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Artificial neural network maximum power point tracker for solar electric vehicle

机译:太阳能电动汽车的人工神经网络最大功率点跟踪器

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摘要

This paper proposes an artificial neural network maximum power point tracker (M PPT) for solar electric vehicles. The MPPT is based on a highly efficient boost converter with insulated gate bipolar transistor (IGBT) power switch. The reference voltage for MPPT is obtained by artificial neural network (ANN) with gradient descent momentum algorithm. The tracking algorithm changes the duty-cycle of the converter so that the PV-module voltage equals the voltage corresponding to the MPPT at any given insolation, temperature, and load conditions. For fast response, the system is implemented using digital signal processor (DSP). The overall system stability is improved by including a proportional-integral-derivative (PID) controller, which is also used to match the reference and battery voltage levels. The controller, based on the information supplied by the ANN, generates the boost converter duty-cycle. The energy obtained is used to charge the lithium ion battery stack for the solar vehicle. The experimental and simulation results show that the proposed scheme is highly efficient.
机译:本文提出了一种用于太阳能电动汽车的人工神经网络最大功率点跟踪器(M PPT)。 MPPT基于具有绝缘栅双极晶体管(IGBT)电源开关的高效升压转换器。 MPPT的参考电压是通过人工神经网络(ANN)和梯度下降动量算法获得的。跟踪算法更改了转换器的占空比,以使PV模块电压等于在任何给定的日照,温度和负载条件下对应于MPPT的电压。为了快速响应,使用数字信号处理器(DSP)来实现该系统。通过包括比例积分微分(PID)控制器,提高了整体系统的稳定性,该控制器还用于匹配参考电压和电池电压电平。控制器根据ANN提供的信息,生成升压转换器的占空比。所获得的能量用于为太阳能汽车的锂离子电池组充电。实验和仿真结果表明,该方案是高效的。

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