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Experimental and numerical study on generation and mitigation of vortex-induced vibration of open-cross-section composite beam

机译:断面复合梁涡旋振动产生与减振的实验与数值研究

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Open-cross-section composite beam (OCB) tends to suffer vortex-induced vibration (VIV) due to its bluff aerodynamic shape. A cable-stayed bridge equipped with typical OCB is taken as an example in this paper to conduct sectional model wind tunnel test. Vortex-induced vibration is observed and maximum vibration amplitudes are obtained. CFD approach is employed to calculate the flow field around original cross sections in service stage and construction stage, as well as sections added with three different countermeasures: splitters, slabs and wind fairings. Results show that flow separate on the upstream edge and cause vortex shedding on original section. Splitters can only smooth the flow field on the upper surface, while slabs cannot smooth flow field on the upper or lower surface too much. Thus, splitters or slabs cannot serve as valid aerodynamic means. Wind tunnel test results show that VIV can only be mitigated when wind fairings are mounted, by which the flow field above and below the bridge deck are accelerated simultaneously.
机译:开放截面复合梁(OCB)由于其钝空气动力学形状而易于遭受涡激振动(VIV)。本文以典型的OCB斜拉桥为例,进行截面模型风洞试验。观察到涡流引起的振动,并获得最大振动幅度。 CFD方法用于计算服务阶段和施工阶段原始横截面周围的流场,以及添加了三种不同对策的部分:分流器,平板和风罩。结果表明,流动在上游边缘分离,并在原始截面上引起涡旋脱落。分流器只能使上表面的流场平滑,而平板则不能使上,下表面的流场过分平滑。因此,分流器或平板不能用作有效的空气动力装置。风洞测试结果表明,只有在安装了整流罩的情况下,VIV才能降低,从而同时加速桥面上方和下方的流场。

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