A Compound Droplet Undergoing Thermocapillary Migration Passing Through a Constricted Tube

Author:

Nguyen Vinh T.1,Vu Truong V.2,Nguyen Phan H.3,Nguyen Hoe D.1,Pham Binh D.1,Vu Hung V.4

Affiliation:

1. Faculty of Vehicle and Energy Engineering, Phenikaa University, Hanoi 12116, Vietnam; Graduate University of Science and Technology, Vietnam Academy of Science and Technology, 18 Hoang Quoc Viet, Cau Giay, Hanoi 10072, Vietnam

2. Faculty of Vehicle and Energy Engineering, Phenikaa University, Hanoi 12116, Vietnam; Phenikaa Research and Technology Institute (PRATI), A&A Green Phoenix Group, 167 Hoang Ngan, Hanoi 11313, Vietnam

3. Graduate University of Science and Technology, Vietnam Academy of Science and Technology, 18 Hoang Quoc Viet, Cau Giay, Hanoi 10072, Vietnam

4. Faculty of Vehicle and Energy Engineering, Phenikaa University, Hanoi 12116, Vietnam

Abstract

Abstract In this paper, we numerically investigate the dynamics of a compound droplet driven by surface tension variation induced by a thermal gradient in a sinusoidal constriction tube. Initially, the compound droplet with a concentric inner core is spherical and placed in the constriction's upstream region at a low temperature. As time progresses, it migrates downstream with a high temperature. Due to the constriction, the droplet is slowed down in the upstream region and accelerated again right after passing the constriction. This acceleration maximizes the eccentricity. However, the constriction results in an increase in the maximum eccentricity when increasing its depth to a value corresponding to the size of the tube neck, which is greater than or equal to the droplet size. Effects of various parameters, e.g., the Marangoni number Ma, the capillary number Ca, and the radius ratio Rio, are studied. It is found that increasing the Ma number or decreasing the Ca number reduces the maximum eccentricity and prolongs the travel time, i.e., the arrival time, from the upstream to the downstream. A similar reduction in the maximum eccentricity also occurs with the increased Rio ratio. Effects of these parameters on the migration velocity are also revealed.

Funder

National Foundation for Science and Technology Development

Publisher

ASME International

Subject

Mechanical Engineering

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Impact of Two Successive Compound Droplets Undergoing Thermal Convection;Iranian Journal of Science and Technology, Transactions of Mechanical Engineering;2023-06-12

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