Marangoni convection in layers of water- based nanofluids under the effect of rotation

被引:2
作者
Bakhsh, Abeer H. [1 ]
Abdullah, Abdullah A. [1 ]
机构
[1] Umm Al Qura Univ, Dept Math Sci, Mecca, Saudi Arabia
关键词
linear stability; Brownian motion; rotation; thermophoresis; Chebyshev method; DEFORMABLE FREE-SURFACE; TENSION DRIVEN INSTABILITY; HORIZONTAL LIQUID LAYER; THERMAL-INSTABILITY; STABILITY; ALUMINA; ONSET;
D O I
10.1515/math-2021-0073
中图分类号
O1 [数学];
学科分类号
0701 ; 070101 ;
摘要
A linear stability analysis is performed for the onset of Marangoni convection in a horizontal layer of a nanofluid heated from below and affected by rotation. The top boundary of the layer is assumed to be impenetrable to nanoparticles with their distribution being determined from a conservation condition while the bottom boundary is assumed to be a rigid surface with fixed temperature. The motion of the nanoparticles is characterized by the effects of thermophoresis and Brownian diffusion. A modification model is used in which the effects of Brownian diffusion and thermophoresis are taken into consideration by new expressions in the nanoparticle mass flux. Also, material properties of the nanofluid are modelled by non constant constitutive expressions depending on nanoparticle volume fraction. The steady-state solution is shown to be well approximated by an exponential distribution of the nanoparticle volume fraction. The Chebyshev-Tau method is used to obtain the critical thermal and nanoparticle Marangoni numbers. Different stability boundaries are obtained using the modified model and the rotation.
引用
收藏
页码:1029 / 1046
页数:18
相关论文
共 27 条
[1]   Modelling the stability of Marangoni convection in a layer of nanofluid [J].
Abdullah, A. A. ;
Alraiqib, N. M. ;
Lindsay, K. A. .
INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2020, 151
[2]   Marangoni convection in water-alumina nanofluids: Dependence on the nanoparticle size [J].
Abdullah, A. A. ;
Althobaiti, S. A. ;
Lindsay, K. A. .
EUROPEAN JOURNAL OF MECHANICS B-FLUIDS, 2018, 67 :259-268
[3]   Marangoni convection in a thin layer of nanofluid: Application to combinations of water or ethanol with nanoparticles of alumina or multi-walled carbon nanotubules [J].
Abdullah, A. A. ;
Lindsay, K. A. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2017, 104 :693-702
[4]   Approximate controllability of noninstantaneous impulsive Hilfer fractional integrodifferential equations with fractional Brownian motion [J].
Ahmed, Hamdy M. ;
El-Borai, Mahmoud M. ;
El Bab, A. S. Okb ;
Ramadan, M. Elsaid .
BOUNDARY VALUE PROBLEMS, 2020, 2020 (01)
[5]   ON THE LINEAR-STABILITY THEORY OF BENARD-MARANGONI CONVECTION [J].
BENGURIA, RD ;
DEPASSIER, MC .
PHYSICS OF FLUIDS A-FLUID DYNAMICS, 1989, 1 (07) :1123-1127
[6]   THE VISCOSITY OF CONCENTRATED SUSPENSIONS AND SOLUTIONS [J].
BRINKMAN, HC .
JOURNAL OF CHEMICAL PHYSICS, 1952, 20 (04) :571-571
[7]   Convective transport in nanofluids [J].
Buongiorno, J .
JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2006, 128 (03) :240-250
[8]  
Canuto C., 2012, SPECTRAL METHODS FLU
[9]   Existence and Exponential Stability of Almost Pseudo Automorphic Solution for Neutral Stochastic Evolution Equations Driven by G-Brownian Motion [J].
Duan, Pengju .
FILOMAT, 2020, 34 (04) :1075-1092
[10]   Magneto convection in a nanofluid layer [J].
Gupta, Urvashi ;
Ahuja, Jyoti ;
Wanchoo, R. K. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2013, 64 :1163-1171