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Radiation transport measurements in methanol pool fires with Fourier transform infrared spectroscopy.

机译:用傅立叶变换红外光谱法测量甲醇池火灾中的辐射传输。

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摘要

Pool fires rely on heat feedback from the combustion process to the liquid surface to vaporize the fuel. This coupled relationship determines the fuel burning rate and thus the fire structure and size. Radiative heat transfer is the dominant heat feedback in large pool fires. Species concentrations and temperatures have large influence on the radiative heat transfer in the fuel rich-core between the flame and the pool surface. To study radiative transport in the fuel-rich core, an experimental method was developed to measure spectral absorption through various pathlengths inside a 30 cm diameter methanol pool fire by using a Fourier Transform Infrared Spectrometer with N2 purged optical probes. The measured spectra are used to estimate species concentration profiles of methanol, CO, and CO2 in the fuel rich core by fitting predictions of a spectrally resolved radiation transport model to the measured spectra. Results show the importance of reliable temperature measurements for fitting the data and the need for further measurements to further understand the structure of fuel rich cores in pool fires.
机译:池火依赖于从燃烧过程到液体表面的热反馈来蒸发燃料。这种耦合关系决定了燃料的燃烧率,从而决定了火的结构和大小。在大型水池火灾中,辐射热传递是主要的热反馈。物种的浓度和温度对火焰和池表面之间的燃料富核中的辐射热传递有很大影响。为了研究富燃料堆芯中的辐射传输,开发了一种实验方法,通过使用带有N2吹扫光学探头的傅立叶变换红外光谱仪来测量直径为30 cm的甲醇池火在不同路径长度内的光谱吸收。通过将光谱解析的辐射传输模型的预测值拟合到实测光谱,可以将实测光谱用于估算富燃料核心中甲醇,CO和CO2的物种浓度分布。结果表明,可靠的温度测量对于拟合数据的重要性以及进一步测量以进一步了解池火中富燃料堆芯结构的需求。

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