Investigation of inertial focusing of micro- and nanoparticles in spiral microchannels using computational fluid dynamics

被引:9
作者
Aldemir, Ahmet Turan [1 ]
Cadirci, Sertac [1 ]
Trabzon, Levent [1 ,2 ]
机构
[1] Istanbul Tech Univ, Dept Mech Engn, TR-34437 Gumussuyu, Istanbul, Turkiye
[2] Istanbul Tech Univ, MEMS Res Ctr, Mech Engn Dept, Istanbul, Turkiye
关键词
SPHERICAL-PARTICLE; POISEUILLE FLOW; RIGID SPHERES; MICROFLUIDICS; LIFT; SEPARATION; MIGRATION; MOTION;
D O I
10.1063/5.0173356
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Inertial microfluidics utilize hydrodynamic forces for particle manipulation and require precise trajectory estimation for efficiency. This study examines parameters affecting micro- and nanoparticle inertial focusing in microchannels by introducing a novel sunflower geometry through asymmetric serpentine segments. This design enhances inertial focusing and particle separation through the Dean effect and continuous acceleration modulation, bolstering operational efficiency. Dynamic variations in lift (F-L) and drag forces (F-D) within the sunflower geometry augment their ratio, improving particle separation. Asymmetric serpentine attribute enhances lift force by adapting the coefficients (G(1) and G(2)) along the channel and amplifies the net lift force. The varying F-L in different sunflower zones concentrates particles of different sizes, while the channel curvature influences F-D. While the traditional spiral microchannel only provides global forces due to its radius of curvature, the sunflower microchannel gives rise to the superposition of local forces induced by the expanding and narrowing changing of the serpentine shape and the global forces caused by the spiral shape. The study also examines the differences between local and global force effects on particle focusing. Ultimately, a passive separation of 500 nm particle is achieved by collecting the nanoparticle on the inner surface, while 1 mu m particle locates at the central axis and 3.3 mu m particle clusters on the outer surface. The significance of the study is that the effective passive particle separation could be managed even for sub micrometer particles without any auxiliary external forces but with inertial forces thanks to the novel sunflower microchannel design.
引用
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页数:12
相关论文
共 54 条
[1]   A Review of the Methods of Modeling Multi-Phase Flows within Different Microchannels Shapes and Their Applications [J].
Abidi, Awatef ;
Ahmadi, Amir ;
Enayati, Mojtaba ;
Sajadi, S. Mohammad ;
Yarmand, Hooman ;
Ahmed, Arslan ;
Cheraghian, Goshtasp .
MICROMACHINES, 2021, 12 (09)
[2]   The inertial lift on a spherical particle in a plane Poiseuille flow at large channel Reynolds number [J].
Asmolov, ES .
JOURNAL OF FLUID MECHANICS, 1999, 381 :63-87
[3]   Experimental and Numerical Investigation of a Novel Spiral Micromixer with Sinusoidal Channel Walls [J].
Bahrami, Dariush ;
Bayareh, Morteza .
CHEMICAL ENGINEERING & TECHNOLOGY, 2022, 45 (01) :100-109
[4]   The upcoming 3D-printing revolution in microfluidics [J].
Bhattacharjee, Nirveek ;
Urrios, Arturo ;
Kanga, Shawn ;
Folch, Albert .
LAB ON A CHIP, 2016, 16 (10) :1720-1742
[5]   Studying dynamic stress effects on the behaviour of THP-1 cells by microfluidic channels [J].
Birol, Semra Zuhal ;
Fucucuoglu, Rana ;
Cadirci, Sertac ;
Sayi-Yazgan, Ayca ;
Trabzon, Levent .
SCIENTIFIC REPORTS, 2021, 11 (01)
[6]   Experimental and numerical investigation on particle-particle interaction of multi-particle separation in an alternating and repetitive microchannel [J].
Cadirci, S. ;
Ince, D. ;
Ghanem, I. ;
Birol, S. Z. ;
Trabzon, L. ;
Turhan, H. .
MICROSYSTEM TECHNOLOGIES-MICRO-AND NANOSYSTEMS-INFORMATION STORAGE AND PROCESSING SYSTEMS, 2019, 25 (01) :307-318
[7]  
COMSOL Inc, 2017, Microfluidics Module User's Guide Version 5.3a
[9]   Continuous inertial focusing, ordering, and separation of particles in microchannels [J].
Di Carlo, Dino ;
Irimia, Daniel ;
Tompkins, Ronald G. ;
Toner, Mehmet .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2007, 104 (48) :18892-18897
[10]   Inertial microfluidics [J].
Di Carlo, Dino .
LAB ON A CHIP, 2009, 9 (21) :3038-3046