来自垂直拉伸片的导电纳米流体的三重扩散自由磁对流

B. Vasu, Mustaque Hussain Borbora, O. A. Bég, R. Gorla, Jayati Tripathi, Matin Burby
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引用次数: 0

摘要

本研究分析了垂直拉伸片上电导纳米流体流动的 MHD 三重扩散自由热固性对流边界层流动。该问题与磁性纳米材料制造操作有关,其中除了纳米颗粒外还存在多种物质。除纳米粒子扩散外,还考虑了两种不同性质的盐(物种)。在垂直薄片的横向施加可变磁场。假设表面与热磁性纳米流体接触,其温度可提供可变的传热系数。纳米流体采用 Buongiorno 模型。还假定奥伯贝克-布辛斯基近似是有效的,纳米流体和盐的混合物是均匀的,并处于局部热平衡状态。此外,热能方程还包含不同浓度盐类的交叉扩散(索雷特和杜富尔)项。通过适当的相似性变换,可将模型转化为非线性模型。在 MATLAB 中使用稳健的 bvp4c 方法解决了新出现的无量纲非线性常微分边界值问题。针对一般模型的特殊情况,还与以前的研究进行了验证。模拟结果表明,纳米粒子和盐的加入会强烈改变温度和纳米粒子及盐 1 和盐 2 的浓度。随着磁场强度的增强,速度和动量边界层厚度都会受到抑制,而温度则会升高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Triple diffusive free magneto-convection of electro-conductive nanofluid from a vertical stretching sheet
In the present investigation, an analysis is carried out to study the MHD triple diffusive free thermo-solutal convection boundary layer flow of an electro-conductive nanofluid flow over a vertical stretching sheet. This problem is relevant to magnetic nanomaterials fabrication operations in which multiple species in addition to nanoparticles are present. In addition to the nanoparticle diffusion, two different salts (species) having different properties are considered. A variable magnetic field is applied transverse to the vertical sheet. It is assumed that the surface is in contact with the hot magnetic nanofluid at a temperature which provides a variable heat transfer coefficient. Buongiorno’s model is employed for the nanofluid. It is also assumed that the Oberbeck-Boussinesq approximation is valid and the mixture of nanofluid and salts is homogenous and is in local thermal equilibrium. In addition, the thermal energy equation features cross-diffusion (Soret and Dufour) terms for both components of salts having different concentration. Appropriate similarity transformations are deployed to render the model non-dimensional. The emerging transformed dimensionless non-linear non-dimensional ordinary differential boundary value problem is solved with the robust bvp4c method in MATLAB. Validation with previous studies has been included for special cases of the general model. The simulations show that the addition of nanoparticles and salts, strongly modifies Temperature and nanoparticle and salt 1 and 2 concentrations. With stronger magnetic field the velocity is suppressed as is momentum boundary layer thickness whereas temperatures are boosted.
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