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Thermal buoyancy induced suppression of wake-induced vibration

机译:热浮力诱导抑制唤醒引起的振动

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We numerically investigate the effect of thermal buoyancy on wake-induced vibration (WIV) of an elastically mounted square prism in the wake of an identical stationary prism. The upstream prism is heated at a prescribed temperature while the downstream prism is insulated and vibrates transversely to the flow direction. The Reynolds number, based on side of the prism is, Re = 100 and center-to-center distance is twice the side of the prism. Numerical simulations were performed for mass ratio m = 3, Prandtl number Pr = 7.1 and Richardson number Ri = [0,1], The reduced velocity U_R is varied in a range from 4 to 30. The maximum oscillation amplitude occurs at U_R = 5 at Ri = 1 as compared to Ri = 0. We report 50% reduction in the amplitude at Ri = 1 as compared to Ri = 0, implying WIV suppression due to the presence of thermal buoyancy. A complete suppression occurs at U_R > 7 at Ri = 1. The lock-in (synchronization) region is narrow for both the cases. The downstream prism oscillates in phase to the lift force at Ri = 1 as Φ remains 0°, whereas at Ri = 0, Φ changes abruptly from 0° to 180° and remains 180° for higher U_R. We briefly discuss the influence of thermal buoyancy on wake dynamics. The present results provide insights to suppress the WIV by tailoring the thermal buoyancy for multiple bluff bodies in laminar flow.
机译:在相同的固定棱镜之后,我们在数值上研究了热浮力对弹性安装方形棱镜的唤醒振动(WIV)的影响。上游棱镜在规定的温度下加热,而下游棱镜被绝缘并横向振动到流动方向。基于棱镜的左侧的雷诺数,Re = 100,中心到中心距离是棱镜侧的两倍。对质量比M = 3进行数值模拟,PRANDTL号PR = 7.1和Richardson数Ri = [0,1],减小的速度U_R在4到30的范围内变化。在U_R = 5处发生最大振荡幅度与Ri = 0相比,在Ri = 0比较的情况下,与Ri = 0相比,在Ri = 0上报告50%的振幅,暗示由于热浮力的存在而暗示WIV抑制。在RI = 1处在U_R> 7处发生完全抑制。锁定(同步)区域对于这种情况而窄。下游棱镜以阶段振荡到Ri = 1的升力,因为φ保持0°,而在Ri = 0中,φ突然从0°变为180°,并且保持180°以用于更高的U_R。我们简要介绍了热浮力对唤醒动力学的影响。目前的结果提供了通过裁缝层流中的多个虚张体的热浮力来抑制WIV的见解。

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