Entropy generation in electroosmotically aided peristaltic pumping of MoS2 Rabinowitsch nanofluid

IF 1.3 4区 工程技术 Q3 MECHANICS Fluid Dynamics Research Pub Date : 2022-01-24 DOI:10.1088/1873-7005/ac4e7b
J. Akram, N. Akbar, D. Tripathi
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引用次数: 15

Abstract

The main emphasis of this article is to compare the heat transfer performance of two different nanofluids i.e. carboxy-methyl-cellulose (CMC) + water-based molybdenum dioxide (MoS2) nanofluid and kerosene oil-based molybdenum dioxide nanofluid during the fluid flow through a symmetric microchannel which is pumped by the mechanism of peristalsis and electroosmosis. The energy dissipated by Joule heating and viscous dissipation is also taken into account. An analysis of volumetric entropy generation is also conducted. Rabinowitsch fluid model is employed to characterize the shear-thinning behavior of CMC + water solution and Newtonian fluid properties of kerosene oil. The mathematical model for the problem is formulated by the Navier–Stokes, energy equation, and Buongiorno fluid model in combination with the Corcione model for thermal conductivity and viscosity of the nanofluid. Further, the Poisson–Boltzmann equation is utilized to compute the potential generated across the electric double layer. The homotopy perturbation technique is employed to compute the approximate solutions for temperature and nanoparticle volume fraction and exact solutions are obtained for velocity and the stream function. Salient features of the fluid flow are illustrated with the aid of graphical results. Contour plots for stream function are prepared for flow visualization. A comparison of heat transfer performance and entropy generation between both working fluids is presented. It is observed that aqueous solution modified by CMC and nanoparticles possess a higher heat transfer tendency and less entropy is generated in this case when compared with other nanofluid i.e. MoS2/kerosene oil nanofluid under the same physical conditions. It is further noted that fluid flow can be controlled by the strength of the applied electric field. Upon increasing electroosmotic parameters, there is a very minute rise in volumetric entropy generation in the case of MoS2/CMC + water nanofluid. However, there is a substantial rise in entropy generation for MoS2/kerosene oil nanofluid.
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MoS2 Rabinowitsch纳米流体电渗透辅助蠕动泵送中的熵产生
本文的主要重点是比较两种不同的纳米流体,即羧甲基纤维素(CMC)+水性二氧化钼(MoS2)纳米流体和煤油基二氧化钼纳米流体在通过蠕动和电渗机制泵送的对称微通道中的流体流动过程中的传热性能。还考虑了焦耳加热和粘性耗散所耗散的能量。还对体积熵的产生进行了分析。采用Rabinowitsch流体模型表征了CMC+水溶液的剪切稀化行为和煤油的牛顿流体性质。该问题的数学模型由Navier–Stokes、能量方程和Buongiorno流体模型以及纳米流体热导率和粘度的Corcione模型组成。此外,泊松-玻尔兹曼方程用于计算双电层上产生的电势。利用同位微扰技术计算了温度和纳米颗粒体积分数的近似解,得到了速度和流函数的精确解。借助图形结果说明了流体流动的显著特征。流函数的等高线图用于流可视化。对两种工作流体的传热性能和熵产生进行了比较。观察到,在相同的物理条件下,与其他纳米流体(即MoS2/煤油纳米流体)相比,CMC和纳米颗粒改性的水溶液在这种情况下具有更高的传热趋势,并且产生更小的熵。还应注意的是,流体流动可以通过所施加电场的强度来控制。随着电渗参数的增加,在MoS2/CMC+水纳米流体的情况下,体积熵产生有非常微小的增加。然而,MoS2/煤油纳米流体的熵产生显著增加。
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
Fluid Dynamics Research
Fluid Dynamics Research 物理-力学
CiteScore
2.90
自引率
6.70%
发文量
37
审稿时长
5 months
期刊介绍: Fluid Dynamics Research publishes original and creative works in all fields of fluid dynamics. The scope includes theoretical, numerical and experimental studies that contribute to the fundamental understanding and/or application of fluid phenomena.
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