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Assessing the Charging Load of Battery Electric Bus Fleet for Different Types of Charging Infrastructure

机译:为不同类型的充电基础设施评估电池电动总线车队的充电负荷

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The deployment of battery electric bus (BEB) fleets is subject to many challenges related to the readiness of the electric utility grid to host the additional power demand due to the fleet charging. Without deploying an adequate charging infrastructure, BEB market penetration at a massive scale is not achievable soon. This paper proposes a BEB fleet energy model in an accelerated offline simulation environment to evaluate the fleet energy behavior and charging load using different charging scenarios, infrastructure types, and battery sizes. The model includes components such as the BEB, bus stops, terminal, depot stations, and chargers. The obtained results show the impact of the different stationary charging infrastructures on the electric utility grid. A BEB fleet of 20 buses could result in a 2.4 MW power demand at night for an overnight charging method whereas opportunity charging scenarios result in a maximum power demand between 0.5-1 MW- encountered mainly during the day- depending on the number of daily charging events.
机译:电池电动总线(BEB)车队的部署受到与电效用电网的准备情况有关的许多挑战,以围绕车队充电举办额外的电力需求。在不部署充足的充电基础设施的情况下,BEB市场渗透以巨大的规模很快就无法实现。本文提出了一种加速离线模拟环境中的BeB舰队能源模型,以评估使用不同充电情景,基础设施类型和电池尺寸的舰队能源行为和充电负荷。该模型包括诸如BEB,总线站,终端,仓库站和充电器的组件。所获得的结果表明了不同的静止充电基础设施对电效用电网的影响。 20公交车的BeB队列可能会导致夜间电力需求为2.4兆瓦的电力需求,以进行隔夜充电方法,而机会充电情景导致最大功率需求在最大的功率需求之间,主要是在白天遇到0.5-1 MW-取决于日常充电的数量事件。

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