Turbulent convective heat transfer of methane at supercritical pressure in a helical coiled tube

被引:19
作者
Wang, Chenggang [1 ]
Sun, Baokun [1 ]
Lin, Wei [1 ]
He, Fan [1 ]
You, Yingqiang [1 ]
Yu, Jiuyang [1 ]
机构
[1] Wuhan Inst Technol, Sch Mech & Elect Engn, Hubei Prov Key Lab Chem Equipment Intensificat &, Wuhan 430205, Hubei, Peoples R China
基金
中国国家自然科学基金;
关键词
Helically coiled tube; Supercritical pressure; Methane; Heat transfer; CARBON-DIOXIDE;
D O I
10.1007/s11630-018-0984-5
中图分类号
O414.1 [热力学];
学科分类号
摘要
The heat transfer of methane at supercritical pressure in a helically coiled tube was numerically investigated using the Reynolds Stress Model under constant wall temperature. The effects of mass flux (G), inlet pressure (P-in) and buoyancy force on the heat transfer behaviors were discussed in detail. Results show that the light fluid with higher temperature appears near the inner wall of the helically coiled tube. When the bulk temperature is less than or approach to the pseudocritical temperature (T-pc ), the combined effects of buoyancy force and centrifugal force make heavy fluid with lower temperature appear near the outer-right of the helically coiled tube. Beyond the T-pc , the heavy fluid with lower temperature moves from the outer-right region to the outer region owing to the centrifugal force. The buoyancy force caused by density variation, which can be characterized by Gr/Re-2 and Gr/Re-2.7, enhances the heat transfer coefficient (h) when the bulk temperature is less than or near the T-pc , and the h experiences oscillation due to the buoyancy force. The oscillation is reduced progressively with the increase of G. Moreover, h reaches its peak value near the T-pc . Higher G could improve the heat transfer performance in the whole temperature range. The peak value of h depends on P-in. A new correlation was proposed for methane at supercritical pressure convective heat transfer in the helical tube, which shows a good agreement with the present simulated results.
引用
收藏
页码:55 / 63
页数:9
相关论文
共 20 条
[1]   A numerical investigation on LNG flow and heat transfer characteristic in heat exchanger [J].
Afrianto, Handry ;
Tanshen, Md Riyad ;
Munkhbayar, B. ;
Suryo, U. Tony ;
Chung, Hanshik ;
Jeong, Hyomin .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2014, 68 :110-118
[2]   Theoretical and Computational Analyses of LNG Evaporator [J].
Chidambaram, Palani Kumar ;
Jo, Yang Myung ;
Kim, Heuy Dong .
JOURNAL OF THERMAL SCIENCE, 2017, 26 (02) :132-137
[4]  
Du ZX, 2012, PROCEEDINGS OF THE ASME SUMMER HEAT TRANSFER CONFERENCE, 2012, VOL 2, P1003
[5]  
GNIELINSKI V, 1976, INT CHEM ENG, V16, P359
[6]   Experimental investigation on convective heat transfer from a horizontal miniature tube to methane at supercritical pressures [J].
Gu, Hongfang ;
Li, Hongzhi ;
Wang, Haijun ;
Luo, Yushan .
APPLIED THERMAL ENGINEERING, 2013, 58 (1-2) :490-498
[7]   Numerical investigation of supercritical LNG convective heat transfer in a horizontal serpentine tube [J].
Han, Chang-Liang ;
Ren, Jing-Jie ;
Dong, Wen-Ping ;
Bi, Ming-Shu .
CRYOGENICS, 2016, 78 :1-13
[8]   Experimental and CFD estimation of heat transfer in helically coiled heat exchangers [J].
Jayakumar, J. S. ;
Mahajani, S. M. ;
Mandal, J. C. ;
Vijayan, P. K. ;
Bhoi, Rohidas .
CHEMICAL ENGINEERING RESEARCH & DESIGN, 2008, 86 (A3) :221-232
[9]  
Kakac, 1979, TURBULENT FORCED CON, P613
[10]  
[李仲珍 Li Zhongzhen], 2013, [工程热物理学报, Journal of Engineering Thermophysics], V34, P2314