A method for the technical feasibility assessment of electrical vehicle penetration

Reem Al Junaibi, A. Farid
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引用次数: 18

Abstract

In recent years, electric vehicles (EVs) have gained much attention as a potential enabling technology to support CO2 emissions reduction targets. Furthermore, many of the cost and vehicle technology barriers that have prevented their adoption in the past are increasingly being addressed by vehicle manufacturers. Nevertheless, the question remains as to whether EVs themselves will be technically feasible within the larger infrastructure systems with which they interact. Fundamentally, EVs interact with three interconnected `systems-of-systems': the (physical) transportation system, the electric power grid, and their supporting information systems often called intelligent transportation systems (ITS). These systems affect the EV operation in potentially constraining ways that can negatively impact the EV user's final transportation experience. This paper seeks to understand and assess these interactions in such a way as to evaluate their ultimate technical feasibility in relation to their supporting infrastructure systems. A new assessment method based upon modeling tools for each infrastructure system is proposed. For the traffic system, a microscopic discrete-time traffic operations simulator is used to study the kinematic state of the EV fleet at all times. For the electric power system, power flow analysis is used to determine the electrical charging loads required by the EV traffic usage patterns. Finally, UML is used to model the intelligent transportation system functionality as compared to a template of functions deemed necessary to support EV integration. The final method of technical feasibility assessment is demonstrated on a hypothetical scenario which conceptualizes the EV adoption scenario by a taxi service operator.
一种电动汽车渗透技术可行性评价方法
近年来,电动汽车作为一种潜在的支持二氧化碳减排目标的技术受到了广泛关注。此外,过去阻碍自动驾驶汽车采用的许多成本和车辆技术障碍正日益得到汽车制造商的解决。然而,问题仍然是电动汽车本身在与之交互的更大的基础设施系统中是否在技术上可行。从根本上说,电动汽车与三个相互关联的“系统的系统”相互作用:(物理)运输系统,电网及其支持的信息系统,通常称为智能交通系统(ITS)。这些系统会以潜在的限制性方式影响电动汽车的运行,从而对电动汽车用户的最终出行体验产生负面影响。本文试图以这样一种方式来理解和评估这些相互作用,以评估它们与支持基础设施系统相关的最终技术可行性。提出了一种基于各基础设施系统建模工具的评估方法。对于交通系统,采用微观离散时间交通运行模拟器研究电动汽车车队在各个时刻的运动状态。对于电力系统,潮流分析用于确定电动汽车交通使用模式所需的充电负荷。最后,使用UML对智能交通系统功能进行建模,并将其与被认为是支持EV集成所必需的功能模板进行比较。最后的技术可行性评估方法在一个假设的场景中进行了演示,该场景概念化了出租车服务运营商采用电动汽车的场景。
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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