TY - JOUR
T1 - Tunable structures of compound droplets formed by collision of immiscible microdroplets
AU - Chen, Xiaodong
AU - Sun, Yingnan
AU - Xue, Chundong
AU - Yu, Yude
AU - Hu, Guoqing
N1 - Publisher Copyright:
© 2017, Springer-Verlag GmbH Germany.
PY - 2017/6/1
Y1 - 2017/6/1
N2 - We study the dynamics of a small water droplet colliding with an immiscible large sessile oil droplet in the air. Such a three-phase system forms compound microdroplets with tunable structures, depending on whether the small droplet can penetrate into the large one. A structure of penetrative-engulfing is distinguished from structures which are determined by balancing of the three interfacial tensions among the three phases, i.e., partial-engulfing and complete-engulfing. We develop a three-phase volume-of-fluid method to investigate the collision dynamics numerically, considering the evolution of the triple-line among the three interfaces. Regime maps of the structures for different spreading parameters and heights of the oil droplet are obtained regarding the impact velocity and the viscosity ratio of oil and water. We find that the oil droplet is impenetrable when the viscosity ratio is higher than a critical value. For lower ratio, the structure varies non-monotonically with the impact velocity to cause two transitions. We propose a simple model for the lower transition by incorporating droplet deformation, viscous resistance, and spreading condition. The upper transition boundary is influenced by the spreading of the oil droplet, resulting in an increase in the required penetration length to prevent penetrative-engulfing. Understandings from this work may provide valuable guidelines for generating compound microdroplets with desired structures.
AB - We study the dynamics of a small water droplet colliding with an immiscible large sessile oil droplet in the air. Such a three-phase system forms compound microdroplets with tunable structures, depending on whether the small droplet can penetrate into the large one. A structure of penetrative-engulfing is distinguished from structures which are determined by balancing of the three interfacial tensions among the three phases, i.e., partial-engulfing and complete-engulfing. We develop a three-phase volume-of-fluid method to investigate the collision dynamics numerically, considering the evolution of the triple-line among the three interfaces. Regime maps of the structures for different spreading parameters and heights of the oil droplet are obtained regarding the impact velocity and the viscosity ratio of oil and water. We find that the oil droplet is impenetrable when the viscosity ratio is higher than a critical value. For lower ratio, the structure varies non-monotonically with the impact velocity to cause two transitions. We propose a simple model for the lower transition by incorporating droplet deformation, viscous resistance, and spreading condition. The upper transition boundary is influenced by the spreading of the oil droplet, resulting in an increase in the required penetration length to prevent penetrative-engulfing. Understandings from this work may provide valuable guidelines for generating compound microdroplets with desired structures.
KW - Compound microdroplets
KW - Immiscible droplet collision
KW - Structures
KW - Triple-line
KW - Volume of fluid
UR - http://www.scopus.com/inward/record.url?scp=85020673179&partnerID=8YFLogxK
U2 - 10.1007/s10404-017-1944-1
DO - 10.1007/s10404-017-1944-1
M3 - Article
AN - SCOPUS:85020673179
SN - 1613-4982
VL - 21
JO - Microfluidics and Nanofluidics
JF - Microfluidics and Nanofluidics
IS - 6
M1 - 109
ER -