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林梅

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  • 博士生导师 硕士生导师
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  • 学历: 大学本科毕业
  • 学位: 硕士
  • 学科: 动力工程及工程热物理

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祝贺博士生朱子良撰写的论文在国际权威期刊Applied Thermal Engineering 发表

发布时间:2023-09-07
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发布时间:
2023-09-07
文章标题:
祝贺博士生朱子良撰写的论文在国际权威期刊Applied Thermal Engineering 发表
内容:

 

论文题目:Study on targeted influence of annular porous media and rotating impeller on thermal mixing in T-junctions

作者:

Ziliang Zhu1, Shuang Wang2, Kexin Huang2, Dongjun Xu1, Mei Lin2 and Qiuwang Wang1*

1MOE Key Laboratory of Thermo-Fluid Science and Engineering, Xi’an Jiaotong University, Xi’an 710049, China

2Department of Fluid Machinery, School of Energy and Power Engineering, Xi’an Jiaotong University, Xi’an 710049, China

* Corresponding author. E-mail address: wangqw@mail.xjtu.edu.cn (Qiuwang Wang)

摘要:T-junctions are utilized as the thermal mixing equipment of hot and cold fluids in chemical and nuclear industries. However, the flow/heat induced fatigue damage can be generated in the pipe wall of the T-junction by the intense velocity and temperature fluctuations. In this study, new targeted regulation methods consisting of the annular porous media and rotating impeller are proposed to regulate the thermal mixing performances of the T-junction. Then, the thermal mixing processes of T-junctions with/without porous media and impeller are evaluated by the large eddy turbulence model. The temperature field, velocity field, secondary flow intensity and performance parameters of T-junctions are compared. It is found that the annular porous media can targetedly inhibit velocity and temperature fluctuations in the near-wall zone, reduce the temperature gradient and decrease the secondary flow intensity. Besides, the rotating impeller can targetedly promote the thermal mixing in the mainstream zone, inhibit the thermal stratification and increase the secondary flow intensity. If the annular porous media and rotating impeller are utilized together, the effects can be superposition, which is the recommended choice in this study. Finally, the results can be used as the guidelines for the thermal mixing enhancement and fatigue inhibition of the T-junction.