N2O Vertical Profiles Retrieved from Ground-based Solar Absorption Spectra Taken at McMurdo Station During Austral Spring of 1989

X. Liu, F. Murcray
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引用次数: 1

Abstract

N2O can be a tracer of atmospheric air motion due to its long life time. Ground-based FTIR solar spectra contain information on the vertical distributions of N2O due to pressure-broadening of absorption lines. We have combined the Chahine-Twomey' relaxation method with a line-by-line layer-by-layer radiative transfer code to retrieve N2O VMR profiles from ground-based solar absorption spectra. The spectra were taken at McMurdo station during the austral spring of 1989 with a 0.02 wavenumber resolution FTIR spectrometer. Since N2O is released from troposphere and is photolyzed in the stratosphere, the line shape of its absorption is mainly due Lorentz broadening. The 0.02 wavenumber resolution is high enough for us to retrieve N2O VMR profiles up to 25 kilometers. Figure 1 shows a typical observed N2O solar spectrum near 1993.15 wavenumber (solid line) and a calculated spectrum using our profile retrieval program. The best fit is obtained by iteratively adjusting N2O VMR profile according to the formulation of Chahine and Twomey. A contour plot of N2O VMR versus altitude and julian day number is shown in Figure 2. The lower tropospheric N2O VMRs have an average value around 310 ppb. Correlations of the N2O contour with that of temperature shows interesting features of tropospheric and lower stratospheric air motions. We have also compared the total N2O column amounts retrieved from this profile retrieval method and from the PC version of the non-linear least square spectral fitting algorithm (SFIT). The temporal variations of the N2O total column amounts retrieved from two methods show excellent correlation.
1989年南方春季麦克默多站地面太阳吸收光谱反演的N2O垂直剖面
N2O寿命长,可作为大气运动的示踪剂。基于地面的FTIR太阳光谱包含了由于吸收线的压力展宽而导致的N2O垂直分布的信息。我们将Chahine-Twomey'松弛法与逐行逐层辐射传输代码相结合,从地面太阳吸收光谱中检索N2O VMR剖面。光谱是1989年南春在麦克默多站用一台分辨率为0.02波数的FTIR光谱仪拍摄的。由于N2O是从对流层释放出来的,在平流层被光分解,其吸收的线形主要是由于洛伦兹展宽。0.02波数的分辨率足以让我们检索到25公里外的N2O VMR剖面。图1显示了在1993.15波数附近观测到的典型N2O太阳光谱(实线)和使用剖面检索程序计算得到的光谱。根据Chahine和Twomey公式,通过迭代调整N2O VMR剖面得到最佳拟合。N2O VMR与海拔和儒略日数的等值线图如图2所示。对流层低层N2O vmr的平均值约为310 ppb。N2O等高线与温度的相关关系显示了对流层和平流层低层空气运动的有趣特征。我们还比较了从该剖面检索方法和PC版非线性最小二乘谱拟合算法(SFIT)检索到的N2O总柱量。两种方法测得的N2O总柱量的时间变化具有很好的相关性。
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