A vertical representation of soil carbon in the JULES land surface scheme (vn4.3_permafrost) with a focus on permafrost regions

An improved representation of the carbon cycle in permafrost regions will enable more realistic projections of the future climate–carbon system. Currently JULES (the Joint UK Land Environment Simulator) – the land surface model of the UK Earth System Model (UKESM) – uses the standard four-pool RothC...

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Published in:Geoscientific Model Development
Main Authors: Burke, EJ, Chadburn, SE, Ekici, A
Format: Article in Journal/Newspaper
Language:English
Published: European Geosciences Union (EGU) 2017
Subjects:
Online Access:https://eprints.whiterose.ac.uk/114885/
https://eprints.whiterose.ac.uk/114885/1/gmd-10-959-2017.pdf
https://doi.org/10.5194/gmd-10-959-2017
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spelling ftleedsuniv:oai:eprints.whiterose.ac.uk:114885 2023-05-15T17:56:38+02:00 A vertical representation of soil carbon in the JULES land surface scheme (vn4.3_permafrost) with a focus on permafrost regions Burke, EJ Chadburn, SE Ekici, A 2017-02-24 text https://eprints.whiterose.ac.uk/114885/ https://eprints.whiterose.ac.uk/114885/1/gmd-10-959-2017.pdf https://doi.org/10.5194/gmd-10-959-2017 en eng European Geosciences Union (EGU) https://eprints.whiterose.ac.uk/114885/1/gmd-10-959-2017.pdf Burke, EJ, Chadburn, SE and Ekici, A (2017) A vertical representation of soil carbon in the JULES land surface scheme (vn4.3_permafrost) with a focus on permafrost regions. Geoscientific Model Development, 10 (2). pp. 959-975. ISSN 1991-959X Article NonPeerReviewed 2017 ftleedsuniv https://doi.org/10.5194/gmd-10-959-2017 2023-01-30T21:53:39Z An improved representation of the carbon cycle in permafrost regions will enable more realistic projections of the future climate–carbon system. Currently JULES (the Joint UK Land Environment Simulator) – the land surface model of the UK Earth System Model (UKESM) – uses the standard four-pool RothC soil carbon model. This paper describes a new version of JULES (vn4.3_permafrost) in which the soil vertical dimension is added to the soil carbon model, with a set of four pools in every soil layer. The respiration rate in each soil layer depends on the temperature and moisture conditions in that layer. Cryoturbation/bioturbation processes, which transfer soil carbon between layers, are represented by diffusive mixing. The litter inputs and the soil respiration are both parametrized to decrease with increasing depth. The model now includes a tracer so that selected soil carbon can be labelled and tracked through a simulation. Simulations show an improvement in the large-scale horizontal and vertical distribution of soil carbon over the standard version of JULES (vn4.3). Like the standard version of JULES, the vertically discretized model is still unable to simulate enough soil carbon in the tundra regions. This is in part because JULES underestimates the plant productivity over the tundra, but also because not all of the processes relevant for the accumulation of permafrost carbon, such as peat development, are included in the model. In comparison with the standard model, the vertically discretized model shows a delay in the onset of soil respiration in the spring, resulting in an increased net uptake of carbon during this time. In order to provide a more suitable representation of permafrost carbon for quantifying the permafrost carbon feedback within UKESM, the deep soil carbon in the permafrost region (below 1 m) was initialized using the observed soil carbon. There is now a slight drift in the soil carbon ( < 0.018 % decade−1), but the change in simulated soil carbon over the 20th century, when there is ... Article in Journal/Newspaper permafrost Tundra White Rose Research Online (Universities of Leeds, Sheffield & York) Jules ENVELOPE(140.917,140.917,-66.742,-66.742) Geoscientific Model Development 10 2 959 975
institution Open Polar
collection White Rose Research Online (Universities of Leeds, Sheffield & York)
op_collection_id ftleedsuniv
language English
description An improved representation of the carbon cycle in permafrost regions will enable more realistic projections of the future climate–carbon system. Currently JULES (the Joint UK Land Environment Simulator) – the land surface model of the UK Earth System Model (UKESM) – uses the standard four-pool RothC soil carbon model. This paper describes a new version of JULES (vn4.3_permafrost) in which the soil vertical dimension is added to the soil carbon model, with a set of four pools in every soil layer. The respiration rate in each soil layer depends on the temperature and moisture conditions in that layer. Cryoturbation/bioturbation processes, which transfer soil carbon between layers, are represented by diffusive mixing. The litter inputs and the soil respiration are both parametrized to decrease with increasing depth. The model now includes a tracer so that selected soil carbon can be labelled and tracked through a simulation. Simulations show an improvement in the large-scale horizontal and vertical distribution of soil carbon over the standard version of JULES (vn4.3). Like the standard version of JULES, the vertically discretized model is still unable to simulate enough soil carbon in the tundra regions. This is in part because JULES underestimates the plant productivity over the tundra, but also because not all of the processes relevant for the accumulation of permafrost carbon, such as peat development, are included in the model. In comparison with the standard model, the vertically discretized model shows a delay in the onset of soil respiration in the spring, resulting in an increased net uptake of carbon during this time. In order to provide a more suitable representation of permafrost carbon for quantifying the permafrost carbon feedback within UKESM, the deep soil carbon in the permafrost region (below 1 m) was initialized using the observed soil carbon. There is now a slight drift in the soil carbon ( < 0.018 % decade−1), but the change in simulated soil carbon over the 20th century, when there is ...
format Article in Journal/Newspaper
author Burke, EJ
Chadburn, SE
Ekici, A
spellingShingle Burke, EJ
Chadburn, SE
Ekici, A
A vertical representation of soil carbon in the JULES land surface scheme (vn4.3_permafrost) with a focus on permafrost regions
author_facet Burke, EJ
Chadburn, SE
Ekici, A
author_sort Burke, EJ
title A vertical representation of soil carbon in the JULES land surface scheme (vn4.3_permafrost) with a focus on permafrost regions
title_short A vertical representation of soil carbon in the JULES land surface scheme (vn4.3_permafrost) with a focus on permafrost regions
title_full A vertical representation of soil carbon in the JULES land surface scheme (vn4.3_permafrost) with a focus on permafrost regions
title_fullStr A vertical representation of soil carbon in the JULES land surface scheme (vn4.3_permafrost) with a focus on permafrost regions
title_full_unstemmed A vertical representation of soil carbon in the JULES land surface scheme (vn4.3_permafrost) with a focus on permafrost regions
title_sort vertical representation of soil carbon in the jules land surface scheme (vn4.3_permafrost) with a focus on permafrost regions
publisher European Geosciences Union (EGU)
publishDate 2017
url https://eprints.whiterose.ac.uk/114885/
https://eprints.whiterose.ac.uk/114885/1/gmd-10-959-2017.pdf
https://doi.org/10.5194/gmd-10-959-2017
long_lat ENVELOPE(140.917,140.917,-66.742,-66.742)
geographic Jules
geographic_facet Jules
genre permafrost
Tundra
genre_facet permafrost
Tundra
op_relation https://eprints.whiterose.ac.uk/114885/1/gmd-10-959-2017.pdf
Burke, EJ, Chadburn, SE and Ekici, A (2017) A vertical representation of soil carbon in the JULES land surface scheme (vn4.3_permafrost) with a focus on permafrost regions. Geoscientific Model Development, 10 (2). pp. 959-975. ISSN 1991-959X
op_doi https://doi.org/10.5194/gmd-10-959-2017
container_title Geoscientific Model Development
container_volume 10
container_issue 2
container_start_page 959
op_container_end_page 975
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