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A New Online Learned Interval Type-3 Fuzzy Control System for Solar Energy Management Systems

机译:用于太阳能管理系统的新在线学习间隔-3模糊控制系统

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摘要

In this article, a novel method based on interval type-3 fuzzy logic systems (IT3-FLSs) and an online learning approach is designed for power control and battery charge planing for photovoltaic (PV)/battery hybrid systems. Unlike the other methods, the dynamics of battery, PV and boost converters are considered to be fully unknown. Also, the effects of variation of temperature, radiation, and output load are taken into account. The robustness and the asymptotic stability of the proposed method is analyzed by the Lyapunov/LaSalle’s invariant set theorems, and the tuning rules are extracted for IT3-FLS. Also, the upper bound of approximation error (AE) is approximated, and then a new compensator is designed to deal with the effects of dynamic AEs. The superiority of the proposed method is examined in several conditions and is compared with some other well-known methods. It is shown that the schemed method results in high performance under difficult conditions such as variation of temperature and radiation and abruptly changing in the output load.
机译:在本文中,设计了一种基于间隔类型-3模糊逻辑系统(IT3-FLS)和在线学习方法的新方法用于电力控制和用于光伏(PV)/电池混合系统的电池充电。与其他方法不同,电池,PV和升压转换器的动态被认为是完全未知的。此外,考虑了温度,辐射和输出负荷的变化的影响。通过Lyapunov / Lasalle的不变集理分析所提出的方法的鲁棒性和渐近稳定性,并提取了TOURING规则的IT3-FLS。此外,近似误差(AE)的上限是近似的,然后设计新的补偿器来处理动态AES的效果。在几种条件下检查所提出的方法的优越性,并与其他一些众所周知的方法进行比较。结果表明,该方法在困难的条件下导致高性能,例如温度和辐射的变化,并且在输出负载中突然改变。

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