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Exploratory spatial distribution of dynamic wireless charging demand for EVs

机译:电动汽车动态无线充电需求的探索性空间分布

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This paper demonstrates a framework to optimize the investment of dynamic wireless charging (DWC) infrastructure for charging-in-motion services. The services require DWC infrastructure deployed on public roads to extend battery lifespan and reduce battery sizes while increasing driving range simultaneously. Since it would be financially infeasible to have such investments serving only few vehicles, estimation of power demand in real world applications will be valuable to the deployment. We propose a traffic-based power demand (TBPD) framework to estimate the demand since not only number and type of vehicles but also their spatial distribution of power demands have to be considered for the optimization. Monte Carlo simulations are incorporated into the proposed framework to estimate both number and type of vehicles as well as their speed profiles in a road network. Spatial distribution of power demands is derived with the simulated speed profiles and lays a foundation for the optimization. An example of applying the proposed framework in a corridor in Chattanooga, TN is presented for further discussion. Based on the power demand estimation, it is found that road segments between slightly upstream to and farther downstream from a stop line are ideal candidates to server the purpose.
机译:本文演示了一个框架,该框架可以优化动态无线充电(DWC)基础设施对运动中充电服务的投资。这些服务需要在公共道路上部署DWC基础设施,以延长电池寿命并减小电池尺寸,同时增加行驶里程。由于仅在很少的车辆上进行这样的投资在财务上是不可行的,因此估算实际应用中的电力需求对部署非常有价值。我们提出了一种基于交通的电力需求(TBPD)框架来估算需求,因为不仅要考虑车辆的数量和类型,而且还要考虑其电力需求的空间分布以进行优化。蒙特卡洛模拟被并入建议的框架中,以估计车辆的数量和类型以及它们在道路网络中的速度曲线。功率需求的空间分布是通过模拟的速度曲线得出的,并为优化奠定了基础。提出了在田纳西州查塔努加的走廊中应用拟议框架的示例,以供进一步讨论。根据功率需求估算,发现在停车线稍上游和下游之间的路段是实现此目的的理想候选者。

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