Simulation of a microfluidic directional driving device with sharp-edge structure excited with acoustic wave

被引:1
|
作者
Liu, Bendong [1 ]
Qiao, Meimei [1 ]
Zhang, Shaohua [1 ]
Yang, Jiahui [2 ]
机构
[1] Beijing Univ Technol, Fac Mat & Mfg, Beijing 100124, Peoples R China
[2] Beijing Vocat Coll Agr, Elect & Mech Coll, Beijing 102208, Peoples R China
来源
MODERN PHYSICS LETTERS B | 2024年 / 38卷 / 12期
关键词
Acoustic wave; sharp-edge structure; simulation; micropump; microfluidic; GRADIENT GENERATION; MICROPUMP;
D O I
10.1142/S0217984924500672
中图分类号
O59 [应用物理学];
学科分类号
摘要
The microfluidic device with sharp-edge structures excited with acoustic wave has the characteristics of simple structure, easy manufacture, good bio-compatibility and fast response and has a good application prospect. In order to make full use of its driving characteristics, a scheme of microfluidic driving device with sharp-edge structures is designed in this paper, and the effect of structural parameters on its driving performance is analyzed with the finite element software COMSOL5.6. The model of sharp-edge structure in micro channel is established, and the relationship between the vibration mode and the resonant frequency and the inclined angle of sharp-edge structure is simulated. With the increase of the inclined angle of the sharp-edge structure, its resonant frequency with optimal vibration mode increases. The effects of the micro channel width, the inclined angle between the sharp-edge structure and the micro channel, and the distance between the two sharp-edge structures on the driving velocity are analyzed with the optimal vibration mode. The results show that the parameters of the sharp-edge structure and the micro channel can significantly affect the micro flow field and the driving effect of the micro fluid. As the width of the micro channel, the inclined angle between the sharp-edge structure and the micro channel, and the distance between the two sharp-edge structures decrease, the flow field in the micro channel increases. When the micro channel width is 500 mu m, the inclined angle between the sharp-edge structure and the micro channel is 45 circle, and the distance between the two pairs of sharp-edge structures is 150 mu m, the microfluidic driving effect is the best, the maximum flow rate is 458.24 mu m/s and the velocity fluctuation transverse along the micro channel is the smallest.
引用
收藏
页数:16
相关论文
共 50 条
  • [21] PSPICE simulation of second effects for surface acoustic wave device
    College of Information Science and Engineering, Ningbo University, Ningbo 315211, China
    Guti Dianzixue Yanjiu Yu Jinzhan, 2008, 4 (627-630+632):
  • [22] Simulation and experimental verification of driving mechanism for a microfluidic device based on electrowetting-on-dielectric
    Chen, Liguo
    Xu, Xiaowei
    He, Wenyuan
    Sun, Lining
    2013 INTERNATIONAL CONFERENCE ON MANIPULATION, MANUFACTURING AND MEASUREMENT ON THE NANOSCALE (3M-NANO), 2013, : 92 - 96
  • [23] Directional Acoustic Wave Manipulation by a Porpoise via Multiphase Forehead Structure
    Zhang, Yu
    Song, Zhongchang
    Wang, Xianyan
    Cao, Wenwu
    Au, Whitlow W. L.
    PHYSICAL REVIEW APPLIED, 2017, 8 (06):
  • [24] Directional transmission of acoustic wave based on sector-shaped structure
    Cai, Wentao
    Zhao, Xinsa
    Hao, Guodong
    Han, Jianning
    AIP ADVANCES, 2025, 15 (02)
  • [25] Surface Acoustic Wave-Based Microfluidic Coagulation Device for Monitoring Anticoagulant Therapy
    Harder, Sebastian
    dos Santos, Sascha Meyer
    Krozer, Viktor
    Moll, Jochen
    SEMINARS IN THROMBOSIS AND HEMOSTASIS, 2019, 45 (03): : 253 - 258
  • [26] Dispatching microfluid for a paper-based microfluidic device based on surface acoustic wave
    Liu, Wei-Yue
    Cai, Ya-Wei
    Xu, Yue
    FERROELECTRICS, 2018, 537 (01) : 246 - 254
  • [27] Numerical simulation of multi-directional wave and structure interaction
    Xu G.
    Chen J.
    Zhu R.
    Liu Y.
    Wang S.
    Harbin Gongcheng Daxue Xuebao/Journal of Harbin Engineering University, 2019, 40 (03): : 462 - 467
  • [28] Surface Acoustic Wave-Based Microfluidic Device for Microparticles Manipulation: Effects of Microchannel Elasticity on the Device Performance
    Mezzanzanica, Gianluca
    Francais, Olivier
    Mariani, Stefano
    MICROMACHINES, 2023, 14 (09)
  • [29] A surface acoustic wave dynamics control device by grating structure
    Miyashita, Masahiro
    Onuki, Teppei
    Nagasawa, Sumito
    Kuwano, Hiroshi
    MEMS 2008: 21ST IEEE INTERNATIONAL CONFERENCE ON MICRO ELECTRO MECHANICAL SYSTEMS, TECHNICAL DIGEST, 2008, : 661 - 664
  • [30] Rational design of robust flower-like sharp-edge acoustic micromixers towards efficient engineering of functional 3D ZnO nanorod array
    Zhao, Xiong
    Chen, Hongqiang
    Xiao, Yaxuan
    Zhang, Jinhua
    Qiu, Yinan
    Wei, Jinjia
    Hao, Nanjing
    CHEMICAL ENGINEERING JOURNAL, 2022, 447