Applied thermal engineering2022,Vol.21010.DOI:10.1016/j.applthermaleng.2022.118332

Numerical simulation of nitrogen vapor condensation on microstructure surface

Zhu, Shaolong Zhi, Xiaoqin Wang, Kai Qiu, Limin Luo, Ziying
Applied thermal engineering2022,Vol.21010.DOI:10.1016/j.applthermaleng.2022.118332

Numerical simulation of nitrogen vapor condensation on microstructure surface

Zhu, Shaolong 1Zhi, Xiaoqin 1Wang, Kai 1Qiu, Limin 1Luo, Ziying1
扫码查看

作者信息

  • 1. Zhejiang Univ
  • 折叠

Abstract

The mechanism of the condensation heat transfer enhancement on the microstructure surface has not been deeply explored, which restricts the full play of microstructure strengthening ability. In this study, a three-dimensional numerical simulation of the condensation on the micro fin surface revealed the liquid film flow behavior and the heat transfer performance, and the model is in good agreement with the experimental and theoretical results. The internal flow field on the curved surface shows that the liquid film is redistributed, and it proves that the surface tension plays a leading role in promoting the transverse movement of the liquid film. The micro fin surface area exhibits different functionalities, the excellent mass transfer region is located at the fin top, and its local heat transfer coefficient can reach 25 kW.m(-2).K-1, which is one order of magnitude higher than Nusselt's theoretical value. The fin bottom is the condensate collection area, where the condensate discharge velocity is increased by 2-3 times. The simulation results of the different micro fins indicate that the curvature radius of the micro fin could affect the condensate flow process, and the aspect ratio of the micro fin determines the local heat transfer enhancement degree and the strengthening area ratio. This study finally pointed out that the high-efficiency micro structure should have a large area of the fin top for enhancing heat transfer, as well as a large volume of the fin bottom for the liquid drainage.

Key words

Cryogenic fluid/Micro fin/Heat transfer enhancement/Surface tension/LAMINAR-FILM CONDENSATION/HEAT-TRANSFER/PRESSURE-DROP/MICRO-FIN/FLOW PATTERN/ENHANCEMENT/SMOOTH/R410A/MODEL/R134A

引用本文复制引用

出版年

2022
Applied thermal engineering

Applied thermal engineering

EISCI
ISSN:1359-4311
被引量4
参考文献量35
段落导航相关论文