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An airborne acoustic method to reconstruct a dynamically rough flow surface

机译:一种重建动态粗糙流面的气载声学方法

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摘要

Currently, there is no airborne in situ method to reconstruct with high fidelity the instantaneous elevation of a dynamically rough surface of a turbulent flow. This work proposes a holographic method that reconstructs the elevation of a one-dimensional rough water surface from airborne acoustic pressure data. This method can be implemented practically using an array of microphones deployed over a dynamically rough surface or using a single microphone which is traversed above the surface at a speed that is much higher than the phase velocity of the roughness pattern. In this work, the theory is validated using synthetic data calculated with the Kirchhoff approximation and a finite difference time domain method over a number of measured surface roughness patterns. The proposed method is able to reconstruct the surface elevation with a sub-millimeter accuracy and over a representatively large area of the surface. Since it has been previously shown that the surface roughness pattern reflects accurately the underlying hydraulic processes in open channel flow [e.g., Horoshenkov, Nichols, Tait, and Maximov, J. Geophys. Res. 118(3), 1864-1876 (2013)], the proposed method paves the way for the development of non-invasive instrumentation for flow mapping and characterization that are based on the acoustic holography principle. (C) 2016 Acoustical Society of America.
机译:当前,没有机载原位方法来高保真度地重建湍流的动态粗糙表面的瞬时高度。这项工作提出了一种全息方法,可以从机载声压数据重建一维粗糙水面的高程。实际上可以使用部署在动态粗糙表面上的麦克风阵列或使用以远高于粗糙度图案的相速度的速度在表面上方移动的单个麦克风来实现该方法。在这项工作中,使用通过基尔霍夫(Kirchhoff)近似和有限差分时域方法计算的合成数据对许多测量到的表面粗糙度图案进行了验证。所提出的方法能够以亚毫米级的精度并在代表性的大面积区域上重建表面高程。由于先前已证明表面粗糙度图准确地反映了明渠流中的基本水力过程[例如,Horoshenkov,Nichols,Tait和Maximov,J. Geophys。 Res。 118(3),1864-1876(2013)],提出的方法为基于声全息原理的流图和特征分析非侵入性仪器的开发铺平了道路。 (C)2016年美国声学学会。

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