Tensorial navier-slip boundary conditions for patterned surfaces for fluid mixing: Numerical simulations and experiments

Citations

WEB OF SCIENCE

13
Citations

SCOPUS

14

초록

Navier-slip boundary condition has been investigated for patterned surfaces with various grooves for the application to fluid mixing by controlling flow patterns. Simple tensorial expression is applied for anisotropically patterned surfaces and effective slip lengths for various grooves have been evaluated for a wide range of Reynolds numbers and aspect ratios using a flow rate matching technique. By doing so, the applicability of the effective tensorial slip model has been presented that replaces physical surface patterns to reduce computational cost significantly. Using a simple model agitator with a rotating disk, modification of flow characteristics with various alignment angles of the patterned surface has been investigated. We report a critical Reynolds number of O(1) for flows in agitators, below which effective slip dominates over fluid inertia. Patterned poly(dimethylsiloxane) sheets are fabricated using a compression-molding/soft-lithography technique and flow visualization with laser-induced fluorescence reveals controllability of flow patterns with the patterned surface. (c) 2016 American Institute of Chemical Engineers AIChE J, 62: 4574-4585, 2016

키워드

Navier-slip boundary conditionslip lengthpatterned surfacefluid mixingreactive compression moldingMICROCHANNELSFLOW
제목
Tensorial navier-slip boundary conditions for patterned surfaces for fluid mixing: Numerical simulations and experiments
저자
Jang, Hye KyeongKim, Young JuWoo, Nam SubHwang, Wook Ryol
DOI
10.1002/aic.15355
발행일
2016-12
유형
Article
저널명
AICHE Journal
62
12
페이지
4574 ~ 4585