M. Shamshuddin, S. Salawu, O. Anwar Bég, Usman, T. Bég, S. Kuharat
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引用次数: 0
Abstract
Motivated by emerging technologies in smart functional nanopolymeric coating systems in pharmaceutical and robotics applications, the convective heat transfer characteristics in swirl coating with a magnetic hybrid power-law rheological nanofluid polymer on a radially stretching rotating disk are examined theoretically. An axial magnetic field is imposed. Copper (Cu) and aluminium alloy (AA7075) nanoparticles with sodium alginate (C6H9NaO7) as a base fluid are considered, and a hybrid volume fraction model is deployed. A non-Fourier (Cattaneo–Christov) heat flux model is deployed to inspire thermal relaxation impacts absent in the classical Fourier heat conduction formulation. Through similarity proxies and the Von Karman transformations, the partial derivative systems of equations with associated boundary constraints are reduced to a system of derivative boundary value problems, which is solved numerically via the weighted residual method with an integral Galerkin scheme, executed in the MAPLE symbolic software. Validation with special cases from articles is captured. The computations revealed that radial, tangential and axial velocity are depleted, whereas temperature is enhanced with increasing magnetic parameter ( M). High thermal transfers are obtained for the hybrid nanofluid relative to the AA7075 alloy nanofluid. A strong increment in temperature is also produced with a greater thermal relaxation effect.
受制药和机器人应用中智能功能纳米聚合物涂层系统新兴技术的启发,本文从理论上研究了在径向拉伸的旋转圆盘上使用磁性混合幂律流变纳米流体聚合物进行漩涡涂层时的对流传热特性。实验中施加了轴向磁场。研究考虑了以海藻酸钠(C6H9NaO7)为基流体的铜(Cu)和铝合金(AA7075)纳米粒子,并采用了混合体积分数模型。采用非傅里叶(Cattaneo-Christov)热通量模型,以激发经典傅里叶热传导公式中不存在的热弛豫影响。通过相似性代理和 Von Karman 变换,带有相关边界约束条件的偏导数方程系统被简化为一个导数边界值问题系统,该系统通过加权残差法与积分 Galerkin 方案进行数值求解,并在 MAPLE 符号软件中执行。利用文章中的特殊案例进行了验证。计算结果表明,随着磁参数(M)的增加,径向、切向和轴向速度减小,而温度升高。与 AA7075 合金纳米流体相比,混合纳米流体获得了较高的热传递。此外,随着热弛豫效应的增强,温度也会大幅上升。
期刊介绍:
The Journal of Process Mechanical Engineering publishes high-quality, peer-reviewed papers covering a broad area of mechanical engineering activities associated with the design and operation of process equipment.