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首页> 外文期刊>International journal of numerical methods for heat & fluid flow >Entropy generation analysis of magneto-nanoliquids embedded with aluminium and titanium alloy nanoparticles in microchannel with partial slips and convective conditions
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Entropy generation analysis of magneto-nanoliquids embedded with aluminium and titanium alloy nanoparticles in microchannel with partial slips and convective conditions

机译:具有部分滑动和对流条件的微通道中铝和钛合金纳米粒子嵌入的磁纳米液体的熵产分析

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PurposeOutstanding features such as superior electrical conductivity and thermal conductivity of alloy nanoparticles with working fluids make them ideal materials to be used as coolants in microelectromechanical systems (MEMSs). This paper aims to investigate the effects of different alloy nanoparticles such as AA7075 and Ti6Al4V on microchannel flow of magneto-nanoliquids with partial slip and convective boundary conditions. Flow features are explored with the effects of magnetism and nanoparticle shape. Heat transport of fluid includes radiative heat, internal heat source/sink, viscous and Joule heating phenomena.Design/methodology/approachSuitable dimensionless variables are used to reduce dimensional governing equations into dimensionless ordinary differential equations. The relevant dimensionless ordinary differential systems are computed numerically by using RungeKuttaFehlberg-based shooting approach. Pertinent results of velocity, temperature, entropy number and Bejan number for assorted values of physical parameters are comprehensively discussed. Also, a closed-form solution is obtained for momentum equation for a particular case. Analytical results agree perfectly with numerical results.FindingsIt is established that the entropy production can be improved with radiative heat, Joule heating, convective heating and viscous dissipation aspects. The entropy production is higher in the case of Ti6Al4V-H2O nanofluid than AA7075-H2O. Further, the inequality Ns()Sphere > Ns()Hexahedran > Ns()Tetrahydran > Ns()Column > Ns()Lamina holds true.Originality/valueEffects of aluminium and titanium alloy nanoparticles in microchannel flows by using viscous dissipation and Joule heating are investigated for the first time. Flow features are explored with the effects of magnetism and nanoparticle shape. The results for different alloy nanoparticles such as AA7075 and Ti6Al4V have been compared.
机译:用途合金纳米颗粒与工作流体的优异导电性和导热性等突出特征使其成为用作微机电系统(MEMS)冷却剂的理想材料。本文旨在研究具有部分滑移和对流边界条件的不同合金纳米粒子(如AA7075和Ti6Al4V)对磁纳米液体微通道流动的影响。利用磁性和纳米颗粒形状的影响探索了流动特征。流体的热传递包括辐射热,内部热源/热沉,粘性和焦耳热现象。设计/方法/方法适用的无量纲变量用于将尺寸控制方程式简化为无量纲的常微分方程式。相关的无量纲常微分系统是使用基于RungeKuttaFehlberg的射击方法进行数值计算的。全面讨论了各种物理参数值的速度,温度,熵数和Bejan数的相关结果。另外,针对特定情况,针对动量方程获得了封闭形式的解。分析结果与数值结果完全吻合。结果发现,可以通过辐射热,焦耳热,对流加热和粘性耗散方面来改善熵的产生。在Ti6Al4V-H2O纳米流体的情况下,其熵产高于AA7075-H2O。此外,不等式Ns()球体> Ns()六面体> Ns()四氢化合物> Ns()柱> Ns()层流成立。进行首次调查。利用磁性和纳米颗粒形状的影响探索了流动特征。比较了不同合金纳米粒子(例如AA7075和Ti6Al4V)的结果。

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