PMSG)。开发了一种结合了Hermite小波的NeuroFuzzy光伏(PV)系统间接自适应MPPT控制策略以提取最大功率,并开发了固体氧化物燃料电池(SOFC)的间接自适应跟踪控制方案。在Matlab / Simulink中开发了用于并网混合动力系统的综合仿真试验台。通过与常规和智能控制技术进行比较,通过并网混合动力系统试验台中的仿真结果评估了建议的间接自适应控制范例的鲁棒性。仿真结果验证了所提出的控制范例的有效性。

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