Matière et Systèmes Complexes (MSC), Université Paris Diderot, CNRS (UMR 7057), 75 013 Paris, France.
Phys Rev Lett. 2010 Oct 1;105(14):144502. doi: 10.1103/PhysRevLett.105.144502. Epub 2010 Sep 30.
We report experiments on gravity-capillary wave turbulence on the surface of a fluid. The wave amplitudes are measured simultaneously in time and space by using an optical method. The full space-time power spectrum shows that the wave energy is localized on several branches in the wave-vector-frequency space. The number of branches depends on the power injected within the waves. The measurement of the nonlinear dispersion relation is found to be well described by a law suggesting that the energy transfer mechanisms involved in wave turbulence are restricted not only to purely resonant interaction between nonlinear waves. The power-law scaling of the spatial spectrum and the probability distribution of the wave amplitudes at a given wave number are also measured and compared to the theoretical predictions.
我们报告了在流体表面的重力-毛细波湍流实验。通过使用光学方法,同时在时间和空间上测量波幅。全时空功率谱表明,波能在波矢-频率空间的几个分支上局域化。分支的数量取决于波中注入的能量。发现非线性色散关系的测量很好地符合一条定律,表明波湍流中涉及的能量传递机制不仅限于非线性波之间的纯共振相互作用。还测量了空间谱的幂律标度和给定波数处波幅的概率分布,并与理论预测进行了比较。