连续动力电动汽车的感应耦合功率传输

Zeljko Pantic, Sanzhong Bai, S. Lukic
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引用次数: 69

摘要

经济和环境问题是开发高效、可持续的城市交通电动汽车的主要动力。与混合动力汽车和汽油汽车相比,电动汽车有两个主要优势:消除尾气排放和简化传动系统。然而,电动汽车在配备当前最先进的储能系统时,充电间隔有限。为了减轻储能技术的局限性,我们建议使用电感耦合功率传输(ICPT)在车辆行驶时为其供电。ICPT是一种在电源和负载之间没有物理连接的情况下传输功率的有效技术。本文研究了两类车辆在与ICPT系统结合运行时的ICPT要求。第一辆汽车使用电池作为主要能源,ICPT作为次要能源,用于电动汽车供电。目标是达到300英里的覆盖范围。二是以电化学电容器(超级电容器)为动力源,以ICPT为能量源。目标是为车辆提供无限的行驶里程。系统分析了电池-ICPT和超级电容器-ICPT组合在不同行驶工况和车辆下的可行性,并对特定行驶工况下ICPT轨道的期望长度和最优位置进行了粗略评价。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Inductively coupled power transfer for continuously powered electric vehicles
Economic and environmental issues are main motivation for developing efficient and sustainable electrical vehicle for urban transportation. Electrical vehicles (EV) have two main advantages compared to hybrid and gasoline vehicle: eliminated tailpipe emissions and simplified drive-train. However, electric vehicles have a limited range between recharges when fitted with the current state-of-the-art energy storage. To mitigate the limitations of the energy storage technology, we propose to use inductively coupled power transfer (ICPT) to supply power to the vehicle while it is moving. ICPT is an efficient technique for transferring power with no physical connection between the source and the load. In this paper we investigate the ICPT requirements for two types of vehicles operating in combination with ICPT system. The first vehicle makes use of a battery as primary and ICPT as secondary energy source for electric vehicle supplying. The goal is to achieve 300 miles range of covering. The second uses electrochemical capacitors (Ultracapacitors) as the power source and ICPT as the energy source. The goal is to provide unlimited range for the vehicle. The result is system analysis of feasibility of battery-ICPT and ultracapacitor-ICPT combinations for different driving conditions and vehicles as well as rough evaluation of expected length and optimal positions of ICPT track for specified driving cycles.
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