Research School of Physics and Engineering, The Australian National University, Canberra, ACT, Australia.
Phys Rev Lett. 2010 Dec 31;105(26):264501. doi: 10.1103/PhysRevLett.105.264501. Epub 2010 Dec 23.
The dimensionality of turbulence in fluid layers determines their properties. We study electromagnetically driven flows in finite-depth fluid layers and show that eddy viscosity, which appears as a result of three-dimensional motions, leads to increased bottom damping. The anomaly coefficient, which characterizes the deviation of damping from the one derived using a quasi-two-dimensional model, can be used as a measure of the flow dimensionality. Experiments in turbulent layers show that when the anomaly coefficient becomes high, the turbulent inverse energy cascade is suppressed. In the opposite limit turbulence can self-organize into a coherent flow.
流体层中湍流的维度决定了它们的特性。我们研究了有限深度流体层中电磁驱动的流动,并表明由于三维运动而出现的涡粘性导致底部阻尼增加。异常系数可以用来衡量流动的维度,它描述了阻尼与使用准二维模型得出的阻尼的偏差。在湍流层中的实验表明,当异常系数变得很高时,湍流的反向能量级联会受到抑制。在相反的极限下,湍流可以自我组织成一个相干流。