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A note on turbulence measurements with a laser velocimeter

Published online by Cambridge University Press:  20 April 2006

J. C. Lau
Affiliation:
Lockheed–Georgia Company Now at Kimberly-Clark Corporation, Neenah, WI, U.S.A.
M. C. Whiffen
Affiliation:
Lockheed–Georgia Company
M. J. Fisher
Affiliation:
Lockheed–Georgia Company Permanent address: ISVR, The University of Southampton, U.K.
D. M. Smith
Affiliation:
Lockheed–Georgia Company

Abstract

In recent comparative measurements using a burst-counter type laser velocimeter and a hot-wire anemometer to assess the capabilities of the velocimeter (e.g. Barnett & Giel 1976; Lau, Morris & Fisher 1979), it was found that the laser velocimeter held good promise as an instrument for turbulence research, especially in high speed, high temperature flows where a hot-wire cannot be used. The axial mean velocities obtained with the LV compared very well with hot-wire measurements. Similarly, the characteristic shapes of the spectra and probability density distributions of the velocity fluctuations were faithfully reproduced. The trends in the distributions of the various turbulence characteristics (e.g. turbulence intensity, velocity covariances, skewness and kurtosis) in a given flow field were identical to those obtained with hotwires. The one significant difference between LV and hot-wire results was the magnitudes of the turbulence level. Since the LV results were obtained with the help of the latest validation and discrimination techniques (Asher 1973), which have now become standard equipment (Durst, Melling & Whitelaw 1976), such a discrepancy was unexpected. The reason for the discrepancy is now fairly clear and a method has been suggested by Whiffen, Lau & Smith (1978) on how to eliminate the error. But the approach is lengthy and time-consuming. This paper describes a method which effectively accomplishes the same end with less effort.

Type
Research Article
Copyright
© 1981 Cambridge University Press

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References

Asher, J. A. 1973 Laser Doppler Velocimeter system development and testing. Proc. Symp. on Theory and Application of Laser Doppler Anemometer, Oklahoma State University.
Barnett, D. O. & Giel, T. V. 1976 Application of a two-component Bragg-diffracted laser velocimeter to turbulence measurements in a subsonic jet. Arnold Engng Dev. Center AEDC TR-76-36.
Davies, P. O. A. L. 1966 Turbulence structure in free shear layer. A.I.A.A.J. 4, 19711978.Google Scholar
Durst, F. 1975 Electronic processing of optical anemometer signals. Proc. LDA-Symp., Copenhagen.
Durst, F., Melling, A. & Whitelaw, J. H. 1976 Principles and practice of Laser Doppler anemometry Academic.
Durst, F. & Zaré, M. 1974 Removal of pedestals and directional ambiguity of optical anemometer signals. J. Appl. Optics 13 (11), 25622578.Google Scholar
George, W. K. & Lumley, J. L. 1973 The Laser Doppler Velocimeter and its application to the measurement of turbulence. J. Fluid Mech. 60, 321362.Google Scholar
Ko, N. W. N. & Davies, P. O. A. L. 1971 The near field within the potential core of subsonic jets. J. Fluid Mech. 50, 4978.Google Scholar
Kwan, A. S. H. & Ko, N. W. M. 1976 Coherent structures in subsonic coaxial jets. J. Sound Vib. 48, 203219.Google Scholar
Lau, J. C. 1979a Laser velocimeter measurements and results. The Noise and Flow Characteristics of Inverted-profile Coannular Jets, chapter 5, pp. 79133. N.A.S.A. CR-158995.
Lau, J. C. 1979b The vortex street structure of ‘turbulent’ jets. Part 2. Proc. Roy. Soc. A 368, 547571.Google Scholar
Lau, J. C., Fisher, M. J. & Fuchs, H. V. 1972 The intrinsic structure of turbulent jets. J. Sound Vib. 22, 379406.Google Scholar
Lau, J. C., Morris, P. J. & Fisher, M. J. 1979 Turbulence measurements in subsonic and supersonic jets using a laser velocimeter. J. Fluid Mech. 93, 127 (see also A.I.A.A. 76–348, 1976).Google Scholar
Perry, A. E., Smits, A. J. & Chong, M. S. 1979 The effects of certain low frequency phenomena on the calibration of hot-wires. J. Fluid Mech. 90, 415431.Google Scholar
Shaughnessy, E. H. & Morton, J. B. 1977 Laser light-scattering measurements of particle concentration in a turbulent jet. J. Fluid Mech. 80, 129148.Google Scholar
Steenstrup, F. V. 1975 Counting techniques applied to Laser Doppler anemometry. DISA Information 18, 2125.Google Scholar
Tutu, N. K. & Chevray, R. 1975 Cross-wire anemometry in high intensity turbulence. J. Fluid Mech. 71, 785800.Google Scholar
Whiffen, M. C. 1975 Polar response of an LV measurement volume. Proc. Minnesota Symp. on Laser Anemometry, pp. 589590.
Whiffen, M. C., Lau, J. C. & Smith, D. M. 1978 Design of LV experiments for turbulence measurements. Proc. Third Int. Wkshp on Laser Velocimeter, Purdue University, pp. 197207.