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Numerical Heat Transfer, Part A: Applications
An International Journal of Computation and Methodology
Volume 77, 2020 - Issue 2
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Original Articles

Numerical study on vapor–liquid phase change in an enclosed narrow space

ORCID Icon, , &
Pages 199-214 | Received 27 Mar 2019, Accepted 23 Oct 2019, Published online: 06 Nov 2019
 

Abstract

Based on the multiphase lattice Boltzmann method, a transient model of vapor–liquid phase change in an enclosed narrow space during startup operation is developed and numerically analyzed to investigate the two-phase dynamics and heat transfer behaviors in the confined flat two-phase thermosiphon. The transient temperature distribution, vapor–liquid interface evolution and thermal performance are investigated over a wide range of heat load and liquid filling ratio. The results indicate that, as heat load increases, the intermittent nucleation boiling, fully developed nucleation boiling and film boiling sequentially takes place at the evaporator section of the confined flat two-phase thermosiphon. Correspondingly, the transient temperature evolution shows the periodic large-amplitude fluctuation, the random medium-amplitude fluctuation, and gentle small-amplitude fluctuation. The fully developed boiling is desirable for the heat transfer enhancement on the evaporator surface due to smaller temperature fluctuation and lower thermal resistance. The moderate liquid filling ratio ensures the desired interaction between the evaporator and condenser, resulting in superior thermal performance. To optimize the thermal performance, the optimal liquid filling ratio is about 40%.

Additional information

Funding

This work was supported by the National Natural Science Foundation of China (Grant Nos. U1737104 and 51776037), the Natural Science Foundation of Jiangsu Province (Grant No. BK20170082), the “six talent peaks” project of Jiangsu Province (Grant No. XNY-042), and “Zhishan Young Scholar” Program of Southeast University.

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