標題: Surface Tension Flows inside Surfactant-Added Poly(dimethylsiloxane) Microstructures with Velocity-Dependent Contact Angles
作者: Chen, Jyh Jian
Liao, Shih Chuan
Liu, Mao Hsun
Lin, Jenn Der
Sheu, Tsung Sheng
Miao, Ming, Jr.
機械工程學系
Department of Mechanical Engineering
關鍵字: microfluidics;dynamic contact angle;gas-liquid interface;surface tension;filling process
公開日期: 1-六月-2014
摘要: Filling of liquid samples is realized in a microfluidic device with applications including analytical systems, biomedical devices, and systems for fundamental research. The filling of a disk-shaped polydimethylsiloxane (PDMS) microchamber by liquid is analyzed with reference to microstructures with inlets and outlets. The microstructures are fabricated using a PDMS molding process with an SU-8 mold. During the filling, the motion of the gas-liquid interface is determined by the competition among inertia, adhesion, and surface tension. A single ramp model with velocity-dependent contact angles is implemented for the accurate calculation of surface tension forces in a three-dimensional volume-of-fluid based model. The effects of the parameters of this functional form are investigated. The influences of non-dimensional parameters, such as the Reynolds number and the Weber number, both determined by the inlet velocity, on the flow characteristics are also examined. An oxygen-plasma-treated PDMS substrate is utilized, and the microstructure is modified to be hydrophilic. Flow experiments are conducted into both hydrophilic and hydrophobic PDMS microstructures. Under a hydrophobic wall condition, numerical simulations with imposed boundary conditions of static and dynamic contact angles can successfully predict the moving of the meniscus compared with experimental measurements. However, for a hydrophilic wall, accurate agreement between numerical and experimental results is obvious as the dynamic contact angles were implemented.
URI: http://dx.doi.org/10.3390/mi5020116
http://hdl.handle.net/11536/24673
ISSN: 2072-666X
DOI: 10.3390/mi5020116
期刊: MICROMACHINES
Volume: 5
Issue: 2
起始頁: 116
結束頁: 138
顯示於類別:期刊論文


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