The Permafrost and Organic LayEr module for Forest Models (POLE-FM) 1.0

Climate change and increased fire are eroding the resilience of boreal forests. This is problematic because boreal vegetation and the cold soils underneath store approximately 30 % of all terrestrial carbon. Society urgently needs projections of where, when, and why boreal forests are likely to chan...

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Main Authors: Hansen, Winslow D., Foster, Adrianna, Gaglioti, Bejamin, Seidl, Rupert, Rammer, Werner
Format: Text
Language:English
Published: 2023
Subjects:
Online Access:https://doi.org/10.5194/egusphere-2022-1062
https://egusphere.copernicus.org/preprints/2022/egusphere-2022-1062/
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spelling ftcopernicus:oai:publications.copernicus.org:egusphere106956 2023-06-06T11:58:24+02:00 The Permafrost and Organic LayEr module for Forest Models (POLE-FM) 1.0 Hansen, Winslow D. Foster, Adrianna Gaglioti, Bejamin Seidl, Rupert Rammer, Werner 2023-04-13 application/pdf https://doi.org/10.5194/egusphere-2022-1062 https://egusphere.copernicus.org/preprints/2022/egusphere-2022-1062/ eng eng doi:10.5194/egusphere-2022-1062 https://egusphere.copernicus.org/preprints/2022/egusphere-2022-1062/ eISSN: Text 2023 ftcopernicus https://doi.org/10.5194/egusphere-2022-1062 2023-04-17T16:23:12Z Climate change and increased fire are eroding the resilience of boreal forests. This is problematic because boreal vegetation and the cold soils underneath store approximately 30 % of all terrestrial carbon. Society urgently needs projections of where, when, and why boreal forests are likely to change. Permafrost (i.e., subsurface material that remains frozen for at least 2 consecutive years) and the thick soil-surface organic layers (SOLs) that insulate permafrost are important controls of boreal forest dynamics and carbon cycling. However, both are rarely included in process-based vegetation models used to simulate future ecosystem trajectories. To address this challenge, we developed a computationally efficient permafrost and SOL module named the Permafrost and Organic LayEr module for Forest Models (POLE-FM) that operates at fine spatial (1 ha) and temporal (daily) resolutions. The module mechanistically simulates daily changes in depth to permafrost, annual SOL accumulation, and their complex effects on boreal forest structure and functions. We coupled the module to an established forest landscape model, iLand, and benchmarked the model in interior Alaska at spatial scales of stands (1 ha) to landscapes (61 000 ha) and over temporal scales of days to centuries. The coupled model generated intra- and inter-annual patterns of snow accumulation and active layer depth (portion of soil column that thaws throughout the year) generally consistent with independent observations in 17 instrumented forest stands. The model also represented the distribution of near-surface permafrost presence in a topographically complex landscape. We simulated 39.3 % of forested area in the landscape as underlain by permafrost, compared to the estimated 33.4 % from the benchmarking product. We further determined that the model could accurately simulate moss biomass, SOL accumulation, fire activity, tree species composition, and stand structure at the landscape scale. Modular and flexible representations of key biophysical processes ... Text permafrost Alaska Copernicus Publications: E-Journals
institution Open Polar
collection Copernicus Publications: E-Journals
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language English
description Climate change and increased fire are eroding the resilience of boreal forests. This is problematic because boreal vegetation and the cold soils underneath store approximately 30 % of all terrestrial carbon. Society urgently needs projections of where, when, and why boreal forests are likely to change. Permafrost (i.e., subsurface material that remains frozen for at least 2 consecutive years) and the thick soil-surface organic layers (SOLs) that insulate permafrost are important controls of boreal forest dynamics and carbon cycling. However, both are rarely included in process-based vegetation models used to simulate future ecosystem trajectories. To address this challenge, we developed a computationally efficient permafrost and SOL module named the Permafrost and Organic LayEr module for Forest Models (POLE-FM) that operates at fine spatial (1 ha) and temporal (daily) resolutions. The module mechanistically simulates daily changes in depth to permafrost, annual SOL accumulation, and their complex effects on boreal forest structure and functions. We coupled the module to an established forest landscape model, iLand, and benchmarked the model in interior Alaska at spatial scales of stands (1 ha) to landscapes (61 000 ha) and over temporal scales of days to centuries. The coupled model generated intra- and inter-annual patterns of snow accumulation and active layer depth (portion of soil column that thaws throughout the year) generally consistent with independent observations in 17 instrumented forest stands. The model also represented the distribution of near-surface permafrost presence in a topographically complex landscape. We simulated 39.3 % of forested area in the landscape as underlain by permafrost, compared to the estimated 33.4 % from the benchmarking product. We further determined that the model could accurately simulate moss biomass, SOL accumulation, fire activity, tree species composition, and stand structure at the landscape scale. Modular and flexible representations of key biophysical processes ...
format Text
author Hansen, Winslow D.
Foster, Adrianna
Gaglioti, Bejamin
Seidl, Rupert
Rammer, Werner
spellingShingle Hansen, Winslow D.
Foster, Adrianna
Gaglioti, Bejamin
Seidl, Rupert
Rammer, Werner
The Permafrost and Organic LayEr module for Forest Models (POLE-FM) 1.0
author_facet Hansen, Winslow D.
Foster, Adrianna
Gaglioti, Bejamin
Seidl, Rupert
Rammer, Werner
author_sort Hansen, Winslow D.
title The Permafrost and Organic LayEr module for Forest Models (POLE-FM) 1.0
title_short The Permafrost and Organic LayEr module for Forest Models (POLE-FM) 1.0
title_full The Permafrost and Organic LayEr module for Forest Models (POLE-FM) 1.0
title_fullStr The Permafrost and Organic LayEr module for Forest Models (POLE-FM) 1.0
title_full_unstemmed The Permafrost and Organic LayEr module for Forest Models (POLE-FM) 1.0
title_sort permafrost and organic layer module for forest models (pole-fm) 1.0
publishDate 2023
url https://doi.org/10.5194/egusphere-2022-1062
https://egusphere.copernicus.org/preprints/2022/egusphere-2022-1062/
genre permafrost
Alaska
genre_facet permafrost
Alaska
op_source eISSN:
op_relation doi:10.5194/egusphere-2022-1062
https://egusphere.copernicus.org/preprints/2022/egusphere-2022-1062/
op_doi https://doi.org/10.5194/egusphere-2022-1062
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