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Numerical analysis of the slipstream development around a high-speed train in a double-track tunnel

机译:双线隧道高速列车绕流发展的数值分析

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摘要

Analysis of the slipstream development around the high-speed trains in tunnels would provide references for assessing the transient gust loads on trackside workers and trackside furniture in tunnels. This paper focuses on the computational analysis of the slipstream caused by high-speed trains passing through double-track tunnels with a cross-sectional area of 100 m2. Three-dimensional unsteady compressible Reynolds-averaged Navier-Stokes equations and a realizable k-ε turbulence model were used to describe the airflow characteristics around a high-speed train in the tunnel. The moving boundary problem was treated using the sliding mesh technology. Three cases were simulated in this paper, including two tunnel lengths and two different configurations of the train. The train speed in these three cases was 250 km/h. The accuracy of the numerical method was validated by the experimental data from full-scale tests, and reasonable consistency was obtained. The results show that the flow field around the high-speed trains can be divided into three distinct regions: the region in front of the train nose, the annular region and the wake region. The slipstream development along the two sides of train is not in balance and offsets to the narrow side in the double-track tunnels. Due to the piston effect, the slipstream has a larger peak value in the tunnel than in open air. The tunnel length, train length and length ratio affect the slipstream velocities; in particular, the velocities increase with longer trains. Moreover, the propagation of pressure waves also induces the slipstream fluctuations: substantial velocity fluctuations mainly occur in front of the train, and weaken with the decrease in amplitude of the pressure wave.
机译:对隧道中高速列车周围的滑流发展的分析将为评估隧道中路边工人和路边家具的瞬时阵风负荷提供参考。本文着重分析了高速列车通过截面积为100 m 2 的双线隧道引起的滑流。使用三维非稳态可压缩雷诺平均Navier-Stokes方程和可实现的k-ε湍流模型来描述隧道中高速列车周围的气流特性。使用滑动网格技术处理了移动边界问题。本文模拟了三种情况,包括两种隧道长度和两种不同的列车配置。在这三种情况下,火车速度为250 km / h。数值方法的准确性已通过全面测试的实验数据得到验证,并获得了合理的一致性。结果表明,高速列车周围的流场可分为三个不同的区域:列车前部前方的区域,环形区域和尾流区域。沿火车两侧的滑流发展不平衡,并向双线隧道的狭窄侧偏移。由于活塞效应,支流在隧道中比在露天具有更大的峰值。隧道长度,列车长度和长度比影响滑流速度。特别是,随着火车的增加速度会增加。此外,压力波的传播也会引起滑流的波动:大量的速度波动主要发生在列车前方,并随着压力波幅度的减小而减弱。

著录项

  • 期刊名称 PLoS Clinical Trials
  • 作者

    Min Fu; Peng Li; Xi-feng Liang;

  • 作者单位
  • 年(卷),期 2012(12),3
  • 年度 2012
  • 页码 e0175044
  • 总页数 15
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 12:36:08

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