Stability Analysis of Mixed Convection Flow towards a Moving Thin Needle in Nanofluid
Abstract
:1. Introduction
2. Problem Formulation
2.1. Basic Equation
2.2. Steady-State Solution
2.3. Stability Analysis
3. Results and Discussion
4. Conclusions
- The magnitude of the skin friction coefficient and the local Nusselt number increases as the size of the needle decreases. The thinner surface of the needle causes the heat to be easily diffused, hence reducing the drag force between the needle and the free stream.
- The existence of the dual solutions occurs when the needle and the fluid move in the opposite way (), while the solution is unique when they move in the same way (). Nevertheless, the range of the dual solutions exists only in between .
- The presence of the nanoparticles volume fraction in the flow causes the skin friction coefficient, as well as the heat transfer rate on the needle surface to increase especially for the thinner surface.
- The dual solutions are more pronounced when the flow is opposing () and the range is between . When , no solutions are obtained.
- The stability analysis has confirmed that the upper branch solution is stable, while the lower branch solution is unstable by observing the positive and negative sign of the eigenvalues obtained.
Author Contributions
Acknowledgments
Conflicts of Interest
References
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c | Ishak et al. [19] | Soid et al. [24] | Present Results |
---|---|---|---|
0.01 | 8.4924 | 8.491454 | 8.491455 |
0.1 | 1.2888 | 1.288778 | 1.288778 |
0.2 | - | 0.751665 | 0.751665 |
c | Upper Branch | Lower Branch | ||
---|---|---|---|---|
0.0 | 0.1 | −1.612 | 0.0008 | −0.0008 |
−1.610 | 0.0029 | −0.0029 | ||
−1.60 | 0.0202 | −0.0194 | ||
−1.58 | 0.0354 | −0.0327 | ||
0.2 | −0.5998 | 0.0061 | −0.0059 | |
−0.599 | 0.0081 | −0.0079 | ||
−0.594 | 0.0175 | −0.0166 | ||
−0.58 | 0.0303 | −0.0277 | ||
0.1 | 0.1 | −0.635 | 0.0057 | −0.0056 |
−0.634 | 0.0103 | −0.0100 | ||
−0.63 | 0.0165 | −0.0159 | ||
−0.62 | 0.0326 | −0.0301 | ||
0.2 | −0.1378 | 0.0031 | −0.0031 | |
−0.137 | 0.0084 | −0.0082 | ||
−0.136 | 0.0126 | −0.0121 | ||
−0.135 | 0.0158 | −0.0149 | ||
0.2 | 0.1 | −0.3946 | 0.0024 | −0.0024 |
−0.394 | 0.0071 | −0.0070 | ||
−0.392 | 0.0164 | −0.0157 | ||
−0.39 | 0.0171 | −0.0163 | ||
0.2 | −0.066 | 0.0028 | −0.0028 | |
−0.0655 | 0.0090 | −0.0087 | ||
−0.0650 | 0.0110 | −0.0106 | ||
−0.064 | 0.0162 | −0.0153 |
Nanoparticles | Upper Branch | Lower Branch | |
---|---|---|---|
Cu | −3.0674 | 0.0033 | −0.0033 |
−3.067 | 0.0045 | −0.0044 | |
−3.06 | 0.0158 | −0.0152 | |
−3.00 | 0.0470 | −0.0420 | |
AlO | −3.986 | 0.0040 | −0.0040 |
−3.984 | 0.0108 | −0.0106 | |
−3.98 | 0.0152 | −0.0147 | |
−3.97 | 0.0275 | −0.0260 | |
TiO | −3.922 | 0.0042 | −0.0041 |
−3.92 | 0.0052 | −0.0052 | |
−3.90 | 0.0113 | −0.0111 | |
−3.89 | 0.0401 | −0.0370 |
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Salleh, S.N.A.; Bachok, N.; Arifin, N.M.; Ali, F.M.; Pop, I. Stability Analysis of Mixed Convection Flow towards a Moving Thin Needle in Nanofluid. Appl. Sci. 2018, 8, 842. https://doi.org/10.3390/app8060842
Salleh SNA, Bachok N, Arifin NM, Ali FM, Pop I. Stability Analysis of Mixed Convection Flow towards a Moving Thin Needle in Nanofluid. Applied Sciences. 2018; 8(6):842. https://doi.org/10.3390/app8060842
Chicago/Turabian StyleSalleh, Siti Nur Alwani, Norfifah Bachok, Norihan Md Arifin, Fadzilah Md Ali, and Ioan Pop. 2018. "Stability Analysis of Mixed Convection Flow towards a Moving Thin Needle in Nanofluid" Applied Sciences 8, no. 6: 842. https://doi.org/10.3390/app8060842
APA StyleSalleh, S. N. A., Bachok, N., Arifin, N. M., Ali, F. M., & Pop, I. (2018). Stability Analysis of Mixed Convection Flow towards a Moving Thin Needle in Nanofluid. Applied Sciences, 8(6), 842. https://doi.org/10.3390/app8060842