Radiative and exponentially space-based thermal generation effects on an inclined hydromagnetic aqueous nanofluid flow past thermal slippage saturated porous media

被引:18
|
作者
Shamshuddin, M. D. [1 ]
Rajput, Govind. R. [2 ]
Mishra, S. R. [3 ]
Salawu, S. O. [4 ]
机构
[1] SR Univ, Sch Sci, Dept Math, Warangal 506371, Telangana, India
[2] SVKMs, Mukesh Patel Sch Technol Management & Engn, NMIMS, Dept Appl Sci & Humanities, Shirpur Campus, Shirpur 425405, India
[3] Siksha O Anusandhan Deemed Univ, Dept Math, Bhubaneswar, India
[4] Bowen Univ, Dept Math, Iwo, Nigeria
来源
关键词
Thermal radiation; aqueous nanofluid; nanoparticles; thermal slip; STAGNATION-POINT FLOW; BOUNDARY-LAYER-FLOW; MHD FLOW; STRETCHING SHEET; FREE-CONVECTION; HEAT-TRANSFER; MAXWELL NANOFLUID; MASS-TRANSFER; SURFACE; FLUID;
D O I
10.1142/S0217979223502028
中图分类号
O59 [应用物理学];
学科分类号
摘要
Advances in nanoscience and technology acquired the significance of the nanofluid in novel functional polymers like fibre insulation, geothermal system and chemical catalytic reactors. Inspired by the above applications, an innovative mathematical model is established for radiative nanoliquid flow and is engendered due to stretching sheet with inclined magnetic field which is immersed with nanoparticles. Joule dissipation and exponentially-based heat source/sink effects are employed in the present phenomenon under the heat constraints. The governing equations, which describe the flowing nanofluid, are transformed into invariant dimensionless equations with suitable similarity quantities. With the adoption of a shooting scheme with Runge-Kutta-45, the resultant equations are numerically simplified. The impact of several converted dimensionless elements on physically interesting values is depicted visually. The current analysis is validated through comparison with some selected related literature, which shows a positive correlation. The nanoparticle thermal conductivity is raised for an increased value of the thermal radiation, thermal viscosity and heat source to propel temperature profiles. The heat flux gradient significantly affects the heat propagation all over the flow regime.
引用
收藏
页数:19
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