Ding Zijing, Wong Teck Neng
School of Mechanical and Aerospace Engineering, Nanyang Technological University, Singapore, 639798.
Phys Rev E Stat Nonlin Soft Matter Phys. 2014 Mar;89(3):033010. doi: 10.1103/PhysRevE.89.033010. Epub 2014 Mar 12.
In this paper, the electrohydrodynamic stability in an annular liquid layer with a radial electrical conductivity gradient is investigated. A weak shear flow arises from a constant pressure gradient in the axial direction. In the radial direction, an electric field is applied. The three-dimensional linear instability analysis is implemented to study the influence of the inner radius, electrical conductivity gradient, shear flow, and ionic diffusion on the dynamics of the fluid layer. It is found that the critical unstable mode may either be oscillatory or stationary. The system becomes more unstable as the dimensionless inner radius a increases. When the inner radius a is small, the critical unstable mode is stationary, while it is given by three-dimensional oblique waves when a is large. When the conductivity gradient is small, the critical unstable mode is the three-dimensional oblique wave, while when the conductivity gradient is large, it would switch to the stationary mode rather than the oscillatory mode. The system becomes more unstable when the Reynolds number is slightly increased from zero. Additionally, it is found that the electrical Schmidt number has dual effects. The liquid layer becomes either more unstable or stable as the electric Schmidt number increases.
本文研究了具有径向电导率梯度的环形液层中的电流体动力学稳定性。轴向的恒定压力梯度会产生弱剪切流。在径向方向上,施加了电场。通过三维线性稳定性分析来研究内半径、电导率梯度、剪切流和离子扩散对流体层动力学的影响。研究发现,临界不稳定模式可能是振荡的或静止的。随着无量纲内半径a的增加,系统变得更加不稳定。当内半径a较小时,临界不稳定模式是静止的,而当a较大时,它由三维斜波给出。当电导率梯度较小时,临界不稳定模式是三维斜波,而当电导率梯度较大时,它会切换到静止模式而不是振荡模式。当雷诺数从零略微增加时,系统变得更加不稳定。此外,发现电施密特数具有双重影响。随着电施密特数的增加,液层要么变得更不稳定,要么变得更稳定。