[1] 范学军, 俞刚. 大庆RP-3航空煤油热物性分析[J]. 推进技术, 2006, 27(2): 187-192. (FAN Xue-jun, YU Gang. Analysis of Thermophysical Properties of Daqing RP-3 Aviation Kerosene[J]. Journal of Propulsion Technology, 2006, 27(2): 187-192.)
[2] 王夕. 超临界压力吸热型碳氢燃料热裂解及传热特性研究[D]. 北京:清华大学, 2013.
[3] 赵国柱, 宋文艳, 张若凌, 等. 超临界压力下正十烷流动传热的数值模拟[J]. 推进技术, 2014, 35(4): 537-543. (ZHAO Guo-zhu, SONG Wen-yan, ZHANG Ruo-ling, et al. Numerical Simulation on Flow and Heat Transfer of n-Decane under Supercritical Pressure[J]. Journal of Propulsion Technology, 2014, 35(4): 537-543.)
[4] 赵国柱, 宋文艳, 张若凌. 超临界压力下RP-3航空煤油吸热裂解反应的数值研究[J]. 航空学报, 2014, 35(6): 1513-1521.
[5] Jiang R P, Liu G Z, Wang X Q, et al. Thermal Cracking of Hydrocarbon Aviation Fuels in Regenerative Cooling Microchannels[J]. Energy and Fuels, 2013, 27(5): 2563-2577.
[6] Zhang R L, Zhao G Z, Le J L, et al. Numerical Study on Heat Transfer of Hydrocarbon Fuel with Thermal Cracking[R]. AIAA 2015-3621.
[7] 张强强. 微细通道内碳氢燃料传热与裂解过程的实验研究与CFD模拟[D]. 天津:天津大学, 2014.
[8] Bao W, Zhang S L, Qin J, et al. Numerical Analysis of Flowing Cracked Hydrocarbon Fuel inside Cooling Channels in View of Thermal Management[J]. Energy, 2014, 67(4): 149-161.
[9] Zhang S L, Qin J, Xie K L, et al. Thermal Behavior inside Scramjet Cooling Channels at Different Channel Aspect Ratios[J]. Journal of Propulsion and Power, 2016, 32(1): 57-70.
[10] Menter F R. Two Equation Eddy Viscosity Turbulence Models for Engineering Applications[J]. AIAA Journal, 2012, 32(8): 1598-1605.
[11] Yoon S, Jameson A. Lower-Upper Symmetric Gauss-Seidel Method for the Euler and Navier-Stokes Equations[J]. AIAA Journal, 1988, 26(9): 1025-1026.
[12] Edwards J R, Franklin R K, Liou M S. Low-Diffusion Flux-Splitting Methods for Real Fluid Flows at All Speeds[R]. AIAA 99-3327.
[13] Kim S K, Choi H S, Kim Y. Thermodynamic Modeling Based on a Generalized Cubic Equation of State for Kerosene/LOX Rocket Combustion[J]. Combustion and Flame, 2012, 159(3): 1351-1365.
[14] Cismondi M, Mollerup J. Development and Application of a Three-Parameter RK-PR Equation of State[J]. Fluid Phase Equilibria, 2005, 232(1): 74-89.
[15] Meng H, Yang V. A Unified Treatment of General Fluid Thermodynamics and its Application to a Preconditioning Scheme[J]. Journal of Computational Physics, 2003, 189(1): 277-304.
[16] Chorin A J. A Numerical Method for Solving Incompressible Viscous Flow Problem[J]. Journal of Computational Physics, 1967, 2(1): 12-26.
[17] Shuen J S, Chen K H, Choi Y. A Coupled Implicit Method for Chemical Non-Equilibrium Flows at All Speeds[J]. Journal of Computational Physics, 1993, 106(2): 306-318.
[18] 侯凌云, 董宁, 孙大鹏. 矩形冷却槽道内煤油热裂解过程数值研究[J]. 推进技术, 2014, 35(1): 128-132. (HOU Ling-yun, DONG Ning, SUN Da-peng. Numerical Study on Thermal Cracking Process of Kerosene in a Rectangular Cooling Channel[J]. Journal of Propulsion Technology, 2014, 35(1): 128-132.)
[19] Ward T A, Ervin J S, Striebich R C, et al. Simulations of Flowing Mildly-Cracked Normal Alkanes Incorporating Proportional Product Distributions[J]. Journal of Propulsion and Power, 2004, 20(3): 394-402.
[20] 童景山. 流体热物性学基本理论与计算[M]. 北京:中国石化出版社, 2008. * 收稿日期:2017-09-08;修订日期:2017-11-02。作者简介:初敏,男,博士,研究领域为高超声速飞行器热防护设计。E-mail: chumin_caaa@126.com通讯作者:艾邦成,男,博士,研究员,研究领域为高超声速飞行器热防护设计。E-mail: aimen011@126.com(编辑:张荣莉)
|