Smoldering of porous media: numerical model and comparison of calculations with experiment

被引:4
作者
Lutsenko, N. A. [1 ,2 ]
Levin, V. A. [1 ,3 ]
机构
[1] RAS, Inst Automat & Control Proc FEB, Vladivostok 690041, Russia
[2] Far Eastern Fed Univ, Vladivostok 690950, Russia
[3] Lomonosov Moscow State Univ, Inst Mech, Moscow 119991, Russia
来源
ALL-RUSSIAN CONFERENCE WITH INTERNATIONAL PARTICIPATION MODERN PROBLEMS OF CONTINUUM MECHANICS AND EXPLOSION PHYSICS DEDICATED TO THE 60TH ANNIVERSARY OF LAVRENTYEV INSTITUTE OF HYDRODYNAMICS SB RAS | 2017年 / 894卷
基金
俄罗斯基础研究基金会;
关键词
HETEROGENEOUS COMBUSTION; FLOW; MOISTURE;
D O I
10.1088/1742-6596/894/1/012054
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Numerical modelling of smoldering in porous media under natural convection is considered. Smoldering can be defined as a flameless exothermic surface reaction; it is a type of heterogeneous combustion which can propagate in porous media. Peatbogs, landfills and other natural or man-made porous objects can sustain smoldering under natural (or free) convection, when the flow rate of gas passed through the porous object is unknown a priori. In the present work a numerical model is proposed for investigating smoldering in porous media under natural convection. The model is based on the assumption of interacting interpenetrating continua using classical approaches of the theory of filtration combustion and includes equations of state, continuity, momentum conservation and energy for solid and gas phases. Computational results obtained by means of the numerical model in one-dimensional case are compared with the experimental data of the smoldering combustion in polyurethane foam under free convection in the gravity field, which were described in literature. Calculations shows that when simulating both co-current combustion (when the smoldering wave moves upward) and counter-current combustion (when the smoldering wave moves downward), the numerical model can provide a good quantitative agreement with experiment if the parameters of the model are well defined.
引用
收藏
页数:7
相关论文
共 22 条
[1]  
Aldushin A. P., 1988, HEAT WAVE PROPAGATIO, P9
[2]   Downward buoyant filtration combustion [J].
Aldushin, AP ;
Matkowsky, BJ ;
Schult, DA .
COMBUSTION AND FLAME, 1996, 107 (1-2) :151-175
[3]   Upward buoyant filtration combustion [J].
Aldushin, AP ;
Matkowsky, BJ ;
Schult, DA .
JOURNAL OF ENGINEERING MATHEMATICS, 1997, 31 (2-3) :205-234
[4]  
Anderson D.A., 1997, Computational Fluid Mechanics and Heat Transfer, V2nd ed.
[5]   Mechanisms of two-dimensional smoldering propagation through packed fuel beds [J].
DiBlasi, C .
COMBUSTION SCIENCE AND TECHNOLOGY, 1995, 106 (1-3) :103-124
[6]   BUOYANCY EFFECTS ON SMOLDERING COMBUSTION [J].
DOSANJH, S ;
PETERSON, J ;
FERNANDEZPELLO, AC ;
PAGNI, PJ .
ACTA ASTRONAUTICA, 1986, 13 (11-12) :689-696
[7]   Experimental investigation of natural smoldering of char granules in a packed bed [J].
He, Fang ;
Behrendt, Frank .
FIRE SAFETY JOURNAL, 2011, 46 (07) :406-413
[8]   Computational study of critical moisture and depth of burn in peat fires [J].
Huang, Xinyan ;
Rein, Guillermo .
INTERNATIONAL JOURNAL OF WILDLAND FIRE, 2015, 24 (06) :798-808
[9]   Computational smoldering combustion: Predicting the roles of moisture and inert contents in peat wildfires [J].
Huang, Xinyan ;
Rein, Guillermo ;
Chen, Haixiang .
PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2015, 35 :2673-2681
[10]   The ambiguous effect of thermal conductivity in a gas flow through porous media with energy-release sources [J].
Levin, V. A. ;
Lutsenko, N. A. .
DOKLADY PHYSICS, 2015, 60 (06) :255-258