Abstract

Abstract. We present an automated dynamic chamber system which is optimised for continuous unattended flux measurements of multiple non-reactive and reactive trace gases on grassland ecosystems. Main design features of our system are (a) highly transparent chamber walls consisting of chemically inert material, (b) individual purging flow units for each chamber, and (c) a movable lid for automated opening and closing of the chamber. The purging flow rate was chosen high enough to keep the mean residence time of the chamber air below one minute. This guarantees a proven efficient mixing of the chamber volume and a fast equilibration after lid closing. The dynamic chamber system is able to measure emission as well as deposition fluxes of trace gases. For the latter case, the modification of the turbulent transport by the chamber (compared to undisturbed ambient conditions) is quantitatively described by a bulk resistance concept. Beside a detailed description of the design and functioning of the system, results of field applications at two grassland sites are presented. In the first experiment, fluxes of five trace gases (CO2, H2O, NO, NO2, O3) were measured simultaneously on small grassland plots. It showed that the dynamic chamber system is able to detect the characteristic diurnal cycles with a sufficient temporal resolution. The results also demonstrated the importance of considering the chemical source/sink in the chamber due to gas phase reactions for the reactive compounds of the NO-NO2-O3 triad. In a second field experiment, chamber flux measurements of CO2 and methanol were compared to simultaneous independent eddy covariance flux measurements on the field scale. The fluxes obtained with the two methods showed a very good agreement indicating a minimal disturbance of the chambers on the physiological activity of the enclosed vegetation.

Highlights

  • Grassland ecosystems cover a large fraction (21%) of the global terrestrial surface (Butcher et al, 1992)

  • We present an automated dynamic chamber system which is optimised for continuous unattended flux measurements of multiple non-reactive and reactive trace gases on grassland ecosystems

  • In this paper we present an automated dynamic chamber system which is optimised for continuous unattended flux measurements of multiple non-reactive and reactive trace gases on grassland ecosystems

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Summary

Introduction

Grassland ecosystems cover a large fraction (21%) of the global terrestrial surface (Butcher et al, 1992). They are sources and sinks for numerous non-reactive (e.g. CO2, N2O, CH4) and reactive (e.g. NO, NO2, NH3, O3, VOC) trace gases which play an important role in atmospheric chemistry and air pollution (Brunner et al, 2007a; Bassin et al, 2007; Tilsner et al, 2003; Herrmann et al, 2001). The ideal flux measurement setup for grassland should be robust and mobile It should facilitate automated (quasi-) continuous measurements at multiple points or sub-plots to capture diurnal and seasonal variations as well as spatial variability

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