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Optimising AC electric railway power flows with power electronic control

机译:利用电力电子控制优化交流电力铁路动力流

摘要

The latest generation of AC-fed traction drives, employing high-speed switching devices, is able to control the reactive power drawn from the overhead line by each equipment. If the conditions at each locomotive or train could be fed back to a central control point, it is possible for a centrally located controller to calculate optimal values for the reactive power in each drive and to send those commands back to the individual equipment. In this thesis, AC railway power flows are optimised in real time and the results are used to achieve some particular system objective via control of the PWM equipment as mobile reactive power compensators. The system voltage profile and the total power losses can be improved while the overall power factor at the feeder substation is also made nearer to unity. For off-line simulation purposes, high execution speeds and low storage requirements are not generally significant with the latest computer hardware. However, this real-time control employs on-line optimising controllers, which need embedded power solvers running many times faster than real time. Thus, a fast and efficient algorithm for AC railway power flow calculation was developed. The proposed scheme is compared to a conventional reactive power compensation, e.g. SVC, and found to be less expensive to implement. Several test cases for AC electric railway systems are examined. The centralised area control system leads to the best improvement where an existing fleet of diode or thyristor phase-angle controlled locomotives is partially replaced with PWM ones, compared to that obtained without compensation or to classical track-side Var compensation methods. From these results, the potential for PWM locomotives to improve overall system performance is confirmed.
机译:采用高速开关设备的最新一代交流电牵引驱动器,能够控制每个设备从架空线汲取的无功功率。如果可以将每个机车或火车上的状况反馈到中央控制点,则位于中央的控制器可以计算每个驱动器中无功功率的最佳值,并将这些命令发送回各个设备。本文通过实时优化交流铁路潮流,并通过控制作为移动无功补偿器的PWM设备,将结果用于实现某些特定的系统目标。当馈线变电站的总功率因数也变得更接近于单位时,可以改善系统电压曲线和总功率损耗。出于离线模拟的目的,对于最新的计算机硬件,高执行速度和低存储要求通常并不重要。但是,这种实时控制采用了在线优化控制器,该控制器需要比实时速度快许多倍的嵌入式电源求解器。因此,开发了一种快速有效的交流铁路潮流计算算法。将提出的方案与常规无功功率补偿(例如,无功补偿)进行比较。 SVC,并且实现起来成本更低。研究了交流电铁路系统的几个测试案例。与没有补偿或传统的轨道侧无功补偿方法相比,集中式区域控制系统带来了最大的改进,其中现有的二极管或晶闸管相角控制机车车队被PWM机车部分替代。从这些结果可以证实PWM机车改善整体系统性能的潜力。

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  • 作者单位
  • 年度 2004
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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