Performance enhancement of double-rotor viscous micropump for transporting Bingham fluid

Q1 Chemical Engineering
Melika Mohammadi, Ali Ahmadpour, Seyed Amin Chabok
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引用次数: 0

Abstract

Rotary viscous micropumps, recognized as a prevalent mechanism in microfluidics systems, have recently been introduced to transport non-Newtonian fluids, especially yield-stress fluids. However, conventional single-rotor viscous micropumps often lack efficiency and effectiveness when dealing with these particular fluid types. To address this challenge, the present study explores the use of dual-rotor viscous micropumps for transporting Bingham fluids and their associated performance enhancement for the first time. In a four-step approach, the effects of geometrical and operational parameters, including diameter ratio, distance ratio, rotational velocity ratio, and height ratio on two performance metrics, flow rate, and efficiency, are analyzed, and optimal values are recorded. Enhanced designs, optimized for maximum flow rate and efficiency, are evaluated at four distinct Bingham numbers (Bn), with comparative performance assessments against single-rotor micropumps. The working fluid is simulated using the Herschel-Bulkley model to capture its non-Newtonian behavior, with velocity and viscosity contours providing insights into flow characteristics. Numerical findings reveal significant performance improvements with dual-rotor micropumps, achieving a maximum enhancement rate of 12 while Bn = 2 compared to single-rotor configurations. Additionally, the adverse effects of yield stress on both efficiency and flow rate are substantially mitigated, particularly for high-viscosity fluids, due to a reduction in blocking vortex structures. These findings highlight the potential of dual-rotor viscous micropumps as an effective solution for transporting yield-stress fluids.
输送宾厄姆流体的双转子粘性微泵的性能增强
旋转粘性微泵被认为是微流体系统中普遍存在的一种机制,最近被引入到非牛顿流体中,特别是屈服应力流体。然而,传统的单转子粘性微泵在处理这些特殊的流体类型时往往缺乏效率和有效性。为了应对这一挑战,本研究首次探索了使用双转子粘性微泵输送Bingham流体及其相关性能的提高。采用四步法,分析几何参数和操作参数(包括直径比、距离比、转速比和高度比)对两项性能指标(流量和效率)的影响,并记录最佳值。改进的设计,优化了最大流量和效率,在四个不同的宾厄姆数(Bn)进行评估,并与单转子微泵进行比较性能评估。工作流体使用Herschel-Bulkley模型进行模拟,以捕捉其非牛顿行为,并通过速度和粘度轮廓来了解流动特性。数值结果表明,与单转子配置相比,双转子微泵的性能得到了显著改善,当Bn = 2时,其最大增强率为12。此外,由于阻塞涡结构的减少,屈服应力对效率和流速的不利影响大大减轻,特别是对于高粘度流体。这些发现突出了双转子粘性微泵作为输送屈服应力流体的有效解决方案的潜力。
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
International Journal of Thermofluids
International Journal of Thermofluids Engineering-Mechanical Engineering
CiteScore
10.10
自引率
0.00%
发文量
111
审稿时长
66 days
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