Influence of surface forces and wall effects on the minimum fluidization velocity of liquid-solid micro-fluidized beds

被引:24
作者
do Nascimento, Orlando L. [1 ]
Reay, David A. [1 ]
Zivkovic, Vladimir [1 ]
机构
[1] Newcastle Univ, Sch Chem Engn & Adv Mat, Newcastle Upon Tyne NE1 7RU, Tyne & Wear, England
基金
英国工程与自然科学研究理事会;
关键词
Fluidization; Micro-fluidized bed; Microfluidics; Surface forces; Wall effects; Process intensification; TOTAL ANALYSIS SYSTEMS; ON-A-CHIP; MICROFLUIDICS; TECHNOLOGIES; PARTICLES; GENERATION; ADHESION; FUTURE; SCALE; WATER;
D O I
10.1016/j.powtec.2016.05.013
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Micro-fluidized beds represent a novel means of significantly enhancing mixing, mass and heat transfer under the low Reynolds number flows that dominate in micro-devices used in microfluidics and chemical micro-process technologies. This is one way of implementing process intensification. Major differences of micro-fluidized beds from their classical macro-scale counterparts are the critical importance of surface forces and almost unavoidable wall effects due to their small bed size. Surface forces can become dominant over gravity and hydrodynamics forces at the microscale and fluidization could either be hindered or even prevented through the adhesion of particles to the walls of the bed. We have used the add-base theory of van Oss, Chaudhury and Good combined with the Derjaguin approximation to estimate the wall adhesion forces for compadson with hydrodynamics forces. Our new experiments show interesting fluidization behaviour at the boundary of micro-flow as a result of interplay between the ratio of surface and hydrodynamics forces and wall effects which both influence the minimum fluidization velocity. (C) 2016 Elsevier B.V. All rights reserved.
引用
收藏
页码:55 / 62
页数:8
相关论文
共 47 条
[21]   Effects of humidity on Young's modulus in poly(methyl methacrylate) [J].
Ishiyama, C ;
Higo, Y .
JOURNAL OF POLYMER SCIENCE PART B-POLYMER PHYSICS, 2002, 40 (05) :460-465
[22]   Nanoscale surface roughness affects low Reynolds number flow: Experiments and modeling [J].
Jaeger, R. ;
Ren, J. ;
Xie, Y. ;
Sundararajan, S. ;
Olsen, M. G. ;
Ganapathysubramanian, B. .
APPLIED PHYSICS LETTERS, 2012, 101 (18)
[23]   Microreaction engineering - is small better? [J].
Jensen, KF .
CHEMICAL ENGINEERING SCIENCE, 2001, 56 (02) :293-303
[24]   Mechanical characterization of bulk Sylgard 184 for microfluidics and microengineering [J].
Johnston, I. D. ;
McCluskey, D. K. ;
Tan, C. K. L. ;
Tracey, M. C. .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2014, 24 (03)
[25]  
Kashani M. Nawab, 2016, CHEM ENG SCI
[26]   A new method for reconstruction of the structure of micro-packed beds of spherical particles from desktop X-ray microtomography images. Part A. Initial structure generation and porosity determination [J].
Kashani, Moein Navvab ;
Zivkovic, Vladimir ;
Elekaei, Hamideh ;
Biggs, Mark James .
CHEMICAL ENGINEERING SCIENCE, 2016, 146 :337-345
[27]   Bead-based microfluidic immunoassays: The next generation [J].
Lim, C. T. ;
Zhang, Y. .
BIOSENSORS & BIOELECTRONICS, 2007, 22 (07) :1197-1204
[28]   Micro fluidized beds: Wall effect and operability [J].
Liu, Xinhua ;
Xu, Guangwen ;
Gao, Shiqiu .
CHEMICAL ENGINEERING JOURNAL, 2008, 137 (02) :302-307
[29]   MINIATURIZED TOTAL CHEMICAL-ANALYSIS SYSTEMS - A NOVEL CONCEPT FOR CHEMICAL SENSING [J].
MANZ, A ;
GRABER, N ;
WIDMER, HM .
SENSORS AND ACTUATORS B-CHEMICAL, 1990, 1 (1-6) :244-248
[30]   Microfluidic large-scale integration: The evolution of design rules for biological automation [J].
Melin, Jessica ;
Quake, Stephen R. .
ANNUAL REVIEW OF BIOPHYSICS AND BIOMOLECULAR STRUCTURE, 2007, 36 :213-231