Mesoscopic simulation of fluid flow in periodically grooved microchannels

被引:30
作者
Kasiteropoulou, D. [1 ]
Karakasidis, T. E. [1 ]
Liakopoulos, A. [1 ]
机构
[1] Univ Thessaly, Hydromech & Environm Engn Lab, Sch Engn, Volos 38834, Volos, Greece
关键词
Grooved microchannels; Dissipative particle dynamics; Coarse-graining; Friction factor; Protrusion size effect; CONVECTIVE HEAT-TRANSFER; SURFACE-ROUGHNESS; GAS-FLOW; BOUNDARY-CONDITIONS; CHANNEL; MICROMIXER;
D O I
10.1016/j.compfluid.2013.01.010
中图分类号
TP39 [计算机的应用];
学科分类号
080201 [机械制造及其自动化];
摘要
In the present work we investigate the effect of wall protrusions on flows in microchannels using Dissipative Particle Dynamics (DPD). Protrusions are introduced by periodically placing rectangular protruding elements on the upper channel wall. The protrusion length and height are varied and their effect on the flow is examined. Periodic boundary conditions are imposed in the streamwise and spanwise directions. Bounce-back reflecting boundary conditions are enforced at the fluid-solid wall interface. Simulations are performed for a range of values of the external driving force. Analysis of fluid particle trajectories and average residence time reveals temporary trapping of fluid inside the upper wall cavities for a considerable amount of time. This trapping affects macroscopic quantities such as density, velocity, pressure and temperature distribution inside and close to the cavities as well as the functional relations between the flow friction factor and the flow Reynolds number. When compared to the channel with flat walls, lower flow velocities are observed in the core region of the channel. The reduction of velocities as the protrusion size varies is quantified. Density, pressure and temperature remain almost constant in the core of the channel and their distribution near and inside the cavities depend on the protrusion size. For all channel cases, the friction factor/Reynolds number relationship, follows a power law relation of the form, f Re = A = const, i.e. the Poiseuille number of the flow is constant. The value of constant A increases as the protrusion length decreases and the protrusion height increases, and represents the dependence of the flow resistance on the protrusion size. (C) 2013 Elsevier Ltd. All rights reserved.
引用
收藏
页码:91 / 101
页数:11
相关论文
共 46 条
[1]
NUMERICAL-CALCULATION OF STABLE 3-DIMENSIONAL TERTIARY STATES IN GROOVED-CHANNEL FLOW [J].
AMON, CH ;
PATERA, AT .
PHYSICS OF FLUIDS A-FLUID DYNAMICS, 1989, 1 (12) :2005-2009
[2]
Numerical Prediction of Convective Heat Transfer in Self-Sustained Oscillatory Flows [J].
Amon, Cristina H. ;
Mikic, Bora B. .
JOURNAL OF THERMOPHYSICS AND HEAT TRANSFER, 1990, 4 (02) :239-246
[3]
Shape optimization of a micromixer with staggered herringbone groove [J].
Ansari, Mubashshir Ahmad ;
Kim, Kwang-Yong .
CHEMICAL ENGINEERING SCIENCE, 2007, 62 (23) :6687-6695
[4]
Surface Roughness Effects in Micro and Nanofluidic Devices [J].
Asproulis, Nikolaos ;
Drikakis, Dimitris .
JOURNAL OF COMPUTATIONAL AND THEORETICAL NANOSCIENCE, 2010, 7 (09) :1825-1830
[6]
Effect of surface roughness on gas flow in microchannels by molecular dynamics simulation [J].
Cao, Bing-Yang ;
Chen, Min ;
Guo, Zeng-Yuan .
INTERNATIONAL JOURNAL OF ENGINEERING SCIENCE, 2006, 44 (13-14) :927-937
[7]
Molecular Momentum Transport at Fluid-Solid Interfaces in MEMS/NEMS: A Review [J].
Cao, Bing-Yang ;
Sun, Jun ;
Chen, Min ;
Guo, Zeng-Yuan .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2009, 10 (11) :4638-4706
[8]
Cuo Z, 2006, INT J COMPUT FLUID D, V20, P361
[9]
STATISTICAL-MECHANICS OF DISSIPATIVE PARTICLE DYNAMICS [J].
ESPANOL, P ;
WARREN, P .
EUROPHYSICS LETTERS, 1995, 30 (04) :191-196
[10]
Microchannel flow of a macromolecular suspension [J].
Fan, XJ ;
Phan-Thien, N ;
Yong, NT ;
Wu, XH ;
Xu, D .
PHYSICS OF FLUIDS, 2003, 15 (01) :11-21