Jie Zhang, Yu-wei Wu, Jian-yong Gao, G. Gao, Zhi-gang Yang
{"title":"A study on aerodynamic noise characteristics of a high-speed maglev train with a speed of 600 km/h","authors":"Jie Zhang, Yu-wei Wu, Jian-yong Gao, G. Gao, Zhi-gang Yang","doi":"10.1108/rs-04-2023-0019","DOIUrl":null,"url":null,"abstract":"Purpose This study aims to explore the formation mechanism of aerodynamic noise of a high-speed maglev train and understand the characteristics of dipole and quadrupole sound sources of the maglev train at different speed levels.Design/methodology/approach Based on large eddy simulation (LES) method and Kirchhoff–Ffowcs Williams and Hawkings (K-FWH) equations, the characteristics of dipole and quadrupole sound sources of maglev trains at different speed levels were simulated and analyzed by constructing reasonable penetrable integral surface.Findings The spatial disturbance resulting from the separation of the boundary layer in the streamlined area of the tail car is the source of aerodynamic sound of the maglev train. The dipole sources of the train are mainly distributed around the radio terminals of the head and tail cars of the maglev train, the bottom of the arms of the streamlined parts of the head and tail cars and the nose tip area of the streamlined part of the tail car, and the quadrupole sources are mainly distributed in the wake area. When the train runs at three speed levels of 400, 500 and 600 km·h−1, respectively, the radiated energy of quadrupole source is 62.4%, 63.3% and 71.7%, respectively, which exceeds that of dipole sources.Originality/value This study can help understand the aerodynamic noise characteristics generated by the high-speed maglev train and provide a reference for the optimization design of its aerodynamic shape.","PeriodicalId":369838,"journal":{"name":"Railway Sciences","volume":"1 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2023-08-09","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Railway Sciences","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1108/rs-04-2023-0019","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
Purpose This study aims to explore the formation mechanism of aerodynamic noise of a high-speed maglev train and understand the characteristics of dipole and quadrupole sound sources of the maglev train at different speed levels.Design/methodology/approach Based on large eddy simulation (LES) method and Kirchhoff–Ffowcs Williams and Hawkings (K-FWH) equations, the characteristics of dipole and quadrupole sound sources of maglev trains at different speed levels were simulated and analyzed by constructing reasonable penetrable integral surface.Findings The spatial disturbance resulting from the separation of the boundary layer in the streamlined area of the tail car is the source of aerodynamic sound of the maglev train. The dipole sources of the train are mainly distributed around the radio terminals of the head and tail cars of the maglev train, the bottom of the arms of the streamlined parts of the head and tail cars and the nose tip area of the streamlined part of the tail car, and the quadrupole sources are mainly distributed in the wake area. When the train runs at three speed levels of 400, 500 and 600 km·h−1, respectively, the radiated energy of quadrupole source is 62.4%, 63.3% and 71.7%, respectively, which exceeds that of dipole sources.Originality/value This study can help understand the aerodynamic noise characteristics generated by the high-speed maglev train and provide a reference for the optimization design of its aerodynamic shape.
本研究旨在探讨高速磁悬浮列车气动噪声的形成机理,了解不同速度水平下磁悬浮列车偶极声源和四极声源的特点。基于大涡模拟(LES)方法和Kirchhoff-Ffowcs Williams and hawkins (K-FWH)方程,通过构建合理的可穿透积分面,模拟分析了不同速度水平下磁悬浮列车偶极声源和四极声源的特性。发现尾车流线型区域边界层分离引起的空间扰动是磁悬浮列车气动声的主要来源。列车的偶极源主要分布在磁浮列车头尾车厢的无线电终端周围、头尾车厢流线型部分的臂部底部和尾车厢流线型部分的鼻尖区域,四极源主要分布在尾迹区域。当列车运行速度分别为400、500和600 km·h−1时,四极源的辐射能量分别为62.4%、63.3%和71.7%,均超过偶极源。本研究有助于了解高速磁悬浮列车产生的气动噪声特性,为其气动外形的优化设计提供参考。