By M. Ishii, G. Kocamustafaogullari (auth.), S. Kakaç, M. Ishii (eds.)
Over the earlier twenty years, two-phase circulate and warmth move difficulties linked to two-phase phenomena were a problem to many investigators. Two-phase movement purposes are present in a variety of engineering platforms, similar to nuclear and traditional strength vegetation, evaporators of refrigeration platforms and a large vari ety of evaporative and condensive warmth exchangers within the chemical undefined. This book relies at the invited lectures provided on the NATO complex study Workshop at the Advances in Two-Phase circulation and warmth move. The Horkshop used to be attended by means of greater than 50 best scientists and training engineers who paintings actively on two-phase stream and warmth move study and functions in dif ferent sectors (academia, govt, undefined) of member international locations of NATO. a few medical leaders and specialists at the subject material from the non-NATO international locations have been additionally invited. They convened to debate the state of the art in two-phase circulation and warmth move and formulated options for destiny examine instructions. to accomplish those targets, invited key papers and a constrained variety of contributions have been awarded and mentioned. the explicit features of the topic have been taken care of extensive within the panel classes, and the unresolved difficulties pointed out. compatible as a realistic reference, those volumes include a scientific method of two-phase movement analysis.
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Additional resources for Advances in Two-Phase Flow and Heat Transfer: Fundamentals and Applications Volume 1
Flow and pressure drop surges have been predicted. along with the effects of compressibility. The model has also been successful in contributing to the prediction of the stability criteria for self-sustained flow oscillations which have been observed in certain condensing flow systems. The ability of the unified model to accurately predict a variety of system transients has been demonstrated by comparison with experimental data available in the literature. and by comparison with corresponding predictions based on the drift-flux model.
D. Thesis, Oakland University, Rochester, MI (1978). 19. L. D. Thesis, University of Illinois (1965). 20. L. " Journal of Heat Transfer 93 (1971) 47-54. 21. L. T. Beck. " Journal of Heat Transfer 96 (1974) 138-144. 22. Zuber, N. A. Findlay. " ASME Journal of Heat Transfer (1965) 453-468. 39 23. Fujie, H. " AICHE Journal 10 (1964) 227-232. 24. Levy, S. " ASME Journal of Heat Transfer 82 (1960) 113-124. 25. M. " ASME Journal of Heat Transfer 86 (1964) 247-252. 26. Weisman, J. G. Choe. " Two-Phase Transport and Reactor Safety.
37 REFERENCES 1. L. F. Stoecker. " AS ME Journal of Heat Transfer 90 (1968) 165-174. 2. Wedekind, G. , B. L. Bhatt and B. T. Beck. " Eds. S. Kakac, F. N. , USA (1977); also published in the International Journal of Multiphase Flow 4 (1978) 97-114. 3. Beck, B. T. L. Wedekind. " Journal of Heat Transfer 103 (1981) 81-85. 4. L. D. Thesis, Oakland University, Rochester, Michigan (1981). 5. G. McGraw-Hill (1972). 6. B. McGraw-Hill (1969). Convective Boiling and Condensation. One-Dimensional Two-Phase Flow.
Advances in Two-Phase Flow and Heat Transfer: Fundamentals and Applications Volume 1 by M. Ishii, G. Kocamustafaogullari (auth.), S. Kakaç, M. Ishii (eds.)