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首页> 外文期刊>Atmospheric Chemistry and Physics Discussions >Chlorine partitioning near the polar vortex edge observed with ground-based FTIR and satellites at Syowa Station, Antarctica, in 2007 and 2011
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Chlorine partitioning near the polar vortex edge observed with ground-based FTIR and satellites at Syowa Station, Antarctica, in 2007 and 2011

机译:在2007年和2011年,在Syowa Station的地面FTIR和卫星附近观察到极地涡旋边缘附近的氯分配,2007年和2011年

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We retrieved lower stratospheric vertical profiles of O3, HNO3, and HCl from solar spectra taken with a ground-based Fourier transform infrared spectrometer (FTIR) installed at Syowa Station, Antarctica (69.0°S, 39.6°E), from March to December?2007 and September to November?2011. This was the first continuous measurement of chlorine species throughout the ozone hole period from the ground in Antarctica. We analyzed temporal variation of these species combined with ClO, HCl, and HNO3 data taken with the Aura MLS (Microwave Limb Sounder) satellite sensor and ClONO2 data taken with the Envisat MIPAS (the Michelson Interferometer for Passive Atmospheric Sounding) satellite sensor at 18 and 22km over Syowa Station. An HCl and ClONO2 decrease occurred from the end of May at both 18 and 22km, and eventually, in early winter, both HCl and ClONO2 were almost depleted. When the sun returned to Antarctica in spring, enhancement of ClO and gradual O3 destruction were observed. During the ClO-enhanced period, a negative correlation between ClO and ClONO2 was observed in the time series of the data at Syowa Station. This negative correlation was associated with the relative distance between Syowa Station and the edge of the polar vortex. We used MIROC3.2 chemistry–climate model (CCM) results to investigate the behavior of whole chlorine and related species inside the polar vortex and the boundary region in more detail. From CCM model results, the rapid conversion of chlorine reservoir species (HCl and ClONO2) into Cl2, gradual conversion of Cl2 into Cl2O2, increase in HOCl in the winter period, increase in ClO when sunlight became available, and conversion of ClO into HCl were successfully reproduced. The HCl decrease in the winter polar vortex core continued to occur due to both transport of ClONO2 from the subpolar region to higher latitudes, providing a flux of ClONO2 from more sunlit latitudes into the polar vortex, and the heterogeneous reaction of HCl with HOCl. The temporal variation of chlorine species over Syowa Station was affected by both heterogeneous chemistries related to polar stratospheric cloud (PSC) occurrence inside the polar vortex and transport of a NOx-rich air mass from the polar vortex boundary region, which can produce additional ClONO2 by reaction of ClO with NO2. The deactivation pathways from active chlorine into reservoir species (HCl and/or ClONO2) were confirmed to be highly dependent on the availability of ambient O3. At 18km, where most ozone was depleted, most ClO was converted to HCl. At 22km where some O3 was available, an additional increase in ClONO2 from the prewinter value occurred, similar to the Arctic.
机译:从3月到12月,我们从Syowa Station的地面傅里叶变换红外光谱仪(FTIR)采用的太阳光谱检索了O3,HNO3和HCL的较低的STRATTOMIC垂直型材从SMOWA站(69.0°S,39.6°E),从3月到12月2007年9月至11月?2011年。这是从南极地区的臭氧孔周期氯物种的第一次连续测量。我们分析了这些物种的时间变化与ClO,HCl和HNO3数据相结合,与Aura MLS(微波肢体发声器)卫星传感器和Clono2数据用Envisat MIPA(Michelson干涉仪为被动大气发出的Michelson干涉仪为用于被动大气发出)卫星传感器的卫星传感器。 22km over Syowa Station。 HCl和Clono2发生在18和22km的5月底,最终,在初期,HCl和Clono2几乎耗尽。当太阳在春天返回南极洲时,观察到CLO的增强和逐步的O3破坏。在Clo增强的时期期间,在Syowa站的数据的时间序列中观察到Clo和Clono2之间的负相关。这种负相关与Syowa站与极性涡流的边缘之间的相对距离有关。我们使用Miroc3.2化学 - 气候模型(CCM)结果,以更详细地研究极地涡流和边界区域内的整个氯和相关物种的行为。从CCM模型结果中,氯储层物种(HCl和Clono2)的快速转化为Cl2,Cl2逐渐转化为Cl2O2,冬季期间的Hocl增加,当阳光下可获得时,ClO增加,并且Clo转化为HCl成功复制。冬季极性涡旋核的HCl降低继续发生,因为将Clono2从亚极区域转移到更高的纬度,从更加阳光照射到极性涡旋中的克隆诺2的通量,以及HCl与HoCl的异质反应。 Syowa站的氯物种的时间变化受到极性平流层云(PSC)的异质化学物质的影响,并从极地涡流和富极性涡流边界区域的富含NOx的空气质量运输,这可以产生额外的CLONO2 Clo与NO2的反应。将来自活性氯离储层物种(HCl和/或ClonO 2)的失活途径被证实高度依赖于环境o3的可用性。在18km时,大多数臭氧耗尽,大多数克洛被转化为HCl。在某些O3可用的22km处,从PRWEWINT值中额外增加CLONO2,类似于北极。

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