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基于模糊逻辑技术的微混合器装置数值模拟与参数优化

Numerical simulation and parameter optimization of micromixer device using fuzzy logic technique.

作者信息

K Karthikeyan, Kandasamy Senthil Kumar, P Saravanan, Alodhayb Abdullah

机构信息

Department of Electronics and Communication Engineering, M.Kumarasamy College of Engineering Karur Tamil Nadu India

Department of Electronics and Communication Engineering, Kongu Engineering College Erode Tamil Nadu India

出版信息

RSC Adv. 2023 Feb 2;13(7):4504-4522. doi: 10.1039/d2ra07992e. eCollection 2023 Jan 31.

Abstract

The objective of this study is the design, simulation, and performance optimization of a micromixer device using the three input parameters of device structure, flow rate and diffusion coefficient of gold nanoparticles while the output parameters are concentration, velocity, pressure and time domain analysis. Each input parameter in the microfluidic chip influences the system output. The data were gathered through extensive study in order to optimize the diffusion control. The fuzzy logic approach is used to optimize the performance of the device with respect to the input parameters. In this study, we have chosen three different flow rates of 1, 5, and 10 μL min, three different diffusion coefficient values of low, average and high diffusivity gold nanofluids (15.3 e, 15.3 e, 15.3 e m s) which are used in three different shapes of micromixer device, Y-shaped straight channel micromixer, herringbone-shaped micromixer, and herringbone shape with obstacles micromixer, and we measured the output performance, such as mixing efficiency, pressure drop, concentration across the microchannel and time domain. The data were obtained by fuzzy logic analysis and it was found that the herringbone shape with obstacles micromixer shows 100% mixing efficiency within a short duration of 5000 μm, and complete mixing was achieved within 10 seconds with a low pressure drop of 128 Pa.

摘要

本研究的目的是设计、模拟并优化一种微混合器装置,该装置使用装置结构、流速和金纳米颗粒扩散系数这三个输入参数,而输出参数为浓度、速度、压力和时域分析。微流控芯片中的每个输入参数都会影响系统输出。通过广泛研究收集数据以优化扩散控制。采用模糊逻辑方法根据输入参数优化装置性能。在本研究中,我们选择了1、5和10 μL/min这三种不同的流速,以及低、中、高扩散率金纳米流体的三种不同扩散系数值(15.3 e、15.3 e、15.3 e m²/s),这些被用于三种不同形状的微混合器装置,即Y形直通道微混合器、人字形微混合器和带障碍物的人字形微混合器,并且我们测量了输出性能,如混合效率、压降、微通道内的浓度和时域。数据通过模糊逻辑分析获得,结果发现带障碍物的人字形微混合器在5000 μm的短距离内显示出100%的混合效率,并且在10秒内实现了完全混合,压降低至128 Pa。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5dd0/9893881/8b3606363ccd/d2ra07992e-f1.jpg

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