Design and Investigation of a Passive-Type Microfluidics Micromixer Integrated with an Archimedes Screw for Enhanced Mixing Performance.

IF 3 3区 工程技术 Q2 CHEMISTRY, ANALYTICAL Micromachines Pub Date : 2025-01-12 DOI:10.3390/mi16010082
Muhammad Waqas, Arvydas Palevicius, Vytautas Jurenas, Kestutis Pilkauskas, Giedrius Janusas
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Abstract

In recent years, microfluidics has emerged as an interdisciplinary field, receiving significant attention across various biomedical applications. Achieving a noticeable mixing of biofluids and biochemicals at laminar flow conditions is essential in numerous microfluidics systems. In this research work, a new kind of micromixer design integrated with an Archimedes screw is designed and investigated using numerical simulation and experimental approaches. First, the geometrical parameters such as screw length (l), screw pitch (p) and gap (s) are optimized using the Design of Expert (DoE) approach and the Central Composite Design (CCD) method. The experimental designs generated by DoE are then numerically simulated aiming to determine Mixing Index (MI) and Performance Index (PI). For this purpose, COMSOL Multiphysics with two physics modules-laminar and transport diluted species-is used. The results revealed a significant influence of screw length, screw pitch and gap on mixing performance. The optimal design achieved is then scaled up and fabricated using a 3D additive manufacturing technique. In addition, the optimal micromixer design is numerically and experimentally investigated at diverse Reynolds numbers, ranging from 2 to 16. The findings revealed the optimal geometrical parameters that produce the best result compared to other designs are a screw length of 0.5 mm, screw pitch of 0.23409 mm and a 0.004 mm gap. The obtained values of the mixing index and the performance index are 98.47% and 20.15 Pa-1, respectively. In addition, a higher mixing performance is achieved at the lower Reynolds number of 2, while a lower mixing performance is observed at the higher Reynolds number of 16. This study can be very beneficial for understanding the impact of geometrical parameters and their interaction with mixing performance.

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基于阿基米德螺杆的无源型微流体混合器的设计与研究。
近年来,微流体已经成为一个跨学科的领域,在各种生物医学应用中受到了极大的关注。在层流条件下实现生物流体和生化物质的显著混合在许多微流体系统中是必不可少的。本文采用数值模拟和实验相结合的方法,对一种新型的阿基米德螺杆微混合器进行了设计和研究。首先,采用专家设计(DoE)方法和中心复合设计(CCD)方法对螺杆长度(l)、螺距(p)和间隙(s)等几何参数进行优化。然后对DoE生成的实验设计进行数值模拟,以确定混合指数(MI)和性能指数(PI)。为此,使用了COMSOL Multiphysics的两个物理模块——层流和输运稀释物质。结果表明,螺杆长度、螺杆螺距和螺杆间隙对混合性能有显著影响。然后使用3D增材制造技术按比例放大和制造最佳设计。此外,本文还对不同雷诺数(2 ~ 16)下的最佳微混合器设计进行了数值和实验研究。结果表明,与其他设计相比,最佳几何参数为螺杆长度为0.5 mm,螺杆间距为0.23409 mm,间隙为0.004 mm。得到的混合指数和性能指数分别为98.47%和20.15 Pa-1。在较低的雷诺数为2时,混合性能较好,而在较高的雷诺数为16时,混合性能较差。这一研究有助于理解几何参数及其相互作用对混合性能的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Micromachines
Micromachines NANOSCIENCE & NANOTECHNOLOGY-INSTRUMENTS & INSTRUMENTATION
CiteScore
5.20
自引率
14.70%
发文量
1862
审稿时长
16.31 days
期刊介绍: Micromachines (ISSN 2072-666X) is an international, peer-reviewed open access journal which provides an advanced forum for studies related to micro-scaled machines and micromachinery. It publishes reviews, regular research papers and short communications. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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