Faculty of Science, Center of Excellence in Theoretical and Computational Science (TaCS-CoE), King Mongkut's University of Technology Thonburi (KMUTT), Thung Khru, Bangkok, Thailand.
Faculty of Computing and Information Technology, Department of Information Technology, King Abdulaziz University, Jeddah, Saudi Arabia.
PLoS One. 2021 May 7;16(5):e0249434. doi: 10.1371/journal.pone.0249434. eCollection 2021.
The present article provides a detailed analysis of the Darcy Forchheimer flow of hybrid nanoliquid past an exponentially extending curved surface. In the porous space, the viscous fluid is expressed by Darcy-Forchheimer. The cylindrical shaped carbon nanotubes (SWCNTs and MWCNTs) and Fe3O4 (iron oxide) are used to synthesize hybrid nanofluid. At first, the appropriate similarity transformation is used to convert the modeled nonlinear coupled partial differential equations into nonlinear coupled ordinary differential equations. Then the resulting highly nonlinear coupled ordinary differential equations are analytically solved by the utilization of the "Homotopy analysis method" (HAM) method. The influence of sundry flow factors on velocity, temperature, and concentration profile are sketched and briefly discussed. The enhancement in both volume fraction parameter and curvature parameter k results in raises of the velocity profile. The uses of both Fe3O4 and CNTs nanoparticles are expressively improving the thermophysical properties of the base fluid. Apart from this, the numerical values of some physical quantities such as skin friction coefficients, local Nusselt number, and Sherwood number for the variation of the values of pertinent parameters are displayed in tabular forms. The obtained results show that the hybrid nanofluid enhances the heat transfer rate 2.21%, 2.1%, and 2.3% using the MWCNTs, SWCNTs, and Fe3O4 nanomaterials.
本文详细分析了混合纳米流体在指数扩展曲面上的达西-福尔希默流动。在多孔空间中,粘性流体由达西-福尔希默表示。使用圆柱形碳纳米管(单壁碳纳米管和多壁碳纳米管)和 Fe3O4(氧化铁)来合成混合纳米流体。首先,使用适当的相似变换将建模的非线性耦合偏微分方程转换为非线性耦合常微分方程。然后,利用“同伦分析方法”(HAM)方法解析地求解所得的高度非线性耦合常微分方程。绘制并简要讨论了各种流动因素对速度、温度和浓度分布的影响。体积分数参数和曲率参数 k 的增加都会导致速度分布的增加。Fe3O4 和 CNTs 纳米粒子的使用都显著提高了基液的热物理性质。除此之外,还以表格形式显示了一些物理量的数值,例如摩擦系数、局部努塞尔数和舍伍德数,这些数值是针对相关参数值的变化而得出的。得到的结果表明,混合纳米流体分别使用 MWCNTs、SWCNTs 和 Fe3O4 纳米材料可将传热速率提高 2.21%、2.1%和 2.3%。