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Novel coupled permafrost-forest model (LAVESI-CryoGrid v1.0) revealing the interplay between permafrost, vegetation, and climate across eastern Siberia

  • Stefan Kruse
  • , Simone M. Stuenzi
  • , Julia Boike
  • , Moritz Langer
  • , Josias Gloy
  • , Ulrike Herzschuh

Research output: Contribution to JournalArticleAcademicpeer-review

Abstract

Boreal forests of Siberia play a relevant role in the global carbon cycle. However, global warming threatens the existence of summergreen larch-dominated ecosystems, likely enabling a transition to evergreen tree taxa with deeper active layers. Complex permafrost-vegetation interactions make it uncertain whether these ecosystems could develop into a carbon source rather than continuing atmospheric carbon sequestration under global warming. Consequently, shedding light on the role of current and future active layer dynamics and the feedbacks with the apparent tree species is crucial to predict boreal forest transition dynamics and thus for aboveground forest biomass and carbon stock developments. Hence, we established a coupled model version amalgamating a one-dimensional permafrost multilayer forest land-surface model (CryoGrid) with LAVESI, an individual-based and spatially explicit forest model for larch species (Larix Mill.), extended for this study by including other relevant Siberian forest species and explicit terrain. Following parameterization, we ran simulations with the coupled version to the near future to 2030 with a mild climate-warming scenario. We focus on three regions covering a gradient of summergreen forests in the east at Spasskaya Pad, mixed summergreen-evergreen forests close to Nyurba, and the warmest area at Lake Khamra in the southeast of Yakutia, Russia. Coupled simulations were run with the newly implemented boreal forest species and compared to runs allowing only one species at a time, as well as to simulations using just LAVESI. Results reveal that the coupled version corrects for overestimation of active layer thickness (ALT) and soil moisture, and large differences in established forests are simulated. We conclude that the coupled version can simulate the complex environment of eastern Siberia by reproducing vegetation patterns, making it an excellent tool to disentangle processes driving boreal forest dynamics.

Original languageEnglish
Pages (from-to)2395-2422
Number of pages28
JournalGeoscientific Model Development
Volume15
Issue number6
DOIs
Publication statusPublished - 21 Mar 2022
Externally publishedYes

Bibliographical note

Funding Information:
Financial support. This research has been supported by the

Publisher Copyright:
© 2022 Copernicus GmbH. All rights reserved.

Funding

Financial support. This research has been supported by the

FundersFunder number
Helmholtz Association
MOSES
Horizon 2020 Framework Programme
European Research Council
H2020 European Research Council772852
Bundesministerium für Bildung und Forschung01LN1709A

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