NUMERICAL AND EXPERIMENTAL TECHNIQUES IN ANALYZING FLOW STABILITY IN HEAT AND MASS TRANSFER

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Dr. Dupadahalli Basavaraja

Keywords

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Abstract

The accurate analysis of flow stability in heat and mass transfer systems is crucial for optimizing engineering processes and ensuring efficient performance. This article provides a comprehensive review of numerical and experimental techniques used to study flow stability. It explores the principles of Computational Fluid Dynamics (CFD) and experimental methods such as Particle Image Velocimetry (PIV) and Laser Doppler Anemometry (LDA). The paper discusses the advantages and limitations of each approach and highlights their applications in various engineering fields. By integrating these techniques, researchers can achieve a more accurate understanding of flow behaviour and stability.

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References

1. Anderson, J. D. (2017). Computational fluid dynamics: The basics with applications (2nd ed.). McGraw-Hill Education.
2. Cengel, Y. A., & Ghajar, A. J. (2019). Heat and mass transfer: Fundamentals and applications (6th ed.). McGraw-Hill Education.
3. Ferziger, J. H., & Peric, M. (2019). Computational methods for fluid dynamics (4th ed.). Springer.
4. Hanjalić, K., & Launder, B. E. (2020). Turbulence modeling and simulations. Springer.
5. Incropera, F. P., & DeWitt, D. P. (2022). Fundamentals of heat and mass transfer (8th ed.). Wiley.
6. Pope, S. B. (2000). Turbulent flows. Cambridge University Press.
7. Smits, A. J., & Moin, P. (2021). Turbulence: A guide to current research. Academic Press.
8. Streeter, V. L., & Wylie, E. B. (2018). Fluid mechanics (9th ed.). McGraw-Hill Education.
9. Wilcox, D. C. (2006). Turbulence modeling for CFD (3rd ed.). DCW Industries.
10. Zhang, Y., & Zhang, X. (2018). Experimental fluid mechanics. Springer.