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OH and CH luminescence in opposed flow methane oxy-flames

机译:逆流甲烷氧化火焰中的OH和CH发光

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摘要

Emission spectroscopy is a 2-D nonintrusive diagnostic technique that offers spatially resolved data for combustion optimization and control. The UV and visible chemiluminescence of the excited radicals CH(A~2Δ, B~2Σ~-) and OH(A~2Σ~+) is studied experimentally and numerically in opposed-flow diffusion flames of methane and oxygen-enriched air. The oxidized oxygen content is varied from 21 to 100% while the range of the studied strain rates spans from 20 to 40 s~(-1). The spectrally resolved imaging is obtained by two different methods: scattering through a grating monochromator and interposition of interference filters along the optical path. Absolute measured chemiluminescence intensities, coupled with a numerical model based on the opposed flow flame code, are used to evaluate the chemical kinetics of the excited species. The predictions of the selected model are in good agreement with the experimental data over the range of the studied flame conditions.
机译:发射光谱是一种二维非侵入式诊断技术,可为燃烧优化和控制提供空间分辨的数据。在甲烷和富氧空气的逆流扩散火焰中,通过实验和数值研究了激发基团CH(A〜2Δ,B〜2Σ〜-)和OH(A〜2Σ〜+)的紫外和可见化学发光。氧化态氧的含量在21%至100%之间,而所研究的应变速率范围则在20至40 s〜(-1)之间。光谱分辨成像是通过两种不同的方法获得的:通过光栅单色仪的散射和沿光路插入干涉滤光片。绝对测量的化学发光强度与基于对流火焰编码的数值模型相结合,用于评估激发物质的化学动力学。所选模型的预测与所研究火焰条件范围内的实验数据非常吻合。

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