Implementation of homotopy analysis method for entropy-optimized two-phase nanofluid flow in a bioconvective non-Newtonian model with thermal radiation

IF 1.7 4区 综合性期刊 Q2 MULTIDISCIPLINARY SCIENCES Journal of Radiation Research and Applied Sciences Pub Date : 2024-11-26 DOI:10.1016/j.jrras.2024.101218
M. Vinodkumar Reddy , Jintu Mani Nath , Farhan Ali , Tusar Kanti Das , Umair Khan , Mubariz Garayev
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Abstract

The analytical and numerical simulation for the two-phase magneto-hydrodynamics flow in entropy-optimized nanofluid past a stretching sheet with extended Darcy-Forchheimer porous medium and microorganisms is explored. The key focus is to analyze the combined influences of viscous dissipation, chemical reaction, mass suction velocity, and convective boundary conditions. These effects play a pivotal role in the manufacturing process that involves coatings as well as the processing of polymer in addition to enhancing the cooling efficacy in chemical reactors and biomedical equipment. The irreversibility aspects of thermal transfer are also explored by the Bejan number. The ongoing investigation is conducted by both the numerical (using the Mathematica ND solve command) and analytical approach (employing the homotopy analysis method (HAM)). Therefore, the key results include the augmented entropy generation with the escalating values of radiation, Brinkman number, magnetic field, and non-Newtonian parameter. On the other hand, the Bejan number shows a similar elevated pattern for the same dimensionless factors. Furthermore, the escalating rate of mass transmission is observed with Schmidt number, Prandtl number, and thermophoresis, whereas the boosting rate of motile transmission is noted with Peclet number, Schmidt number, and bio-convection Lewis number. Also, the magnitude of the rate of thermal transport near the surface exhibits an ascending pattern with the posited Brownian motion, thermophoresis, and radiation.
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带热辐射的生物对流非牛顿模型中熵优化两相纳米流体流动的同调分析方法的实现
本研究探讨了熵优化纳米流体流过具有扩展达西-福克海默多孔介质和微生物的拉伸片的两相磁流体流的分析和数值模拟。重点是分析粘性耗散、化学反应、质量吸力速度和对流边界条件的综合影响。除了提高化学反应器和生物医学设备的冷却效果外,这些影响在涉及涂层的制造过程和聚合物加工过程中也发挥着关键作用。贝扬数还探索了热传递的不可逆方面。目前的研究是通过数值方法(使用 Mathematica ND 求解命令)和分析方法(采用同调分析方法 (HAM))进行的。因此,主要结果包括随着辐射、布林克曼数、磁场和非牛顿参数值的增加而产生的熵增。另一方面,对于相同的无量纲因子,贝扬数也显示出类似的上升模式。此外,随着施密特数、普朗特数和热泳的增加,质量传输率也在增加,而随着佩克莱特数、施密特数和生物对流刘易斯数的增加,运动传输率也在增加。此外,表面附近的热传输速率大小与假定的布朗运动、热泳和辐射有关,呈现上升模式。
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来源期刊
自引率
5.90%
发文量
130
审稿时长
16 weeks
期刊介绍: Journal of Radiation Research and Applied Sciences provides a high quality medium for the publication of substantial, original and scientific and technological papers on the development and applications of nuclear, radiation and isotopes in biology, medicine, drugs, biochemistry, microbiology, agriculture, entomology, food technology, chemistry, physics, solid states, engineering, environmental and applied sciences.
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