首页> 外文会议>International conference on ocean, offshore and arctic engineering;OMAE2011 >FLUID-STRUCTURE ENERGY TRANSFER OF A TENSIONED BEAM SUBJECT TO VORTEX-INDUCED VIBRATIONS IN SHEAR FLOW
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FLUID-STRUCTURE ENERGY TRANSFER OF A TENSIONED BEAM SUBJECT TO VORTEX-INDUCED VIBRATIONS IN SHEAR FLOW

机译:剪切流中受涡诱导振动的张梁的流固能量传递

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The fluid-structure energy transfer of a tensioned beam of length to diameter ratio 200, subject to vortex-induced vibrations in linear shear flow, is investigated by means of direct numerical simulation at three Reynolds numbers, from 110 to 1,100. In both the in-line and cross-flow directions, the high-wavenumber structural responses are characterized by mixed standing-traveling wave patterns. The spanwise zones where the flow provides energy to excite the structural vibrations are located mainly within the region of high current where the lock-in condition is established, i.e. where vortex shedding and cross-flow vibration frequencies coincide. However, the energy input is not uniform across the entire lock-in region. This can be related to observed changes from counterclockwise to clockwise structural orbits. The energy transfer is also impacted by the possible occurrence of multi-frequency vibrations.
机译:通过在110至1100的三个雷诺数下进行直接数值模拟,研究了长度与直径之比为200的受拉梁在线性剪切流中受涡流引起的振动的流体结构能量传递。在轴向和横向流动方向上,高波数结构响应的特征在于混合的行进波型。流动提供能量以激发结构振动的翼展方向区域主要位于大电流的区域内,在该区域中建立了锁定条件,即涡旋脱落和横流振动频率重合。但是,能量输入在整个锁定区域中并不均匀。这可能与观察到的从逆时针方向到顺时针方向的结构轨道的变化有关。可能发生的多频振动也会影响能量传递。

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