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Using Electric Vehicles and Demand Side Response to Unlock Distribution Network Flexibility

机译:使用电动车辆和需求侧响应来解锁分配网络灵活性

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The transportation sector is one of the largest sources of greenhouse gas emissions. This has encouraged governments worldwide to fund the development of ultra-low carbon emission vehicles and replace internal combustion engine (ICE) vehicles with electric vehicles (EVs). Among EV drivers, ‘range anxiety’ is one of the main issues resulting from long charging durations. The reduction of charging duration by the introduction of DC fast/rapid charging stations is widely discussed in the literature. However, high charging demands due to fast charging stations may cause some challenges for power networks. In this paper, the impacts of different types of fast chargers on a UK generic distribution network are investigated. The most suitable and robust connection points of the network where fast chargers can be deployed are identified without affecting the stability and security of the system. The main findings show that network losses increase, voltages operate beyond strict limits, and system equipment becomes overloaded with increased fast charging activities in the network. Therefore, critical network points are reinforced with distributed generation units (DG) and static var compensator (SVC) devices to improve the system reliability and mitigate the impacts of such challenges.
机译:交通部门是最大的温室气体排放来源之一。这鼓励全球各国政府为超低碳排放车辆的发展提供资金,并用电动车(EVS)取代内燃机(ICE)车辆。在EV驱动程序中,“范围焦虑”是长度充电持续时间导致的主要问题之一。通过引入DC快速/快速充电站的充电持续时间的降低被广泛讨论于文献中。然而,由于快速充电站导致的高充电需求可能对电网产生一些挑战。在本文中,研究了不同类型的快速充电器对英国通用分配网络的影响。网络的最合适且强大的连接点,可以在不影响系统的稳定性和安全性的情况下识别快速充电器的网络。主要研究结果表明,网络损耗增加,电压超出严格限制,系统设备随着网络中的快速充电活动而超载。因此,通过分布式发电单元(DG)和静态VAR补偿器(SVC)器件增强了关键网络点,以提高系统可靠性并减轻这些挑战的影响。

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