Bibliographic Details
| Title: |
Collapse of statistical equilibrium in large-scale hydroelastic turbulent waves. |
| Authors: |
Vernet, Marlone1,2, Falcon, Eric1 eric.falcon@u-paris.fr |
| Source: |
Journal of Fluid Mechanics. 2/25/2026, Vol. 1029, p1-15. 15p. |
| Subjects: |
Statistical equilibrium, Turbulence, Energy dissipation, Damping (Mechanics), Nonlinear optics |
| Abstract: |
At scales larger than the forcing scale, some out-of-equilibrium turbulent systems (such as hydrodynamic turbulence, wave turbulence and nonlinear optics) exhibit a state of statistical equilibrium where energy is equipartitioned among large-scale modes, in line with the Rayleigh-Jeans spectrum. Key open questions now pertain to either the emergence, decay, collapse or other non-stationary evolutions from this state. Here, we experimentally investigate the free decay of large-scale hydroelastic turbulent waves, initially in a regime of statistical equilibrium. Using space- and time-resolved measurements, we show that the total energy of these large-scale tensional waves decays as a power law in time. We derive an energy decay law from the theoretical initial equilibrium spectrum and the linear viscous damping, as no net energy flux is carried. Our prediction then shows a good agreement with experimental data over nearly two decades in time, for various initial effective temperatures of the statistical equilibrium state. We further identify the dissipation mechanism and confirm it experimentally. Our approach could be applied to other decaying turbulence systems, with the large scales initially in statistical equilibrium. [ABSTRACT FROM AUTHOR] |
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| Database: |
Engineering Source |