论文标题

电动汽车动态充电的建模和分析:随机几何方法

Modeling and Analysis of Dynamic Charging for EVs: A Stochastic Geometry Approach

论文作者

Nguyen, Duc Minh, Kishk, Mustafa A., Alouini, Mohamed-Slim

论文摘要

随着对更绿色,更有效的运输解决方案的需求不断增长,电动汽车(EV)已成为全球运输的未来。但是,目前,电动汽车的最大瓶颈之一是电池。小电池限制了电动汽车驾驶范围,而大电池很昂贵,而且不友好。应对这一挑战的一种潜在解决方案是电荷道路的部署,即安装在道路下的动态无线充电系统,使EV在驾驶时能够充电。在本文中,我们使用随机几何形状的工具来建立一个框架,以评估大都市城市中充电道路部署的性能。我们首先介绍驾驶员在从随机源到随机目的地开车时应采取的动作进程,以便在旅途中最大化动态充电。接下来,我们分析到最近充电道的距离的分布。这种分布对于研究多个性能指标(例如Trip效率)至关重要,我们将其定义为在充电道路上花费的总旅行的一部分。接下来,我们得出了给定旅行至少通过一条充电路的可能性。派生的概率分布可用于协助城市规划师和政策制定者设计动态无线充电系统的部署计划。此外,鉴于电动电动电动电动电动电动电动电池的道路状况和能量水平,驾驶员和汽车制造商还可以使用它们来选择最佳驾驶路线。

With the increasing demand for greener and more energy efficient transportation solutions, electric vehicles (EVs) have emerged to be the future of transportation across the globe. However, currently, one of the biggest bottlenecks of EVs is the battery. Small batteries limit the EVs driving range, while big batteries are expensive and not environmentally friendly. One potential solution to this challenge is the deployment of charging roads, i.e., dynamic wireless charging systems installed under the roads that enable EVs to be charged while driving. In this paper, we use tools from stochastic geometry to establish a framework that enables evaluating the performance of charging roads deployment in metropolitan cities. We first present the course of actions that a driver should take when driving from a random source to a random destination in order to maximize dynamic charging during the trip. Next, we analyze the distribution of the distance to the nearest charging road. This distribution is vital for studying multiple performance metrics such as the trip efficiency, which we define as the fraction of the total trip spent on charging roads. Next, we derive the probability that a given trip passes through at least one charging road. The derived probability distributions can be used to assist urban planners and policy makers in designing the deployment plans of dynamic wireless charging systems. In addition, they can also be used by drivers and automobile manufacturers in choosing the best driving routes given the road conditions and level of energy of EV battery.

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