Rayleigh–Bénard convection of water-aluminum and water-AA7075 nanoliquids in a vertically vibrated very-shallow cylinder


Abstract:

Stability and heat transfer efficiency of the Rayleigh–Bénard-convective system (RBCS) in a vertically vibrated very-shallow cylinder are investigated in the paper for two conventional nanoliquid media, i.e., water-aluminum and water-AA7075 nanoliquids. Using a normal mode solution involving zeroth- and first-order Bessel functions, linear stability analysis is performed. The influence of added aluminum and AA7075 nanoparticles, and sinusoidal waveform of vertical vibration on the onset in a RBCS is reported by obtaining analytical expressions for the marginal and the correction Rayleigh numbers. A minimum number of eigenfunctions is used to arrive at the modified, non-autonomous Lorenz model which is then projected into a Stuart–Landau equation using the method of multiscales. The solution of the Stuart–Landau equation is used to compute the time-averaged Nusselt number. The study reveals that the presence of nanoparticles in water is to destabilize the system and opposite is the influence of vertical vibration. For large frequency of periodic vibrations, its influence on the onset of convection is negligible. Further, the influence of nanoparticles in a baseliquid is to enhance heat transport and this can be used as a remedy for recovering the loss of heat due to a vertical vibration.

Año de publicación:

2022

Keywords:

  • Linear and weakly nonlinear stability analyses
  • Cylinder
  • Vertical vibration
  • Heat transport
  • Nanoparticles

Fuente:

scopusscopus

Tipo de documento:

Article

Estado:

Acceso restringido

Áreas de conocimiento:

  • Dinámica de fluidos
  • Dinámica de fluidos
  • Dinámica de fluidos

Áreas temáticas:

  • Mecánica de fluidos