Thermodynamics Analysis of Variable Viscosity Hydromagnetic Couette Flow in a Rotating System with Hall Effects
Abstract
:1. Introduction
2. Mathematical Analysis
3. Numerical Procedure
4. Results and Discussion
5. Conclusions
- The primary velocity profiles in x-direction increases with M, , , and δ but decreases with m.
- The secondary velocity profiles in z-direction increases with M but decreases with , , δ and m.
- The temperature profile increases with M, , , and Ec but decreases with m and δ.
- The entropy generation rate increases with and Ec but decreases with δ.
- Heat transfer irreversibility is more at the upper moving wall as compared to lower fixed wall. A point exists at η = 0.4 where the fluid friction and magnetic field irreversibility completely dominate the flow system. The Bejan number increases with λ and Ec.
- The Nusselt number is higher at the lower wall as compared to upper wall. An increase in λ and increases Nu while an increase in δ decreases Nu.
- The secondary flow skin friction coefficient increases with λ, m, and but decreases with M.
- Increase in and M increases the primary flow skin friction coefficient at the lower wall but decreases it at the upper wall. The trend is opposite with increasing parameter values of m and δ. An increase in λ increases the primary flow skin friction at both lower and upper walls.
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Makinde, O.D.; Eegunjobi, A.S.; Tshehla, M.S. Thermodynamics Analysis of Variable Viscosity Hydromagnetic Couette Flow in a Rotating System with Hall Effects. Entropy 2015, 17, 7811-7826. https://doi.org/10.3390/e17117811
Makinde OD, Eegunjobi AS, Tshehla MS. Thermodynamics Analysis of Variable Viscosity Hydromagnetic Couette Flow in a Rotating System with Hall Effects. Entropy. 2015; 17(11):7811-7826. https://doi.org/10.3390/e17117811
Chicago/Turabian StyleMakinde, Oluwole D., Adetayo S. Eegunjobi, and M. Samuel Tshehla. 2015. "Thermodynamics Analysis of Variable Viscosity Hydromagnetic Couette Flow in a Rotating System with Hall Effects" Entropy 17, no. 11: 7811-7826. https://doi.org/10.3390/e17117811
APA StyleMakinde, O. D., Eegunjobi, A. S., & Tshehla, M. S. (2015). Thermodynamics Analysis of Variable Viscosity Hydromagnetic Couette Flow in a Rotating System with Hall Effects. Entropy, 17(11), 7811-7826. https://doi.org/10.3390/e17117811