Department of Mechanical Engineering, Imperial College London, Exhibition Road, London, SW7 2AZ, United Kingdom.
Department of Mechanical Engineering, Johns Hopkins University, Baltimore, Maryland 21218, USA.
Phys Rev E. 2016 Apr;93:043107. doi: 10.1103/PhysRevE.93.043107. Epub 2016 Apr 5.
Molecular dynamics simulations of flow between concentric rotating cylinders are performed. As the relative speed between the two cylinders is increased, a spontaneous flow bifurcation occurs and vortices form in a stationary-vortex or traveling-wavy-vortex configuration. The former emerges when the axial boundary conditions constrain the flow by reflection, and the traveling-wavy-vortex flow develops when the axial boundaries are relaxed to periodic conditions. The flow bifurcation is triggered by the thermal fluctuations in the system, and the resulting flow field is in agreement with previous experimental observations. In addition, the temporal growth of the Fourier mode that characterizes the wavy-vortex motion is well described by Landau's theory for Hopf bifurcations. The spatiotemporal energy spectrum is evaluated in order to characterize the instability in terms of its azimuthal wave number and wave speed.
对同心旋转圆柱之间的流动进行了分子动力学模拟。随着两个圆柱之间的相对速度增加,自发的流动分岔发生,并且在固定涡旋或行波涡旋配置中形成涡旋。当轴向边界条件通过反射来限制流动时,会出现前一种情况,而当轴向边界条件被放宽为周期性条件时,行波涡旋流动就会发展。流动分岔是由系统中的热波动触发的,所得的流场与先前的实验观察结果一致。此外,行波运动特征的傅里叶模式的时间增长很好地描述了兰道尔对霍普夫分岔的理论。评估了时空能量谱,以根据其角波数和波速来描述不稳定性。