Simulating Erosion-Induced Soil and Carbon Delivery From Uplands to Rivers in a Global Land Surface Model.

carbon cycle land surface model lateral carbon transport soil erosion upscaling

Journal

Journal of advances in modeling earth systems
ISSN: 1942-2466
Titre abrégé: J Adv Model Earth Syst
Pays: United States
ID NLM: 101691496

Informations de publication

Date de publication:
Nov 2020
Historique:
received: 25 03 2020
revised: 24 08 2020
accepted: 05 09 2020
entrez: 31 12 2020
pubmed: 1 1 2021
medline: 1 1 2021
Statut: ppublish

Résumé

Global water erosion strongly affects the terrestrial carbon balance. However, this process is currently ignored by most global land surface models (LSMs) that are used to project the responses of terrestrial carbon storage to climate and land use changes. One of the main obstacles to implement erosion processes in LSMs is the high spatial resolution needed to accurately represent the effect of topography on soil erosion and sediment delivery to rivers. In this study, we present an upscaling scheme for including erosion-induced lateral soil organic carbon (SOC) movements into the ORCHIDEE LSM. This upscaling scheme integrates information from high-resolution (3″) topographic and soil erodibility data into a LSM forcing file at 0.5° spatial resolution. Evaluation of our model for the Rhine catchment indicates that it reproduces well the observed spatial and temporal (both seasonal and interannual) variations in river runoff and the sediment delivery from uplands to the river network. Although the average annual lateral SOC flux from uplands to the Rhine River network only amounts to 0.5% of the annual net primary production and 0.01% of the total SOC stock in the whole catchment, SOC loss caused by soil erosion over a long period (e.g., thousands of years) has the potential to cause a 12% reduction in the simulated equilibrium SOC stocks. Overall, this study presents a promising approach for including the erosion-induced lateral carbon flux from the land to aquatic systems into LSMs and highlights the important role of erosion processes in the terrestrial carbon balance.

Identifiants

pubmed: 33381276
doi: 10.1029/2020MS002121
pii: JAME21232
pmc: PMC7757180
doi:

Types de publication

Journal Article

Langues

eng

Pagination

e2020MS002121

Informations de copyright

©2020 The Authors.

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Auteurs

Haicheng Zhang (H)

Department Geoscience, Environment and Society Université Libre de Bruxelles Brussels Belgium.
Laboratoire des Sciences du Climat et de l'Environnement, IPSL-LSCE CEA/CNRS/UVSQ Gif sur Yvette France.

Ronny Lauerwald (R)

Department Geoscience, Environment and Society Université Libre de Bruxelles Brussels Belgium.
Laboratoire des Sciences du Climat et de l'Environnement, IPSL-LSCE CEA/CNRS/UVSQ Gif sur Yvette France.

Pierre Regnier (P)

Department Geoscience, Environment and Society Université Libre de Bruxelles Brussels Belgium.

Philippe Ciais (P)

Laboratoire des Sciences du Climat et de l'Environnement, IPSL-LSCE CEA/CNRS/UVSQ Gif sur Yvette France.

Wenping Yuan (W)

School of Atmospheric Science Sun Yat-sen University Guangzhou China.

Victoria Naipal (V)

Laboratoire des Sciences du Climat et de l'Environnement, IPSL-LSCE CEA/CNRS/UVSQ Gif sur Yvette France.
Department of Geosciences École Normale Supérieure Paris France.

Bertrand Guenet (B)

Laboratoire des Sciences du Climat et de l'Environnement, IPSL-LSCE CEA/CNRS/UVSQ Gif sur Yvette France.

Kristof Van Oost (K)

UCLouvain, TECLIM - Georges Lemaître Centre for Earth and Climate Research Louvain-la-Neuve Belgium.

Marta Camino-Serrano (M)

CREAF Cerdanyola del Vallès Spain.

Classifications MeSH