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The alleviation of the aerodynamic drag and wave effects of high-speed trains in very long tunnels

机译:缓解超长隧道中高速列车的气动阻力和波浪效应

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The design of new high-speed railway lines requires longer and more numerous tunnel sections, where aerodynamic effects limit the maximum allowed train velocity for a given tunnel cross-section area. These effects influence the train power requirement, the traction energy costs and the pressure wave amplitude: the knowledge of the unsteady aerodynamic field around the train is therefore essential to the optimum choice of a tunnel configuration, and mainly of the cross-section diameter and of the presence and position of pressure relief ducts. In this paper, the aerodynamic phenomena generated by a train traveling at high speed through a long tunnel of small cross-section are analyzed by means of quasi one-dimensional numerical simulations of the air flow induced by a train traveling at 120m/s in a tunnel connecting two stations 60 km apart. Several tunnel configurations at high blockage ratio are discussed, together with the positive and negative effects of pressure relief ducts and of partial air vacuum. Aerodynamic phenomena are evaluated in terms of drag, pressure wave amplitude and shock wave onset on the train tail. Results suggest that configurations consisting of twin tunnels connected by pressure relief ducts near stations and operated under partial vacuum should be preferred.
机译:新的高速铁路线的设计需要更长和更多的隧道断面,其中空气动力学效应限制了给定隧道截面积的最大允许列车速度。这些影响会影响列车的动力需求,牵引能量成本和压力波幅值:因此,了解列车周围的不稳定空气动力场对于最佳选择隧道构型至关重要,主要是横截面直径和横截面直径。泄压管道的存在和位置。在本文中,通过对一列以120m / s的速度行驶的列车在空中产生的气流的准一维数值模拟,来分析一列在高速行驶的小截面长隧道中产生的空气动力学现象。连接两个相距60公里的车站的隧道。讨论了在高堵塞率下的几种隧道配置,以及泄压管道和部分空气真空的正负作用。根据火车尾部的阻力,压力波振幅和冲击波发作来评估空气动力学现象。结果表明,应首选由双隧道组成的配置,该双隧道由站附近的泄压导管连接并在部分真空下运行。

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