Journal of Thermal Analysis and Calorimetry | 2021

Correction to: Effects of variable viscosity and rotation modulation on ferroconvection

 
 
 
 

Abstract


We theoretically explore the dynamics of a ferrofluid with temperature and magnetic field-dependent viscosity, which is in a Rayleigh–Bénard situation and is subjected to rotation. The problem considers both sinusoidal and non-sinusoidal timeperiodic variations of rotation to study the onset and post-onset regimes of Rayleigh–Bénard ferroconvection. We perform a weakly nonlinear stability analysis using a truncated Fourier series representation and arrive at the third-order Lorenz system for ferrofluid convection with variable viscosity. By using the linearized form of the Lorenz system for ferrofluid convection with variable viscosity, we arrive at the critical Rayleigh number to study the onset of rotating ferroconvection. The heat transport is quantified in terms of the time-averaged Nusselt number and the effects of various parameters on it are studied. The effect of modulated rotation is found to have a stabilizing effect on the onset of ferroconvection while that of variable viscosity has a destabilizing effect. The effects of magnetorheological and thermorheological effects are antagonistic in nature. It is found that the square waveform modulation facilitates maximum heat transport in the system due to advanced onset of ferroconvection.

Volume None
Pages 1 - 2
DOI 10.1007/s10973-021-10945-6
Language English
Journal Journal of Thermal Analysis and Calorimetry

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