Three-dimensional simulations of NEPE propellant combustion under depressurization effects

被引:2
|
作者
Chen, Kaixuan [1 ]
Ye, Zhenwei [2 ]
Yu, Yizhe [3 ]
Xue, Xiaochun [1 ]
Yu, Yonggang [1 ]
机构
[1] Nanjing Univ Sci & Technol, Sch Energy & Power Engn, Nanjing 210094, Jiangsu, Peoples R China
[2] Hangzhou Dianzi Univ, Sch Sci, Hangzhou 310018, Zhejiang, Peoples R China
[3] Nanjing Univ Sci & Technol, Sino France Engn Sch, Nanjing 210094, Jiangsu, Peoples R China
关键词
NEPE propellant; Flame evolution; Depressurization effect; Micro-combustion; DIFFUSION FLAME CALCULATIONS; BURNING CHARACTERISTICS; COMPOSITE PROPELLANT; PARTICLE-SIZE; PACKS; HMX;
D O I
10.1016/j.combustflame.2024.113785
中图分类号
O414.1 [热力学];
学科分类号
摘要
This study aims to analyze the characteristics of micro-combustion and unsteady flame development in nitrate ester-plasticized polyether (NEPE) propellant when exposed to rapid pressure decay. A three-dimensional NEPE propellant combustion model is firstly established to achieve this goal. The framework consists of two parts. Firstly, we used sequential algorithms to generate a 3D numerical pack satisfying industrial requirements. In the numerically generated propellant pack, Ammonium perchlorate (AP) particles, and Cyclotetramethylene tetranitramine (HMX) particles are assumed as spheres, whereas the void space is Nitroglycerin/1,2,4-Butane triol trinitrate (NG/BTTN) binder. Secondly, a new kinetic model considering the pyrolysis of condensed phase and complicated interaction of gas species in the gas phase is proposed, which has been not reported until now. The accuracy of this framework is verified via comparing with experimental results. Upon simulating the depressurization combustion of NEPE propellant, it is observed that the non-planar surface stimulates the growth of Leading-Edge Flames, leading to intensified burning during the initial stage of depressurization combustion. After 5.2 ms of depressurization combustion, a remarkable increase in bulk heat release in the gas phase is discovered, attributed to the involvement of coarse AP particles, thereby providing a conducive oxidizing burning environment. Examination of the propellant surface temperature reveals that the oxidizer/binder interface exhibits higher temperatures ( 950 K) at 3.4 MPa, while the particle core typically remains cooler ( 850 K) at pressures ranging from 1.0 to 3.5 MPa. The dynamic temperature fluctuations are a result of the heterogeneity of the propellant microstructure, which also serves as the primary cause of oscillations in several globally averaged parameters. The flickering flame behavior during transient combustion, along with the corresponding combustion characteristics, offers theoretical insights for the study of combustion instability in solid rocket motors, warranting further validation through experimental cases.
引用
收藏
页数:14
相关论文
共 50 条
  • [1] Three-dimensional heterogeneous propellant combustion
    Massa, L
    Jackson, TL
    Buckmaster, J
    Campbell, M
    PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2002, 29 : 2975 - 2983
  • [2] Three-dimensional heterogeneous propellant combustion
    Massa, L.
    Jackson, T.L.
    Buckmaster, J.
    Campbell, M.
    Proceedings of the Combustion Institute, 2002, 29 (02) : 2975 - 2983
  • [3] Micro-flow properties of NEPE propellant in a rotating depressurization combustion environment of solid rocket motor
    Chen, Kaixuan
    Xue, Xiaochun
    Ye, Zhenwei
    Yu, Yonggang
    AEROSPACE SCIENCE AND TECHNOLOGY, 2024, 152
  • [4] Study on ignition and combustion characteristics of NEPE propellant under laser irradiation
    School of Mechanical Engineering, Nanjing University of Science and Technology, Nanjing
    210094, China
    不详
    102202, China
    不详
    210006, China
    Tuijin Jishu, 8 (1262-1267):
  • [5] The three-dimensional numerical simulation of aluminized composite solid propellant combustion
    Wang, X.
    Hossain, K.
    Jackson, T. L.
    COMBUSTION THEORY AND MODELLING, 2008, 12 (01) : 45 - 71
  • [6] Effects of nanometer-PbCO3 on combustion behavior of NEPE propellant
    Chen, Futa
    Luo, Yunjun
    Duo, Yingquan
    Luo, Shanguo
    Qiu, Wulin
    Yao, Weishang
    Tan, Huimin
    Tuijin Jishu/Journal of Propulsion Technology, 2000, 21 (01): : 82 - 85
  • [7] Numerical Simulation of Three-dimensional Combustion Flows of Pasty Propellant Rocket Motor
    Hu, Renjie
    Wang, Weizong
    2022 13th International Conference on Mechanical and Aerospace Engineering, ICMAE 2022, 2022, : 290 - 295
  • [8] Combustion Behavior of HTPB Propellant Containing Ammonium Oxalate under Rapid Depressurization
    Luo, Yi-Min
    Wang, Jun-Hong
    Xia, Yu
    Zheng, Wen-Fang
    Xu, Sen
    Wu, Xing-Liang
    Huozhayao Xuebao/Chinese Journal of Explosives and Propellants, 2024, 47 (12): : 1144 - 1154
  • [9] Numerical analysis of AP/HTPB composite propellant combustion under rapid depressurization
    Cao, Y. J.
    Yu, Y. G.
    Ye, R.
    APPLIED THERMAL ENGINEERING, 2015, 75 : 145 - 153
  • [10] Numerical simulation of three-dimensional flow in combustion chamber of solid propellant rocket engine
    Mei, Liquan
    Huang, Qinghuai
    Ranshao Kexue Yu Jishu/Journal of Combustion Science and Technology, 1996, 2 (03): : 256 - 259