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Detecting lowland thermokarst development by UAV remote sensing in the Stordalen mire, Abisko, Sweden 
Thomas, Maxime; Moenaert, Thomas; du Bois d'Aische, Eléonore et al.
2024EGU General Assembly
Editorial reviewed
 

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Abstract :
[en] In situ field studies in thawing permafrost regions have shown that C emissions resulting from organic carbon (OC) decomposition depend among others on the variability in soil water content, which can be directly related to microtopography. A more precise assessment of the evolution of permafrost C emissions as a function of thermokarst development requires high-resolution quantification of thermokarst-affected areas, as lowland thermokarst development induces fine-scale spatial variability (~ 50 – 100 cm). Here, we investigate a gradient of lowland thermokarst development at Stordalen mire, Abisko, Sweden, from well-drained undisturbed palsas to inundated fens, which have undergone ground subsidence. We produced orthomosaics and digital elevation models from very-high resolution (10 cm) UAV photogrammetry as well as a spatially continuous map of soil electrical conductivity (EC) based on Electromagnetic Induction (EMI) measurements performed in September 2021. In conjunction, we measured in situ the soil water content from the different stages of thermokarst development at the same period. The soil EC values are contrasted along the gradient in line with contrasts observed in the landscape classification derived from the orthomosaics and digital elevation models: palsas are flat areas with low soil EC (drier), whereas fens are subsided areas with higher EC (water-saturated). Areas in the course of degradation (transition zones) are well identified based on their higher slope, and broad range of EC. Importantly, these transition zones are only detected using a very fine spatial scale (i.e., 10 cm) coupled to information on the microtopography. Compared to a set of previously collected orthomosaics and digital elevation models, our results show an acceleration of thermokarst development in this area with a rate of palsa decline 4 to 10 times greater in 2019-2021 than in 2000-2014.
Disciplines :
Environmental sciences & ecology
Earth sciences & physical geography
Author, co-author :
Thomas, Maxime ;  UCL - Université Catholique de Louvain [BE]
Moenaert, Thomas;  UCL - Université Catholique de Louvain [BE]
du Bois d'Aische, Eléonore  ;  Université de Liège - ULiège > Sphères
Villani, Maëlle ;  UCL - Université Catholique de Louvain [BE]
Hirst, Catherine
Lundin, Erik
Jonard, François  ;  Université de Liège - ULiège > Département de géographie ; Université de Liège - ULiège > Sphères ; Université de Liège - ULiège > Département de géographie > Earth Observation and Ecosystem Modelling (EOSystM Lab)
Lambot, Sébastien;  UCL - Université Catholique de Louvain [BE]
Van Oost, Kristof;  UCL - Université Catholique de Louvain [BE]
Vanacker, Veerle ;  UCL - Université Catholique de Louvain [BE]
Giesler, Reiner
Mörth, Carl-Magnus
Opfergelt, Sophie ;  UCL - Université Catholique de Louvain [BE]
More authors (3 more) Less
Language :
English
Title :
Detecting lowland thermokarst development by UAV remote sensing in the Stordalen mire, Abisko, Sweden 
Publication date :
08 March 2024
Event name :
EGU General Assembly
Event place :
Vienna, Austria
Event date :
April 14-19, 2024
Audience :
International
Peer reviewed :
Editorial reviewed
Available on ORBi :
since 08 May 2024

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