期刊文献+

Analytical approach to entropy generation and heat transfer in CNT-nanofluid dynamics through a ciliated porous medium 被引量:1

Analytical approach to entropy generation and heat transfer in CNT-nanofluid dynamics through a ciliated porous medium
原文传递
导出
摘要 The transportation of biological and industrial nanofluids by natural propulsion like cilia movement and self-generated contraction-relaxation of flexible walls has significant applications in numerous emerging technologies. Inspired by multi-disciplinary progress and innovation in this direction, a thermo-fluid mechanical model is proposed to study the entropy generation and convective heat transfer of nanofluids fabricated by the dispersion of single-wall carbon nanotubes(SWCNT) nanoparticles in water as the base fluid. The regime studied comprises heat transfer and steady, viscous, incompressible flow, induced by metachronal wave propulsion due to beating cilia, through a cylindrical tube containing a sparse(i.e., high permeability) homogenous porous medium. The flow is of the creeping type and is restricted under the low Reynolds number and long wavelength approximations. Slip effects at the wall are incorporated and the generalized Darcy drag-force model is utilized to mimic porous media effects. Cilia boundary conditions for velocity components are employed to determine analytical solutions to the resulting non-dimensionalized boundary value problem. The influence of pertinent physical parameters on temperature, axial velocity, pressure rise and pressure gradient, entropy generation function, Bejan number and stream-line distributions are computed numerically. A comparative study between SWCNT-nanofluids and pure water is also computed. The computations demonstrate that axial flow is accelerated with increasing slip parameter and Darcy number and is greater for SWCNT-nanofluids than for pure water. Furthermore the size of the bolus for SWCNT-nanofluids is larger than that of the pure water. The study is applicable in designing and fabricating nanoscale and microfluidics devices, artificial cilia and biomimetic micro-pumps. The transportation of biological and industrial nanofluids by natural propulsion like cilia movement and self-generated contraction-relaxation of flexible walls has significant applications in numerous emerging technologies. Inspired by multi-disciplinary progress and innovation in this direction, a thermo-fluid mechanical model is proposed to study the entropy generation and convective heat transfer of nanofluids fabricated by the dispersion of single-wall carbon nanotubes(SWCNT) nanoparticles in water as the base fluid. The regime studied comprises heat transfer and steady, viscous, incompressible flow, induced by metachronal wave propulsion due to beating cilia, through a cylindrical tube containing a sparse(i.e., high permeability) homogenous porous medium. The flow is of the creeping type and is restricted under the low Reynolds number and long wavelength approximations. Slip effects at the wall are incorporated and the generalized Darcy drag-force model is utilized to mimic porous media effects. Cilia boundary conditions for velocity components are employed to determine analytical solutions to the resulting non-dimensionalized boundary value problem. The influence of pertinent physical parameters on temperature, axial velocity, pressure rise and pressure gradient, entropy generation function, Bejan number and stream-line distributions are computed numerically. A comparative study between SWCNT-nanofluids and pure water is also computed. The computations demonstrate that axial flow is accelerated with increasing slip parameter and Darcy number and is greater for SWCNT-nanofluids than for pure water. Furthermore the size of the bolus for SWCNT-nanofluids is larger than that of the pure water. The study is applicable in designing and fabricating nanoscale and microfluidics devices, artificial cilia and biomimetic micro-pumps.
出处 《Journal of Hydrodynamics》 SCIE EI CSCD 2018年第2期296-306,共11页 水动力学研究与进展B辑(英文版)
关键词 Metachronal wave single-wall carbon nanotubes (SWCNT) entropy generation porous medium cilia motion heat transfer Bejan number Metachronal wave, single-wall carbon nanotubes (SWCNT), entropy generation, porous medium, cilia motion, heat transfer, Bejan number
  • 相关文献

参考文献1

二级参考文献32

  • 1Ariel, E D.: On computation of MHD flow near a rotating disk, Zeitschrifl fiJr Angewandte Mathematik und Mechanik, 82, 4, 235-246, (2002).
  • 2Anwar, M. I., Rodkiewicz, C. M.: Nonuniform magnetic field effects in MHD slider bearings, ASME J Lubric Technol. Vol.94, 101-105, (1972).
  • 3Bebernes, J., Eberly, D.: Mathematical problems from combustion theory, Springer-Verlag, New York, (1989).
  • 4Berkovsky, B. M., Medvedev, V. F., Krakov, M. S.: Magnetic Fluids, Engineering Applications, Oxford University Press, Oxford, New York, Tokyo, (1993).
  • 5Bejan, A.: Entropy generation through heat and fluid flow, John Wiley & Sons. Inc.: Canada, Chapter 5, p98, (1994).
  • 6Bejan, A.: Entropy generation minimization, CRC Press, Boca Raton, Florida, (1996).
  • 7Bowes, P. C.: Self-heating: Evaluating and controlling the hazard, Elsevier, Amsterdam (1984).
  • 8Borkakati, A. K., Bharali, A.: Heat transfer in a hydro- magnetic flow between two porous disks- one rotating and other at rest, under uniform suction, Applied Scien- tific Research, 35, 2-3, 161-175, (1979).
  • 9Chamkha, A. J., Al-Mudhaf, A.: Unsteady heat and mass transfer from a rotating vertical cone with a magnetic field and heat generation or absorption effects, Int. J. Thermal Sciences, 44, 3,267-276, (2005).
  • 10Das, N. C.: A study of optimal load-bearing capacity for slider bearing lubricated with couple stress fluids in magnetic field, Tribol Int. Vol.31,393-400, (1998).

同被引文献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