Title :
A new optical measurement method for local wall shear stress and its signal processing techniques
Author :
Shirai, Katsuaki
Author_Institution :
Dept. of Mech. Eng., Keio Univ., Yokohama, Japan
Abstract :
A new optical measurement method for local wall shear stress is proposed. The method is an extension of laser Doppler technique. It has a possibility of detecting the both magnitude and angle of local wall shear stress. The principle was investigated for Doppler frequency and measurement volume. The Doppler frequency changes in a Doppler burst signal. The frequency variation depends on the magnitude and angle of local wall shear stress and the spanwise offset of scattering particle path. A signal processing technique is proposed to detect the magnitude and the angle of local wall shear stress. The technique consists of detecting Doppler frequency variation by time-frequency analysis and nonlinear least squares fit. A simulation was conducted to investigate the performance of the method. Simulated Doppler signals were generated by using the instantaneous velocity data of a fluid-flow simulation result. The generated signals with different noise levels were processed and the effect of the noise level was investigated. The local wall shear stress was estimated with moderate accuracy but its angle was not estimated with good accuracy. A further investigation is required to improve the accuracy of measurement for the method.
Keywords :
Doppler measurement; flow measurement; flow simulation; optical variables measurement; signal processing; time-frequency analysis; turbulence; Doppler burst signal; Doppler frequency; fluid flow simulation; laser Doppler technique; local wall shear stress; nonlinear least squares fit; optical measurement method; scattering particle path; signal processing techniques; simulated Doppler signals; spanwise offset; time-frequency analysis; turbulence; Frequency measurement; Noise level; Nonlinear optics; Optical scattering; Optical signal processing; Particle scattering; Signal generators; Signal processing; Stress measurement; Volume measurement;
Conference_Titel :
Instrumentation in Aerospace Simulation Facilities, 2003. ICIASF '03. 20th International Congress on
Print_ISBN :
0-7803-8149-1
DOI :
10.1109/ICIASF.2003.1274885