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

Posted on:2009-07-08Degree:M.SType:Thesis
University:University of Maryland, College ParkCandidate:Yilmaz, AykutFull Text:PDF
GTID:2441390005456943Subject:Chemistry
Abstract/Summary:
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.
Keywords/Search Tags:Pool fires, Fourier transform infrared, Measurements, Methanol pool, Radiation transport, Heat feedback, Fuel rich, Radiative heat transfer
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