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蒸发静止液滴接触线附近涡旋结构的反向级联

Inverse cascade of the vortical structures near the contact line of evaporating sessile droplets.

作者信息

Ghasemi Abbas, Ahmet Tuna Burak, Li Xianguo

机构信息

Department of Mechanical and Mechatronics Engineering, University of Waterloo 200 University Avenue West, Waterloo, Ontario, N2L 3G1, Canada.

出版信息

Sci Rep. 2019 May 1;9(1):6784. doi: 10.1038/s41598-019-43289-1.

Abstract

Microscopic imaging as well as the particle image velocimetry (PIV) are carried out to evaluate the concentration, velocity and vorticity fields near the contact line of the nano-particles-laden evaporating sessile droplets. After the onset of the linear thermocapillary instabilities due to the Marangoni perturbations, the non-linear state sets in and the micro-scale jet-like vortex structures are ejected from the contact line towards the center of the droplet. Afterwards, the jet-like vortical structures expand in the spanwise directions and start to interact with the neighbouring structures. Two types of the inverse cascade mechanisms are found to occur. In the first kind, the vortices of the similar length scale merge and continuously produce larger vortices and corresponding wavelength growth. The second inverse cascade mechanism takes place due to the entrainment of the smaller vortices into the larger structures. Both inverse cascade processes are identified as the continuous feeding of the kinetic energy from the smaller scales to the larger scales. For individual micro-jets the velocity field characterizes the jet-like vortex structures ejected from the contact line towards the droplet center opposing the bulk flow from the center towards the contact line. In addition, the vorticity field overlaid by the velocity streamlines identify the sense of rotation of the low pressure zones on either side of the micro-jet as well as the high pressure stagnation point at the tip.

摘要

进行了显微镜成像以及粒子图像测速(PIV),以评估载有纳米颗粒的蒸发固着液滴接触线附近的浓度、速度和涡度场。由于马兰戈尼扰动导致线性热毛细不稳定性开始后,进入非线性状态,微尺度的射流状涡旋结构从接触线向液滴中心喷射。之后,射流状涡旋结构在展向方向上扩展,并开始与相邻结构相互作用。发现发生了两种类型的反向级联机制。在第一种机制中,相似长度尺度的涡旋合并并持续产生更大的涡旋以及相应波长的增长。第二种反向级联机制是由于较小的涡旋被卷入较大的结构中而发生的。这两种反向级联过程都被确定为动能从较小尺度持续输送到较大尺度。对于单个微射流,速度场表征了从接触线向液滴中心喷射的射流状涡旋结构,与从中心向接触线的整体流动方向相反。此外,由速度流线叠加的涡度场确定了微射流两侧低压区的旋转方向以及尖端处的高压驻点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a376/6494804/db54b0396592/41598_2019_43289_Fig1_HTML.jpg

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