Computational investigation of annular flow condensation in microgravity with two-phase inlet conditions

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15

초록

Condensation heat exchangers contribute significantly to the size of the thermal management system, and their implementation in future spacecraft will require a better understanding of the underlying heat transfer phenomena. In this study, we computationally investigate flow condensation in microgravity with two-phase inlet conditions utilizing the VOF multi-phase model and a 2-dimensional axisymmetric domain. The model is validated utilizing experiments from prior microgravity flow condensation tests conducted onboard a parabolic flight. A control-volume-based theoretical model is utilized to estimate the inlet vapor fraction and inlet phase velocity boundary conditions. The computational model predicts complex flow behavior occurring at the two-phase interface during condensation, but the model suffers from some liquid accumulation in the vapor region. Local condensation heat transfer is under-estimated in the inlet section, and over-estimated in the exit section, compared with the experimental measurements. Mean condensation heat transfer coefficients compare well to experiments. Results show a need for full 3D simulations of flow condensation to improve predictions of liquid entrainment and liquid deposition phenomena that significantly influence local heat transfer coefficients predictions © 2020 Elsevier Ltd

키워드

CFD; Condensation; Heat transfer; Interface; Phase-change; Condensation; Heat transfer coefficients; Intake systems; Liquids; Microgravity; Microgravity processing; Phase interfaces; Computational investigation; Condensation heat exchangers; Condensation heat transfer; Condensation heat transfer coefficients; Local heat transfer coefficient; Theoretical modeling; Thermal management systems; Velocity boundary condition; Heat exchangers
제목
Computational investigation of annular flow condensation in microgravity with two-phase inlet conditions
저자
Qiu, Yue; Lee, Hyoungsoon; Kharangate, Chirag R.
DOI
10.1016/j.icheatmasstransfer.2020.104877
발행일
2020-11
유형
Article
저널명
International Communications in Heat and Mass Transfer
권
118