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Effects of nose shape and tunnel cross-sectional area on aerodynamic drag of train traveling in tunnels

机译:机头形状和隧道横截面积对隧道内列车行驶空气阻力的影响

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摘要

South Korea is proposing to construct a new public transportation system. The Great Train express (GTX) will be built underground as the present subway system. However, the cruise speed will be 200 km/h. When the train speed increases in a tunnel, the aerodynamic drag significantly increases. Therefore, it is important to estimate the aerodynamic drag of the train before construction. In this study, an analysis to estimate the aerodynamic drag of the GTX is performed using Computational Fluid Dynamics (CFD). When the cruise speed increases from 100 km/h to 200 km/h, the aerodynamic drag is estimated. The effects of the train nose length and the tunnel cross-sectional area on the aerodynamic drag are also evaluated. When the train speed increases by a factor of two, the aerodynamic drag is increased approximately four times. The aerodynamic drag is reduced up to approximately 50% by changing of the nose from a blunt to a streamlined shape. The aerodynamic drag decreases up to approximately 50% again when the cross-sectional area of the tunnel increases. The tunnel cross-sectional area for construction of the proposed GTX should be larger than the current tunnel cross-sectional area. These results are applicable for the basic design of the proposed GTX and tunnel system.
机译:韩国正提议建设一种新的公共交通系统。大火车快车(GTX)将作为目前的地铁系统在地下建造。但是,巡航速度将为200 km / h。当隧道中的火车速度增加时,空气阻力明显增加。因此,在施工前估算列车的空气阻力很重要。在这项研究中,使用计算流体动力学(CFD)进行了估算GTX气动阻力的分析。当巡航速度从100 km / h增加到200 km / h时,会估算出空气阻力。还评估了机头长度和隧道横截面积对空气阻力的影响。当列车速度增加两倍时,空气阻力增加大约四倍。通过将鼻子从钝的形状变为流线型的形状,可将空气阻力降低至大约50%。当通道的横截面面积增加时,空气阻力再次降低约50%。建议的GTX构造的隧道横截面面积应大于当前隧道的横截面面积。这些结果适用于建议的GTX和隧道系统的基本设计。

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