期刊文献+

Unsteady MHD Mixed Convection Flow with Slip of a Nanofluid in the Stagnation Region of an Impulsively Rotating Sphere with Effects of Thermal Radiation and Convective Boundary Conditions 被引量:1

Unsteady MHD Mixed Convection Flow with Slip of a Nanofluid in the Stagnation Region of an Impulsively Rotating Sphere with Effects of Thermal Radiation and Convective Boundary Conditions
下载PDF
导出
摘要 Unsteady magnetohydrodynamic mixed convection flow of an electrically conducting nanofluid in a stagnation region of a rotating sphere is studied numerically in the present article. Slip and convective boundary conditions are imposed to surface of the sphere and the thermal radiation effects are taken into account. The nanofluid is simulated using Buongiorno’s nanofluid model and the nanofluid particle fraction on the boundary is considered to be passively rather than actively controlled. Non-similar solutions are applied on the governing equations and the MATLAB function bvp4c is used to solve the resulting system. Effects of the key-parameters such as slip parameter, Biot number, radiation parameter, rotation parameter, Lewis number and Brownian motion parameter on the fluid flow, temperature and nanoparticle volume fraction characteristics are examined. Details of the numerical solution and a comprehensive discussion with the physical meaning for the obtained results are performed. The results indicated that the increase in slip parameter enhances the velocity profiles, while it decreases the temperature distributions. Also, the increase in either slip parameter or Biot number causes an improvement in the rate of heat transfer. Unsteady magnetohydrodynamic mixed convection flow of an electrically conducting nanofluid in a stagnation region of a rotating sphere is studied numerically in the present article. Slip and convective boundary conditions are imposed to surface of the sphere and the thermal radiation effects are taken into account. The nanofluid is simulated using Buongiorno’s nanofluid model and the nanofluid particle fraction on the boundary is considered to be passively rather than actively controlled. Non-similar solutions are applied on the governing equations and the MATLAB function bvp4c is used to solve the resulting system. Effects of the key-parameters such as slip parameter, Biot number, radiation parameter, rotation parameter, Lewis number and Brownian motion parameter on the fluid flow, temperature and nanoparticle volume fraction characteristics are examined. Details of the numerical solution and a comprehensive discussion with the physical meaning for the obtained results are performed. The results indicated that the increase in slip parameter enhances the velocity profiles, while it decreases the temperature distributions. Also, the increase in either slip parameter or Biot number causes an improvement in the rate of heat transfer.
出处 《World Journal of Mechanics》 2018年第5期137-160,共24页 力学国际期刊(英文)
关键词 MHD SLIP Nanofluids CONVECTIVE Condition Radiation MHD Slip Nanofluids Convective Condition Radiation
  • 相关文献

参考文献1

二级参考文献33

  • 1Aziz, A., Khan, W. A., and Pop, I. Free convection boundary layer flow past a horizontal flat plate embedded in porous medium filled by nanofluid containing gyrotactic microorganisms. In- ternational Journal of Thermal Sciences, 56, 48-57 (2012).
  • 2Nield, D. A. and Bejan, A. Convection in Porous Media, 3rd ed., Springer, New York (2006).
  • 3Pop, I. and Ingham, D. B. Convective Heat Transfer. Mathematical and Computational Modeling of Viscous Fluids and Porous Media, Pergamon, Oxford (2001).
  • 4Ingham, D. B. and Pop, I. Transport Phenomena in Porous Media III, Elsevier, Oxford (2005).
  • 5Vafal, K. Handbook of Porous Media, 2nd ed., Taylor & Francis, New York (2005).
  • 6Vafai, K. Porous Media: Applications in Biological Systems and Biotechnology, CRC Press, Boca Raton (2010).
  • 7Vadasz, P. Emerging Topics in Heat and Mass Transfer in Porous Media, Springer, New York (2008).
  • 8Cheng, C, Y. Natural convection heat transfer from an inclined wavy plate in a bidisperse porous medium. International Communications in Heat and Mass Transfer, 43, 69-74 (2013).
  • 9Chang, T. Laminar film condensation on a horizontal wavy plate embedded in a porous medium. International Journal of Thermal Sciences, 47, 35-42 (2008).
  • 10Elshehawey, E. F., Elbarbary, E. M. E., and Elgazery, N. S. Effect of inclined magnetic field on magneto fluid flow through a porous medium between two inclined wavy porous plates (numerical study). Applied Mathematics and Computation, 135, 85-103 (2003).

共引文献2

同被引文献3

引证文献1

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部