Reduced Gas-Phase Kinetic Models for Burning of Douglas Fir

IF 2 Q2 ENGINEERING, MECHANICAL
J. Glusman, Kyle E. Niemeyer, Amanda S. Makowiecki, N. Wimer, C. Lapointe, G. Rieker, P. Hamlington, J. Daily
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引用次数: 7

Abstract

New skeletal chemical kinetic models have been obtained by reducing a detailed model for the gas-phase combustion of Douglas Fir pyrolysis products. The skeletal models are intended to reduce the cost of high-resolution wildland fire simulations, without substantially affecting accuracy. The reduction begins from a 137 species, 4533 reaction detailed model for combustion of gas-phase biomass pyrolysis products, and is performed using the directed relation graph with error propagation and sensitivity analysis method, followed by further reaction elimination. The reduction process tracks errors in the ignition delay time and peak temperature for combustion of gas-phase products resulting from the pyrolysis of Douglas Fir. Three skeletal models are produced as a result of this process, corresponding to a larger 71 species, 1179 reaction model with less than 1\% error in ignition delay time compared to the detailed model, an intermediate 54 species, 637 reaction model with 24\% error, and a smaller 54 species, 204 reaction model with 80\% error. Using the skeletal models, peak temperature, volumetric heat release rate, premixed laminar flame speed, and diffusion flame extinction temperatures are compared with the detailed model, revealing an average maximum error in these metrics across all conditions considered of less than 1\% for the larger skeletal model, 10\% for the intermediate model, and 24\% for the smaller model. All three skeletal models are thus sufficiently accurate and computationally efficient for implementation in high-resolution wildland fire simulations, where other model errors and parametric uncertainties are likely to be greater than the errors introduced by the reduced kinetic models presented here.
花旗松燃烧的还原气相动力学模型
通过还原花旗松热解产物气相燃烧的详细模型,得到了新的骨架化学动力学模型。骨骼模型的目的是降低高分辨率野火模拟的成本,而不会严重影响准确性。还原从137种4533种气相生物质热解产物燃烧反应详解模型出发,采用误差传播有向关系图和灵敏度分析法进行还原,然后进一步进行反应消去。还原过程跟踪了花旗松热解气相产物燃烧的点火延迟时间和峰值温度的误差。根据这一过程得到了三个骨架模型,分别对应点火延迟时间误差小于1%的较大的71种1179反应模型、误差24%的中等54种637反应模型和误差80%的较小54种204反应模型。使用骨架模型,峰值温度,体积热释放率,预混层流火焰速度和扩散火焰熄灭温度与详细模型进行了比较,揭示了在所有条件下这些指标的平均最大误差:大型骨架模型小于1%,中间模型小于10%,较小模型小于24%。因此,所有三种骨骼模型在高分辨率野火模拟中都具有足够的准确性和计算效率,其中其他模型误差和参数不确定性可能大于本文介绍的简化动力学模型所带来的误差。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Frontiers in Mechanical Engineering
Frontiers in Mechanical Engineering Engineering-Industrial and Manufacturing Engineering
CiteScore
4.40
自引率
0.00%
发文量
115
审稿时长
14 weeks
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