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Transient aerodynamic performance of high-speed trains when passing through two windproof facilities under crosswinds: A comparative study

机译:高速列车在侧风下通过两个防风设施时的瞬态空气动力学性能:对比研究

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摘要

Windbreak (WB) and anti-wind open-cut tunnel (AOT) are two common windproof facilities for high-speed railways in windy areas. This study aims to determine which of them has better aerodynamic performance. For this purpose, the transient aerodynamic loads of high-speed trains are compared when passing through two windproof facilities under the same conditions of train and crosswind speeds via CFD simulation. The sudden change mechanism of aerodynamic loads and the differences in aerodynamic loads between the AOT and WB cases are revealed from the perspectives of flow field and pressure. Four main conclusions are obtained. Firstly, the fluctuation amplitudes of the five aerodynamic loads of each carriage in two periods (entry and exit) are remarkably greater than those in other periods (completely running in crosswind or windproof facilities). Secondly, the maximum fluctuation amplitudes of the five aerodynamic loads of the head carriage are generally greater than those of the rear and middle carriages during the period of entry (or exit). Thirdly, the maximum fluctuation amplitudes of side force, lift force, rolling moment, yawing moment and pitching moment of the head carriage in the WB case are 1.42, 0.84, 1.42, 1.45 and 1.44 times for the period of entry and 1.2, 1.24, 1.2, 1.58 and 2 times for the period of exit, respectively, compared with those in the AOT case. Fourthly, the maximum change rates at a time interval of 0.035 s of the side force, lift force, rolling moment, yawing moment and pitching moment of the head carriage in the WB case are 1.32, 1.26, 1.32, 1.57 and 1.52 times for the period of entry and 1.13, 1.24, 1.13, 1.42 and 1.69 times for the period of exit, respectively, compared with those in the AOT case.
机译:防风(WB)和防风明挖隧道(AOT)是多风地区高速铁路的两种常用防风设施。这项研究旨在确定其中哪一个具有更好的空气动力学性能。为此,通过CFD仿真,比较了在相同的火车和侧风速度条件下,通过两个防风设施时,高速火车的瞬态空气动力学载荷。从流场和压力的角度揭示了空气动力载荷的突然变化机制以及空气动力载荷和空气动力学箱之间的空气动力载荷的差异。得到四个主要结论。首先,每个车厢的五个空气动力负荷在两个时期(进入和离开)的波动幅度明显大于其他时期(完全在侧风或防风设施中运行)的波动幅度。其次,在进入(或退出)期间,头部托架的五个空气动力学负荷的最大波动幅度通常大于后部和中间托架的最大波动幅度。第三,在白平衡情况下,头架的侧向力,升力,侧倾力矩,偏航力矩和俯仰力矩的最大波动幅度分别为进入期间的1.42、0.84、1.42、1.45和1.44倍,以及1.2、1.24,分别是AOT情况下的1.2倍,1.58倍和2倍。第四,在WB情况下,磁头托架的侧向力,提升力,侧倾力矩,偏航力矩和俯仰力矩在0.035 s的时间间隔内的最大变化率分别为1.32、1.26、1.32、1.57和1.52倍。与AOT案例相比,分别是进入期和退出期的1.13、1.24、1.13、1.42和1.69倍。

著录项

  • 来源
    《Engineering Structures》 |2019年第1期|729-744|共16页
  • 作者单位

    Cent S Univ, Sch Civil Engn, Shaoshan South Rd 22, Changsha 410075, Hunan, Peoples R China;

    Cent S Univ, Sch Civil Engn, Shaoshan South Rd 22, Changsha 410075, Hunan, Peoples R China;

    Cent S Univ, Sch Civil Engn, Shaoshan South Rd 22, Changsha 410075, Hunan, Peoples R China;

    Cent S Univ, Sch Civil Engn, Shaoshan South Rd 22, Changsha 410075, Hunan, Peoples R China;

    Cent S Univ, Sch Civil Engn, Shaoshan South Rd 22, Changsha 410075, Hunan, Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Crosswind; High-speed train (HST); Windproof facility; Aerodynamic load; Sudden change;

    机译:侧风;高速列车(HST);防风设施;气动载荷;突然变化;

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