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尝鲜“新干线”
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作者 陈淀国 《科学之友》 2003年第3期44-44,共1页
被列为世界五大城市之一的东京,是日本经济、商业、金融等的中心,高楼林立,商业密集,车水马龙,行人如织,即使是经常在外走南闯北的人,初来乍到,也难免有些眼花缭乱、找不到“北”。尤其是它的交通,铁路、公路、航空、海上都非常便捷、... 被列为世界五大城市之一的东京,是日本经济、商业、金融等的中心,高楼林立,商业密集,车水马龙,行人如织,即使是经常在外走南闯北的人,初来乍到,也难免有些眼花缭乱、找不到“北”。尤其是它的交通,铁路、公路、航空、海上都非常便捷、非常发达,用现代化、立体化、网络化来形容,是一点都不过分的。 展开更多
关键词 东京 新干线 高速电气列车
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Numerical investigation of influence of pantograph parameters and train length on aerodynamic drag of high-speed train 被引量:10
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作者 SUN Zhi-kun WANG Tian-tian WU Fan 《Journal of Central South University》 SCIE EI CAS CSCD 2020年第4期1334-1350,共17页
This study investigates the influence of different pantograph parameters and train length on the aerodynamic drag of high-speed train by the delayed detached eddy simulation(DDES) method. The train geometry considered... This study investigates the influence of different pantograph parameters and train length on the aerodynamic drag of high-speed train by the delayed detached eddy simulation(DDES) method. The train geometry considered is the high-speed train with pantographs, and the different versions have 3, 5, 8, 10, 12, 16 and 17 cars. The numerical results are verified by the wind tunnel test with 3.6% difference. The influences of the number of cars and the position, quantity and configuration of pantographs on flow field around high-speed train and wake vortices are analyzed. The aerodynamic drag of middle cars gradually decreases along the flow direction. The aerodynamic drag of pantographs decreases with its backward shift, and that of the first pantograph decreases significantly. As the number of pantographs increases, its effect on the aerodynamic drag decrease of rear cars is more significant. The engineering application equation for the aerodynamic drag of high-speed train with pantographs is proposed. For the 10-car and 17-car train, the differences of total aerodynamic drag between the equation and the simulation results are 1.2% and 0.4%, respectively. The equation generalized in this study could well guide the design phase of high-speed train. 展开更多
关键词 high-speed train PANTOGRAPH train length aerodynamic drag
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Investigation of the aeroacoustic behavior and aerodynamic noise of a high-speed train pantograph 被引量:30
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作者 ZHANG YaDong ZHANG JiYe +1 位作者 LI Tian ZHANG Liang 《Science China(Technological Sciences)》 SCIE EI CAS CSCD 2017年第4期561-575,共15页
As one of the main aerodynamic noise sources of high-speed trains, the pantograph is a complex structure containing many components, and the flow around it is extremely dynamic, with high-level turbulence. This study ... As one of the main aerodynamic noise sources of high-speed trains, the pantograph is a complex structure containing many components, and the flow around it is extremely dynamic, with high-level turbulence. This study analyzed the near-field unsteady flow around a pantograph using a large-eddy simulation(LES) with high-order finite difference schemes. The far-field aerodynamic noise from a pantograph was predicted using a computational fluid dynamics(CFD)/Ffowcs Williams-Hawkings(FW-H) acoustic analogy. The surface oscillating pressure data were also used in a boundary element method(BEM) acoustic analysis to predict the aerodynamic noise sources of a pantograph and the far-field sound radiation. The results indicated that the main aerodynamic noise sources of the pantograph were the panhead, base frame and knuckle. The panhead had the largest contribution to the far-field aerodynamic noise of the pantograph. The vortex shedding from the panhead generated tonal noise with the dominant peak corresponding to the vortex shedding frequency and the oscillating lift force exerted back on the fluid around the panhead.Additionally, the peak at the second harmonic frequency was associated with the oscillating drag force. The contribution of the knuckle-downstream direction to the pantograph aerodynamic noise was less than that of the knuckle-upstream direction of the pantograph, and the average sound pressure level(SPL) was 3.4 dBA. The directivity of the noise radiated exhibited a typical dipole pattern in which the noise directivity was obvious at the horizontal plane of θ=0°,the longitudinal plane of θ=120°,and the vertical plane of θ=90°. 展开更多
关键词 high-speed train PANTOGRAPH aerodynamic noise large eddy simulation FW-H acoustic analogy boundary element method noise contribution
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