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首页> 外文期刊>Journal of Wind Engineering and Industrial Aerodynamics: The Journal of the International Association for Wind Engineering >2D numerical analysis on evolution of water film and cable vibration response subject to wind and rain
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2D numerical analysis on evolution of water film and cable vibration response subject to wind and rain

机译:风雨对水膜和电缆振动响应演化的二维数值分析

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摘要

Under wind and rain, cables of cable-stayed bridges may vibrate with large amplitude known as rain-wind induced vibration (RWIV). According to the previous researches, the formation and oscillation of water rivulets around cable plays an important role in RWIV. In this paper, 2D coupled equations of water film evolution and cable vibration are presented for the first time based on the combination of lubrication theory and vibration theory of single-mode system. To reveal the mechanism of RWIV, the mutual influences of water film evolution, lift and vibration of cable under different wind speeds are analysed by numerically solving the coupled equations. In accordance with the experimental results, the numerical results show that RWIV only occurs in special wind speed and the period of water film evolution is close to cable natural period, which makes cable vibrate with large amplitude. Under too low wind speed, the inconspicuous variation of water film morphology leads to small amplitude of lift and cable vibrating like free vibration. And when wind speed is too large, cable also vibrates with small amplitude as the water film morphology and lift change with little periodicity. These confirm the conclusion that the resonance between rivulets and cable may be one of the main reasons for RWIV.
机译:在刮风和雨天下,斜拉桥的电缆可能会以大振幅振动,称为雨风感应振动(RWIV)。根据先前的研究,电缆周围水钉的形成和振荡在RWIV中起着重要作用。本文结合润滑理论和单模系统的振动理论,首次提出了水膜演化与电缆振动的二维耦合方程。为了揭示RWIV的机理,通过数值求解耦合方程,分析了水膜在不同风速下的演变,电缆的升力和振动的相互影响。根据实验结果,数值结果表明,RWIV仅在特殊的风速下发生,水膜的演化周期接近电缆的自然周期,从而使电缆振动幅度较大。在太低的风速下,水膜形态的不明显变化会导致升力幅度小,电缆像自由振动一样振动。而且,当风速太大时,电缆也会随着水膜形态和升力的变化而周期性地以较小的幅度振动。这些证实了这样的结论:铆钉和电缆之间的共振可能是RWIV的主要原因之一。

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