Impact of gold and silver nanoparticles on the thermally radiating MHD slip blood flow within the stenotic artery using stability analysis and entropy optimisation

IF 1.9 4区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY Pramana Pub Date : 2024-11-09 DOI:10.1007/s12043-024-02840-0
Gopinath Mandal, Dulal Pal
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Abstract

The main aim of this investigation is to study the heat transport and entropy generation of human blood as a hybrid nanofluid (HNF) containing gold (Au) and silver (Ag) nanoparticles inside a Darcy–Fochheimer porous stenotic artery in the presence of thermal radiation and magnetic field. The primary reason for adopting Au and Ag nanoparticles as nanomaterials for drug delivery is because they exhibit potential drug transport and imaging properties for treating stenosed artery. Furthermore, velocity slip and convective boundary conditions at the surface of the artery are considered in this study. A method of suitable similarity transformations has been utilised to convert the partial differential equations (PDEs) into dimensionless ordinary differential equations (ODEs) and using the bvp4c built-in solver in MATLAB mathematical software, numerical solutions have been obtained. The plots of the results show that the hybrid nanofluid (Au–Ag/blood) has greater thermal conductance than the normal nanofluid (Au/blood). The temperature and velocity of the blood gradually increase as the percentage of nanoparticles in the blood flow grows. The heat transference rate increases with increase in Biot number (Bi) and radiation (Nr) effect, which helps in removing the toxic plaque from the artery. Due to the contraction of the artery, dual solutions are found, but dual solutions cannot be found beyond the critical values of suction (S) and shrinking (\(\lambda \)) parameters. The critical values \(S_C\) from computation are 1.5851, 1.5949 and critical values \(\lambda _C\) are 0.652, 0.781 for Au/blood nanofluid (NF) and Au–Ag/blood hybrid nanofluid (HNF), respectively. Also, the stability of blood flow is achieved by finding the lowest eigenvalue. A positive minimum eigenvalue (\(\beta _1\)) denotes the upper stable solution branch, whereas a negative minimal eigenvalue indicates the bottom unstable solution branch. The entropy of the blood as the HNF flow was found to increase with nanoparticle volume fraction (\(\phi _1, \phi _2\)), porous parameter (P) and magnetic parameter (M). These results will help greatly to avoid brain stroke or heart attack caused by the burst of an artery.

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利用稳定性分析和熵优化,研究金纳米颗粒和银纳米颗粒对狭窄动脉内热辐射 MHD 滑动血流的影响
本研究的主要目的是研究在热辐射和磁场作用下,人体血液作为含有金(Au)和银(Ag)纳米粒子的混合纳米流体(HNF)在达西-福赫海默(Darcy-Fochheimer)多孔狭窄动脉内的热传输和熵产生。采用金纳米颗粒和银纳米颗粒作为给药纳米材料的主要原因是,它们在治疗狭窄动脉方面具有潜在的药物传输和成像特性。此外,本研究还考虑了动脉表面的速度滑移和对流边界条件。利用适当的相似变换方法将偏微分方程(PDE)转换为无量纲常微分方程(ODE),并使用 MATLAB 数学软件中的 bvp4c 内置求解器获得数值解。结果图显示,混合纳米流体(Au-Ag/血液)的热导率大于普通纳米流体(Au/血液)。随着纳米粒子在血流中所占比例的增加,血液的温度和速度也逐渐增加。热传导率随着比奥特数(Bi)和辐射(Nr)效应的增加而增加,这有助于清除动脉中的有毒斑块。由于动脉收缩,双解被发现,但双解不能超过吸力(S)和收缩(\(\lambda \))参数的临界值。计算得出金/血纳米流体(NF)和金-金/血混合纳米流体(HNF)的临界值\(S_C\)分别为1.5851和1.5949,临界值\(\lambda _C\)分别为0.652和0.781。此外,血流的稳定性是通过寻找最低特征值来实现的。正的最小特征值(\(\beta _1\))表示上层稳定解分支,而负的最小特征值表示下层不稳定解分支。研究发现,随着纳米粒子体积分数(\(\phi _1,\phi _2\))、多孔参数(P)和磁参数(M)的增加,HNF流动时的血液熵也随之增加。这些结果将大大有助于避免因动脉破裂引起的脑中风或心脏病发作。
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
Pramana
Pramana 物理-物理:综合
CiteScore
3.60
自引率
7.10%
发文量
206
审稿时长
3 months
期刊介绍: Pramana - Journal of Physics is a monthly research journal in English published by the Indian Academy of Sciences in collaboration with Indian National Science Academy and Indian Physics Association. The journal publishes refereed papers covering current research in Physics, both original contributions - research papers, brief reports or rapid communications - and invited reviews. Pramana also publishes special issues devoted to advances in specific areas of Physics and proceedings of select high quality conferences.
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The effects of q-deformed Rosen–Morse potential on the behaviour of interacting BEC systems The improved saturation model in the nuclei Stefan blowing impact and chemical response of Rivlin–Reiner fluid through rotating convective disk Impact of gold and silver nanoparticles on the thermally radiating MHD slip blood flow within the stenotic artery using stability analysis and entropy optimisation Study of the bubble motion inside a peristaltic tube
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