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Numerical study and Taguchi optimization of fluid mixing by a microheater-modulated alternating current electrothermal flow in a Y-shape microchannel

机译:Y形微通道中微热器调制交流电热流体混合的数值研究与晶片混合

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摘要

This paper presents the numerical analysis and Taguchi optimization of fluid mixing by alternating current electrothermal flow (ACET) in a Y-shape microchannel. In the numerical study, ACET is simulated through the interaction of a non-uniform electric field provided through co-planar electrodes and the temperature gradients produced by a micro-heater. To achieve the efficient ACET mixing of fluids, a parametric study of various factors affecting the structure and strength of ACET is first performed and then, a detailed physical interpretation of the results is presented. The factors include the applied electric potential, the location, size, and heating intensity of a micro-heater, the inlet velocity ratio of fluids mixed, and the cross-sectional aspect ratio of a Y-shape micro-channel. Optimum condition of the factors is determined using the Taguchi method to maximize the fluid mixing by ACET. Results show that the ACET-based mixing is affected, in order of importance, by the inlet velocity ratio of fluids, the applied electric potential, the cross-sectional aspect ratio of a Y-shape microchannel, and the location, heating intensity, and size of a micro-heater. Under the optimum condition of the factors, a high mixing efficiency of 90.4% is achieved in the microchannel. The ACET mixing at the optimum condition is experimentally verified by fabricating micro-mixers and confirming the concentration change of fluids introduced into the mixers. These results provide valuable engineering insights into the design and development of not only ACET-based microfluidic devices including a micro-mixer but also lab-on-a-chip systems for bioassay where the devices are integrated.
机译:本文介绍了Y形微通道中的交流电热流动(ACET)流体混合的数值分析和Taguchi优化。在数值研究中,通过通过共平面电极提供的不均匀电场的相互作用和通过微加热器产生的温度梯度来模拟轴。为了实现流体的有效血管混合,首先进行一项对影响轴的结构和强度的各种因素的参数研究,然后提出了对结果的详细物理解释。这些因素包括微加热器的施加电位,位置,尺寸和加热强度,流体的入口速度比和Y形微通道的横截面纵横比。使用Taguchi方法测定因子的最佳条件,以最大化血管混合的流体混合。结果表明,基于血管基混合的是,通过流体的入口速度,施加的电位,y形微通道的横截面纵横比以及位置,加热强度和和微加热器的尺寸。在因素的最佳条件下,在微通道中实现了90.4%的高混合效率。通过制造微混合器并确认引入混合器中的流体的浓度变化,通过制造微混合器进行实验验证。这些结果提供了有价值的工程见解,不仅进入基于轴的微流体装置的设计和开发,包括微混合器,还提供了用于生物测定的实验室内系统,其中集成器件。

著录项

  • 来源
    《Sensors and Actuators》 |2021年第2期|129242.1-129242.10|共10页
  • 作者单位

    Department of Mechanical Engineering Incheon National University Incheon Republic of Korea;

    Department of Biomedical Engineering National Cheng Kung University Taiwan Center for Micro/Nano Science and Technology National Cheng Kung University Taiwan;

    Division of Thermal and Fluids Science Institute for Computational Science Faculty of Electrical and Electronics Engineering Ton Due Thang University Ho Chi Minh City Vietnam Department of Mechanical Engineering Incheon National University Incheon Republic of Korea;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Lab-on-a-chip; Micro-Mixing; Alternating current electrothermal flow; Mixing index; Taguchi optimization;

    机译:实验室内芯片;微混合;交流电流电热;混合指数;taguchi优化;

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