燃烧
代表(政治)
解算器
计算
点火系统
航程(航空)
计算机科学
工作(物理)
领域(数学分析)
热解
火焰蔓延
机械工程
航空航天工程
工程类
算法
化学
数学
废物管理
政治学
数学分析
程序设计语言
有机化学
政治
法学
作者
Stanislav I. Stoliarov,Isaac T. Leventon,Richard E. Lyon
摘要
ABSTRACT Quantitative understanding of the processes that take place inside a burning material is critical for the prediction of ignition and growth of fires. To improve this understanding and enable predictive modeling, we developed a numerical pyrolysis solver called ThermaKin. This solver computes transient rate of gaseous fuel production from fundamental physical and chemical properties of constituents of a pyrolyzing solid. It was successfully applied to the simulation of combustion of a broad range of materials. One limitation of ThermaKin was that it could handle only one‐dimensional burning problems. As a consequence, flame spread, which is an important contributor to fire growth, could not be simulated. Here, we present a new computational tool, ThermaKin2D, that expands ThermaKin model to two dimensions and combines it with a flexible analytical representation of a surface flame. It is our expectation that this tool will enable highly accurate simulations of flame spread dynamics. This manuscript contains a description of this new computation tool, reports results of a series of verification exercises, and demonstrates some of the ThermaKin2D's capabilities. Published 2013. This article is a U.S. Government work and is in the public domain in the USA.
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