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Study of Bidirectional DC-DC Converter Interfacing Energy Storage for Vehicle Power Management Using Real Time Digital Simulator (rtds)

机译:实时数字模拟器(rtds)用于车辆电源管理的双向DC-DC转换器接口能量存储的研究

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摘要

The bidirectional dc-dc converter, being the interface between Energy Storage Element (ESE) and DC bus, is an essential component of the power management system for vehicle applications including electric vehicle (EV), hybrid electric vehicle (HEV), and fuel cell vehicle (FCV). In this paper, a novel multiphase bidirectional dc-dc converter interfacing with battery to supply and absorb the electric energy in the FCV system was studied with the help of real time digital simulator (RTDS). The mathematical models of fuel cell, battery and dc-dc converter were derived. A power management strategy was developed and first simulated in RTDS. A Power Hardware-In-the-Loop (PHIL) simulation using RTDS is then presented. The main challenge of this PHIL is the requirement for a highly dynamic bidirectional Simulation-Stimulation (Sim-Stim) interface. This paper describes three different interface algorithms. The closed-loop stability of the resulting PHIL system is analyzed in terms of time delay and sampling rate. A prototype bidirectional Sim-Stim interface is designed to implement the PHIL simulation. 【Keywords】Bidirectional dc-dc converter, Energy management, Fuel cell vehicle, Real time digital simulator;
机译:双向DC-DC转换器是储能元件(ESE)与DC总线之间的接口,是用于包括电动汽车(EV),混合电动汽车(HEV)和燃料电池在内的车辆应用的电源管理系统的重要组成部分车辆(FCV)。本文在实时数字仿真器(RTDS)的帮助下,研究了一种新型的多相双向DC-DC转换器,该转换器与电池接口以在FCV系统中提供和吸收电能。推导了燃料电池,电池和DC-DC转换器的数学模型。开发了电源管理策略,并首先在RTDS中对其进行了仿真。然后介绍了使用RTDS的电源硬件在环(PHIL)仿真。这种PHIL的主要挑战是需要高度动态的双向仿真-刺激(Sim-Stim)接口。本文介绍了三种不同的接口算法。根据时间延迟和采样率来分析所得PHIL系统的闭环稳定性。双向Sim-Stim原型接口旨在实现PHIL仿真。 【关键词】双向DC-DC转换器能源管理燃料电池汽车实时数字仿真器

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  • 来源
    《Journal of power electronics》 |2011年第4期|p.479-489|共11页
  • 作者单位

    GE Energy, Texas, United States;

    Dept. of Electrical and Computer Eng., Florida A&M University-Florida State University College of Engineering, Florida, United States;

    Dept. of Electrical and Computer Eng., Florida A&M University-Florida State University College of Engineering, Florida, United States;

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  • 正文语种 eng
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  • 入库时间 2022-08-18 01:55:52

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