含液氢扩散的MHD双扩散非线性混合对流纳米流体绕垂直楔形流动的数值研究

Patil, Prabhugouda Mallanagouda, Kulkarni, Madhavarao
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引用次数: 8

摘要

本文研究了具有温度-密度-浓度非线性变化的垂直楔形纳米液体双扩散非线性(二次)混合对流流动。该研究具有创新性,包括二次混合对流、磁流体动力学、纳米颗粒扩散和液氢绕楔流动的影响。高耦合非线性偏微分方程(NPDEs)和边界约束被用于模拟流动问题,然后利用非相似变换将其转换为一组无量纲方程。在此基础上,利用拟线性化技术对一组非线性偏微分方程进行线性化处理,利用隐式有限差分格式将线性偏微分方程转化为块三对角线系统,并利用Verga算法求解。研究结果通过流体速度、温度、浓度、纳米颗粒体积分数分布及其相应的梯度图进行了探讨。本研究的一个重要结果是,较高的楔角值增加了流体颗粒与楔面之间的摩擦。施密特数的增大使浓度分布减小,舍伍德数的大小增大。纳米流体的温度随外加磁场的变化而升高。本研究在航天飞机楔形材料的设计和制造、大坝建设、热力系统、石油和天然气工业等方面具有显著的应用价值。
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A numerical study on MHD double diffusive nonlinear mixed convective nanofluid flow around a vertical wedge with diffusion of liquid hydrogen
The present study focuses on double diffusive nonlinear (quadratic) mixed convective flow of nanoliquid about vertical wedge with nonlinear temperature-density-concentration variations. This study is found to be innovative and comprises the impacts of quadratic mixed convection, magnetohydrodynamics, diffusion of nanoparticles and liquid hydrogen flow around a wedge. Highly coupled nonlinear partial differential equations (NPDEs) and boundary constraints have been used to model the flow problem, which are then transformed into a dimensionless set of equations utilizing non-similar transformations. Further, a set of NPDEs would be linearized with the help of Quasilinearization technique, and then, the linear partial differential equations are transformed into a block tri-diagonal system through using implicit finite difference scheme, which is solved using Verga’s algorithm. The study findings were explored through graphs for the fluid velocity, temperature, concentration, nanoparticle volume fraction distributions and its corresponding gradients. One of the important results of this study is that the higher wedge angle values upsurge the friction between the particles of the fluid and the wedge surface. Rising Schmidt number declines the concentration distribution and enhances the magnitude of Sherwood number. Nanofluid’s temperature increases with varying applied magnetic field. The present study has notable applications in the designing and manufacturing of wedge-shaped materials in space aircrafts, construction of dams, thermal systems, oil and gas industries, etc.
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发文量
18
审稿时长
9 weeks
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