Steady and Unsteady Complex Heat Transfer in Optically Thick Medium During Film Boiling

A. A. Avramenko, I. Shevchuk, M. Kovetskaya, Y. Kovetska, A. V. Konyk
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Abstract

The paper presents the results of a study of radiative-convective heat transfer at film boiling of a liquid on a vertical heated plate. Both a steady-state problem of heat transfer and a transient problem were considered. The latter describes the instantaneous (flash) boiling up of a liquid on a heated surface. The novelty of the present study is the use of the optically thick medium approximation in a mathematical model when studying the process of radiation-convective heat transfer in the film boiling regime. For the first time, radiation heat transfer was considered for an optically thick medium. An analytical solution of the steady-state problems is obtained for boundary conditions involving a constant wall temperature and a constant wall heat flux. The effect of radiation and the temperature difference between the wall and liquid on the temperature profiles in the vapor phase is shown. The effect of radiation becomes more pronounced with an increase in the temperature difference between the wall and the liquid. As a result of solving the transient problem, the variation in time of the temperature profile and the heat transfer coefficient in the vapor film were obtained. The effect of radiation (Stark number) on the heat transfer coefficients is elucidated. An increase in the radiative heat flux leads to an increase in the Nusselt number, as well as the time it takes for the heat transfer process to reach a steady-state regime.
光学厚介质在薄膜沸腾过程中的稳定和非稳定复合传热
本文介绍了垂直加热板上液体沸腾时薄膜辐射对流传热的研究结果。研究同时考虑了传热的稳态问题和瞬态问题。后者描述的是液体在受热表面上瞬间(瞬间)沸腾的情况。本研究的新颖之处在于,在研究薄膜沸腾状态下的辐射对流传热过程时,在数学模型中使用了光学厚介质近似。这是首次考虑光学厚介质的辐射传热。在涉及恒定壁面温度和恒定壁面热通量的边界条件下,得到了稳态问题的解析解。图中显示了辐射以及壁面和液体之间的温差对气相温度曲线的影响。随着壁面和液体之间的温差增大,辐射的影响变得更加明显。通过求解瞬态问题,得到了汽膜温度曲线和传热系数随时间的变化情况。说明了辐射(斯塔克数)对传热系数的影响。辐射热通量的增加会导致努塞尔特数以及传热过程达到稳态所需的时间增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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