Quantifying the impact of extreme wildfires on stratospheric aerosol and gaseous composition using ground-based and satellite observations
Résumé
The severity of wildfires has remarkably increased over the last years in both hemispheres and there is an emerging realization of their effect on climate and ozone layer. Intense wildfires release tremendous amounts of heat into the atmosphere, which gives rise to extreme thunderstorms termed Pyrocumulonimbus (PyroCb). These storms, augmented by the energy of combustion, can generate vigorous convective updrafts injecting smoke and other combustion products into the stratosphere, where the residence time of aerosols is not limited by cloud scavenging and precipitation. A number of recent studies have put in evidence that the effects of strong PyroCb events on the global stratosphere rival those of moderate volcanic eruptions in terms of magnitude and duration whilst exceeding them in terms of radiative forcing. Furthermore, the PyroCb injections into the stratosphere were shown to generate persistent synoptic-scale anticyclones (SCV – Smoke-Charged Vortex), lofting confined bubbles of combustion products and moisture deep into the stratosphere due to solar heating of carbonaceous aerosols, which prolongs their atmospheric residence time and radiative effects.
Here we use global observations by MLS, OMPS, CALIPSO satellite missions together with ground-based lidar records in France (ATOLL, SIRTA, OHP, OPAR), Japan (Tsukuba) and New Zealand (Lauder) to characterize and quantify the planetary-scale impact of wildfire PyroCb on stratospheric gaseous composition (CO, CH3CN, HCN, H2O, O3) and aerosol optical properties as follows. First, we identify the PyroCb events during the last two decades with a measurable stratospheric impact and classify them into four categories ranging from 1 (e.g. Alberta 2023) to 4 (Australian Black Summer 2019/20) based on the magnitude and longevity of their stratospheric impact. Using a combination of nadir and limb observations along with ERA5 analysis, we explore the spatiotemporal evolution and dynamics of the smoke plumes. Then, we quantify the aerosol and gas mass fluxes into the stratosphere for each event. We show evidence for the geographical and seasonal extension of the tropopause-overshooting PyroCb events. By using long-term ground-based and satellite lidar observations of depolarization, we point out the longevity of fine smoke particles in the stratosphere.