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Smart Public Transit System Using an Energy Storage System and Its Coordination With a Distribution Grid

机译:使用储能系统的智能公交系统及其与配电网的协调

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In this paper, a transportation network based on a supercapacitor-powered electric city bus (Capabus) has been shown to work in harmony with the electric grid. The load profile of the transportation network and the grid are interfaced using a battery-based energy storage system (ESS), which is used at each bus stop to continuously charge the supercapacitors for bus operation and provide grid support. The power flow from the ESS to the grid and vice versa is regulated using a fuzzy logic controller (FLC). The FLC takes as input the energy of ESS, node voltage [in per unit (p.u.)], and the frequency of the buses plying on a practical ring-road circuit of a typical city. The ESSs stabilize the grid at the corresponding node through peak shaving and valley filling during peak and off-peak hours, respectively. The objective of this paper is to achieve the required frequency of buses and maintain the grid voltage close to 1 p.u. Increasing penetration of the electric-bus-based transit system will substantially improve grid operation efficiency and reduce oil consumption by the transport sector.
机译:在本文中,基于超级电容器供电的城市公交车(Capabus)的交通网络已被证明与电网协调工作。运输网络和电网的负荷曲线通过基于电池的储能系统(ESS)进行接口,该系统在每个公交车站都可以使用,以为超级电容器连续充电以进行公交运营并提供电网支持。使用模糊逻辑控制器(FLC)调节从ESS到电网的功率流,反之亦然。 FLC将ESS的能量,节点电压[以每单位(p.u.)为单位]以及在典型城市的实际环路上铺设的公交车的频率作为输入。 ESS通过分别在高峰和非高峰时段削峰和填谷来稳定相应节点处的网格。本文的目的是达到所需的总线频率,并保持电网电压接近1p.u。电动公交运输系统的普及率将大大提高电网运营效率,并减少运输部门的油耗。

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