Influence of Gravitational Tilt on the Thermocapillary Convection in a Non-Axisymmetric Liquid Bridge

Shuo Yang, Yupeng Zhang, Jie Cui, Daocheng Qin, Yuhang Wang, Pushi Ge, Jintao Luo, Duojiao Guan, Yunyi Zheng
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Abstract

Fluid slosh caused by residual acceleration in microgravity is a common problem encountered in space engineering. To solve this problem, the ground-based experiment research on the influence of gravity jitter and gravitational tilt on the thermocapillary convection (TCC) transition behavior of non-axisymmetric liquid bridge has become an important issue in microgravity fluid management. Based on a mesoscale liquid bridge experimental platform which can realize gravitational tilt, the effect of gravitational tilt on TCC by using a high-speed camera equipped with a near-focus lens and a self-developed interface image recognition package. The results show that the spatio-temporal evolution of TCC by the influence of gravitational tilt is still divided into steady and oscillatory flow. In the stable TCC, the vortex core distortion of cellular flow caused by the imbalance left and right interface curvature invites cellular flow close to the free surface, and it shrinks to the intermediate height. As gravitational tilt increases, the transverse/longitudinal velocity peaks are significantly reduced, peak velocity has been reduced by 26-27%. Meanwhile, the longitudinal velocity gradient at the free interface increases significantly. Therefore, gravitational tilt plays an important role in improving the surface flow velocity. In the oscillatory TCC, the position of vortex core is closer to the free interface at the hot/cold corner as the periodic mutual occupation of the left and right cellular flows. The TCC is obviously inhibited due to the gravitational tilt. The critical temperature difference is increased by 25% and the onset of temperature oscillation at the hot corner is delayed by 20% compared with conventional gravity condition.
重力倾斜对非轴对称液桥中热毛细管对流的影响
微重力下的残余加速度引起的液体晃动是空间工程中遇到的一个常见问题。为解决这一问题,地面实验研究重力抖动和重力倾斜对非轴对称液桥热毛细对流(TCC)转换行为的影响已成为微重力流体管理的重要课题。基于可实现重力倾斜的中尺度液桥实验平台,利用配备近焦镜头的高速相机和自主研发的界面图像识别软件包,研究了重力倾斜对TCC的影响。结果表明,重力倾斜影响下的 TCC 时空演化仍分为稳定流和振荡流。在稳定 TCC 中,左右界面曲率不平衡导致的蜂窝流涡核畸变使蜂窝流靠近自由表面,并收缩到中间高度。随着重力倾斜度的增加,横向/纵向速度峰值显著降低,峰值速度降低了 26-27%。同时,自由界面上的纵向速度梯度明显增加。因此,重力倾斜在改善表面流速方面起着重要作用。在振荡 TCC 中,由于左右细胞流的周期性相互占据,涡核的位置更靠近冷热角的自由界面。由于重力倾斜,TCC 明显受到抑制。与传统重力条件相比,临界温差增加了 25%,热角温度振荡的开始时间延迟了 20%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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