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Cutting traction power costs with wayside energy storage systems in rail transit systems

机译:用轨道交通系统中的路边储能系统切割牵引力成本

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New electrically propelled passenger trains use AC propulsion with induction traction motors and variable voltage, variable frequency drives. Benefits include higher performance, reduced starting energy use, regenerated braking energy, lower maintenance, and a broadened range of operating conditions. However, some transit operators have found that new trains have not fully delivered the economic benefits of regeneration. An effective energy storage system (ESS) can capture the full energy savings benefit of regenerative braking and will reduce the peak power usage which incurs high peak power demand charges. Candidate ESS technologies include flywheels, supercapacitors, and batteries. This paper provides a set of typical requirements for a transit wayside ESS, and evaluates the strengths and weaknesses of the candidate technologies against the requirements. Primary ESS benefits are energy savings and peak power reduction. The authors calculated potential savings for a generic ESS at two typical transit systems: a dense US heavy rail system with 10-car trains, and a US light rail line that runs trains of two to four light rail vehicles (LRVs). In the heavy rail case study, a properly sized ESS will provide energy savings of up to 4.4 kWH per train start/run/stop cycle. This is a savings of 3.6 MWH per day per ESS, or 21% of the total energy. In the light rail case study, ESS will reduce the peak power demand by up to 119 kWH/H, or 23% of the total peak demand.
机译:新型电推进乘客列车使用带有感应牵引电动机的AC推进和可变电压,可变频率驱动器。优点包括更高的性能,降低启动能量使用,再生制动能量,降低维护和扩大的操作条件。但是,一些过境运营商发现,新列车没有完全交付再生的经济效益。有效的能量存储系统(ESS)可以捕获再生制动的全能节约益处,并将减少引发高峰电量需求充电的峰值电力使用。候选ESS技术包括FlyWheels,超级电容器和电池。本文为过境Wayside ESS提供了一系列典型要求,并评估候选技术的优势和弱点以防止要求。主要的ESS福利是节能和峰值减少功率。作者计算了两个典型的过境系统的通用ES潜在的节省:具有10辆车列车的密集的美国重型铁路系统,以及耗尽两到四个轻轨车辆(LRV)的火车线。在重型铁路案例研究中,一个适当大小的ESS将节省高达4.4千瓦时的每火车开始/运行/停止周期。这节储蓄每天为3.6米,占总能源的21%。在轻轨案例研究中,ESS将通过高达119千瓦时/小时降低峰值电源需求,或者总峰值需求的23%。

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