LI Jia-nan1, LEI Fan-pei2, ZHOU Li-xin1. Effects of Backpressure on Atomization Characteristics of Impinging Jet Injector[J]. Journal of Propulsion Technology, 2020, 41(4): 847-859.
[1] 庄逢辰. 液体火箭发动机喷雾燃烧的理论、模型及应用[M]. 长沙: 国防科技大学出版社, 1995.
[2] Heidmann M F, Priem R J, Humphrey J C. A Study of Sprays Formed by Two Impinging Jets[R]. NACA-TN-3835, 1957.
[3] Heidmann M F, Humphrey J C. Fluctuations in a Spray Formed by Two Impinging Jets[R]. NACA-TN-2349, 1952.
[4] Anderson W E, Ryan H M, Santoro R J. Impact Wave-based Model of Impinging Jet Atomization[J]. Atomization and Sprays, 2006, 16: 791-805.
[5] Ryan H M, Anderson W E, Pal S, et al. Atomization Characteristics of Impinging Liquid Jets[J]. Journal of Propulsion and Power, 1995, 11(1): 135-145.
[6] Li R, Ashgriz N. Characteristics of Liquid Sheets Formed by Two Impinging Jets[J]. Physics of Fluids, 2006, 18(8).
[7] 李佳楠, 雷凡培, 周立新, 等. 液体火箭发动机背压振荡环境下的雾化特性研究进展[J]. 推进技术, 2019, 40(10)
[8] Strakey P A, Talley D G. Spray Characteristics of Impinging Jet Injectors at High Back-Pressure[C]. Pasadena: 8th International Conference on Liquid Atomization and Spray Systems, 2000.
[9] Dombrowski N, Hooper P C. The Performance Characteristics of an Impinging Jet Atomizer in Atmospheres of High Ambient Density[J]. Fuel, 1962, 41(4): 323-334.
[10] Santoro R J, Anderson W E. Combustion Instability Phenomena of Importance to Liquid Rocket Engines[R]. AD-A284 780, 1994.
[11] 杨立军, 富庆飞. 液体火箭发动机推力室设计[M]. 北京: 北京航空航天大学出版社, 2013.
[12] 屈元元. 反压环境下喷注器雾化特性实验研究[D]. 北京:北京航空航天大学, 2011.
[13] Inoue C, Watanabe T, Himeno T. Study on Atomization Process of Liquid Sheet Formed by Impinging Jets[R]. AIAA 2008-4847.
[14] Arienti M, Li X, Soteriou M C, et al. Coupled Level-Set/Volume-of-Fluid Method for the Simulation of Liquid Atomization in Propulsion Device Injectors[R]. AIAA 2010-7136.
[15] Chen X D, Ma D J, Yang V. Mechanism Study of Impact Wave in Impinging Jets Atomization[R]. AIAA 2012-1089.
[16] Chen X D, Ma D J, Yang V. High-Fidelity Numerical Simulations of Impinging Jet Atomization[R]. AIAA 2012-4328.
[17] Chen X D, Yang V. Thickness-Based Adaptive Mesh Refinement Methods for Multi-Phase Flow Simulations with Thin Regions[J]. Journal of Computational Physics, 2014, 269: 22-39.
[18] 郑 刚, 聂万胜, 何 博, 等. 撞击角对撞击式喷嘴雾化特性影响研究[J]. 推进技术, 2015, 36(4): 608-613.
[19] 郑 刚, 冯 伟, 聂万胜, 等. 动量比对两股互击式喷嘴雾化特征的影响[J]. 航空动力学报, 2016, 31(9): 2283-2289.
[20] Zheng G, Nie W S, Feng S J, et al. Numerical Simulation of the Atomization Process of a Like-Doublet Impinging Rocket Injector[J]. Procedia Engineering, 2015, 99: 930-938.
[21] 刘昌波, 雷凡培, 周立新. 两股湍流射流撞击雾化过程的数值研究[J]. 推进技术, 2014, 35(12): 1669-1678.
[22] 强洪夫, 刘 虎, 陈福振, 等. 基于SPH方法的射流撞击仿真[J]. 推进技术, 2012, 33(3): 424-429.
[23] 强洪夫, 韩亚伟, 王 广, 等. 幂律型流体雾化SPH方法数值分析[J]. 推进技术, 2013, 34(2): 240-247.
[24] 韩亚伟, 强洪夫, 刘 虎. 双股液体射流撞击雾化的SPH方法数值模拟[J]. 工程力学, 2013, 30(3): 17-23.
[25] Wei Q, Liang G Z. Coupled Lagrangian Impingement Spray Model for Doublet Impinging Injectors Under Liquid Rocket Engine Operating Conditions[J]. Chinese Journal of Aeronautics, 2017, 30(4): 1391-1406.
[26] Popinet S. Gerris: A Tree-Based Adaptive Solver for the Incompressible Euler Equations in Complex Geometries[J]. Journal of Computational Physics, 2002, 190(2): 572-600.
[27] Popinet S. An Accurate Adaptive Solver for Surface-Tension-Driven Interfacial Flows[J]. Journal of Computational Physics, 2009, 228(16).
[28] Brackbill J U, Kothe D B, Zemach C A. A Continuum Method for Modeling Surface Tension[J]. Journal of Computational Physics, 1992, 100(2): 335-354.
[29] 阎 超, 于 剑, 徐晶磊, 等. CFD模拟方法的发展成就与展望[J]. 力学进展, 2011, 41(5): 563-589.
[30] Boris J P, Grinstein E F, Oran E S, et al. New Insights into Large-Eddy Simulation[R]. AD-A 249424, 1992.
[31] Zhang P Y, Wang B. Effects of Elevated Ambient Pressure on the Disintegration of Impinged Sheets[J]. Physics of Fluids, 2017, 29(4).
[32] Hirt C W, Nichols B D. Volume of Fluid (VOF) Method for the Dynamics of Free Boundaries[J]. Journal of Computational Physics, 1981, 39(1): 201-225.
[33] 张 磊. 界面不稳定性的数值模拟[D]. 合肥: 中国科学技术大学, 2003.
[34] Anderson W E, Ryan H M, Santoro R J, et al. Combustion Instability Mechanisms in Liquid Rocket Engines Using Impinging Jet Injectors[R]. AIAA 95-2357.
[35] Jung K, Khil T, Yoon Y. The Breakup Characteristics of Liquid Sheets Formed by Like-Doulbet Injectors[R]. AIAA 2002-4177.
[36] 李佳楠, 费 俊, 杨伟东, 等. 直流互击式喷注单元雾化特性准直接数值模拟[J]. 推进技术, 2016, 37(4): 713-725.