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Earth ScienceOther - Project report "Prepared by the APARC activity HTHH – Hunga Tonga-Hunga Ha’apai stratospheric impacts, edited by Yunqian Zhu, Graham Mann, Paul A. Newman, and William Randel." - https://aparc-climate.org/publications/aparc-report-no-11/ "APARC coordinates international efforts to bring knowledge of the atmosphere to bear on issues regarding climate variability, change, and prediction." The International APARC Project Office is located at and supported by Forschungszentrum Jülich GmbH

S1 Hunga Tonga-Hunga Ha’Apai Volcano Impact Model Observation Comparison (HTHH-MOC) Project: Experiment Protocol and Model Descriptions

20262 min read286 words
Yunqian Zhu, Hideharu Akiyoshi, Valentina Aquila, Elizabeth Asher, Ewa M Bednarz, Slimane Bekki, Christoph Brühl, Amy H Butler, Parker Case, Simon Chabrillat, Gabriel Chiodo, Margot Clyne, Peter R Colarco, Sandip Dhomse, Lola Falletti, Eric Fleming, Ben Johnson, Andrin Jörimann, Mahesh Kovilakam, Gerbrand Koren, Ales Kucher, Nicholas Lebas, Qing Liang, Cheng-Cheng Liu, Graham Mann, Michael Manyin, Marion Marchand, Olaf Morgenstern, Paul A Newman, Luke D Oman, Freja F Østerstrøm, David Plummer, William Randel, Ilaria Quaglia, Samuel Remy, Takashi Sekiya, Stephen Steenrod, Timofei Sukhodolov, Simone Tilmes, Kostas Tsigaridis, Rei Ueyama, Daniele Visioni, Xinyue Wang, Shingo Watanabe, Yousuke Yamashita, Pengfei Yu, Wandi Yu, Jun Zhang, Zhihong Zhuo, Yifeng Peng, and William Randel
Goddard Space Flight Center

The 2022 Hunga volcanic eruption injected a significant amount of water vapour and a moderate amount of sulfur dioxide into the stratosphere, causing observable responses in the climate system. We have developed a model–observation comparison project to investigate the evolution of volcanic water and aerosols and their impacts on atmospheric dynamics, chemistry, and climate, using several state-of-the-art chemistry climate models. The project goals are (1) to evaluate the current chemistry–climate models to quantify their performance in comparison to observations and (2) to understand atmospheric responses in the Earth system after this exceptional event and investigate the potential impacts in the projected future. To achieve these goals, we designed specific experiments for direct comparisons to observations, for example from balloons and the Microwave Limb Sounder satellite instrument. Experiment 1 consists of two sets of free-running ensemble experiments from 2022 to 2031: one with fixed sea-surface temperatures and sea ice and one with coupled ocean. These experiments will help to understand the long-term evolution of water vapour and aerosols; quantify HTHH effects on stratospheric and mesospheric temperatures, dynamics, and transport; understand the impact of dynamic changes on ozone chemistry; quantify the net radiative forcings; and evaluate any surface climate impact. Experiment 2 is a nudged-run experiment from 2022 to 2023 using observed meteorology. To allow participation of more climate models with varying complexities of aerosol simulation, we include two sets of simulations in Experiment 2: Experiment 2a is designed for models with internally generated aerosol, while Experiment 2b is designed for models using prescribed aerosol surface area density. This experiment will help to analyse H2O and aerosol evolution, quantify the net radiative forcings, understand the impacts on mid-latitude and polar O3 chemistry, and allow close comparisons with observations.


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