Quantitative SO2 Detection in Combustion Environments Using Broad Band Ultraviolet Absorption and Laser-Induced Fluorescence

被引:30
|
作者
Weng, Wubin [1 ]
Alden, Marcus [1 ]
Li, Zhongshan [1 ]
机构
[1] Lund Univ, Div Combust Phys, POB 118, SE-22100 Lund, Sweden
基金
欧洲研究理事会; 瑞典研究理事会;
关键词
CROSS-SECTIONS; SULFUR-DIOXIDE; GAS; SPECTRUM; TEMPERATURES; INSTRUMENT; EXCITATION; DEPENDENCE; DOAS;
D O I
10.1021/acs.analchem.9b02505
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Spectrally resolved ultraviolet (UV) absorption cross sections of SO2 in combustion environments at temperatures from 1120 to 1950 K were measured for the first time in well-controlled conditions through applying broad band UV absorption spectroscopy in specially designed one-dimensional laminar flat flames. The temperature was observed to have a significant effect on the absorption cross-section profiles at wavelength shorter than 260 nm, while at the longer wavelength side, the absorption cross-section profiles have much less dependence on temperature. The absorption cross section at 277.8 nm with a value of 0.68 x 10(-18) cm(2)/molecule was suggested for the evaluation of the SO2 concentration because of the weak dependence on temperature. To make spatially resolved measurements, laser-induced fluorescence (LIF) of SO2 excited by a 266 nm laser was investigated. Spectrally resolved LIF signal was analyzed at different temperatures. The LIF signal showed strong dependence on temperature, which can potentially be used for temperature measurements. At elevated temperatures, spatially resolved LIF SO2 detection up to a few ppm sensitivity was achieved. Combining UV broad band absorption spectroscopy and LIF, highly sensitive and spatially resolved quantitative measurements of SO2 in the combustion environment can be achieved.
引用
收藏
页码:10849 / 10855
页数:7
相关论文
共 50 条
  • [1] Laser-induced fluorescence instrument for measuring atmospheric SO2
    Matsumi, Y
    Shigemori, H
    Takahashi, K
    ATMOSPHERIC ENVIRONMENT, 2005, 39 (17) : 3177 - 3185
  • [2] Planar laser-induced photofragmentation fluorescence for quantitative ammonia imaging in combustion environments
    Weng, Wubin
    Brackmann, Christian
    Alden, Marcus
    Li, Zhongshan
    COMBUSTION AND FLAME, 2022, 235
  • [3] SINGLE PHOTON LASER-INDUCED FLUORESCENCE DETECTION OF NO AND SO2 FOR ATMOSPHERIC CONDITIONS OF COMPOSITION AND PRESSURE
    BRADSHAW, JD
    RODGERS, MO
    DAVIS, DD
    APPLIED OPTICS, 1982, 21 (14): : 2493 - 2500
  • [4] Quantitative imaging of KOH vapor in combustion environments using 266 nm laser-induced photofragmentation fluorescence
    Weng, Wubin
    Alden, Marcus
    Li, Zhongshan
    COMBUSTION AND FLAME, 2022, 235
  • [5] 2-PHOTON UV EXCITATION OF SO2 AND LASER-INDUCED FLUORESCENCE FROM SO
    FOTAKIS, C
    TORRE, A
    DONOVAN, RJ
    JOURNAL OF PHOTOCHEMISTRY, 1983, 23 (02): : 97 - 102
  • [6] LASER-INDUCED FLUORESCENCE BY THE FREE-RADICAL SO PRODUCED BY EXCITATION OF SO2 BY A KRF LASER
    TORRE, A
    LAIN, L
    CASTANO, F
    DONOVAN, RJ
    ANALES DE QUIMICA SERIE A-QUIMICA FISICA Y QUIMICA TECNICA, 1983, 79 (03): : 621 - 626
  • [7] Ultraviolet laser-induced fluorescence lidar for pollen detection
    Rao, Zhimin
    Hua, Dengxin
    He, Tingyao
    Wang, Qiang
    Le, Jing
    OPTIK, 2017, 136 : 497 - 502
  • [8] Improvements to a laser-induced fluorescence instrument for measuring SO2 - impact on accuracy and precision
    Rickly, Pamela S.
    Xu, Lu
    Crounse, John D.
    Wennberg, Paul O.
    Rollins, Andrew W.
    ATMOSPHERIC MEASUREMENT TECHNIQUES, 2021, 14 (03) : 2429 - 2439
  • [9] Standoff Detection of Biomolecules by Ultraviolet Laser-Induced Fluorescence LIDAR
    Sharma, Ramesh C.
    Kumar, Deepak
    Kumar, Subodh
    Joshi, Deepti
    Srivastva, Hari B.
    IEEE SENSORS JOURNAL, 2015, 15 (06) : 3349 - 3352
  • [10] Ultraviolet absorption and laser-induced fluorescence of shock-heated acetylene
    Zabeti, S.
    Fikri, M.
    Schulz, C.
    PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2017, 36 (03) : 4469 - 4475