Abstract

Abstract. Preliminary attempts of quantifying the stratospheric ozone contribution in the observations at the Zugspitze summit (2962 m a.s.l.) next to Garmisch-Partenkirchen in the German Alps had yielded an approximate doubling of the stratospheric fraction of the Zugspitze ozone during the time period 1978 to 2004. These investigations had been based on data filtering by using low relative humidity (RH) and elevated 7Be as the criteria for selecting half-hour intervals of ozone data representative of stratospheric intrusion air. To quantify the residual stratospheric component in stratospherically influenced air masses, however, the mixing of tropospheric air into the stratospheric intrusion layers must be taken into account. In fact, the dewpoint mirror instrument at the Zugspitze summit station rarely registers RH values lower than 10% in stratospheric air intrusions. Since 2007 a programme of routine lidar sounding of ozone, water vapour and aerosol has been conducted in the Garmisch-Partenkirchen area. The lidar results demonstrate that the intrusion layers are drier by roughly one order of magnitude than indicated in the in situ measurements. Even in thin layers RH values clearly below 1% have frequently been observed. These thin, undiluted layers present an important challenge for atmospheric modelling. Although the ozone values never reach values typical of the lower-stratosphere it becomes, thus, obvious that, without strong wind shear or convective processes, mixing of stratospheric and tropospheric air must be very slow in most of the free troposphere. As a consequence, the analysis the Zugspitze data can be assumed to be more reliable than anticipated. Finally, the concentrations of Zugspitze carbon monoxide rarely drop inside intrusion layers and normally stay clearly above full stratospheric values. This indicates that most of the CO, and thus the intrusion air mass, originates in the shallow "mixing layer" around the thermal tropopause. The CO mixing ratio in these descending layers between 1990 and 2004 exhibits a slightly positive trend indicating some Asian influence on the lowermost stratosphere in the high-latitude source region of most intrusions reaching the station.

Highlights

  • The increase of ozone and 7Be at the Alpine summit station Zugspitze (2962 m a.s.l., Garmisch-Partenkirchen, Germany) between the mid-1970s and 2002 (Oltmans et al, 2006, 2012; Logan et al, 2012; Parrish et al, 2012) has led to systematic efforts to identify and quantify the causes

  • Preliminary attempts of quantifying the stratospheric ozone contribution in the observations at the Zugspitze summit (2962 m a.s.l.) next to GarmischPartenkirchen in the German Alps had yielded an approximate doubling of the stratospheric fraction of the Zugspitze ozone during the time period 1978 to 2004

  • These investigations had been based on data filtering by using low relative humidity (RH) and elevated 7Be as the criteria for selecting half-hour intervals of ozone data representative of stratospheric intrusion air

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Summary

Introduction

The increase of ozone and 7Be at the Alpine summit station Zugspitze (2962 m a.s.l., Garmisch-Partenkirchen, Germany) between the mid-1970s and 2002 (Oltmans et al, 2006, 2012; Logan et al, 2012; Parrish et al, 2012) has led to systematic efforts to identify and quantify the causes. 66–71 in ATMOFAST, 2005), based on the ozone, relative humidity (RH) and 7Be measurements, has shown that the only strong positive trend in the Zugspitze ozone between 1990 and 2002 is related to air descending in deep stratospheric intrusions. The data-filtering efforts underlying the determination of the stratospheric influence in the Zugspitze ozone record have neglected the mixing of tropospheric air into the intrusion layers (see Trickl et al, 2010 for a comparison of different filtering criteria with daily model forecasts). Aerosol was observed in a stratospheric air intrusion after the El Chichón volcanic eruption (Browell et al, 1987) the most important STT tracers accessible by lidar sounding are ozone and water vapour.

Mixing in tropopause folds and tropopause definitions
Measurements
Models
Results
Lidar measurements
Zugspitze data
Model results
Brief analysis as L1 to L4
How dry are stratospheric air intrusions?
13 Feb 2013 12:31
Trend of Zugspitze carbon monoxide 1990–2004
Full Text
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