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Multiple self-similar crossovers in a hydrodynamic interface

Published 23 Sep 2026 in cond-mat.soft, cond-mat.stat-mech, and physics.flu-dyn | (2609.28849v1)

Abstract: Self-similar dynamics are often described in terms of a single asymptotic scaling regime. Here we experimentally investigate the post-breakup recovery of a hydrodynamic interface over substantially wider temporal and spatial ranges than previously accessible. Beyond the previously identified scaling behavior, we find four successive self-similar regimes characterized by the RβR_β-scaling with β=1/6β=1/6, 1/2, 1, and 2, connected by three distinct crossovers. All four regimes exhibit robust collapse near the interface tip, while geometrical dependence becomes detectable farther from the singular region. This systematic variation across space and scaling regimes is consistent with scale separation and enhanced universality closer to the breakup singularity. The characteristic scales associated with the different RβR_β-scalings become comparable at the common geometric scale zm≃Rz_m \simeq R. These findings demonstrate that self-similar dynamics can undergo multiple successive crossovers among distinct scaling regimes rather than directly approaching a single asymptotic self-similar state.

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