估算热原因子对森林生态系统影响的生态后果的数学模型

IF 0.3 Q4 GEOLOGY
L. Chernogor, A. Nekos, G. V. Titenko, L. L. Chornohor
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引用次数: 0

摘要

有必要建立大面积森林燃烧的简单分析数学模型,以评估热原因素影响的生态后果。建立描述大规模森林火灾蔓延的数学模型,旨在估计热原因素影响的生态后果。对问题的研究、理论与计算、数学建模、结果进行分析综述。给出了大面积森林燃烧的主要参数分析结果。这些指标包括火灾覆盖面积、火灾持续时间、燃尽时间、可燃物质的比质量、燃烧的能量和功率、比热值、燃烧强度、燃烧锋面的运动速度、可燃物质的流入量等。建立了大面积森林燃烧的简单解析数学模型。这些模型包括:火灾面积恒定增长率模型、二维模型、燃烧锋面扇形运动模型、燃烧锋面长度线性增长模型、火灾面积变化率二次增长模型和广义模型。提出了一种新的火灾强度分类,从极低到极烈度分为1-7个等级。估算了火灾的最大覆盖面积(10 ~ 10万平方公里)、燃烧能量(1 ~ 10 EJ)和燃烧功率(0.1 ~ 1 PW)。已经建立了大型森林地表燃烧过程的简单分析数学模型,这是定量评价火灾生态后果所必需的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mathematical models for estimate of the ecological consequences of the impact of the pyrogenic factor on forest ecosystems
There is a need for the development of simple analytical mathematical models of the burning of large forest areas, necessary for the assessment of the ecological consequences of the impact of the pyrogenic factor. Purpose. Develop mathematical models describing the spread of large-scale forest fires aimed at estimate the ecological consequences of the impact of the pyrogenic factor. Methods. Analytical review of research on the problem, theoretical and computational, mathematical modeling. Results. The results of the main parameters analysis of large forest areas combustion are presented. These include the area covered by the fire, the duration of the fire, the burnout time, the specific mass of combustible materials, the energy and power of combustion, the specific calorific value, the intensity of combustion, the movement speed of the combustion front, the influx of combustible materials, etc. Simple analytical mathematical models of large forest areas combustion have been established. These include the following models: a model with a constant growth rate of the fire area, a two-dimensional model, a model with sectorial movement of the combustion front, a model with a linear growth of the length of the combustion front, a model with a quadratic growth of the change rate of the fire area, and a generalized model. A new fire intensity classification has been proposed, containing 1–7 points from extremely low to extreme intensity. The maximum area covered by the fire (10–100 thousand km2), combustion energy (1–10 EJ) and combustion power (0.1–1 PW) have been estimated. Conclusions. Simple analytical mathematical models of the combustion process of large forest surface areas, which are necessary for quantitative assessment of the ecological consequences of fires, have been developed.
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