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Soot particles from the combustion of hydrocarbon fuels are the main source of the air fine particles and they are also an important factor of reducing the combustion efficiency. As one of their major precursor, acetylene (C2H2) plays an important role in forming soot. So the simultaneous detecting of soot particle and C2H2 is significant in studying the mechanism of the soot formation. In this work, a sensor for the simultaneous detecting of soot particle and C2H2 is developed by using a single DFB diode laser with a wavelength near 1540 nm. The extinction spectrum near the proper C2H2 line at 6490.02 cm–1 is used to infer the mass concentration of particles and the C2H2 concentration. The performance of the sensor is confirmed in a home-made heated static cell which can provide well controlled gaseous environment and particulate environment. The measured mass concentration of particles and the C2H2 concentration are within 2.73% and 5.17% of the expected values over the full temperature range of 500–1000 K, respectively. All the measurements show the potential application of the sensor in the simultaneous detecting of soot particle and C2H2 at elevated temperature.
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Keywords:
- tunable diode laser absorption spectrum /
- extinction spectrum /
- gas concentration /
- particle mass concentration
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[1] Fawole O G, Cai X M, MacKenzie A R 2016 Environ. Pollut 216 182
Google Scholar
[2] Bergstrom R W, Russell P B, Hignett P 2002 J. Atmos. Sci 59 567
Google Scholar
[3] Hai W, Frenklach M A 1997 Combust. Flame 110 173
Google Scholar
[4] Richter H, Howard J B 2000 Prog. Energy Combust. Sci 26 565
Google Scholar
[5] 刘文清, 陈臻懿, 刘建国 2019 环境科学研究 10 1645
Liu W Q, Chen Z Y, Liu J G 2019 J. Environ. Sci. 10 1645
[6] Hanson R K, Spearrin R M, Goldenstein C S 2016 Spectroscopy and Optical Diagnostics for Gases (Switzerland: Springer International Publishing) pp1–107
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Google Scholar
[8] 贾梦源, 赵刚, 侯佳佳, 谭巍, 邱晓东, 马维光, 张雷, 董磊, 尹王保, 肖连团, 贾锁堂 2016 65 128701
Google Scholar
Jia M Y, Zhao G, Hou J J, Tan W, Qiu X D, Ma W G, Zhang L, Dong L, Yin W B, Xiao L T, Jia S T 2016 Acta. Phys. Sin. 65 128701
Google Scholar
[9] Liu K, Wang L, Tan T, Wang G S, Zhang W J, Chen W D, Gao X M 2015 Sens. Actuators B Chem 220 1000
Google Scholar
[10] Liu Z W, Zheng C T, Zhang T Y, Li Y F, Ren Q, Chen C, Ye W L, Zhang Y, Wang Y D, Tittel F K 2020 Anal. Chem 92 8178
Google Scholar
[11] Deng B T, Sima C, Xiao Y F, Wang X F, Ai Y, Li T L, Lu P, Liu D M 2022 Opt. Lasers. Eng 151 106906
Google Scholar
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Google Scholar
[13] He D, Peng Z, Ding Y 2021 Fuel 284 118980
Google Scholar
[14] 张亮, 刘建国, 阚瑞峰, 刘文清, 张玉钧, 许振宇, 陈军 2012 63 034214
Google Scholar
Zhang L, Liu J G, Kan R G, Liu W Q, Zhang Y J, Xu Z Y, Chen J 2012 Acta. Phys. Sin. 63 034214
Google Scholar
[15] Klingbeil A E, Jeffries J B, Hanson R K 2006 Meas. Sci. Technol 17 1950
Google Scholar
[16] Liu N W, Xu L G, Zhou S, He T B, Zhang L, Wu D M, Li J S 2019 J. Quant. Spectrosc. Ra 236 106587
Google Scholar
[17] Nasim H, Jamil Y 2014 Opt. Laser Technol 56 211
Google Scholar
[18] Qiao S D, Ma Y F, Patimisco P, Sampaolo A, He Y, Lang Z T, Tittel F K, Spagnolo V 2021 Opt. Lett 46 977
Google Scholar
[19] Giubileo G 2002 Proceedings of SPIE-The International Society for Optical Engineering 4762 318
[20] Skrotzki J, Habig J C, Ebert V 2014 Appl. Phys. B 116 393
Google Scholar
[21] Wang F, Cen K F, Li N, Huang Q X, Chao X, Yan J H, Chi Y 2010 Flow Meas. Instrum 21 382
Google Scholar
[22] Wang F, Wu Q, Huang Q, Zhang H, Yan J, Cen K 2015 Opt. Commun 346 53
Google Scholar
[23] Lancaster D G, Richter D, Curl R F, Tittel F K, Goldberg I, Koplow J 1999 Opt. Lett 24 1744
Google Scholar
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