Space-time statistics of 2D soliton gas in shallow water studied by stereoscopic surface mapping
arXiv:2405.14733 · doi:10.1007/s00348-024-03825-w
Abstract
We describe laboratory experiments in a 2D wave tank that aim at building up and monitor 2D shallow water soliton gas. The water surface elevation is obtained over a large () domain, with centimetre-resolution, by stereoscopic vision using two cameras. Floating particles are seeded to get surface texture and determine the wave field by image correlation. With this set-up, soliton propagation and multiple interactions can be measured with a previously unreachable level of detail. The propagation of an oblique soliton is analysed, the amplitude decay and local incidence are compared to analytical predictions. We further present two cases of 2D soliton gas, emerging from multiple line solitons with random incidence () and from irregular random waves forced with a {\sc jonswap} spectrum (). To our knowledge, those are the first observations of random 2D soliton gas for gravity waves. In both cases Mach reflections and Mach expansions result in solitons that mainly propagate in directions perpendicular to the wave-makers.
Accepted for publication in Experiments in Fluids
References in corpus (8)
- Experimental evidence of a hydrodynamic soliton gas
- Nonlinear spectral synthesis of soliton gas in deep-water surface gravity waves
- Spectral theory of soliton and breather gases for the focusing nonlinear Schrödinger equation
- Topological Control of Extreme Waves
- Soliton gas in bidirectional dispersive hydrodynamics
- Experimental study of integrable turbulence in shallow water
- Analysis of soliton gas with large-scale video-based wave measurements
- Evolution of truncated and bent gravity wave solitons: the Mach expansion problem