The Experimental Investigation of Energy Transfer in Wall Turbulence Based on Wavelet Transform and FFT and HHT

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Using constant temperature hot-wire anemometer IFA300, we measured the wall turbulence on different normal location of the boundary layer in the wind tunnel experiment section. The wind tunnel is of low turbulence intensity. We have applied Fourier transform, Wavelet transform and Hilbert-Huang transform to analyze the turbulent fluctuating velocity obtained by measurement and have compared turbulent energy transfer law in different wall distance. This article quantitatively analyzed on the eddy motion process for different wall distance in wall turbulence from the energy point of view. It also discussed the energy transfer law based on eddy combination theory and the inertial sub-range.

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2738-2741

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October 2011

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© 2012 Trans Tech Publications Ltd. All Rights Reserved

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[1] XIA Zhen-yan, JIANG Nan, TIAN Yan, WANG Yu-chun, Experimental study on the local similarity scaling of the turbulence spectrum in the turbulent boundary layer. Science in China Series G: Physics, Mechanics & Astronomy. 2009, 39(3): 428~434.

DOI: 10.1007/s11433-009-0102-5

Google Scholar

[2] Zhen-yan XIA, Yan TIAN, Nan JIANG, Wavelet spectrum analysis on energy transfer of multi-scale structures in wall turbulence[J]. Applied Mathematics and Mechanics. 2009, 30(4): 435~443.

DOI: 10.1007/s10483-009-0404-8

Google Scholar

[3] Jian-zhong LIN, The coherent structure in flow and its control, The publishing house of Zhejiang University.

Google Scholar

[4] Huang NE, Long S R, Shan Z, The Mechanism for Frequency Downshift In Nonlinear Wave Evolution. Adcances in Applied Mechanics. 1996, 32: 59~111.

Google Scholar

[5] Huang N E, Shen Z, Long S R, A New View of Nonlinear Water Waves: the Hilbert Spectrum, Annu. Rev Fluid Mech. 1999. 31: 417~437.

DOI: 10.1146/annurev.fluid.31.1.417

Google Scholar