机械
努塞尔数
普朗特数
磁流体驱动
传热
热辐射
偏微分方程
材料科学
边界层
发热
热力学
打滑(空气动力学)
边值问题
热传导
射击方法
流体力学
非线性系统
热的
哈特曼数
内部加热
辐射传输
滑移率
雷诺数
流量(数学)
滑移系数
磁流体力学
寄生阻力
楔形(几何)
多孔介质
牛顿流体
常微分方程
微分方程
作者
M. N. Pooja,S. K. Narasimhamurthy,V. Anitha,K. Vajravelu
摘要
ABSTRACT The Falkner–Skan model is widely used to describe boundary layer flows in various engineering systems. Incorporating magnetic fields, slip conditions, and chemical reactions is critical for understanding real‐world applications involving non‐Newtonian fluids in porous media. This study aims to examine the combined effects of magnetohydrodynamics, radiative heat transfer, internal heat generation/absorption, dual slip (momentum and thermal), and homogeneous–heterogeneous chemical reactions on non‐Newtonian fluid flow over a permeable wedge. The governing partial differential equations are transformed into a system of coupled nonlinear ordinary differential equations using similarity transformations. These equations are then solved numerically using the Runge–Kutta–Fehlberg method along with the shooting technique, implemented in Maple software. The results show that increasing the Hartmann number, slip parameters, and reaction rates suppress fluid velocity and enhance thermal gradients, while reducing the thickness of the concentration boundary layer. The Prandtl number and the radiation parameter significantly affect the thermal distribution and heat transfer rate. Surface quantities such as skin friction and Nusselt number vary meaningfully with changes in magnetic intensity and chemical activity, and the results exhibit good agreement with existing literature.
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