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Flywheel-Based Distributed Bus Signalling Strategy for the Public Fast Charging Station

机译:公共快速充电站基于飞轮的分布式总线信令策略

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Fast charging stations (FCS) are able to recharge plug-in hybrid electric vehicles (pHEVs) in less than half an hour, thus representing an appealing concept to vehicle owners since the off-road time is similar as for refuelling at conventional public gas stations. However, since these FCS plugs have power ratings of up to 100 kW, they may expose the utility mains to intolerable stresses in the near future scenario where there will be a large number of public FCS spread across the network. This paper proposes an internal power balancing strategy for FCS based on flywheel energy storage system (ESS) which is able to mitigate those impacts by ramping the initial power peak. The balancing strategy was implemented in a distributed manner to grid and flywheel interfacing converters by means of distributed bus signaling (DBS) method. Since the parameters in the proposed upper hierarchical control layer affect the stability features of the system, a reduced order small-signal model has been assembled and parameters have been selected accordingly. Finally, real-time simulation results performed on a full scale model have been reported in order to verify the validity of proposed approach.
机译:快速充电站(FCS)能够在不到半小时的时间内为插电式混合动力汽车(pHEV)充电,因此对车主来说是一个吸引人的概念,因为越野时间类似于传统的公共加油站的加油时间。但是,由于这些FCS插头的额定功率高达100 kW,因此在不久的将来,整个网络中将散布大量公共FCS的情况下,它们可能会使公用事业主电源承受无法承受的压力。本文提出了一种基于飞轮储能系统(ESS)的FCS内部功率平衡策略,该策略能够通过增大初始功率峰值来减轻这些影响。平衡策略是通过分布式总线信令(DBS)方法以分布式方式实现到电网和飞轮接口转换器的。由于建议的上层控制层中的参数会影响系统的稳定性,因此已组装了降阶小信号模型,并据此选择了参数。最后,已经报道了在全尺寸模型上执行的实时仿真结果,以验证所提出方法的有效性。

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