Temporal characteristics of the probability density function of velocity in wall-bounded turbulent flows

Journal Article (2021)
Author(s)

A. Laskari (California Institute of Technology, TU Delft - Multi Phase Systems)

Beverley J. McKeon (California Institute of Technology)

Research Group
Multi Phase Systems
Copyright
© 2021 A. Laskari, Beverley J. McKeon
DOI related publication
https://doi.org/10.1017/jfm.2020.1163
More Info
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Publication Year
2021
Language
English
Copyright
© 2021 A. Laskari, Beverley J. McKeon
Research Group
Multi Phase Systems
Volume number
913
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Abstract

The probability density function (p.d.f.) of the streamwise velocity has been shown to indicate the presence of uniform momentum zones in wall-bounded turbulent flows. Most studies on the topic have focused on the instantaneous characteristics of this p.d.f. In this work, we show how the use of time-resolved particle image velocimetry data highlights robust features in the temporal behaviour of the p.d.f. and how these patterns are associated with the change of the number of zones present in the flow over time. The use of a limited resolvent model provides a clear link between this experimentally observed behaviour and the underlying velocity structures and their phase characteristics. This link is further supported by an extended resolvent model consisting of self-similar hierarchies centred in the logarithmic region, with triadically consistent members, yielding much more complex patterns in the p.d.f. Results indicate that the geometric similarity of these members instantaneously, as well as their relative evolution in time (dictated by their wall-normal varying wave speed), both inherent to the model, can reproduce many experimentally identified features.