Javascript must be enabled to continue!
Smaller average stratospheric aerosol sizes after volcanic eruptions in 2018 and 2019
View through CrossRef
<p>We present surprising results of our stratospheric aerosol size retrieval which is using the SAGE III/ISS solar occultation measurements, that started in 2017. Due to the broad wavelength spectrum covered by the instrument a robust retrieval of the median radius, mode width and number density of monomodal lognormal size distributions is possible.</p><p>In the timeframe of SAGE III&#8217;s operation so far three small to mid intensity volcanic eruptions that reached and perturbed the stratospheric aerosol layer were observed by the instrument: The Ambae eruptions (15.3&#176;S) in spring of 2018 and the Raikoke (48.3&#176;N) and Ulawun (5.05&#176;S) eruptions, both in June 2019. While the Raikoke eruption led to an increase in the median radius of the stratospheric aerosols, which was to be expected and is in line with previous observations, the Ambae and Ulawun eruption had a different effect. After both eruptions the average aerosol size decreased, with lower median radii and narrower size distributions, while the number density increased strongly. The observation, that volcanic eruptions may lead to smaller average stratospheric aerosol sizes is a novel one and should be of great interest to the modeling as well as remote sensing community.</p><p>We will present the temporal and spatial evolution of the stratospheric perturbations and discuss what may distinguish those three eruptions from each other.</p>
Title: Smaller average stratospheric aerosol sizes after volcanic eruptions in 2018 and 2019
Description:
<p>We present surprising results of our stratospheric aerosol size retrieval which is using the SAGE III/ISS solar occultation measurements, that started in 2017.
Due to the broad wavelength spectrum covered by the instrument a robust retrieval of the median radius, mode width and number density of monomodal lognormal size distributions is possible.
</p><p>In the timeframe of SAGE III&#8217;s operation so far three small to mid intensity volcanic eruptions that reached and perturbed the stratospheric aerosol layer were observed by the instrument: The Ambae eruptions (15.
3&#176;S) in spring of 2018 and the Raikoke (48.
3&#176;N) and Ulawun (5.
05&#176;S) eruptions, both in June 2019.
While the Raikoke eruption led to an increase in the median radius of the stratospheric aerosols, which was to be expected and is in line with previous observations, the Ambae and Ulawun eruption had a different effect.
After both eruptions the average aerosol size decreased, with lower median radii and narrower size distributions, while the number density increased strongly.
The observation, that volcanic eruptions may lead to smaller average stratospheric aerosol sizes is a novel one and should be of great interest to the modeling as well as remote sensing community.
</p><p>We will present the temporal and spatial evolution of the stratospheric perturbations and discuss what may distinguish those three eruptions from each other.
</p>.
Related Results
Interactive stratospheric aerosol model experiments suggest a strong impact of climate change on the aerosol evolution and radiative forcing from future eruptions.
Interactive stratospheric aerosol model experiments suggest a strong impact of climate change on the aerosol evolution and radiative forcing from future eruptions.
<p>Radiative forcing from stratospheric volcanic sulfate aerosols is a key driver of climate variability. However, climate change may also impact volcanic forcing whi...
Solar Backscatter Ultraviolet (BUV) retrievals of mid-stratospheric aerosols from the 2022 Hunga Eruption
Solar Backscatter Ultraviolet (BUV) retrievals of mid-stratospheric aerosols from the 2022 Hunga Eruption
Abstract. On 15 January 2022, a highly explosive eruption of the submarine Hunga volcano (Kingdom of Tonga) generated the largest stratospheric hydration event ever observed and th...
Stratospheric Aerosol Property retrievals using polarimetric observations above clouds
Stratospheric Aerosol Property retrievals using polarimetric observations above clouds
Aerosols injected into the stratosphere can persist for months to years and influence the radiative properties, stratospheric chemistry and large scale atmospheric dynamics. Despit...
Stratospheric aerosol size decrease after volcanic eruptions
Stratospheric aerosol size decrease after volcanic eruptions
The evolution of the size distribution of stratospheric aerosols after volcanic eruptions is still not understood very well, due to the temporal sparsity of in situ measurements, t...
Stratospheric Aerosol layer responses to volcanic and wildfire perturbations
Stratospheric Aerosol layer responses to volcanic and wildfire perturbations
The stratospheric aerosol layer plays a critical role in the climate system and is often disrupted by natural phenomena such as volcanic eruptions and extreme wildfire events. Thes...
Volcanic forcing for climate modeling: a new microphysics-based dataset covering years 1600–present
Volcanic forcing for climate modeling: a new microphysics-based dataset covering years 1600–present
Abstract. As the understanding and representation of the impacts of volcanic eruptions on climate have improved in the last decades, uncertainties in the stratospheric aerosol forc...
Model simulations of the climate impacts of volcanic eruptions in a future warming scenario
Model simulations of the climate impacts of volcanic eruptions in a future warming scenario
Episodic volcanic eruptions are often either not considered in future
climate projections, or represented in terms of a constant volcanic
forcing. This conventional representation ...
Volcanic forcing for climate modeling: a new microphysics-based data set covering years 1600–present
Volcanic forcing for climate modeling: a new microphysics-based data set covering years 1600–present
Abstract. As the understanding and representation of the impacts of volcanic eruptions on climate have improved in the last decades, uncertainties in the stratospheric aerosol forc...

