Power Management, Control and Design of Supercapacitor Assisted Fuel Cell-based Micro Power System for Electric Vehicles

Sheikh Suhail Mohammad, Sheikh Javed Iqbal
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引用次数: 1

Abstract

Electric vehicles are currently acting as a replacement for fossil fuel-based vehicles. Electric vehicles are environment friendly, and energy efficient. However, electric vehicles demand research attention to improve system modelling, design, reliability, stability and control issues. Power-sharing is critical for electric vehicles reliable and economical operation; hence, they need to improve the power-sharing techniques and algorithms. A supercapacitor assisted fuel cell-based micro-power system is proposed and studied in this work. A power-sharing technique is proposed to control the power flow between fuel cell and supercapacitor during different vehicle operating modes to improve system reliability, stability, and vehicle dynamics. Supercapacitor state of the charge & voltage, fuel cell response time and motor power demand are critical variables for power-sharing and decision making. The design details give information about the system component types their advantages and disadvantages. An extended discussion is carried out that explains how the motors power rating is selected subjected to road dynamics. Time-domain simulations are performed in MATLAB/Simulink that validate the effectiveness of the proposed power-sharing and control technique during different operating modes.
基于超级电容器辅助燃料电池的电动汽车微动力系统的电源管理、控制与设计
电动汽车目前正在取代以化石燃料为基础的汽车。电动汽车既环保又节能。然而,电动汽车在系统建模、设计、可靠性、稳定性和控制等方面的改进需要引起研究人员的重视。电力共享是电动汽车可靠、经济运行的关键;因此,他们需要改进权力共享技术和算法。本文提出并研究了一种基于超级电容器辅助燃料电池的微动力系统。提出了一种功率共享技术来控制燃料电池和超级电容器在不同车辆运行模式下的功率流,以提高系统的可靠性、稳定性和车辆动力学性能。超级电容器的充电和电压状态、燃料电池响应时间和电机功率需求是电力共享和决策的关键变量。设计细节给出了有关系统组件类型及其优缺点的信息。进行了扩展的讨论,解释了如何选择电机额定功率受到道路动力学。在MATLAB/Simulink中进行时域仿真,验证了所提出的功率共享和控制技术在不同工作模式下的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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