Tracking the nonlinear formation of an interfacial wave spectral cascade from one to few to many

Fuente: arXiv
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Autori principali: Gregory, Sean M. D., Schiattarella, Silvia, Barroso, Vitor S., Kaiser, David I., Avgoustidis, Anastasios, Weinfurtner, Silke
Natura: Preprint
Pubblicazione: 2024
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author Gregory, Sean M. D.
Schiattarella, Silvia
Barroso, Vitor S.
Kaiser, David I.
Avgoustidis, Anastasios
Weinfurtner, Silke
author_facet Gregory, Sean M. D.
Schiattarella, Silvia
Barroso, Vitor S.
Kaiser, David I.
Avgoustidis, Anastasios
Weinfurtner, Silke
contents A hallmark of far-from-equilibrium systems is the emergence of a spectral cascade, where energy is transferred across length-scales following a simple power law. The universal nature of this phenomenon has led to advances in a range of disciplines, including climate forecasting, foreign exchange trading, and the modelling of neurological activity. For many diverse far-from-equilibrium scenarios, the scaling laws of steady states have been successfully predicted by the statistical theory of weak wave turbulence, originally developed by considering the leading order interactions between waves on a fluid surface. However, the predictive power of weak wave turbulence breaks down in the presence of large amplitudes, high dissipation, and finite-size effects. We offer new insight into these regimes by experimentally tracking the formation of a spectral cascade under these conditions in an externally driven fluid-fluid interface. We resolve individual wave modes and observe their time evolution from one to few to many, a process culminating in a steady state with a spectral density characterised by a power-law scaling. Our findings confirm that interfacial dynamics can be effectively modelled by a weakly nonlinear Lagrangian theory, a predictive framework encompassing both underlying wave interaction and emergent behaviours of the system. Such nonlinear interactions are experimentally quantified through statistical correlations, revealing a hierarchy in wave-mixing order that confirms a key assumption of weak wave turbulence. The Lagrangian formulation further aids our time-evolution analysis; specific interactions are tracked through time, and we predict the timescale until a cascade emerges. Our findings are transferable to other far-from-equilibrium systems, which we demonstrate by providing a mapping to reheating scenarios following cosmic inflation in the early Universe.
format Preprint
id arxiv_https___arxiv_org_abs_2410_08842
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Tracking the nonlinear formation of an interfacial wave spectral cascade from one to few to many
Gregory, Sean M. D.
Schiattarella, Silvia
Barroso, Vitor S.
Kaiser, David I.
Avgoustidis, Anastasios
Weinfurtner, Silke
General Relativity and Quantum Cosmology
High Energy Physics - Theory
Pattern Formation and Solitons
Fluid Dynamics
A hallmark of far-from-equilibrium systems is the emergence of a spectral cascade, where energy is transferred across length-scales following a simple power law. The universal nature of this phenomenon has led to advances in a range of disciplines, including climate forecasting, foreign exchange trading, and the modelling of neurological activity. For many diverse far-from-equilibrium scenarios, the scaling laws of steady states have been successfully predicted by the statistical theory of weak wave turbulence, originally developed by considering the leading order interactions between waves on a fluid surface. However, the predictive power of weak wave turbulence breaks down in the presence of large amplitudes, high dissipation, and finite-size effects. We offer new insight into these regimes by experimentally tracking the formation of a spectral cascade under these conditions in an externally driven fluid-fluid interface. We resolve individual wave modes and observe their time evolution from one to few to many, a process culminating in a steady state with a spectral density characterised by a power-law scaling. Our findings confirm that interfacial dynamics can be effectively modelled by a weakly nonlinear Lagrangian theory, a predictive framework encompassing both underlying wave interaction and emergent behaviours of the system. Such nonlinear interactions are experimentally quantified through statistical correlations, revealing a hierarchy in wave-mixing order that confirms a key assumption of weak wave turbulence. The Lagrangian formulation further aids our time-evolution analysis; specific interactions are tracked through time, and we predict the timescale until a cascade emerges. Our findings are transferable to other far-from-equilibrium systems, which we demonstrate by providing a mapping to reheating scenarios following cosmic inflation in the early Universe.
title Tracking the nonlinear formation of an interfacial wave spectral cascade from one to few to many
topic General Relativity and Quantum Cosmology
High Energy Physics - Theory
Pattern Formation and Solitons
Fluid Dynamics
url https://arxiv.org/abs/2410.08842