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doi: 10.1029/2019gl086271
handle: 2117/186415 , 1721.1/125265
AbstractThe Brewer‐Dobson circulation during the Last Glacial Maximum (LGM) is investigated in simulations using the Whole Atmosphere Community Climate Model version 6. We examine vertical mass fluxes, age of stratospheric air, and the transformed Eulerian mean stream function and find that the modeled annual‐mean Brewer‐Dobson circulation during the LGM is almost everywhere slower than that in the modern climate (with or without anthropogenic ozone depleting substances). Compared to the modern climate, the annual‐mean tropical upwelling in the LGM is 11.3–16.9%, 11.2–15.8%, and 4.4–10.2% weaker, respectively, at 100, 70, and 30 hPa. Simulated decreases in annual‐mean mass fluxes at 70 and 100 hPa are caused by a weaker parameterized orographic gravity wave drag and resolved wave drag, respectively.
Atomospheric ozone, Last Glacial Maximum, Climate simulation, Troposphere, Computer simulation, Climatic changes, Brewer‐Dobson circulation, Large‐scale stratospheric circulation, Àrees temàtiques de la UPC::Informàtica::Impacte ambiental, Simulació per ordinador, Ozó atmosfèric, Last glacial maximum (LGM), Resolved wave drag, Parameterized orographic gravity wave drag, Estratosfera, Canvis climàtics
Atomospheric ozone, Last Glacial Maximum, Climate simulation, Troposphere, Computer simulation, Climatic changes, Brewer‐Dobson circulation, Large‐scale stratospheric circulation, Àrees temàtiques de la UPC::Informàtica::Impacte ambiental, Simulació per ordinador, Ozó atmosfèric, Last glacial maximum (LGM), Resolved wave drag, Parameterized orographic gravity wave drag, Estratosfera, Canvis climàtics
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