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Thermometry and speciation for high-temperature and -pressure methane pyrolysis using shock tubes and dual-comb spectroscopy.

Authors :
Pinkowski, Nicolas H
Biswas, Pujan
Shao, Jiankun
Strand, Christopher L
Hanson, Ronald K
Source :
Measurement Science & Technology; Dec2021, Vol. 32 Issue 12, p1-12, 12p
Publication Year :
2021

Abstract

Quantum-cascade-laser dual-comb spectroscopy (QCL-DCS) is a promising technology with ultra-fast time resolution capabilities for chemical kinetics, atmospheric gas sensing, and combustion applications. A pair of quantum-cascade frequency combs were used to measure absorbance from methane’s ν 4 band between 1270 and 1315 cm<superscript>âˆ'1</superscript> at high-temperature and -pressure conditions that were generated using a high-pressure shock tube. Results here mark a major improvement over previous QCL-DCS measurements in shock tubes. Improvements came from a unique spectral-filtering strategy to correct for a bimodal power-spectral density of QCL frequency combs and careful optimization of the laser setup and experimental conditions. Our modified QCL-DCS was ultimately used to measure temperature within 2% and methane mole fraction within 5% by fitting HITEMP spectral simulations to spectra recorded at 4 ÎĽs temporal resolution. We measure temperature and species time-histories during methane pyrolysis at conditions between 1212â€"1980 K, and 12â€"17 atm, all at 4 ÎĽs resolution. Good agreement is observed with kinetic models, illustrating the potential of future applications of DCS in kinetics and combustion research. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09570233
Volume :
32
Issue :
12
Database :
Complementary Index
Journal :
Measurement Science & Technology
Publication Type :
Academic Journal
Accession number :
152800942
Full Text :
https://doi.org/10.1088/1361-6501/ac22ef