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A comprehensive review on computational studies of falling film hydrodynamics and heat transfer on the horizontal tube and tube bundle

期刊

APPLIED THERMAL ENGINEERING
卷 202, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.applthermaleng.2021.117869

关键词

Falling film evaporation; Spray evaporation; Refrigeration; Computational fluid dynamics; Film thickness; Heat transfer

资金

  1. National Natural Science Foundation of China [51908444]
  2. Natural Science Foundation of Shaanxi Province [2020JM-471]

向作者/读者索取更多资源

This paper provides a comprehensive review of computational studies on falling liquid film flow and heat transfer, covering topics such as two-phase flow, mass transfer models, hydrodynamics, heat transfer, and future technological needs. The use of numerical simulations offers a cost-effective and efficient approach to studying liquid film behavior and performance, with the potential to extract valuable insights for further research and development.
Falling film evaporation is a promising technology widely applied in refrigeration, desalination and beyond applications owing to the great advantages. However, the liquid film hydrodynamics and heat transfer performance are studied insufficiently. Compered with experiments, numerical simulations are economical and efficient especially in the study of liquid film, through which some microscopic understandings are expected to be extracted. In this paper, a comprehensive review for a large pool of computational studies about falling liquid film flow and heat transfer on the horizontal tube and tube bundle is presented. Computational methods of liquid-gas two-phase flow and mass transfer model, as well as relevant researches were first introduced. Then, the studies on the falling film hydrodynamics, film thickness, sensible heat transfer, flow pattern, evaporation and boiling outside the single tube, tube bundle, special-shaped tube and entire evaporator studied with 2D and 3D models are respectively reviewed in order. Then, the investigations on the falling film breakout and dryout are reviewed. And then, the numerical predictions of falling film thickness and heat transfer coefficient are involved. Afterthat, the benchmark data for falling film numerical simulation are summarized. Finally, some future needs and recommendation relating to crucial technologies that must be solved are proposed.

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