• CN:11-2187/TH
  • ISSN:0577-6686

机械工程学报 ›› 2025, Vol. 61 ›› Issue (10): 386-394.doi: 10.3901/JME.2025.10.386

• 运载工程 • 上一篇    

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磁悬浮列车外形及制式对管道激波流场的影响分析

黄尊地, 周镇斌, 常宁   

  1. 五邑大学轨道交通学院 江门 529020
  • 收稿日期:2024-05-07 修回日期:2025-01-22 发布日期:2025-07-12
  • 作者简介:黄尊地,男,1987年出生,博士,副教授,硕士研究生导师。主要研究方向为轨道交通空气动力学及环境安全。E-mail:wyuhzd@163.com;常宁(通信作者),女,1984年出生,硕士,讲师。主要研究方向为轨道交通车辆。E-mail:wydxcn@163.com
  • 基金资助:
    江门市基础与应用基础研究重点(JZ202201)和五邑大学港澳联合研发基金(2021WGALH15)资助项目。

Analysis on the Shock Wave Field of Maglev Train Shape and Model in Tube

HUANG Zundi, ZHOU Zhenbin, CHANG Ning   

  1. School of Rail Transportation, Wuyi University, Jiangmen 529020
  • Received:2024-05-07 Revised:2025-01-22 Published:2025-07-12

摘要: 空气已经成为高速列车进一步提速的关键制约因素之一,高速运行导致列车能耗及环境噪声危害性剧增。为了发展下一代更高速交通运输系统,低真空管道和高速磁浮列车结合的交通运输系统构想得以提出和发展。低真空管道列车超高速运行导致管道内产生激波效应等特殊流动现象,高速列车诱发的长大管道内激波演化机制、列车外形及制式等参数对管道列车激波流场的影响机理等关键科学和工程问题有待探明。通过分析列车周围流场特征、三维管道列车激波结构、管道内侧壁面压力及系数、车体表面压力及系数、车体表面温度、列车气动阻力及系数等,探索不同外形及制式对管道列车激波特性及表征的列车阻力系数和其他空间物理量的影响,得出列车外形影响激波产生位置、形状长度、反射位置、激波空间曲线及相交线等激波特性,进而影响列车气动阻力系数及其他空间流场物理量。在管道列车激波流场的影响下,列车长度一致,随着车头流线型长度的增加,列车气动阻力系数、车体表面压力系数和车体表面温度等随之减小;同时,相比较外形的影响,轨道交通运营制式的影响较弱。

关键词: 磁悬浮列车, 外形, 制式, 管道列车, 激波流场

Abstract: Aerodynamic effect has become one of the key restrictive factors for the further speed increase of high-speed trains, and high-speed operation has led to a sharp increase in energy consumption and environmental noise hazards. In order to develop the next generation of higher-speed transportation systems, the concept of a transportation system combining low-vacuum pipelines and high-speed maglev trains has been proposed and developed. However, some specific flow phenomena including the shock wave effect appear as the high speed train passing through the low-vacuum pipeline at an ultra-high speed. Scientific and engineering issues such as the shock wave evolution mechanism in long pipelines, the influence of the train shape, the system mode and other parameters on the shock wave flow field of pipeline trains need to be explored. By analyzing the characteristics of the flow field around the train, the three-dimensional shock wave structure, the pressure on the internal pipeline wall and the train surface, the surface temperature and aerodynamic resistance of the train, the effect of different shapes and system modes on the shock wave, the aerodynamic resistance and other physical variables is explored. Results show that the train shape and the system mode have significant influence on the generation position, shape length, reflection position, special curve and intersecting line of the shock wave, meanwhile affect the train aerodynamic drag and other physical variables. When the length of the train is identical, the aerodynamic drag coefficient, the surface pressure coefficient and the surface temperature of the train decrease with the increase of the streamlined length of the train nose under the effect of shock waves inside the pipe. However, the influence of the rail transit system mode is relatively slight comparing with the parameter of train shape.

Key words: maglev train, shape, system mode, pipeline train, shock wave field

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