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Estimating time-averaged turbulent fluid forces from an ensemble-averaged flow field for engineering applications

机译:从用于工程应用的集合平均流场估算时间平均湍流流体

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Solid structures are subjected to mechanical forces imposed upon them by a moving fluid. If the flow is turbulent, the mechanical forces would fluctuate randomly with time. For engineering applications, the statistical approach is normally preferred whenever turbulent flows are encountered. As a consequence, the measured or numerically computed flow fields are ensemble-averaged. The objective of this investigation is to develop an engineering methodology to estimate these mechanical forces from the ensemble-averaged flow field. Special attention would be paid to those forces that contribute to mechanical vibrations of the solid structures. In our study of airflow induced vibrations on the working parts of computer hard disk drives, the turbulent flow fields of an actual 2.5-inch computer hard drive had been measured in-situ. From the ensemble-averaged flow field, various types of mechanical forces like pressure, shear (drag) forces and vortex (lift) forces could be obtained. By neglecting the constant forces, we focused our attention on the ensemble averaged fluctuating velocity-vorticity interactions. The consequence of the interaction is the production of ensemble-averaged fluctuating vortex forces that act on the actuator. The fluctuating components of vortex forces can be calculated from the gradients of Reynolds shear stresses measured directly from the flow field experimentally. The magnitudes of fluctuating vortex forces increases dramatically with the disk rotational speed, which matches the behaviour of positional error signals (PES) measured in-situ from an actual operating hard disk drive. The corresponding increase in PES and fluctuating vortex forces with disk rotational speed suggested that flow induced vibration in the hard disk drive may be due to an increase in flow turbulence in the hard disk drive. Some suggestion on flow turbulence identification and attenuation are discussed.
机译:经受移动流体施加在它们上的机械力的固体结构。如果流动是湍流的,则机械力将随时间随机地波动。对于工程应用,每当遇到湍流流时,通常优选统计方法。结果,测量或数值计算的流场是平均的。该调查的目的是开发一种工程方法,以估计来自集合平均流场的这些机械力。对那些有助于固体结构的机械振动的力来支付特别注意。在我们对电脑硬盘驱动器的工作部件上的气流引起的振动的研究中,实际的2.5英寸计算机硬盘驱动器的湍流流场已经采用原位测量。从集合平均流场中,可以获得各种类型的机械力,如压力,剪切(拖动)力和涡旋(升力)力。通过忽视不断的力量,我们将注意力集中在整体平均波动速度 - 涡流相互作用上。相互作用的结果是产生在致动器上采用的集合平均波动力的产生。涡旋力的波动部件可以通过直接从实验从流场测量的雷诺剪切应力的梯度来计算。波动的涡流的幅度随着磁盘转速而显着增加,该磁盘转速匹配从实际操作的硬盘驱动器地原位测量的位置误差信号(PE)的行为。具有磁盘旋转速度的PE和波动涡流的相应增加表明,硬盘驱动器中的流动感应振动可能是由于硬盘驱动器中的流动湍流增加。讨论了关于流动湍流识别和衰减的一些建议。

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