• Journal of Atmospheric and Environmental Optics
  • Vol. 19, Issue 4, 391 (2024)
WANG Yu1,2, WANG Guishi1,2,*, LI Jun1,2, ZHANG Xianke1,2, and GAO Xiaoming1,2
Author Affiliations
  • 1Laboratory of Atmospheric Physico-Chemistry, Anhui Institute of Optics and Fine Mechanics, HFIPS,Chinese Academy of Sciences, Hefei 230031, China
  • 2University of Science and Technology of China, Hefei 230026, China
  • show less
    DOI: 10.3969/j.issn.1673-6141.2024.04.001 Cite this Article
    Yu WANG, Guishi WANG, Jun LI, Xianke ZHANG, Xiaoming GAO. Research progress of measuring ammonia emission using infrared spectroscopy[J]. Journal of Atmospheric and Environmental Optics, 2024, 19(4): 391 Copy Citation Text show less
    References

    [1] A K Bergström, M Jansson. Atmospheric nitrogen deposition has caused nitrogen enrichment and eutrophication of lakes in the northern hemisphere. Global Change Biology, 12, 635-643(2006).

    [2] G H Wang, R Y Zhang, M E Gomez et al. Persistent sulfate formation from London Fog to Chinese haze. Proceedings of the National Academy of Sciences of the United States of America, 113, 13630-13635(2016).

    [3] C M Pan, X Zhu, J Wang et al. Research progress on emission inventory of air pollution sources. Environmental Science Survey, 39, 72-78(2020).

    [4] D Chen, Y Cao, J Y Wang et al. Monitoring of ammonia emission and influencing factors in large-scale pigsty in spring. Acta Agriculturae Universitatis Jiangxiensis, 42, 298-306(2020).

    [5] X F Tang, J Z Li, L Huang et al. Sources, hazards and emission reduction measures of ammonia gas in poultry houses. Poultry Science, 49-53(2018).

    [6] B Xu, F X Wei, S Y Li. Production of ammonia and its effect on health and production performance of broiler chickens. China Poultry, 40, 1-5(2018).

    [7] K Y Wang, J G Wu, X Y Zhao. Review of measurement technologies for air pollutants at livestock and poultry farms. Scientia Agricultura Sinica, 52, 1458-1474(2019).

    [8] X A Li. Research on the Detection System of Ammonia Concentration in Livestock Based on TDLAS(2020).

    [9] S R Zhang. Monitoring Methods Research for Harmful Gases in Livestock Production Environment(2014).

    [10] F Stritzke, O Diemel, S Wagner. TDLAS-based NH3 mole fraction measurement for exhaust diagnostics during selective catalytic reduction using a fiber-coupled 2.2-µm DFB diode laser. Applied Physics B, 119, 143-152(2015).

    [11] D F Jie, J M Pan, Y B Ying. Advances in methods and instruments for determining concentration of gaseous air pollutants in large-scaled livestock farms. Transactions of the Chinese Society of Agricultural Engineering, 31, 236-246(2015).

    [12] E C Tuazon, R A Graham, A M Winer et al. A kilometer pathlength Fourier-transform infrared system for the study of trace pollutants in ambient and synthetic atmospheres. Atmospheric Environment, 12, 865-875(1978).

    [13] D W T Griffith, B Galle. Flux measurements of NH3, N2O and CO2 using dual beam FTIR spectroscopy and the flux-gradient technique. Atmospheric Environment, 34, 1087-1098(2000).

    [14] M Ferm, B Galle, L Klemedtsson et al. Comparison of Different Techniques to Measure Ammonia Emission after Manure Application(2000).

    [15] L Xu, J G Liu, M G Gao et al. Application of long open path FTIR system in ambient air monitoring. Spectroscopy and Spectral Analysis, 27, 448-451(2007).

    [16] L Jin, M G Gao, W Q Liu et al. Application of SOF-FTIR method to measuring ammonia emission flux of chemical plant. Spectroscopy and Spectral Analysis, 30, 1478-1481(2010).

    [17] M Bai, J L Sun, K B Dassanayake et al. Non-interference measurement of CH4, N2O and NH3 emissions from cattle. Animal Production Science, 56, 1496(2016).

    [18] A G Bell. On the production and reproduction of sound by light. American Journal of Science, 20, 305-324(1880).

    [19] A A Kosterev, Y A Bakhirkin, R F Curl et al. Quartz-enhanced photoacoustic spectroscopy. Optics Letters, 27, 1902-1904(2002).

    [20] A A Kosterev, F K Tittel. Ammonia detection by use of quartz-enhanced photoacoustic spectroscopy with a near-IR telecommunication diode laser. Applied Optics, 43, 6213-6217(2004).

    [21] M E Webber, T MacDonald, M B Pushkarsky et al. Agricultural ammonia sensor using diode lasers and photoacoustic spectroscopy. Measurement Science and Technology, 16, 1547-1553(2005).

    [22] J P Besson, S Schilt, E Rochat et al. Ammonia trace measurements at ppb level based on near-IR photoacoustic spectroscopy. Applied Physics B, 85, 323-328(2006).

    [23] Y Peng. Tunable Fiber Laser Based Photoacoustic Spectroscopy Technology for Trace Gas Detection(2011).

    [24] L Gong, R Lewicki, R J Griffinet a1. Atmospheric ammonia measurements in Houston, TX using an external-cavity quantum cascade laser-based sensor. Atmospheric Chemistry and Physics, 11, 9721-9733(2011).

    [25] T X Lu, Y Q Lu. Principle and Application of Laser Spectroscopy Technology(2009).

    [26] J B McManus, D D Nelson, J H Shorter et al. Quantum cascade lasers for open and closed-path measurement of trace gases, 22-33(2002).

    [27] J B McManus, J H Shorter, D D Nelson et al. Compact quantum cascade laser instrument for rapid, high sensitivity measurements of trace gases in air, 1341-1344(2007).

    [28] R A Ellis, J G Murphy, E Pattey et al. Characterizing a quantum cascade tunable infrared laser differential absorption spectrometer (QC-TILDAS) for measurements of atmospheric ammonia. Atmospheric Measurement Techniques, 3, 397-406(2010).

    [29] K Sun. Constraining Atmospheric Ammonia Emissions Through New Observations with an Open-Path, Laser-Based Sensor(2015).

    [30] Y He. Study on On-Line Detection Technology and Application of Main Anthropogenic Ammonia Emissions Based on Laser Absorption Spectroscopy(2017).

    [31] N A Martin, V Ferracci, N Cassidy et al. Cavity ring-down spectrometer (CRDS) development for ambient measurements of ammonia(2015).

    [32] X W Kou, B Zhou, X C Liu et al. Measurement of trace NH3 concentration in the atmosphere by cavity ring down spectroscopy. Journal of optics, 38, 361-370(2018).

    [33] P S Kroon, A Hensen, H J J Jonker et al. Suitability of quantum cascade laser spectroscopy for CH4 and N2O eddy covariance flux measurements. Biogeosciences, 4, 715-728(2007).

    [34] G R Yu, X M Sun. Principles of Flux Measurement in Terrestrial Ecosystem(2006).

    [35] E K Webb, G I Pearman, R Leuning. Correction of flux measurements for density effects due to heat and water vapour transfer. Quarterly Journal of the Royal Meteorological Society, 106, 85-100(1980).

    [36] N Kljun, P Kastner-Klein, E Fedorovich et al. Evaluation of Lagrangian footprint model using data from wind tunnel convective boundary layer. Agricultural and Forest Meteorology, 127, 189-201(2004).

    [38] T W Horst, D H Lenschow. Attenuation of scalar fluxes measured with spatially-displaced sensors. Boundary-Layer Meteorology, 130, 275-300(2009).

    [39] C J Moore. Frequency response corrections for eddy correlation systems. Boundary-Layer Meteorology, 37, 17-35(1986).

    [40] K Sun, L Tao, D J Miller et al. Open-path eddy covariance measurements of ammonia fluxes from a beef cattle feedlot. Agricultural and Forest Meteorology, 213, 193-202(2015).

    [42] T K Flesch, J D Wilson, L A Harper et al. Deducing ground-to-air emissions from observed trace gas concentrations: A field trial with wind disturbance. Journal of Applied Meteorology, 44, 475-484(2005).

    [43] Z L Gao, R L Desjardins, T K Flesch. Assessment of the uncertainty of using an inverse-dispersion technique to measure methane emissions from animals in a barn and in a small pen. Atmospheric Environment, 44, 3128-3134(2010).

    [44] E H Shadwick, J D Wilson, T K Flesch. Forward Lagrangian stochastic simulation of a transient source in the atmospheric surface layer. Boundary-Layer Meteorology, 122, 263-272(2007).

    [45] T K Flesch, J D Wilson, L A Harper et al. Deducing ground-to-air emissions from observed trace gas concentrations: A field trial. Journal of Applied Meteorology, 43, 487-502(2004).

    [46] M C McBain, R L Desjardins. The evaluation of a backward Lagrangian stochastic (bLS) model to estimate greenhouse gas emissions from agricultural sources using a synthetic tracer source. Agricultural and Forest Meteorology, 135, 61-72(2005).

    [47] W L Yang. Method of Real-Time Measurement in Ammonia Emissions from Farmland Based on Open-Path TDLAS Technique(2014).

    [48] Z L Gao, M Mauder, R L Desjardins et al. Assessment of the backward Lagrangian stochastic dispersion technique for continuous measurements of CH4 emissions. Agricultural and Forest Meteorology, 149, 1516-1523(2009).

    Yu WANG, Guishi WANG, Jun LI, Xianke ZHANG, Xiaoming GAO. Research progress of measuring ammonia emission using infrared spectroscopy[J]. Journal of Atmospheric and Environmental Optics, 2024, 19(4): 391
    Download Citation