Numerical simulation analysis of high-temperature bent sodium heat pipes

被引:3
作者
Cheng, Xiongwei [1 ,2 ]
Jiang, Hualei [1 ]
Li, Taosheng [1 ]
Zhang, Siwei [1 ]
Duan, Chengjun [1 ]
Mei, Huaping [1 ]
机构
[1] Chinese Acad Sci, Hefei Inst Phys Sci, Hefei 230031, Peoples R China
[2] Univ Sci & Technol China, Hefei 230031, Peoples R China
关键词
bent heat pipe; heat transfer; numerical simulation; bending angle; bending radius; WICK; PERFORMANCE; STARTUP;
D O I
10.1515/kern-2023-0121
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
High-temperature bent heat pipes are safety-level heat transfer components used in heat pipe cooled reactor, and their applications are becoming increasingly widespread. In this study, a comprehensive three-dimensional numerical model was established to evaluate the effects of different bending angles and radii on the performance of high-temperature heat pipes. The model solved for the temperature, pressure, and velocity fields in the wall, wick, and evaporator, considers the compressibility effect of the vapor. The study investigated parameters such as vapor pressure, vapor velocity, radial secondary flow field, wall temperature, wick temperature, and equivalent thermal resistance of powder sintered core sodium heat pipes with bending angles of 45 degrees, 90 degrees, 135 degrees, 180 degrees, and a bending radius under 90 degrees. The results showed that when sodium vapor enters the bent pipe, the vapor flow deviates towards the outer side, resulting in higher vapor pressure at the outer side than the vapor pressure at the inner side, and the generation of radial secondary vortex. This leads to higher temperature in the evaporator and adiabatic sections of the bent heat pipe, while lower temperature in the condenser. Fractal patterns are observed in the outer and inner wall temperature curve in the adiabatic section, with lower temperatures on the inner side and higher temperatures on the outer side. The bent heat pipe exhibits higher equivalent thermal resistance than that of a straight heat pipe, and the equivalent thermal resistance increases with increasing bending angle, and the equivalent thermal resistance decreases with increasing bending radius.
引用
收藏
页码:250 / 264
页数:15
相关论文
共 29 条
[1]  
[Anonymous], 1986, US
[2]  
Camarda C., 1977, NASA TN 8486
[3]   The length and bending angle effects on the cooling performance of flat plate heat pipes [J].
Chen, Jung-Shun ;
Chou, Jung-Hua .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2015, 90 :848-856
[4]   Numerical investigation of characteristics of wick structure and working fluid of U-shape heat pipe for CPU cooling [J].
Elnaggar, Mohamed H. A. .
MICROELECTRONICS RELIABILITY, 2014, 54 (01) :297-302
[5]   CFD modelling of a two-phase closed thermosyphon charged with R134a and R404a [J].
Fadhl, Bandar ;
Wrobel, Luiz C. ;
Jouhara, Hussam .
APPLIED THERMAL ENGINEERING, 2015, 78 :482-490
[6]   A NUMERICAL-ANALYSIS OF THE EFFECTS OF CONJUGATE HEAT-TRANSFER, VAPOR COMPRESSIBILITY, AND VISCOUS DISSIPATION IN HEAT PIPES [J].
FAGHRI, A ;
CHEN, MM .
NUMERICAL HEAT TRANSFER PART A-APPLICATIONS, 1989, 16 (03) :389-405
[7]   TURBULENT-FLOW IN A SQUARE DUCT WITH STRONG CURVATURE [J].
HUMPHREY, JAC ;
WHITELAW, JH ;
YEE, G .
JOURNAL OF FLUID MECHANICS, 1981, 103 (FEB) :443-463
[8]  
Ivanovski M., 1982, Physical principles of heat pipes
[9]  
Jang J., 1988, THESIS GEORGIA I TEC
[10]   MATHEMATICAL-MODELING AND ANALYSIS OF HEAT PIPE START-UP FROM THE FROZEN STATE [J].
JANG, JH ;
FAGHRI, A ;
CHANG, WS ;
MAHEFKEY, ET .
JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 1990, 112 (03) :586-594