Using beryllium-7 to assess cross-tropopause transport in global models

Hongyu Liu, David B. Considine, Larry W. Horowitz, James H. Crawford, Jose M. Rodriguez, Susan E. Strahan, Megan R. Damon, Stephen D. Steenrod, Xiaojing Xu, Jules Kouatchou, Claire Carouge, Robert M. Yantosca
2016 Atmospheric Chemistry and Physics  
<p><strong>Abstract.</strong> We use the Global Modeling Initiative (GMI) modeling framework to assess the utility of cosmogenic beryllium-7 (<sup>7</sup>Be), a natural aerosol tracer, for evaluating cross-tropopause transport in global models. The GMI chemical transport model (CTM) was used to simulate atmospheric <sup>7</sup>Be distributions using four different meteorological data sets (GEOS1-STRAT DAS, GISS II′ GCM, fvGCM, and GEOS4-DAS), featuring significantly different
more » ... stratosphere–troposphere exchange (STE) characteristics. The simulations were compared with the upper troposphere and/or lower stratosphere (UT/LS) <sup>7</sup>Be climatology constructed from ∼ <span class="thinspace"></span>25<span class="thinspace"></span>years of aircraft and balloon data, as well as climatological records of surface concentrations and deposition fluxes. Comparison of the fraction of surface air of stratospheric origin estimated from the <sup>7</sup>Be simulations with observationally derived estimates indicates excessive cross-tropopause transport at mid-latitudes in simulations using GEOS1-STRAT and at high latitudes using GISS II′ meteorological data. These simulations also overestimate <sup>7</sup>Be deposition fluxes at mid-latitudes (GEOS1-STRAT) and at high latitudes (GISS II′), respectively. We show that excessive cross-tropopause transport of <sup>7</sup>Be corresponds to overestimated stratospheric contribution to tropospheric ozone. Our perspectives on STE in these meteorological fields based on <sup>7</sup>Be simulations are consistent with previous modeling studies of tropospheric ozone using the same meteorological fields. We conclude that the observational constraints for <sup>7</sup>Be and observed <sup>7</sup>Be total deposition fluxes can be used routinely as a first-order assessment of cross-tropopause transport in global models.</p>
doi:10.5194/acp-16-4641-2016 fatcat:3oiyxsz62bcadfaw2qfbb6wldq