A050-04
Developing emulators of regional climate responses to regional aerosol perturbations using three coupled chemistry-climate models

Tuesday, 8 December 2020: 16:12
Virtual
Daniel M Westervelt1, Andrew J Conley2, Arlene M Fiore3, Gustavo J P Correa3, Drew T Shindell4 and J F Lamarque5, (1)Lamont -Doherty Earth Observatory, Palisades, NY, United States, (2)National Center for Atmospheric Research, Atmospheric Chemistry Observations & Modeling, Boulder, CO, United States, (3)Columbia University, Palisades, NY, United States, (4)Duke University, Durham, NC, United States, (5)NCAR, Boulder, CO, United States
Abstract:
The climatic implications of regional aerosol and precursor emissions reductions implemented to protect human health are poorly understood. However, quantitative estimates of climate responses to emission perturbations are needed by the climate assessment and impacts community. To address this need, we investigate the global and regional mean climate response to regional changes in aerosol emissions using three coupled chemistry-climate models: NOAA GFDL-CM3, NCAR-CESM1, and NASA GISS-E2. Our approach contrasts a long present-day control simulation from each model (up to 400 years with perpetual year 2000 or 2005 emissions) with fourteen individual aerosol emissions perturbation simulations (160-240 years each). We perturb emissions of sulfur dioxide (SO2) and/or carbonaceous aerosol within six world regions and assess the statistical significance of temperature and precipitation responses relative to internal variability determined by the control simulation and across the models. Using the three models and their statistical significance as an indicator of robustness of climate responses to aerosols, we develop emulators of the climate response to changes in aerosol emissions. Emulators are defined as the change in a climatic variable (e.g. temperature) in a region i normalized by the change in emissions and/or radiative forcing for species S in region j, i.e. dTi/dEj,S, where T is temperature and E is emissions. In all models, the emulators for global mean surface temperature response (perturbation minus control) to aerosol is mostly positive (warming). Initial results also indicate that the Arctic is the most sensitive region to nonlocal aerosol emissions or forcing, as the emulators are largest for the Arctic. Emulator calculations indicate a robust regional response to aerosol emissions or forcing within the northern hemisphere mid-latitudes, regardless of where the aerosol forcing is located longitudinally. This work is a first step towards providing statistical relationships between the changes in regional aerosol emissions and the statistically significant changes in climate that can be attributed to them. Such relationships would allow for the generation of regional climate change scenarios without having to simulate computationally demanding chemistry-climate models.