搜索

x

留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

多轴差分吸收光谱技术的云和气溶胶类型鉴别方法研究

王杨 Wagner Thomas 李昂 谢品华 伍德侠 陈浩 牟福生 张杰 徐晋 吴丰成 刘建国 刘文清 曾议

引用本文:
Citation:

多轴差分吸收光谱技术的云和气溶胶类型鉴别方法研究

王杨, Wagner Thomas, 李昂, 谢品华, 伍德侠, 陈浩, 牟福生, 张杰, 徐晋, 吴丰成, 刘建国, 刘文清, 曾议

Research of classification of cloud and aerosol using multi-axis differential optical absorption spectroscopy

Wang Yang, Wagner Thomas, Li Ang, Xie Pin-Hua, Wu De-Xia, Chen Hao, Mou Fu-Sheng, Zhang Jie, Xu Jin, Wu Feng-Cheng, Liu Jian-Guo, Liu Wen-Qing, Zeng Yi
PDF
导出引用
  • 本文研究了多轴差分吸收光谱技术(MAX-DOAS)的云和气溶胶类型鉴别方法. 首先研究了晴朗低气溶胶、晴朗高气溶胶、分散云、连续薄云和连续厚云下,色彩因子、光通量和O4的大气质量因子的变化特征. 分析发现随着云和气溶胶光学厚度的增加,色彩因子会逐渐减小. 分散云会使色彩因子发生快速变化,连续云会使各高度角的色彩因子趋于一致. 另外,厚云会使天顶方向光强剧烈下降,同时O4大气质量因子大幅度增加. 根据分析结果,最终形成了MAX-DOAS技术的云和气溶胶类型鉴别方案. 利用该鉴别方案,统计分析了2012年6月1日到10月30日的MAX-DOAS观测结果. 分散云和连续薄云出现频率最高,达到了66%和14.3%. 两种类型下,NO2对流层垂直柱浓度(VCD)的平均值相对晴朗低气溶胶下高出35%和66%. 而表征NO2 VCD测量值稳定度的标准偏差大约增大了2倍. 连续厚云下NO2 VCD常出现突然的极大值和极小值. 因此实时判别云和气溶胶的种类,将对MAX-DOAS数据的解析和数据质量的保证起到十分重要的作用.
    The classification of cloud and aerosol by means of multi-axis differential optical absorption spectroscopy (MAX-DOAS) is studied in this paper. Firstly, the characters of variation of color index (CI), radiance, and O4 air mass factor (AMF) are analyzed in the following kinds of weather cases, i.e. clear and low aerosol load, clear and high aerosol load, broken cloud, continuous and thin cloud as well as continuous and thick clouds. We found that the CI consecutively decreases with the growing up of optical depth of cloud and aerosol. And the speedy temporal variation of CI is always going along with the occurrence of broken cloud. For the case of continuous cloud, the CIs of observations for all the elevation angles are similar to each other. At the same time, the thick cloud case normally causes radiance dropping and O4 AMF growing up strongly. Based on these characters, the scheme of cloud classification for MAX-DOAS is built. Using this scheme, the classification results for the MAX-DOAS observations in the period from 1 June 2012 to 30 October 2012 are analyzed statistically. The occurrence probabilities of the broken cloud and thin continuous cloud are the two largest weather kinds. The percentage of the broken cloud in all the observations is 66%, and that of the thin continuous cloud case is 14.3%. For these two kinds of weathers, the mean NO2 tropospheric vertical column densities (VCD) are respectively 35% and 66% larger than the value for the clear and low aerosol. Meanwhile, the standard deviation, which represents the stability of the measured NO2 VCD is two times larger than that of the clear and low aerosol cases. In the weather of thick continuous cloud, suddenly appearing of peak and valley are often observed. In conclusion, the real time classification of cloud and aerosol is very important and valuable in analyzing of MAX-DOAS data and the guarantee of data quality.
    • 基金项目: 国家自然科学基金(批准号:41275038)、环保公益性项目(批准号:201109007)、安徽省科技攻关计划项目(批准号:1301022083)和安徽省自然科学基金(批准号:1308085QF124)资助的课题.
    • Funds: Project supported by the National Natural Science Foundation of China (Grant No. 41275038), the Special Project of Environmental Nonprofit Industry Research, China (Grant No. 201109007), the Science and Technology Research Projects of Anhui province, China (Grant No. 1301022083), and the Anhui Province Natural Science Foundation, China (Grant No. 1308085QF124).
    [1]

    Zhu X L, Zhang Y H, Zeng L M, Wang W 2005 Research of Environmental Sciences 18 1 (in Chinese) [朱先磊, 张远航, 曾立民, 王玮 2005 环境科学研究 18 1]

    [2]

    Hnninger G, von Friedeburg C, Platt U 2004 Atmos. Chem. Phys 4 231

    [3]
    [4]
    [5]

    Li A, Xie P H, Liu C, Liu J G, Liu W Q 2007 Chin. Phys. Lett. 24 2859

    [6]

    Wang Y, Xie P H, Li A, Zeng Y, Xu J, Si F Q 2012 Acta Phys. Sin. 61 114209 (in Chinese)[王杨, 谢品华, 李昂, 曾议, 徐晋, 司福祺 2012 61 114209]

    [7]
    [8]

    Wang Y, Li A, Xie P H, Zeng Y, Wang R B, Chen H, Pei X, Liu J G, Liu W Q 2012 Chin. Phys. B 21 114211

    [9]
    [10]
    [11]

    Xu J, Xie P H, Si F Q, Dou K, Li A, Liu Y, Liu W Q 2010 Spectroscopy and Spectral Analysis 30 2464 (in Chinese) [徐晋, 谢品华, 司福祺, 窦科, 李昂, 刘宇, 刘文清 2010 光谱学与光谱分析 30 2464]

    [12]

    Wang Y, Li A, Xie P H, Chen H, Mou F S, Xu J, Wu F C, Zeng Y, Liu J G, Liu W Q 2013 Acta Phys. Sin. 62 200705 (in Chinese)[王杨, 李昂, 谢品华, 陈浩, 牟福生, 徐晋, 吴丰成, 曾议, 刘建国, 刘文清 2013 62 200705]

    [13]
    [14]

    Wang Y, Xie P H, Li A, Si F Q, Zeng Y, Wu F C 2012 Acta Opt. Sin. 32 0901002 (in Chinese) [王杨, 谢品华, 李昂, 司福祺, 曾议, 吴丰成 2011 光学学报 32 0901002]

    [15]
    [16]
    [17]

    Gielen C, Van Roozendael M, Hendrik F, Fayt C, Hermans C, Pinardi G, Vlemmix T 2013 Geophysical Research Abstracts 15 EGU 2013-7153-1

    [18]
    [19]

    Wu F C, Xie P H, Li A, Si F Q, Wang Y, Liu W Q 2011 Acta Opt. Sin. 31 1101003 (in Chinese) [吴丰成, 谢品华, 李昂, 司福祺, 王杨, 刘文清 2011 光学学报 31 1101003]

    [20]
    [21]

    Ma J Z, Beirle S, Jin J L 2012 Atmos. Chem. Phys. Discuss. 12 26719

    [22]

    Wagner T, Dix B, Friedeburg C v 2004 J. Geophys. Res. 109 22205

    [23]
    [24]
    [25]

    Wagner T, Deutschmann T, Platt U 2009 Atmos. Meas. Tech. 2 495

    [26]

    Wang Y, Li A, Xie P H, Chen H, Xu J, Wu F C, Liu J G, Liu W Q 2013 Acta Phys. Sin. 62 180705 (in Chinese)[王杨, 李昂, 谢品华, 陈浩, 徐晋, 吴丰成, 刘建国, 刘文清 2013 62 180705]

    [27]
    [28]
    [29]

    Wagner T, Beirle S, Brauers T 2011 Atmos. Meas. Tech. Discuss. 4 3891

    [30]

    Wu F C, Xie P H, Li A, Si F Q, Xu j, Fan G Q, Liu W Q, Liu W Q 2013 Acta Opt. Sin. 33 0601002 (in Chinese) [吴丰成, 谢品华, 李昂, 司福祺, 徐晋, 范广强, 刘建国, 刘文清 2013 光学学报 33 0601002]

    [31]
    [32]
    [33]

    Wagner T, Erie F, Marquard L, Otten C, Pfeilsticker K, Senne T, Stutz J, Platt U 1998 J. Geophys. Res. 103 25307

    [34]
    [35]

    Huang X Y, Xia J R, Pu L B, Zhang X F, Lei Y, Huang J S, Wang W W, Wu D, Jiang C H, Hu H F 2013 Chinese Journal of Quantum Electronics 30 73 (in Chinese) [黄兴友, 夏俊荣, 卜令兵, 张雪芬, 雷勇, 黄建松, 王巍巍, 吴迪, 蒋昌华, 胡汉峰 2013 量子电子学报 30 73]

    [36]

    Heinle A, Macke A, Srivastav A 2010 Atmos. Meas. Tech. 3 557

    [37]
    [38]
    [39]

    Pei X, Li A, Xie P H, Wu F C, Wang Y, Xu J 2013 Journal of Atmospheric and Environmental Optics 8 354 (in Chinese)[裴显, 李昂, 谢品华, 吴丰成, 王杨, 徐晋 2013 大气与环境光学学报 8 354]

    [40]
    [41]
    [42]

    Wagner T, Beirle S, Drner S, Friess U, Remmers J, Shaiganfar R 2013 Atmos. Meas. Tech. Discuss. 6 10297

    [43]
    [44]

    Wagner T, Beirle S, Deutschmann T 2009 Atmos. Meas. Tech. 2 113

    [45]

    Platt U, Stutz J 2008 Differential Optical Absorption Spectroscopy. Berlin: Springer-Verlag Heidelberg p133

    [46]
    [47]
    [48]

    Greenblatt G D, Orlando J J, Burkholder J B 1990 J. Geophys. Res. 95 18577

    [49]
    [50]

    Wagner T, Friedeburg C von, Wenig M 2002 J. Geophys. Res. 107 D 204424

    [51]
    [52]
    [53]

    Solomon S, Schmeltekopf A L, Sanders R W 1987 J. Geophys. Res. 92 8311

    [54]
    [55]
    [56]

    Greenblatt G D, Orlando J J, Burkholder J B, Ravis-hankara A R 1990 J. Geophys. Res. 95 18577

    [57]
    [58]

    Vandaele A C, Hermans C, Simon P C, Carleer M, Colins R, Fally S, Merienne M F, Jenouvrier A, Coquart B 1998 J. Quant. Spectrosc. Radiat. Transfer 59 171

    [59]

    Bogumil K, Orphal J, Homann T, Voigt S, Spietz P, Fleischmann O C, Vogel A, Hart-mann M, Bovensmann H, Frerik J, Burrows J P 2003 J. Photoch. Pho-tobio. A 157 167

    [60]
    [61]
    [62]

    https://nsidc.org/data/modis/terra_aqua_differences/[2013-12-08]

    [63]
    [64]
    [65]
    [66]

    Deutschmanna T, Beirle S, Frie U, Grzegorski M, Kern C, Kritten L, Platt U, Prados-Romna C, Pukite J, Wagner T, Werner B, Pfeilsticker K 2011 Journal of Quantitative Spectroscopy and Radiative Transfer 112 1119

  • [1]

    Zhu X L, Zhang Y H, Zeng L M, Wang W 2005 Research of Environmental Sciences 18 1 (in Chinese) [朱先磊, 张远航, 曾立民, 王玮 2005 环境科学研究 18 1]

    [2]

    Hnninger G, von Friedeburg C, Platt U 2004 Atmos. Chem. Phys 4 231

    [3]
    [4]
    [5]

    Li A, Xie P H, Liu C, Liu J G, Liu W Q 2007 Chin. Phys. Lett. 24 2859

    [6]

    Wang Y, Xie P H, Li A, Zeng Y, Xu J, Si F Q 2012 Acta Phys. Sin. 61 114209 (in Chinese)[王杨, 谢品华, 李昂, 曾议, 徐晋, 司福祺 2012 61 114209]

    [7]
    [8]

    Wang Y, Li A, Xie P H, Zeng Y, Wang R B, Chen H, Pei X, Liu J G, Liu W Q 2012 Chin. Phys. B 21 114211

    [9]
    [10]
    [11]

    Xu J, Xie P H, Si F Q, Dou K, Li A, Liu Y, Liu W Q 2010 Spectroscopy and Spectral Analysis 30 2464 (in Chinese) [徐晋, 谢品华, 司福祺, 窦科, 李昂, 刘宇, 刘文清 2010 光谱学与光谱分析 30 2464]

    [12]

    Wang Y, Li A, Xie P H, Chen H, Mou F S, Xu J, Wu F C, Zeng Y, Liu J G, Liu W Q 2013 Acta Phys. Sin. 62 200705 (in Chinese)[王杨, 李昂, 谢品华, 陈浩, 牟福生, 徐晋, 吴丰成, 曾议, 刘建国, 刘文清 2013 62 200705]

    [13]
    [14]

    Wang Y, Xie P H, Li A, Si F Q, Zeng Y, Wu F C 2012 Acta Opt. Sin. 32 0901002 (in Chinese) [王杨, 谢品华, 李昂, 司福祺, 曾议, 吴丰成 2011 光学学报 32 0901002]

    [15]
    [16]
    [17]

    Gielen C, Van Roozendael M, Hendrik F, Fayt C, Hermans C, Pinardi G, Vlemmix T 2013 Geophysical Research Abstracts 15 EGU 2013-7153-1

    [18]
    [19]

    Wu F C, Xie P H, Li A, Si F Q, Wang Y, Liu W Q 2011 Acta Opt. Sin. 31 1101003 (in Chinese) [吴丰成, 谢品华, 李昂, 司福祺, 王杨, 刘文清 2011 光学学报 31 1101003]

    [20]
    [21]

    Ma J Z, Beirle S, Jin J L 2012 Atmos. Chem. Phys. Discuss. 12 26719

    [22]

    Wagner T, Dix B, Friedeburg C v 2004 J. Geophys. Res. 109 22205

    [23]
    [24]
    [25]

    Wagner T, Deutschmann T, Platt U 2009 Atmos. Meas. Tech. 2 495

    [26]

    Wang Y, Li A, Xie P H, Chen H, Xu J, Wu F C, Liu J G, Liu W Q 2013 Acta Phys. Sin. 62 180705 (in Chinese)[王杨, 李昂, 谢品华, 陈浩, 徐晋, 吴丰成, 刘建国, 刘文清 2013 62 180705]

    [27]
    [28]
    [29]

    Wagner T, Beirle S, Brauers T 2011 Atmos. Meas. Tech. Discuss. 4 3891

    [30]

    Wu F C, Xie P H, Li A, Si F Q, Xu j, Fan G Q, Liu W Q, Liu W Q 2013 Acta Opt. Sin. 33 0601002 (in Chinese) [吴丰成, 谢品华, 李昂, 司福祺, 徐晋, 范广强, 刘建国, 刘文清 2013 光学学报 33 0601002]

    [31]
    [32]
    [33]

    Wagner T, Erie F, Marquard L, Otten C, Pfeilsticker K, Senne T, Stutz J, Platt U 1998 J. Geophys. Res. 103 25307

    [34]
    [35]

    Huang X Y, Xia J R, Pu L B, Zhang X F, Lei Y, Huang J S, Wang W W, Wu D, Jiang C H, Hu H F 2013 Chinese Journal of Quantum Electronics 30 73 (in Chinese) [黄兴友, 夏俊荣, 卜令兵, 张雪芬, 雷勇, 黄建松, 王巍巍, 吴迪, 蒋昌华, 胡汉峰 2013 量子电子学报 30 73]

    [36]

    Heinle A, Macke A, Srivastav A 2010 Atmos. Meas. Tech. 3 557

    [37]
    [38]
    [39]

    Pei X, Li A, Xie P H, Wu F C, Wang Y, Xu J 2013 Journal of Atmospheric and Environmental Optics 8 354 (in Chinese)[裴显, 李昂, 谢品华, 吴丰成, 王杨, 徐晋 2013 大气与环境光学学报 8 354]

    [40]
    [41]
    [42]

    Wagner T, Beirle S, Drner S, Friess U, Remmers J, Shaiganfar R 2013 Atmos. Meas. Tech. Discuss. 6 10297

    [43]
    [44]

    Wagner T, Beirle S, Deutschmann T 2009 Atmos. Meas. Tech. 2 113

    [45]

    Platt U, Stutz J 2008 Differential Optical Absorption Spectroscopy. Berlin: Springer-Verlag Heidelberg p133

    [46]
    [47]
    [48]

    Greenblatt G D, Orlando J J, Burkholder J B 1990 J. Geophys. Res. 95 18577

    [49]
    [50]

    Wagner T, Friedeburg C von, Wenig M 2002 J. Geophys. Res. 107 D 204424

    [51]
    [52]
    [53]

    Solomon S, Schmeltekopf A L, Sanders R W 1987 J. Geophys. Res. 92 8311

    [54]
    [55]
    [56]

    Greenblatt G D, Orlando J J, Burkholder J B, Ravis-hankara A R 1990 J. Geophys. Res. 95 18577

    [57]
    [58]

    Vandaele A C, Hermans C, Simon P C, Carleer M, Colins R, Fally S, Merienne M F, Jenouvrier A, Coquart B 1998 J. Quant. Spectrosc. Radiat. Transfer 59 171

    [59]

    Bogumil K, Orphal J, Homann T, Voigt S, Spietz P, Fleischmann O C, Vogel A, Hart-mann M, Bovensmann H, Frerik J, Burrows J P 2003 J. Photoch. Pho-tobio. A 157 167

    [60]
    [61]
    [62]

    https://nsidc.org/data/modis/terra_aqua_differences/[2013-12-08]

    [63]
    [64]
    [65]
    [66]

    Deutschmanna T, Beirle S, Frie U, Grzegorski M, Kern C, Kritten L, Platt U, Prados-Romna C, Pukite J, Wagner T, Werner B, Pfeilsticker K 2011 Journal of Quantitative Spectroscopy and Radiative Transfer 112 1119

  • [1] 任红梅, 李昂, 胡肇焜, 黄业园, 徐晋, 谢品华, 钟鸿雁, 李晓梅. 基于多轴差分吸收光谱技术测量青岛市大气水汽垂直柱浓度及垂直分布.  , 2020, 69(20): 204204. doi: 10.7498/aps.69.20200588
    [2] 钟文婷, 刘君, 华灯鑫, 侯海彦, 晏克俊. 多波长发光二极管光源雷达系统与近地面低层大气气溶胶探测.  , 2018, 67(18): 184208. doi: 10.7498/aps.67.20180721
    [3] 吴丰成, 李昂, 谢品华, 陈浩, 凌六一, 徐晋, 牟福生, 张杰, 申进朝, 刘建国, 刘文清. 车载多轴差分吸收光谱探测对流层NO2分布研究.  , 2015, 64(11): 114211. doi: 10.7498/aps.64.114211
    [4] 刘进, 邹莹, 司福祺, 周海金, 窦科, 王煜, 刘文清. 基于差分吸收光谱技术的大气痕量气体二维观测方法.  , 2015, 64(16): 164209. doi: 10.7498/aps.64.164209
    [5] 孙友文, 谢品华, 徐晋, 周海金, 刘诚, 王杨, 刘文清, 司福祺, 曾议. 采用加权函数修正的差分光学吸收光谱反演环境大气中的CO2垂直柱浓度.  , 2013, 62(13): 130703. doi: 10.7498/aps.62.130703
    [6] 赵敏杰, 司福祺, 陆亦怀, 汪世美, 江宇, 周海金, 刘文清. 星载大气痕量气体差分吸收光谱仪定标系统中铝漫反射板实验测量研究.  , 2013, 62(24): 249301. doi: 10.7498/aps.62.249301
    [7] 周海金, 刘文清, 司福祺, 窦科. 多轴差分吸收光谱技术测量近地面NO2体积混合比浓度方法研究.  , 2013, 62(4): 044216. doi: 10.7498/aps.62.044216
    [8] 王婷, 王普才, 余环, 张兴赢, 周斌, 司福祺, 王珊珊, 白文广, 周海金, 赵恒. 多轴差分吸收光谱仪反演大气NO2的比对试验.  , 2013, 62(5): 054206. doi: 10.7498/aps.62.054206
    [9] 王杨, 李昂, 谢品华, 陈浩, 牟福生, 徐晋, 吴丰成, 曾议, 刘建国, 刘文清. 多轴差分吸收光谱技术测量NO2对流层垂直分布及垂直柱浓度.  , 2013, 62(20): 200705. doi: 10.7498/aps.62.200705
    [10] 王杨, 李昂, 谢品华, 陈浩, 徐晋, 吴丰成, 刘建国, 刘文清. 多轴差分吸收光谱技术反演气溶胶消光系数垂直廓线.  , 2013, 62(18): 180705. doi: 10.7498/aps.62.180705
    [11] 董美丽, 赵卫雄, 程跃, 胡长进, 顾学军, 张为俊. 宽带腔增强吸收光谱技术应用于痕量气体探测及气溶胶消光系数测量.  , 2012, 61(6): 060702. doi: 10.7498/aps.61.060702
    [12] 徐晋, 谢品华, 司福祺, 李昂, 刘文清. 机载多轴差分吸收光谱技术获取对流层NO2垂直柱浓度的研究.  , 2012, 61(2): 024204. doi: 10.7498/aps.61.024204
    [13] 王焯如, 周斌, 王珊珊, 杨素娜. 应用多光路主动差分光学吸收光谱仪观测大气污染物的空间分布.  , 2011, 60(6): 060703. doi: 10.7498/aps.60.060703
    [14] 司福祺, 谢品华, 窦科, 詹铠, 刘宇, 徐晋, 刘文清. 被动多轴差分吸收光谱大气气溶胶光学厚度监测方法研究.  , 2010, 59(4): 2867-2872. doi: 10.7498/aps.59.2867
    [15] 左浩毅, 杨经国. 基于气溶胶光学厚度反演大气气溶胶尺度分布.  , 2007, 56(10): 6132-6136. doi: 10.7498/aps.56.6132
    [16] 郝 楠, 周 斌, 陈立民. 利用差分吸收光谱法测量亚硝酸和反演气溶胶参数.  , 2006, 55(3): 1529-1533. doi: 10.7498/aps.55.1529
    [17] 司福祺, 刘建国, 谢品华, 张玉钧, 窦 科, 刘文清. 差分吸收光谱技术监测大气气溶胶粒谱分布.  , 2006, 55(6): 3165-3169. doi: 10.7498/aps.55.3165
    [18] 周 斌, 郝 楠, 陈立民. 夫琅禾费线对差分光学吸收光谱法测量大气污染气体影响的研究.  , 2005, 54(9): 4445-4450. doi: 10.7498/aps.54.4445
    [19] 周斌, 刘文清, 齐峰, 李振壁, 崔延军. 差分吸收光谱法测量大气污染的浓度反演方法研究.  , 2001, 50(9): 1818-1823. doi: 10.7498/aps.50.1818
    [20] 梁二军, 张鹏翔. 核黄素/银溶胶体系的吸收光谱和表面增强共振喇曼光谱.  , 1991, 40(2): 198-204. doi: 10.7498/aps.40.198
计量
  • 文章访问数:  6464
  • PDF下载量:  453
  • 被引次数: 0
出版历程
  • 收稿日期:  2013-12-11
  • 修回日期:  2014-03-17
  • 刊出日期:  2014-06-05

/

返回文章
返回
Baidu
map