Bio-Convective Flow of Micropolar Nanofluids over an Inclined Permeable Stretching Surface with Radiative Activation Energy

IF 0.5 Q4 ENGINEERING, BIOMEDICAL Journal of Biomimetics, Biomaterials and Biomedical Engineering Pub Date : 2024-07-23 DOI:10.4028/p-c79r3y
O. Ajala, P. Adegbite, A. Obalalu, Amir Abbas, Abel O Owolabi, O. B. Ojewola
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Abstract

The focal concern of this study is to examine the behaviour of bio-convective flow featuring micropolar nanofluids over an inclined permeable stretching surface while considering the influence of radiative activation energy. This investigation addresses the complex interplay of factors such as biological activity, convective heat and mass transfer, unique attributes of micropolar fluids, the dynamics of nanofluids, and radiative effects. This analysis employed Buongiorno’s model, considering thermal radiation and activation energy on the bioconvective flow of micropolar nanofluids over an inclined stretching surface. Some suitable similarity variables were used to obtain a set of non-linear differential equations from the initial partial differential equations which were then solved numerically using the Runge-Kutta Fehberg method along with shooting technique. The effects of some physical parameters were examined on the velocity, temperature, concentration, and microorganism density profiles of the flow. The result revealed that each increase in the heat source/sink, thermal radiation, thermophoresis, and Brownian motion lead to a corresponding increase in the thermal boundary layer; activation energy increased the concentration while Peclet number and bioconvective Lewis number declined the microorganism density profile. Insights gleaned from this study can find applications in biomedical fields. Understanding the behavior of bio-convective nanofluids has implications for controlled heat transfer in medical applications like hyperthermia treatments or targeted drug delivery, thereby impacting patient care.
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微极性纳米流体在具有辐射活化能的倾斜可渗透拉伸表面上的生物对流
本研究的重点是在考虑辐射活化能影响的同时,研究以微极纳米流体为特征的生物对流在倾斜的可渗透拉伸表面上的行为。这项研究涉及生物活动、对流传热和传质、微极流体的独特属性、纳米流体的动力学以及辐射效应等因素的复杂相互作用。分析采用了 Buongiorno 模型,考虑了热辐射和活化能对微波纳米流体在倾斜拉伸表面上的生物对流的影响。利用一些合适的相似变量从初始偏微分方程中得到一组非线性微分方程,然后利用 Runge-Kutta Fehberg 方法和射击技术对其进行数值求解。研究了一些物理参数对水流速度、温度、浓度和微生物密度曲线的影响。结果表明,热源/散热、热辐射、热泳和布朗运动的每一次增加都会导致热边界层的相应增加;活化能增加了浓度,而佩克莱特数和生物对流路易斯数则降低了微生物密度曲线。从这项研究中获得的启示可应用于生物医学领域。了解生物对流纳米流体的行为对热疗或靶向给药等医疗应用中的可控传热具有重要意义,从而对患者护理产生影响。
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来源期刊
CiteScore
1.40
自引率
14.30%
发文量
73
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