Optimal Power Sharing Speed Compensation in On-road Wireless EV Charging Systems

Donovin D. Lewis, O. Onar, V. Galigekere, Mostak Mohammad, D. Ionel
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Abstract

Dynamic wireless charging of electric vehicles (EV) is an emerging technology with the potential to address range anxiety and reduce the size of batteries or provide charge-sustaining operation. Charging demand for dynamic wireless charging systems (DWCS) varies greatly in response to location-specific traffic behaviors including the number and speed of vehicles. This paper highlights the potential reduction of load variation with speed compensation and simulates opportunities to maximize the number of cars charged concurrently through “power sharing” or altering power output to slower cars while maintaining a maximum delivered energy. An improved sub-minute model for synthetic traffic is proposed to effectively model DWCS load on high speed roadways and a power electronics model is created based on an existing prototype developed by ORNL to investigate the potential for power sharing. Reductions in the average speed of traffic can greatly increase instantaneous DWCS load by as much as 26%, complicating capacity sizing. Parametric studies with a LCC-S power electronics model shows feasible power reduction of more than 20%, while maintaining a maximum achievable efficiency greater than 90%. Speed compensation on a roadway with large speed variation can reduce average power expected by 21% and increase the maximum number of cars charged simultaneously by 30%. The application of power sharing may significantly reduce load variability due to speed, allow for increased car hosting capability, and guarantee a maximum energy delivered.
道路无线充电系统的最优功率共享速度补偿
电动汽车动态无线充电(EV)是一项新兴技术,有可能解决里程焦虑,缩小电池尺寸或提供持续充电操作。动态无线充电系统(DWCS)的充电需求在响应特定位置的交通行为(包括车辆数量和速度)时变化很大。本文强调了通过速度补偿来减少负载变化的可能性,并模拟了通过“功率共享”或在保持最大交付能量的同时改变对较慢车辆的功率输出来最大化同时充电的汽车数量的机会。提出了一种改进的分分钟综合交通模型,以有效地模拟高速公路DWCS负荷,并基于ORNL开发的现有原型建立了电力电子模型,以研究电力共享的潜力。平均流量速度的降低会使瞬时DWCS负载增加26%,从而使容量大小变得更加复杂。利用lc - s电力电子模型进行的参数化研究表明,可行的功耗降低超过20%,同时保持最大可实现效率大于90%。在速度变化较大的道路上,速度补偿可以使平均期望功率降低21%,同时充电的最大汽车数量增加30%。电力共享的应用可以显著减少由于速度导致的负载变化,允许增加汽车承载能力,并保证最大的能源交付。
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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