[1] |
Lander H, Nixon A C. Endothermic fuels for hypersonic vehicles [J]. J.Aircraft, 1971, 8 (4): 200-207
|
[2] |
Mao Yufei (毛宇飞), Guo Liejin (郭烈锦), Bai Bofeng (白博峰). Calculation model for convective heat transfer of supercritical fluids by low Reynolds number k-ε model [J]. CIESC Journal (化工学报), 2010, 61 (2): 281-288
|
[3] |
Du Zhongxuan (杜忠选), Lin Wensheng (林文胜), Gu Anzhong (顾安忠), Gu Min (辜敏). Numerical simulation of cooling heat transfer to supercritical methane in vertical circular tube [J]. CIESC Journal (化工学报), 2009, 60 (S1): 63-67
|
[4] |
Hua Y X, Wang Y Z, Meng H. A numerical study of supercritical forced convective heat transfer of n-heptane inside a horizontal miniature tube [J]. J.Supercrit.Fluids, 2010, 52 (1): 36-46
|
[5] |
Zhong F Q, Fan X J, Yu G, Li J, Sung C J. Heat transfer of aviation kerosene at supercritical conditions [J]. J.Thermophys.Heat Transfer, 2009, 23 (3): 543-550
|
[6] |
Dittus F W, Boelter L M K.Heat transfer in automobile radiators of the tubular type [J]. Int.Commun.Heat Mass Transfer, 1985, 12 (1): 3-22
|
[7] |
Choi S U S, Eastman J A. Enhancing thermal conductivity of fluids with nanoparticles//ASME International Mechanical Engineering Congress & Exposition [C]. San Francisco, 1995
|
[8] |
Yu W, France D M, Routbort J L, Stephen U. Review and comparison of nanofluid thermal conductivity and heat transfer enhancements [J]. Heat Transfer Eng., 2008, 29 (5): 432-460
|
[9] |
Philip J, Shima P D, Raj B. Enhancement of thermal conductivity in magnetite based nanofluid due to chainlike structures [J]. Appl.Phys.Lett., 2007, 91 (20): 203108-203108-3
|
[10] |
Hu Zhihong (胡志宏). Experimental investigation on heat transfer of kerosene [D]. Xi'an: Xi'an Jiaotong University, 1996
|
[11] |
Ely J F, Hanley H J M. Prediction of transport properties (Ⅰ): Viscosity of fluids and mixture [J]. Ind.Eng.Chem.Fundam., 1981, 20 (4): 323- 332
|
[12] |
Ely J F, Hanley H J M.Prediction of transport properties (Ⅱ): Thermal conductivity of pure fluids and mixtures [J]. Ind.Eng.Chem.Fundam., 1983, 22 (1): 90-97
|
[13] |
Meng H, Yang V. A unified treatment of general fluid thermodynamics and its application to a preconditioning scheme [J]. J.Comput.Phys., 2003, 189 (1): 277-304
|
[14] |
Wang Yazhou (王亚洲), Hua Yixin (华益新), Meng Hua (孟华). Numerical investigation of turbulent heat transfer of cryogenic- propellant methane under supercritical pressures [J]. J.Propul.Tech. (推进技术), 2010, 31 (4): 90-97
|
[15] |
Gnielinski V. New equations for heat and mass transfer in turbulent pipe and channel flow [J]. Int.Chem.Eng., 1976, 16 (2): 359-368
|
[16] |
Hu Zhihong (胡志宏), Chen Tingkuan (陈听宽), Luo Yushan (罗毓珊), Zheng Jianxue (郑建学). Heat transfer to kerosene at supercritical pressure in small-diameter tube with large heat flux [J]. Journal of Chemical Industry and Engineering (China) (化工学报), 2002, 53 (2): 134-138
|
[17] |
Hitch B, Karpuk M. Experimental investigation of heat transfer and flow instabilities in supercritical fuels//33rd Joint Propulsion Conference and Exhibit [C]. 1997: 3043
|
[18] |
Xuan Y, Li Q. Investigation of convective heat transfer and flow features of nanofluids [J]. J.Heat Transfer, 2003, 125 (1): 151-155
|
[19] |
Maiga S E B, Palm S J, Nguyen C T, Roy G, Galanis N. Heat transfer enhancement by using nanofluids in forced convection flows [J]. Int.J.Heat Fluid Flow, 2005, 26 (4): 530-546
|
[20] |
Buongiorno J. Convective transport in nanofluids [J]. J.Heat Transfer, 2006, 128 (3): 240-250
|
[21] |
Pan Jie (潘杰), Yang Dong (杨冬), Zhu Tan (朱探), Dong Zichun (董自春), Bi Qincheng (毕勤成). Heat transfer characteristics of supercritical pressure water in vertical upward rifled tube [J]. CIESC Journal (化工学报), 2011, 62 (2): 307-314
|
[22] |
Vajjha R S, Das D K, Kulkarni D P. Development of new correlations for convective heat transfer and friction factor in turbulent regime for nanofluids [J]. Int.J.Heat Mass Transfer, 2010, 53 (21/22): 4607-4618
|