Electric Vehicles charging control based on future internet generic enablers

Andrea Lanna, F. Liberati, L. Zuccaro, A. Giorgio
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引用次数: 15

Abstract

In this paper a rationale for the deployment of Future Internet based applications in the field of Electric Vehicles (EVs) smart charging is presented. The focus is on the Connected Device Interface (CDI) Generic Enabler (GE) and the Network Information and Controller (NetIC) GE, which are recognized to have a potential impact on the charging control problem and the configuration of communications networks within reconfigurable clusters of charging points. The CDI GE can be used for capturing the driver feedback in terms of Quality of Experience (QoE) in those situations where the charging power is abruptly limited as a consequence of short term grid needs, like the shedding action asked by the Transmission System Operator to the Distribution System Operator aimed at clearing networks contingencies due to the loss of a transmission line or large wind power fluctuations. The NetIC GE can be used when a master Electric Vehicle Supply Equipment (EVSE) hosts the Load Area Controller, responsible for managing simultaneous charging sessions within a given Load Area (LA); the reconfiguration of distribution grid topology results in shift of EVSEs among LAs, then reallocation of slave EVSEs is needed. Involved actors, equipment, communications and processes are identified through the standardized framework provided by the Smart Grid Architecture Model (SGAM).
基于未来互联网通用赋能器的电动汽车充电控制
本文提出了在电动汽车智能充电领域部署未来基于互联网的应用的基本原理。重点是连接设备接口(CDI)通用使能器(GE)和网络信息和控制器(nic) GE,它们被认为对充电控制问题和可重构充电点集群内通信网络的配置有潜在影响。在短期电网需求导致充电功率突然受到限制的情况下,CDI GE可用于捕获驾驶员反馈的体验质量(QoE),例如输电系统运营商向配电系统运营商提出的卸载行动,旨在消除由于输电线路丢失或风力发电大幅波动而导致的网络突发事件。当主电动车辆供电设备(EVSE)主持负载区域控制器时,可以使用磁性GE,负责管理给定负载区域(LA)内的同步充电会话;由于配电网拓扑结构的重新配置,会导致evse在LAs之间发生偏移,需要对从evse进行重新分配。通过智能电网体系结构模型(sgram)提供的标准化框架,识别涉及的参与者、设备、通信和流程。
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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