重力热管,VOF模型,数值模拟,对流换热系数," /> 重力热管,VOF模型,数值模拟,对流换热系数,"/> gravity heat pipe,VOF model,numerical simulation,convection heat transfer coefficient,"/> <p class="MsoNormal"> <span>重力热管基于</span><span>VOF</span><span>模型的传热特性研究</span>
Please wait a minute...
沈阳化工大学学报, 2023, 37(3): 260-265    doi: 10.3969/j.issn.2095-2198.2023.03.009
  机械工程 本期目录 | 过刊浏览 | 高级检索 |

重力热管基于VOF模型的传热特性研究

沈阳化工大学 机械与动力工程学院, 辽宁 沈阳 110142

Study on Heat Transfer Characteristics of Gravity

Shengyang University of Chemical Technology, Shenyang 110142, China

下载:  PDF (1482KB) 
输出:  BibTeX | EndNote (RIS)      
摘要 

采用Fluent软件选用VOF模型,并加载自定义函数(UDF),实现重力热管内部的相变传热过程,对重力热管进行数值模拟分析.研究结果表明:Fluent可以将重力热管内部相变过程较好地呈现出来.当加热功率为60 W时,换热系数达到最大值;当加热功率继续增加到80 W时,换热系数逐渐下降.当充液率在0.20~0.24范围时,随着充液率的增加,等效对流换热系数也增加;当充液率在0.24~0.32时,等效对流换热系数逐渐降低;充液率为0.24时,等效对流换热系数最大.当倾角在30°~60°时,等效对流换热系数随倾角增大而增大;当倾角在60°~90°时,等效对流换热系数随倾角增大而减小;倾角为60°时等效对流换热系数最大.

服务
把本文推荐给朋友
加入引用管理器
E-mail Alert
RSS
作者相关文章
关键词:  重力热管')" href="#">

重力热管  VOF模型  数值模拟  对流换热系数    

Abstract: Fluent software is used to select VOF model and load user-defined function(UDF)to realize the phase change heat transfer process in the gravity heat pipe,and the numerical simulation analysis of gravity heat pipe is carried out.The results show that fluent can better present the phase transformation process in the gravity heat pipe;when the heating power is 60 W,the heat transfer coefficient reaches the maximum value;when the heating power continues to increase to 80 W,the heat transfer coefficient gradually decreases;when the liquid filling rate is in the range of 0.20 ~ 0.24,the equivalent convective heat transfer coefficient also increases with the increase of liquid filling rate;when the liquid filling rate increases to 0.32,the equivalent convection heat transfer coefficient increases.When the liquid filling rate is 0.24,the equivalent convective heat transfer coefficient is the highest.The equivalent convective heat transfer coefficient increases with the increase of the inclination angle in the range of 30° to 60° and decreases when the inclination angle increases to 90° and the equivalent convective heat transfer coefficient reaches the maximum when the inclination angle is 60°.
Key words:  gravity heat pipe')" href="#">

gravity heat pipe    VOF model    numerical simulation    convection heat transfer coefficient

               出版日期:  2023-06-30      发布日期:  2024-03-11      整期出版日期:  2023-06-30
ZTFLH: 

TK172.4

 
基金资助: 

国家自然科学基金(11672189)

通讯作者:  王立鹏   
作者简介:  战洪仁(1964—),女,山东蓬莱人,教授,博士,主要从事强化换热与节能技术的研究.
引用本文:    
战洪仁, 于胜利, 王立鹏, 才月, 吴霖.

重力热管基于VOF模型的传热特性研究 [J]. 沈阳化工大学学报, 2023, 37(3): 260-265.
ZHAN Hongren, YU Shengli, WANG Lipeng, CAI Yue, WU Lin.

Study on Heat Transfer Characteristics of Gravity . Journal of Shenyang University of Chemical Technology, 2023, 37(3): 260-265.

链接本文:  
https://xuebao.syuct.edu.cn/CN/10.3969/j.issn.2095-2198.2023.03.009  或          https://xuebao.syuct.edu.cn/CN/Y2023/V37/I3/260

1]戴绍碧,王娇琳,王倩.大功率LED灯热管散热器性能研究[J].制冷与空调(四川),2017,31(5):511-515,550.

2]崔巍,张煜杭,宋日悬,等.一种井筒内低品位余热回收的串级式翅片重力热管装置的设计[J].压力容器,2019,36(1):35-40.

3]胡晓阳,陈乐,徐建斌,等.基于表征测量的太阳能重力热管传热性能测定与优化研究[J].太阳能学报,2018,39(2):441-447.

4]卿倩,张登春,陈大伟,等.重力热管内部相变传热过程的数值模拟[J].矿业工程研究,2019,34(4):57-64.

5]张怀洁,张伟.重力热管几何结构优化的数值研究[J].天津城建大学学报,2019,25(5):317-320.

6]李本文,李赛英,李斌,等.重力热管内部相变及传热传质过程的数值模拟[J].热科学与技术,2018,17(6):449-456.

7]SHRIAISH M,KIKUCHI K,YAMARCISHI T.Investigation of Heat Transfer Characteristics of a Two-Phase Closed Thermosyphon[J].Journal of Heat Recovery Systems,1981,1(4):287-297.

8]战洪仁,李春晓,王立鹏,等.基于VOF模型对重力热管内部沸腾冷凝过程的仿真模拟[J].冶金能源,2016,35(1):30-34,43.

9]战洪仁,张海松,韩冬雪,等.重力热管换热特性数值模拟[J].沈阳化工大学报,2016,30(3):254-258.

10BRACKBILL J U,KOTHE D B,ZEMACH C.A Continuum Method for Modeling Surface Tension1J.Journal of Computational Physics,1992,100(2):335-354.

[1] 张越, 刘鹏, 孙昊, 栗亚奇.

冷凝矿热炉多物理场耦合数值模拟研究 [J]. 沈阳化工大学学报, 2023, 37(5): 463-471.

[2] 张建伟, 安丰元, 董鑫, 冯颖, 周春云, 施博文.

不同动量比撞击流反应器流场特性数值模拟 [J]. 沈阳化工大学学报, 2023, 37(1): 49-55.

[3] 禹言芳, 宋睿, 李中根, 孟辉波.

Lightnin静态混合器内瞬态压力波动特性数值模拟 [J]. 沈阳化工大学学报, 2022, 36(4): 355-361.

No Suggested Reading articles found!
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed