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表面气泡合并时的自推进分离

Self-Propelled Detachment upon Coalescence of Surface Bubbles.

作者信息

Lv Pengyu, Peñas Pablo, Le The Hai, Eijkel Jan, van den Berg Albert, Zhang Xuehua, Lohse Detlef

机构信息

State Key Laboratory for Turbulence and Complex Systems, Department of Mechanics and Engineering Science, Beijing Innovation Center for Engineering Science and Advanced Technology, College of Engineering, Peking University, Beijing 100871, People's Republic of China.

Physics of Fluids group, Faculty of Science and Technology, Max Planck-University of Twente Center for Complex Fluid Dynamics, MESA+Institute, and J. M. Burgers Centre for Fluid Dynamics, University of Twente, P.O. Box 217, 7500 AE Enschede, Netherlands.

出版信息

Phys Rev Lett. 2021 Dec 3;127(23):235501. doi: 10.1103/PhysRevLett.127.235501.

Abstract

The removal of microbubbles from substrates is crucial for the efficiency of many catalytic and electrochemical gas evolution reactions in liquids. The current work investigates the coalescence and detachment of bubbles generated from catalytic decomposition of hydrogen peroxide. Self-propelled detachment, induced by the coalescence of two bubbles, is observed at sizes much smaller than those determined by buoyancy. Upon coalescence, the released surface energy is partly dissipated by the bubble oscillations, working against viscous drag. The remaining energy is converted to the kinetic energy of the out-of-plane jumping motion of the merged bubble. The critical ratio of the parent bubble sizes for the jumping to occur is theoretically derived from an energy balance argument and found to be in agreement with the experimental results. The present results provide both physical insight for the bubble interactions and practical strategies for applications in chemical engineering and renewable energy technologies like electrolysis.

摘要

从底物中去除微泡对于许多液体中的催化和电化学析气反应的效率至关重要。当前的工作研究了过氧化氢催化分解产生的气泡的聚并和脱离。在比浮力所决定的尺寸小得多的情况下,观察到由两个气泡聚并引起的自推进脱离。聚并时,释放的表面能部分通过气泡振荡耗散,以对抗粘性阻力。剩余的能量转化为合并气泡平面外跳跃运动的动能。跳跃发生时母气泡尺寸的临界比从能量平衡论证中理论推导得出,并且发现与实验结果一致。目前的结果为气泡相互作用提供了物理见解,并为化学工程和可再生能源技术(如电解)中的应用提供了实用策略。

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