The impact of rotation on the onset of cellular convective movement in a casson fluid saturated permeable layer with temperature dependent thermal conductivity and viscosity deviations

IF 4.6 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY
Dhananjay Yadav , Mukesh Kumar Awasthi , Ravi Ragoju , Krishnendu Bhattacharyya , Raghunath Kodi , Junye Wang
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Abstract

In this effort, we examined the impact of rotation on the arrival of cellular convective motion in a Casson fluid saturated permeable layer with temperature dependent thermal conductivity and viscosity deviations. The problem is important to cellular foams prepared from plastics, ceramics, and metallic where radiation conductivity is revealed as a power function of temperature. The altered Darcy model is used to characterize the rheological performance of Casson fluid flow in permeable medium. The approximate analytical solution and numerical solution correct to one decimal place are presented utilizing the Galerkin method. The analysis reveals that the influence of thermal conductivity disparity parameter and the rotation is to delay the convective motion whereas; the viscosity disparity parameter and the Casson parameter have dual impact on the convective motion in the presence of rotation. The range of the convective cell drops with increasing the thermal conductivity disparity parameter, the viscosity disparity parameter, the Casson parameter and rotation parameter. In the absence of rotation, the range of the convective cell does not depend on the Casson parameter and the viscosity disparity parameter. Further, the existing results are compared with the existing literature under the particular case of this study.

Abstract Image

旋转对具有随温度变化的导热系数和粘度偏差的卡松流体饱和渗透层中开始细胞对流运动的影响
在这项工作中,我们研究了旋转对卡逊流体饱和渗透层中蜂窝对流运动的影响,该渗透层的热导率和粘度偏差与温度有关。这个问题对于由塑料、陶瓷和金属制备的蜂窝泡沫非常重要,因为在这些泡沫中,辐射传导率是温度的幂函数。改变的达西模型用于描述卡松流体在渗透介质中的流变性能。利用 Galerkin 方法给出了近似解析解和精确到小数点后一位的数值解。分析表明,热导率差异参数和旋转的影响是延缓对流运动,而粘度差异参数和卡松参数对存在旋转时的对流运动有双重影响。对流单元的范围随着导热系数差异参数、粘度差异参数、卡森参数和旋转参数的增加而减小。在没有旋转的情况下,对流单元的范围与卡森参数和粘度差异参数无关。此外,在本研究的特定情况下,将现有结果与现有文献进行了比较。
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来源期刊
Chinese Journal of Physics
Chinese Journal of Physics 物理-物理:综合
CiteScore
8.50
自引率
10.00%
发文量
361
审稿时长
44 days
期刊介绍: The Chinese Journal of Physics publishes important advances in various branches in physics, including statistical and biophysical physics, condensed matter physics, atomic/molecular physics, optics, particle physics and nuclear physics. The editors welcome manuscripts on: -General Physics: Statistical and Quantum Mechanics, etc.- Gravitation and Astrophysics- Elementary Particles and Fields- Nuclear Physics- Atomic, Molecular, and Optical Physics- Quantum Information and Quantum Computation- Fluid Dynamics, Nonlinear Dynamics, Chaos, and Complex Networks- Plasma and Beam Physics- Condensed Matter: Structure, etc.- Condensed Matter: Electronic Properties, etc.- Polymer, Soft Matter, Biological, and Interdisciplinary Physics. CJP publishes regular research papers, feature articles and review papers.
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