论文标题
深水表面重力波中孤子气的非线性光谱合成
Nonlinear spectral synthesis of soliton gas in deep-water surface gravity waves
论文作者
论文摘要
孤子气体代表物理系统中大型随机孤子合奏,这些系统以领先顺序显示可集成的动力学。尽管有明显的理论发展和观察性证据表明孤子气体在流体和光学介质中的无处不在,但他们的受控实验实现仍然缺失。我们使用非线性光谱理论的工具(逆散射变换(IST))报告了深水表面重力波中密集的孤子气的第一个控制合成,用于一阶焦点非线性schrödinger方程。孤子气是在一维水箱中实验生成的,我们证明我们可以控制和测量状态的密度i。 e。在IST光谱相空间中参数孤子气的概率密度函数。对产生的流体动力孤子气体的非线性光谱分析表明,在扰动的高阶效应的影响下,状态的密度逐渐变化,破坏了波动力学的整合性。
Soliton gases represent large random soliton ensembles in physical systems that display integrable dynamics at the leading order. Despite significant theoretical developments and observational evidence of ubiquity of soliton gases in fluids and optical media their controlled experimental realization has been missing. We report the first controlled synthesis of a dense soliton gas in deep-water surface gravity waves using the tools of nonlinear spectral theory (inverse scattering transform (IST)) for the one-dional focusing nonlinear Schrödinger equation. The soliton gas is experimentally generated in a one-dimensional water tank where we demonstrate that we can control and measure the density of states, i. e. the probability density function parametrizing the soliton gas in the IST spectral phase space. Nonlinear spectral analysis of the generated hydrodynamic soliton gas reveals that the density of states slowly changes under the influence of perturbative higher-order effects that break the integrability of the wave dynamics.