Design and simulation of a microfluidic device for acoustic cell separation

被引:58
|
作者
Shamloo, Amir [1 ]
Boodaghi, Miad [1 ]
机构
[1] Sharif Univ Technol, Dept Mech Engn, Tehran, Iran
关键词
Acoustic cell separation; Numerical simulation; Standing surface acoustic wave; Microfluids; NUMERICAL-SIMULATION; ULTRASOUND FIELD; WAVES; PARTICLES; ACOUSTOPHORESIS; CHANNEL; SORTER; SSAW;
D O I
10.1016/j.ultras.2017.11.009
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Experimental acoustic cell separation methods have been widely used to perform separation for different types of blood cells. However, numerical simulation of acoustic cell separation has not gained enough attention and needs further investigation since by using numerical methods, it is possible to optimize different parameters involved in the design of an acoustic device and calculate particle trajectories in a simple and low cost manner before spending time and effort for fabricating these devices. In this study, we present a comprehensive finite element-based simulation of acoustic separation of platelets, red blood cells and white blood cells, using standing surface acoustic waves (SSAWs). A microfluidic channel with three inlets, including the middle inlet for sheath flow and two symmetrical tilted angle inlets for the cells were used to drive the cells through the channel. Two interdigital transducers were also considered in this device and by implementing an alternating voltage to the transducers, an acoustic field was created which can exert the acoustic radiation force to the cells. Since this force is dependent to the size of the cells, the cells are pushed towards the midline of the channel with different path lines. Particle trajectories for different cells were obtained and compared with a theoretical equation. Two types of separations were observed as a result of varying the amplitude of the acoustic field. In the first mode of separation, white blood cells were sorted out through the middle outlet and in the second mode of separation, platelets were sorted out through the side outlets. Depending on the clinical needs and by using the studied microfluidic device, each of these modes can be applied to separate the desired cells. (C) 2017 Elsevier B.V. All rights reserved.
引用
收藏
页码:234 / 243
页数:10
相关论文
共 50 条
  • [31] TAPERED ANGLE MICROFLUIDIC DEVICE FOR CELL SEPARATION USING HYDRODYNAMIC PRINCIPLE
    Jamrus, Muhammad Asyraf
    Ahmad, Mohd Ridzuan
    [J]. JURNAL TEKNOLOGI-SCIENCES & ENGINEERING, 2024, 86 (04): : 105 - 114
  • [32] Cell separation by an aqueous two-phase system in a microfluidic device
    Tsukamoto, Masatoshi
    Taira, Shu
    Yamamura, Shohei
    Morita, Yasutaka
    Nagatani, Naoki
    Takamura, Yuzuru
    Tamiya, Eiichi
    [J]. ANALYST, 2009, 134 (10) : 1994 - 1998
  • [33] CONTINUOUS SEPARATION OF WHITE BLOOD CELL FROM BLOOD IN A MICROFLUIDIC DEVICE
    Iliescu, Florina S.
    Sterian, Andreea P.
    Barbarini, Elena
    Avram, Marioara
    Iliescu, Ciprian
    [J]. UNIVERSITY POLITEHNICA OF BUCHAREST SCIENTIFIC BULLETIN-SERIES A-APPLIED MATHEMATICS AND PHYSICS, 2009, 71 (04): : 21 - 30
  • [34] Microfluidic device for both active and passive cell separation techniques: A review
    [J]. Ahmad, Mohd Ridzuan (mdridzuan@utm.my), 2025, 9
  • [35] Simulation Guided Microfluidic Design for Multitarget Separation Using Dielectrophoretic Principle
    Ansar, Mohamed Zackria B., I
    Tirth, Vineet
    Yousuff, Caffiyar Mohammed
    Shukla, Neeraj Kumar
    Islam, Saiful
    Irshad, Kashif
    Aarif, Mohammed K. O.
    [J]. BIOCHIP JOURNAL, 2020, 14 (04) : 390 - 404
  • [36] Simulation Guided Microfluidic Design for Multitarget Separation Using Dielectrophoretic Principle
    Mohamed Zackria Ansar B.I.
    Vineet Tirth
    Caffiyar Mohamed Yousuff
    Neeraj Kumar Shukla
    Saiful Islam
    Kashif Irshad
    K. O. Mohammed Aarif
    [J]. BioChip Journal, 2020, 14 : 390 - 404
  • [37] Design of a Hybrid Inertial and Magnetophoretic Microfluidic Device for CTCs Separation from Blood
    Nasiri, Rohollah
    Shamloo, Amir
    Akbari, Javad
    [J]. MICROMACHINES, 2021, 12 (08)
  • [38] CFD design of a microfluidic device for continuous dielectrophoretic separation of charged gold nanoparticles
    Dash, Swagatika
    Mohanty, Swati
    Pradhan, Sasmita
    Mishra, B. K.
    [J]. JOURNAL OF THE TAIWAN INSTITUTE OF CHEMICAL ENGINEERS, 2016, 58 : 39 - 48
  • [39] Numerical simulation of particle motion in a phase modulated surface acoustic wave microfluidic device
    Simon, Gergely
    Andrade, Marco A. B.
    Riehle, Mathis O.
    Desmulliez, Marc P. Y.
    Bernassau, Anne L.
    [J]. 2018 IEEE INTERNATIONAL ULTRASONICS SYMPOSIUM (IUS), 2018,
  • [40] Design and fabrication of device for cell dynamic culture in microfluidic chip
    Jiang Y.
    Liu C.
    Wei J.
    Yin S.-Q.
    Ding L.-Q.
    Li J.-M.
    [J]. Guangxue Jingmi Gongcheng/Optics and Precision Engineering, 2019, 27 (09): : 2020 - 2027