首页> 外文OA文献 >Retrievals of ethane from ground-based high-resolution FTIR solar observations with updated line parameters: determination of the optimum strategy for the Jungfraujoch station.
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Retrievals of ethane from ground-based high-resolution FTIR solar observations with updated line parameters: determination of the optimum strategy for the Jungfraujoch station.

机译:从具有更新的线参数的地面高分辨率FTIR太阳观测中检索乙烷:确定少女峰站的最佳策略。

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摘要

Ethane (C2H6) is the most abundant Non-Methane HydroCarbon (NMHC) in the Earth’s atmosphere, with a lifetime of approximately 2 months. C2H6 has both anthropogenic and natural emission sources such as biomass burning, natural gas loss and biofuel consumption. The retrieval of ethane from ground-based infrared spectra is challenging. Indeed, ethane has a complicated spectrum with many interacting vibrational modes and the current state of ethane parameters in HITRAN (see http://www.hitran.com) was rather unsatisfactory in the 3 μm region. In fact, PQ branches outside the 2973–3001 cm-1 range are not included in HITRAN, and most P and R structures are missing.New ethane absorption cross sections recorded at the Molecular Spectroscopy Facility of the Rutherford Appleton Laboratory (Harrison et al., 2010) are used in our retrievals. Pseudoline parameters fitted to these ethane spectra have been combined with HITRAN 2004 line parameters (including all the 2006 updates) for all other species encompassed in the selected microwindows. We evaluated the impact on spectral residuals induced by the update of two O3 lines (encompassed in the PQ3 µ-window) corrected by P. Chelin (LPMA, Paris, France). We also quantified the improvement brought by the update of the line positions and intensities of methyl chloride (CH3Cl) in the 3.4 µm region (Bray et al., 2011). The ethane a priori volume mixing ratio (VMR) profile and associated covariance are based on synthetic data from CHASER 3-D chemical transport model (CTM).In this contribution, we will present updated ethane (total) column retrievals, using the SFIT-2 algorithm (v3.91) and high-resolution Fourier Transform Infrared (FTIR) solar absorption observations recorded with a Bruker 120HR instrument, at the high altitude research station of the Jungfraujoch (46.5°N, 8°E, 3580 m asl), within the framework of the Network for the Detection of Atmospheric Composition Change (NDACC, visit http://www.ndacc.org). Comparisons with synthetic data produced by two chemical transport models (CHASER and the one of the University of Oslo) will also be presented and analyzed, aiming at the determination and interpretation of long-term trends and interannual variations of ethane at Northern mid-latitudes.
机译:乙烷(C2H6)是地球大气中含量最高的非甲烷碳氢化合物(NMHC),使用寿命约为2个月。 C2H6同时具有人为和自然排放源,例如生物质燃烧,天然气损失和生物燃料消耗。从地基红外光谱中回收乙烷具有挑战性。确实,乙烷具有复杂的光谱,具有许多相互作用的振动模式,并且HITRAN中的乙烷参数的当前状态(请参见http://www.hitran.com)在3μm区域中并不令人满意。实际上,HITRAN不包括2973–3001 cm-1范围以外的PQ分支,并且大多数P和R结构都缺失。卢瑟福·阿普尔顿实验室分子光谱学设施记录的新的乙烷吸收横截面(Harrison等人。 (2010年)。已将适合这些乙烷光谱的伪线参数与HITRAN 2004线参数(包括所有2006年更新)组合在一起,用于所选微窗口中包含的所有其他物种。我们评估了由P. Chelin(LPMA,巴黎,法国)校正的两条O3谱线的更新(包含在PQ3 µ窗口中)对谱残留量的影响。我们还量化了更新3.4 µm区域中氯甲烷(CH3Cl)的谱线位置和强度所带来的改善(Bray等,2011)。乙烷的先验体积混合比(VMR)曲线和相关的协方差是基于CHASER 3-D化学迁移模型(CTM)的合成数据。在此贡献中,我们将使用SFIT- 2算法(v3.91)和使用布鲁克120HR仪器在少女峰(46.5°N,8°E,3580 m asl)的高空观测仪记录的高分辨率傅里叶变换红外(FTIR)太阳吸收观测,在大气成分变化检测网络(NDACC,请访问http://www.ndacc.org)的框架内。还将介绍和分析与两种化学迁移模型(CHASER和奥斯陆大学之一)产生的合成数据的比较,目的是确定和解释北部中纬度乙烷的长期趋势和年际变化。

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