Heterogeneous Continuum Model of Aluminum Particle Combustion in Explosions

被引:0
|
作者
A. L. Kuhl
J. B. Bell
V. E. Beckner
机构
[1] Lawrence Livermore National Laboratory,
[2] Lawrence Berkeley National Laboratory,undefined
来源
Combustion, Explosion, and Shock Waves | 2010年 / 46卷
关键词
Key words; continuum model; combustion; aluminum; explosion;
D O I
暂无
中图分类号
学科分类号
摘要
A heterogeneous continuum model is proposed to describe the dispersion and combustion of an aluminum particle cloud in an explosion. It combines gasdynamic conservation laws for the gas phase with a continuum model for the dispersed phase, as formulated by Nigmatulin. Interphase mass, momentum, and energy exchange are prescribed by the phenomenological model of Khasainov. It incorporates a combustion model based on mass conservation laws for fuel, air, and products. The source/sink terms are treated in the fast-chemistry limit appropriate for such gasdynamic fields, along with a model for mass transfer from the particle phase to the gas. The model takes into account both the afterburning of the detonation products of the booster with air and the combustion of the Al particles with air. The model equations are integrated by high-order Godunov schemes for both the gas and particle phases. Numerical simulations of the explosion fields from 1.5-g shock-dispersed-fuel charges in 3 different chambers are performed. Computed pressure histories are similar to measured waveforms when the ignition temperature model is employed. The predicted product production is 10–14% greater than that measured in the experiments. This fact can be ascribed to unsteady ignition effects not included in the modeling.
引用
收藏
页码:433 / 448
页数:15
相关论文
共 50 条
  • [41] PASSAGE FROM A PARTICLE SYSTEM TO A CONTINUUM MODEL
    RIVLIN, RS
    ARCHIVES OF MECHANICS, 1976, 28 (03): : 549 - 561
  • [42] Hybrid model for combined particle and continuum dynamics
    Flekkoy, EG
    Wagner, G
    Feder, J
    EUROPHYSICS LETTERS, 2000, 52 (03): : 271 - 276
  • [43] Model simplifications on biomass particle combustion
    Sousa, Nelson
    Azevedo, Joao L. T.
    FUEL, 2016, 184 : 948 - 956
  • [44] Combustion model of oil shale particle
    Jiang, Xiu-Min
    Han, Xiang-Xin
    Liu, De-Chang
    Zheng, Chu-Guang
    Zhongguo Dianji Gongcheng Xuebao/Proceedings of the Chinese Society of Electrical Engineering, 2002, 22 (11): : 138 - 140
  • [45] Flame propagation through aluminum particle cloud in a combustion tube
    Chen, ZH
    Fan, BC
    JOURNAL OF LOSS PREVENTION IN THE PROCESS INDUSTRIES, 2005, 18 (01) : 13 - 19
  • [46] EFFECT OF PARTICLE SIZE ON REACTIVITY AND COMBUSTION CHARACTERISTICS OF ALUMINUM NANOPARTICLES
    Zha, Mingxia
    Lv, Xuewen
    Ma, Zhenye
    Zhang, Lixiong
    Zhao, Fengqi
    Xu, Siyu
    Xu, Huixiang
    COMBUSTION SCIENCE AND TECHNOLOGY, 2015, 187 (07) : 1036 - 1043
  • [47] Aluminum Particle Combustion in High-Speed Detonation Products
    Tanguay, V.
    Goroshin, S.
    Higgins, A. J.
    Zhang, F.
    COMBUSTION SCIENCE AND TECHNOLOGY, 2009, 181 (04) : 670 - 693
  • [48] Numerical study of hydrogen addition effects on aluminum particle combustion
    Lee, Minhyeok
    Saeki, Rinrin
    Kim, Wookyung
    JOURNAL OF THE ENERGY INSTITUTE, 2022, 105 : 72 - 80
  • [49] INVESTIGATION OF ALUMINUM PARTICLE COMBUSTION IN THE FLAME OF SOLID ROCKET PROPELLANTS
    AKIBA, R
    KOHNO, M
    VOLPI, A
    TOKUDOME, S
    SHIBATA, T
    COMBUSTION EXPLOSION AND SHOCK WAVES, 1993, 29 (03) : 361 - 364
  • [50] Gas-surface thermochemistry and kinetics for aluminum particle combustion
    Glorian, Julien
    Catoire, Laurent
    Gallier, Stany
    Cesco, Nathalie
    PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2015, 35 : 2439 - 2446