Interaction Simulation of a Lateral Wall Distance on Aerodynamic Characteristics of a Simplified High-speed Train

Alireza Hajipour, Arash Mirabdolah Lavasani, Mohammad Eftekhari Yazdi
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Abstract

The natural features, such as mountain slopes, cliffs, and the human-made artificial walls, such as train station walls, windbreakers, and even residential and office buildings, can affect the movement structure of high-speed trains. In the present paper, using computational fluid dynamics (CFD), the interaction of lateral wall distances on the aerodynamic characteristics of a high-speed train is simulated. To achieve this -using OpenFOAM- the governing equations are solved. Also, the used solver is simpleFoam which the Simple algorithm (Semi-Implicit Method for Pressure Linked Equations) is applied to decouple the Navier-Stokes's equations. In the following a simplified high-speed train is considered, combining Reynolds-Averaged Navier-Stokes (RANS) equations and k-ω (SST) turbulence approach, an incompressible turbulent air-flow around it is simulated. Also, the flow and aerodynamic structures affected by distance changes between the lateral wall and the train are analyzed. Therefore, the lift, drag, and side aerodynamic forces and their corresponding moments as pitching, yawing, and rolling are provided and compared for four distance cases. In the following, the most significant components of flow structure, such as streamlines, velocity and pressure distributions, and vortices structures, are discussed. Finally, using the turbulent kinetic energy analysis, the air-flow's turbulent level around the train, especially in critical areas, is investigated. The findings illustrated that the closer distance between the train and the wall has more destructive effects on the movement of the high-speed trains. The results of the present study can be helpful for designing structures along the rail and distancing it from natural features.
侧壁距离对简化高速列车空气动力特性的交互模拟
山坡、悬崖等自然地貌以及火车站围墙、挡风墙甚至住宅和办公楼等人为墙体都会影响高速列车的运动结构。本文利用计算流体动力学(CFD)模拟了侧墙距离对高速列车空气动力学特性的影响。为此,本文使用 OpenFOAM 对控制方程进行了求解。此外,所使用的求解器是 simpleFoam,该求解器采用 Simple 算法(压力关联方程的半隐式方法)来解耦纳维-斯托克斯方程。下文考虑了简化的高速列车,结合雷诺平均纳维-斯托克斯(RANS)方程和 k-ω (SST)湍流方法,模拟了列车周围不可压缩的湍流气流。此外,还分析了受侧壁和列车之间距离变化影响的流动和空气动力结构。因此,提供了四种距离情况下的升力、阻力、侧气动力及其相应的俯仰力矩、偏航力矩和滚动力矩,并进行了比较。接下来讨论了流动结构中最重要的组成部分,如流线、速度和压力分布以及涡流结构。最后,利用湍流动能分析,研究了列车周围,尤其是关键区域的气流湍流水平。研究结果表明,列车与墙壁之间的距离越近,对高速列车运行的破坏性影响越大。本研究的结果有助于设计铁路沿线的结构,拉开与自然地貌的距离。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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