模拟大尺度森林火灾参数

L. Chernogor, A. Nekos, G. V. Titenko, L. L. Chornohor
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摘要

时事性。迫切需要选择森林火灾的主要能量参数、几何参数和热物性参数,并对这些火灾的主要参数进行评估,包括未开发的火灾龙卷风和火灾引起的波浪过程。建立大规模森林火灾引起的物理过程的数学模型,评估这些火灾的主要参数,包括未开发的火灾龙卷风和火灾引起的波浪过程。分析综述了研究问题,理论与计算,数学建模,系统分析了集物理效应。结果。本文介绍了森林火灾的参数分析结果和大规模火灾引起的相关物理过程。提出了大规模森林火灾的主要能量参数、几何参数和热物性参数。这些参数包括:能量、功率、持续时间、火灾面积以及燃烧锋面的长度、强度和速度、热流密度、功率流密度、火炬高度、热烟上升高度、对流速度等。已经建立了大规模森林火灾主要参数的简单分析物理和数学模型。提出了一种烈性龙卷风的模型。得到的比值使我们能够估计伴随大规模森林火灾的火龙卷风的主要参数。这些参数包括被加热地层的半径、角速度、切向速度、最大高度和上升速率。结果表明,随着旋涡大小的不同,火焰龙卷风的参数变化很大。这些关系使得分析和评价森林火灾产生的波浪过程的主要参数成为可能。这些参数包括能量、相对能量份额、声辐射周期范围等。计算了森林火灾的主要参数和相关的物理过程。结果表明,根据火灾面积的不同,这些参数变化很大。建立了大规模森林火灾引起的物理过程的数学模型,利用该模型计算了主要影响的参数。
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Simulation of large-scale forest fire parameters
Topicality. There is an urgent need to select the main energy, geometric and thermophysical parameters of forest fires, as well as to assess the main parameters of these fires, including unexplored fire tornadoes and wave processes caused by fires. Purpose. To develop mathematical models of physical processes caused by large-scale forest fires, evaluate the main parameters of these fires, including unexplored fire tornadoes and wave processes caused by fires. Methods. Analytical review of the research problem, theoretical and computational, mathematical modeling, systematic analysis of the set of physical effects. Results. The results of the analysis of the parameters of forest fires and related physical processes caused by large-scale fires are presented. The main energy, geometric and thermophysical parameters of large-scale forest fires are proposed. These include: energy, power, duration, area of fires, as well as the length, intensity and speed of the combustion front, heat flux density, power flux density, torch height, heat and smoke rise height, convection speed, etc. Simple analytical physical and mathematical models of the main parameters of large-scale forest fires have been created. A model of a fiery tornado is proposed. The obtained ratios allow us to estimate the main parameters of fire tornadoes that accompany large-scale forest fires. These include radius, angular velocity, tangential velocity, maximum height and rate of rise of the heated formation. It is shown that, depending on the size of the vortex, the parameters of the fiery tornado vary widely. These relationships make it possible to analyze and evaluate the main parameters of wave processes generated by forest fires. Such parameters are energy, relative share of energy, range of periods of acoustic radiation, etc. The main parameters of forest fires and related physical processes are calculated. It is shown that depending on the area of the fire, these parameters vary widely. Conclusions. Mathematical models of physical processes caused by large-scale forest fires have been developed, by means of which the parameters of the main effects have been calculated.
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