Optimization of Multiple Helical Fillets Surface to Suppress Rain-wind Vibration of Stay Cables: A Wind Tunnel Investigation

Duy-Thao Nguyen, D. Vo, Viet Hai, M. N. Haque
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Abstract

To develop a new cable surface for control rain wind induced cable vibration of stay cable. Stay cables are light and vulnerable structures. Therefore, it can be easily excited by wind or rain wind interaction. Stay cables wrapped with a single helical fillet have been proposed so far. However, these countermeasures could prevent cable vibration well, especially in dry conditions. Objective: Therefore, the objective of this research is to develop a new cable surface to control not only RWIV but also dry galloping of stay cable. A wind tunnel test will be used to investigate the RWIV characteristics and its new countermeasure. Results: First, a rain wind-induced vibration of circular stay cable was reproduced in a wind tunnel environment. The effect of upper and lower water rivulets was examined to understand their role on RWIV better. A rainfall simulator was employed to generate artificial rainfall for two different wind tunnel experiments. Finally, to control the RWIV of stay cables, novel multiple helical surface fillets were used. The upper and lower rain rivulets can play a significant role in energizing the RWIV. It was also found that the multiple helical surface fillets can suppress the cable vibration well both in wet and dry conditions. Multiple helical fillets cable surface could successfully prevent both the RWIV and dry galloping. To fabricate helical fillet cable to control cable vibration, 04 to 12 fillets with sizes ranging from 3mmx7.5mm to 5mmx7.5mm and a pitch of 2.95D-4.78D (D: cable diameter) are the most influential parameters and suggested herewith for practical application.
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多螺旋圆角面抑制斜拉索风雨振动的优化:风洞研究
开发一种控制斜拉索风雨振动的新型索面。斜拉索是轻而脆弱的结构。因此,它很容易被风或雨风相互作用激发。到目前为止,已提出用单个螺旋圆角包裹斜拉索。然而,这些措施可以很好地防止电缆振动,特别是在干燥条件下。目的:因此,本研究的目的是开发一种新的斜拉索表面,既可以控制斜拉索的RWIV,又可以控制斜拉索的干驰。将采用风洞试验研究RWIV的特性及其新的应对措施。结果:首先,在风洞环境中再现了圆形斜拉索的雨风致振动。为了更好地了解上游和下游河流对RWIV的影响,研究了上游和下游河流对RWIV的影响。在两个不同的风洞实验中,利用降雨模拟器模拟人工降雨。最后,采用新型的多螺旋面圆角控制斜拉索的RWIV。上下雨流对RWIV的充能起重要作用。研究还发现,在干湿条件下,多螺旋表面圆角都能很好地抑制索的振动。电缆表面多螺旋圆角可有效防止RWIV和干驰。为了制造控制电缆振动的螺旋圆角电缆,直径范围为3mmx7.5mm至5mmx7.5mm,节距为2.95D-4.78D (D:电缆直径),直径范围为04 ~ 12个圆角是最具影响的参数,建议在实际应用中采用。
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