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A VARIABLE NO-LOAD VOLTAGE SCHEME FOR IMPROVING ENERGY EFFICIENCY IN DC-ELECTRIFIED MASS TRANSIT SYSTEMS

机译:一种可变空载电压方案,用于提高直流电气化传质系统中的能效

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Railway mass transit systems like subways play a fundamental role in the concept of sustainable cities. In these systems, the amount of passengers strongly fluctuates along the day. Hence, in order to provide a proper service without incurring disproportionate energy consumption, operation at different traffic densities is required. The majority of underground systems are DC-electrified. Standard DC voltages in railway systems are low for historical and safety reasons. In the rush hours, the large number of trains demanding power of the system may lead to overloaded substations and voltage dips. This problem is partially mitigated by means of substation-transformer tap regulation, which allows operators to increase the no-load voltage. High no-load voltage has a beneficial effect at all traffic-density scenarios in terms of transmission losses. However, at the same time it effectively reduces the system's capacity to absorb regenerated energy, which may lead to inefficient energy consumption figures during off-peak hours. In this paper, the sensitivity of system energy consumption to no-load voltage has been analyzed. Several traffic-density scenarios in a case-study system are explored. As a result, a scheduled no-load voltage scheme is proposed for the operation of the system. This operation strategy improves energy efficiency without incurring a high investment cost. The only costs related to this proposed method are the costs of wear-and-tear in tap-changers. In case there are devices such as energy storage systems installed in the system, there would be additional operation costs related to a simultaneous update of the voltage limits for their operation.
机译:像地铁这样的铁路传统过境系统在可持续城市的概念中起着基本作用。在这些系统中,乘客的数量强烈沿当天波动。因此,为了提供适当的服务而不产生不成比例的能量消耗,需要在不同的交通密度下进行操作。大多数地下系统都是直流电气化的。由于历史和安全原因,铁路系统中的标准DC电压很低。在高峰时段,系统的大量列车可能导致过载的变电站和电压倾斜。通过变电站变压器抽头调节部分减轻了该问题,允许操作员增加无负载电压。在传输损耗方面,高负载电压在所有流量密度方案中具有有益效果。然而,同时它有效地降低了系统吸收再生能量的能力,这可能导致低峰时段的能量消耗数字。本文分析了系统能量消耗对空载电压的敏感性。探索了案例研究系统中的几种交通密度情景。结果,提出了一种用于系统的操作的预定的无负载电压方案。此操作策略提高了能效而不会产生高投资成本。与此提出方法相关的唯一成本是分接开关中磨损的成本。在系统中安装了诸如能量存储系统的设备的情况下,将存在与其操作的电压限制的同时更新相关的额外操作成本。

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