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Electric Vehicle Charging at Telco Base Station and Bidirectional Charging at Hillslope Descent Technical-Commercial Cost-Benefit Study and Scheduling-Reservation System

机译:电信基站的电动汽车充电和坡道下降的双向充电技术-商业成本效益研究与调度-预留系统

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Installing grid-connected photovoltaics (GCPV) at telecommunication company (Telco) base stations along highways, and providing electric vehicle (EV) charging facilities at strategic locations such as highway-side base stations offers a synergistic solution to both 1) displacing engine emissions using electricity from a renewable energy source, and 2) providing more highway EV charging stations for long distance EV driving. Strategically placed hillslope EV discharge stations would also offer EV users travelling downhill for long distances to sell their EV battery energy obtained from regenerative braking to the grid, freeing up the needed battery capacity to continue downhill with regenerative braking rather than losing it due to an already fully charged battery. This paper explores potential cost-benefits for investments in (i) highway-side Telco base stations with GCPV systems and EV charging stations as an additional source of revenue, and (ii) investments in EV discharge stations along hillslopes for EV users to sell battery energy from regenerative braking. The methodology used to gauge annual demand of new EV charge stations was by observation of existing highway-side EV charge station usage rates, estimating growth of EVs and charge stations, and reference to existing literature on EV charging tariffs, local electricity costs, and sizing/costing electrical equipment needed for the base station upgrade. To verify discharge kWh calculations from downhill descent regenerative braking, a downhill test drive of a Plug-in Hybrid Electric Vehicle (PHEV) was done. To discourage non-charging EVs remaining parked at charger units, a design framework involving remote charger unit monitoring, reservation, messaging and automated financial incentives is also presented.
机译:在公路沿线的电信公司(Telco)基站上安装并网光伏(GCPV),并在诸如高速公路侧基站之类的战略位置提供电动汽车(EV)充电设施,为以下两者提供了协同解决方案:1)使用2)提供更多的高速公路电动汽车充电站,用于长距离电动汽车行驶。具有战略意义的山坡EV放电站还将为下坡长途行驶的EV用户提供从再生制动中获得的EV电池能量到电网,从而释放了所需的电池容量,以通过再生制动继续下坡,而不会因为已经存在而失去能量充满电的电池。本文探讨了(i)使用GCPV系统和EV充电站作为额外收入来源的公路侧电信基站的投资的潜在成本收益,以及(ii)在山坡上的EV放电站投资以供EV用户出售电池的潜在成本收益。再生制动产生的能量。用于评估新电动汽车充电站年需求的方法是观察现有的公路侧电动汽车充电站使用率,估算电动汽车和充电站的增长,并参考有关电动汽车充电资费,当地电力成本和规模的现有文献。基站升级所需的电气设备/成本核算。为了验证下坡下降式再生制动的放电kWh计算,对插电式混合动力汽车(PHEV)进行了下坡测试行驶。为了阻止仍停在充电器单元上的非充电电动汽车,还提出了一种涉及远程充电器单元监视,预订,消息传递和自动财务激励措施的设计框架。

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