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Numerical simulation on aerodynamic characteristics of moving van under the train-induced wind

机译:火车诱导风中移动范围空气动力特性的数值模拟

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摘要

Constructing combined highway-railway bridge brings concerns regarding the aerodynamic interference between train and road vehicle. Research on the interaction mechanism can help calculate the vehicle response for the assessment of travelling safety. In this work, computational fluid dynamics (CFD) verified by a moving model test was applied on researching the aerodynamic characteristics of a moving van under the influence of train-induced wind. Two processes -encounter process (train and van drive towards each other) and chase process (train surpasses the van), are compared. The aerodynamic forces and pressure distribution of the van as well as the flow fields around the vehicles during the interaction are analyzed coherently. The results reveal that the adjacent positive and negative pressure zones around the nose and tail of the train bring moving and centralized high-pressure zone on the van's flank and generate significant aerodynamic variations, each variation contains at least two peak/valley values, and the middle carriage provide a stable transition between. Different superposition effect of the pressure zones results in difference between the encounter process and chase process, the variation trend of drag force and lift in the two processes are similar while the encounter has larger variation amplitude, in terms of pitching moment and yawing moment, more inversions of force happen in the encounter process but the variation amplitude is smaller. When the van runs near the nose of the train in the encounter, it gets the largest variation of drag force, lift force and rolling moment, while the largest variation of yawing moment and pitching moment happens when it runs near the nose of the train in the chase process.
机译:建设合并的公路铁路桥为火车和公路车辆之间的空气动力学干扰带来了担忧。对相互作用机制的研究可以帮助计算旅行安全评估的车辆响应。在这项工作中,通过运动模型试验验证的计算流体动力学(CFD)研究了在火车诱导的风的影响下的移动范围的空气动力学特性。比较两项过程 - 更低的过程同时分析了面包车的空气动力和压力分布以及车辆周围的流场。结果表明,火车鼻子和尾部周围的相邻的正压区带来了VAN的侧翼上的移动和集中的高压区,产生了显着的空气动力学变化,每个变化含有至少两个峰/谷值,而且中间支架提供稳定的过渡。压力区的不同叠加效果导致遇到过程和追逐过程之间的差异,两种过程中拖曳力和升力的变化趋势在互连的变化幅度中具有较大的变化幅度,就在俯仰力矩和打开时刻而言,更多在遇到过程中发生力的逆转,但变化幅度较小。当搬运车在遇到火车的鼻子附近时,它得到了拖曳力,提升力和滚动力矩的最大变化,而当它在火车的鼻子附近沿着火车的鼻子延伸时,就会发生最大的变化追逐过程。

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  • 来源
    《Wind & structures》 |2021年第1期|41-54|共14页
  • 作者单位

    Southwest Jiaotong Univ Dept Bridge Engn 111 North Sect Second Ring Rd Chengdu Sichuan Peoples R China;

    Southwest Jiaotong Univ Dept Bridge Engn 111 North Sect Second Ring Rd Chengdu Sichuan Peoples R China|Southwest Jiaotong Univ Wind Engn Key Lab Sichuan Prov 999 Xian Rd Chengdu Sichuan Peoples R China;

    Southwest Jiaotong Univ Dept Bridge Engn 111 North Sect Second Ring Rd Chengdu Sichuan Peoples R China;

    Southwest Jiaotong Univ Dept Bridge Engn 111 North Sect Second Ring Rd Chengdu Sichuan Peoples R China|Southwest Jiaotong Univ Wind Engn Key Lab Sichuan Prov 999 Xian Rd Chengdu Sichuan Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    combined highway-railway bridge; aerodynamic interference; CFD; aerodynamic force; flow field;

    机译:综合公路铁路桥;空气动力干扰;CFD;空气动力学力;流场;

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