paper

Experimental Evidence for Longitudinal Scaling Exponent Saturation in Shear Turbulence

arXiv:2605.01867

Abstract

The asymptotic behavior of velocity statistics in the tails of distributions and at high Reynolds numbers remains unresolved in turbulence. To investigate this behavior we measured the th-order moments of the distributions of longitudinal velocity differences, , in turbulent shear layers at Taylor-scale Reynolds numbers up to . We used a nanoscale hot-wire probe with a sensing length, , that was about half the Kolmogorov scale, . We obtained datasets that were up to integral timescales long, so that the statistics converged up to . In the inertial range, the exponents, , deviate from classical models and appear to saturate near for . The saturation in the exponents is supported by a collapse of the tails of the velocity-difference distributions, and by plateaus in their compensated moments. These results constitute the first experimental evidence for scaling exponent saturation in longitudinal velocity increments, and is consistent with a dominance of localized vortex filaments in turbulence.

6 pages, 4 figures