固定式储能系统对直流无轨电车网络的影响

R. F. Paternost, Riccardo Mandrioli, R. Barbone, V. Cirimele, J. Loncarski, M. Ricco
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引用次数: 6

摘要

在城市交通电气化的背景下,无轨电车系统可以通过使用基于所谓的运动充电(IMC)技术的车辆来实现现代化。IMC车辆所需的电流高于传统的无轨电车,因为除了牵引外,它们还必须吸收为车上电池充电所需的电流。本文以降低无轨电车电网在高功率需求下的电压降为目标,分析了在无轨电车中线安装固定储能系统对维持高电压水平和降低电网能量损耗的影响。这项工作包括开发基于蒙特卡罗的模拟,将无轨电车在直流接触网系统中的初始位置及其各自的电流吸引作为随机变量。IMC无轨电车的电流吸收剖面与能够模拟直流网络部分中多车辆运动的模型结合使用。根据所取得的结果,可以观察到网络电压分布的改善和节能的指示。
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Impact of a Stationary Energy Storage System in a DC Trolleybus Network
In the context of urban transportation electrification, trolleybus systems can be modernized by using vehicles based on the so-called In-Motion-Charging (IMC) technology. The current required by IMC vehicles is higher than traditional trolleybuses because, in addition to traction, they must also absorb the current needed to recharge the batteries on board. With the aim of reducing voltage drops in trolleybus networks even in case of high-power demands, the impacts of the inclusion of a mid-line stationary energy storage system to maintain a high voltage level and to reduce the network energy losses are analyzed in this paper. This work consists of the development of Monte Carlo-based simulations to treat as random variables the initial positions of the trolleybuses in the DC catenary system and their respective current draws. A current absorption profile of the IMC trolleybus has been used in conjunction with a model able to simulate the movement of multiple vehicles in a DC network section. According to the achieved results, it is possible to observe an improvement in the network voltage profile and an indication of energy savings.
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