Numerical Study on Unsteady Wake Characteristics of an Urban Maglev Train

Zhenxu Sun, Yongfang Yao, Fanbing Kong, Guowei Yang
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Abstract

As the running speed increases, the aerodynamic loads become dominant for high-speed ground vehicles. Meanwhile, the aerodynamic lift of the trailing car becomes crucial at higher speed, which may lead to security and comfort problems. Flow field details are the root to the aerodynamic loads. Study on the wake characteristics of the train could shed light to learn the mechanism of their aerodynamic loads and know how to improve their aerodynamic performance. In the present paper, the urban maglev train with a design speed of 200 km/h is mainly focused on. Numerical investigation is adopted for current study. The Improved Delayed Detached Eddy Simulation (IDDES) numerical approach is utilized to count for unsteady flow details. To characterize the vortex structures, the iso-surface of Q for urban maglev train is obtained and compared. Due to the existence of guide way, the streamline of maglev trains is much more influenced by the guide way. The ground effect for maglev trains is more obvious. The streamlined shape is quite essential to the flow phenomena, and as a result, the vortex structures for urban maglev trains are also different. Guide way could lead to more vortices, which is common for maglev trains. However, lateral vortex could be observed for urban maglev trains, which is unique and is a result of the flat shape of the trailing nose. Meanwhile, the slipstream in the wake of the train is also compared. The streamlined shape of urban maglev trains is the bluntest, which induces the relatively biggest train wind. Based on the above analysis, the unsteady characteristics of flow field for urban maglev train are obtained and the main vortex structures are characterized. Based on the unsteady analysis of flow field, the relationships between aerodynamic loads of the trailing car and different kinds of trailing vortices are obtained. Current study could shed light on the understanding of mechanism of aerodynamic performance of a train and how to design the streamlined shape for trains with certain operational speed.
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城市磁悬浮列车非定常尾迹特性数值研究
随着运行速度的提高,气动载荷成为高速地面车辆的主导。与此同时,在高速行驶时,尾随车的气动升力变得至关重要,可能导致安全性和舒适性问题。流场的细节是气动载荷的根源。对列车尾迹特性的研究有助于了解列车气动载荷的作用机理,提高列车的气动性能。本文主要研究设计速度为200 km/h的城市磁悬浮列车。本研究采用数值研究方法。采用改进的延迟分离涡模拟(IDDES)数值方法对非定常流场细节进行计数。为了对涡旋结构进行表征,得到了城市磁悬浮列车的等涡面,并对其进行了比较。由于导轨的存在,磁浮列车的流线受导轨的影响较大。磁悬浮列车的地面效应更为明显。流线型对流动现象至关重要,因此城市磁悬浮列车的涡旋结构也有所不同。导流方式会导致更多的涡流,这在磁悬浮列车中很常见。然而,对于城市磁悬浮列车来说,可以观察到侧向涡,这是独特的,是尾机头扁平形状的结果。同时,对列车尾迹的滑流进行了比较。城市磁悬浮列车的流线型最钝,产生的列车风相对最大。在此基础上,得到了城市磁悬浮列车流场的非定常特性,并对主要涡流结构进行了表征。在非定常流场分析的基础上,得到了尾随车气动载荷与不同类型尾随涡之间的关系。本文的研究有助于理解列车气动性能的机理,以及如何设计具有一定运行速度的列车的流线型外形。
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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