Mathematical Simulation of Forest Fuel Pyrolysis and Crown Forest Fire Impact for Forest Fire Danger and Risk Assessment

被引:9
作者
Baranovskiy, Nikolay Viktorovich [1 ]
Kirienko, Viktoriya Andreevna [1 ]
机构
[1] Tomsk Polytech Univ, Sch Energy & Power Engn, Tomsk 634050, Russia
关键词
forest fuel; heat and mass transfer; pyrolysis; three-dimensional statement; birch leaf; mathematical modeling; induction period; forest fire danger; MEDITERRANEAN VEGETATION; COMBUSTIBLE MATERIAL; MODEL; MOISTURE; WILDFIRE; NETWORK; SPAIN; MECHANISMS; PRODUCTS; KINETICS;
D O I
10.3390/pr10030483
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
In order to predict and assess the danger from crown forest fires, it is necessary to study the thermal degradation of different forest fuels in a high-temperature environment. In this paper, the main characteristics of pyrolysis accompanied by moisture evaporation in a foliage sample of angiosperms (birch) were investigated within conditions typical for a crown forest fire. The heat and mass transfer in the forest fuel element is described by the system of non-stationary non-linear heat conduction equations with corresponding initial and boundary conditions. The considered problem is solved within the framework of the three-dimensional statement by the finite difference method. The locally one-dimensional method was used to solve three-dimensional equations for heat conduction. The simple iteration method was applied to solve nonlinear effects caused by the forest fuel pyrolysis and moisture evaporation. The fourth kind of boundary conditions are applicable at the interface between the sub-areas. Software implementation of the mathematical model is performed in the high-level programming language Delphi in the RAD Studio software. The characteristic changes in the sample temperature field and the phase composition under high-temperature exposure from a forest fire are presented. The induction period of the thermal decomposition of dry organic matter in the sample was determined. Recommendations are made about key features of accounting for the pyrolysis and evaporation processes when predicting forest fire danger. The research results can be used in the development and improvement of systems for predicting forest fire danger and environmental consequences of the forest fires.
引用
收藏
页数:26
相关论文
共 120 条
  • [1] Abaimov V.F, 2009, Dendrology
  • [2] Drivers of forest fire occurrence in the cultural landscape of Central Europe
    Adamek, Martin
    Jankovska, Zuzana
    Hadincova, Veroslava
    Kula, Emanuel
    Wild, Jan
    [J]. LANDSCAPE ECOLOGY, 2018, 33 (11) : 2031 - 2045
  • [3] Mega-fires, tipping points and ecosystem services: Managing forests and woodlands in an uncertain future
    Adams, Mark A.
    [J]. FOREST ECOLOGY AND MANAGEMENT, 2013, 294 : 250 - 261
  • [4] Pyrolysis kinetics of forestry residues from the Portuguese Central Inland Region
    Amutio, Maider
    Lopez, Gartzen
    Alvarez, Jon
    Moreira, Rui
    Duarte, Gustavo
    Nunes, Joao
    Olazar, Martin
    Bilbao, Javier
    [J]. CHEMICAL ENGINEERING RESEARCH & DESIGN, 2013, 91 (12) : 2682 - 2690
  • [5] Anisimov P., 2017, CROAT J ENG J THEORY, V38, P7
  • [6] [Anonymous], 2014, THERMODYNAMICS ENERG
  • [7] APodolskaya S., 2011, MOD PROBL REMOTE SEN, V8, P118
  • [8] Forest fire danger index based on modifying Nesterov Index, fuel and anthropogenic activities using MODIS TERRA, AQUA and TRMM satellite datasets
    Babu, Suresh K. V.
    Roy, Arijit
    Prasad, P. Ramachandra
    [J]. LAND SURFACE AND CRYOSPHERE REMOTE SENSING III, 2016, 9877
  • [9] Bakhvalov NS, 2004, NUMERICAL METHODS
  • [10] IGNITION OF FOREST COMBUSTIBLE MATERIALS IN A HIGH-TEMPERATURE MEDIUM
    Baranovskii, N. V.
    Kirienko, V. A.
    [J]. JOURNAL OF ENGINEERING PHYSICS AND THERMOPHYSICS, 2020, 93 (05) : 1266 - 1271