Inclusion of a cold hardening scheme to represent frost tolerance is essential to model realistic plant hydraulics in the Arctic-Boreal Zone in CLM5.0-FATES-Hydro

As temperatures decrease in autumn, vegetation of temperate and boreal ecosystems increases its tolerance to freezing. This process, known as hardening, results in a set of physiological changes at the molecular level that initiate modifications of cell membrane composition and the synthesis of anti...

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Main Authors: Lambert, Marius S. A., Tang, Hui, Aas, Kjetil S., Stordal, Frode, Fisher, Rosie A., Fang, Yilin, Ding, Junyan, Parmentier, Frans-Jan W.
Format: Text
Language:English
Published: 2022
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Online Access:https://doi.org/10.5194/gmd-2022-136
https://gmd.copernicus.org/preprints/gmd-2022-136/
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spelling ftcopernicus:oai:publications.copernicus.org:gmdd103469 2023-05-15T15:09:00+02:00 Inclusion of a cold hardening scheme to represent frost tolerance is essential to model realistic plant hydraulics in the Arctic-Boreal Zone in CLM5.0-FATES-Hydro Lambert, Marius S. A. Tang, Hui Aas, Kjetil S. Stordal, Frode Fisher, Rosie A. Fang, Yilin Ding, Junyan Parmentier, Frans-Jan W. 2022-07-20 application/pdf https://doi.org/10.5194/gmd-2022-136 https://gmd.copernicus.org/preprints/gmd-2022-136/ eng eng doi:10.5194/gmd-2022-136 https://gmd.copernicus.org/preprints/gmd-2022-136/ eISSN: 1991-9603 Text 2022 ftcopernicus https://doi.org/10.5194/gmd-2022-136 2022-07-25T16:22:41Z As temperatures decrease in autumn, vegetation of temperate and boreal ecosystems increases its tolerance to freezing. This process, known as hardening, results in a set of physiological changes at the molecular level that initiate modifications of cell membrane composition and the synthesis of anti-freeze proteins. Together with the freezing of extracellular water, anti-freeze proteins reduce plant water potentials and xylem conductivity. To represent the responses of vegetation to climate change, land surface schemes increasingly employ ‘hydrodynamic’ models that represent the explicit fluxes of water from soil and through plants. The functioning of such schemes under frozen soil conditions, however, is poorly understood. Nonetheless, hydraulic processes are of major importance in the dynamics of these systems, which can suffer from e.g. winter ‘frost drought’ events. In this study, we implement a scheme that represents hardening into CLM5.0-FATES-Hydro. FATES-Hydro is a plant hydrodynamics module in FATES, a cohort model of vegetation physiology, growth and dynamics hosted in CLM5.0. We find that, in frozen systems, it is necessary to introduce reductions in plant water loss associated with hardening to prevent winter desiccation. This work makes it possible to use CLM5.0-FATES-Hydro to model realistic impacts from frost droughts on vegetation growth and photosynthesis, leading to more reliable projections of how northern ecosystems respond to climate change. Text Arctic Climate change Copernicus Publications: E-Journals Arctic
institution Open Polar
collection Copernicus Publications: E-Journals
op_collection_id ftcopernicus
language English
description As temperatures decrease in autumn, vegetation of temperate and boreal ecosystems increases its tolerance to freezing. This process, known as hardening, results in a set of physiological changes at the molecular level that initiate modifications of cell membrane composition and the synthesis of anti-freeze proteins. Together with the freezing of extracellular water, anti-freeze proteins reduce plant water potentials and xylem conductivity. To represent the responses of vegetation to climate change, land surface schemes increasingly employ ‘hydrodynamic’ models that represent the explicit fluxes of water from soil and through plants. The functioning of such schemes under frozen soil conditions, however, is poorly understood. Nonetheless, hydraulic processes are of major importance in the dynamics of these systems, which can suffer from e.g. winter ‘frost drought’ events. In this study, we implement a scheme that represents hardening into CLM5.0-FATES-Hydro. FATES-Hydro is a plant hydrodynamics module in FATES, a cohort model of vegetation physiology, growth and dynamics hosted in CLM5.0. We find that, in frozen systems, it is necessary to introduce reductions in plant water loss associated with hardening to prevent winter desiccation. This work makes it possible to use CLM5.0-FATES-Hydro to model realistic impacts from frost droughts on vegetation growth and photosynthesis, leading to more reliable projections of how northern ecosystems respond to climate change.
format Text
author Lambert, Marius S. A.
Tang, Hui
Aas, Kjetil S.
Stordal, Frode
Fisher, Rosie A.
Fang, Yilin
Ding, Junyan
Parmentier, Frans-Jan W.
spellingShingle Lambert, Marius S. A.
Tang, Hui
Aas, Kjetil S.
Stordal, Frode
Fisher, Rosie A.
Fang, Yilin
Ding, Junyan
Parmentier, Frans-Jan W.
Inclusion of a cold hardening scheme to represent frost tolerance is essential to model realistic plant hydraulics in the Arctic-Boreal Zone in CLM5.0-FATES-Hydro
author_facet Lambert, Marius S. A.
Tang, Hui
Aas, Kjetil S.
Stordal, Frode
Fisher, Rosie A.
Fang, Yilin
Ding, Junyan
Parmentier, Frans-Jan W.
author_sort Lambert, Marius S. A.
title Inclusion of a cold hardening scheme to represent frost tolerance is essential to model realistic plant hydraulics in the Arctic-Boreal Zone in CLM5.0-FATES-Hydro
title_short Inclusion of a cold hardening scheme to represent frost tolerance is essential to model realistic plant hydraulics in the Arctic-Boreal Zone in CLM5.0-FATES-Hydro
title_full Inclusion of a cold hardening scheme to represent frost tolerance is essential to model realistic plant hydraulics in the Arctic-Boreal Zone in CLM5.0-FATES-Hydro
title_fullStr Inclusion of a cold hardening scheme to represent frost tolerance is essential to model realistic plant hydraulics in the Arctic-Boreal Zone in CLM5.0-FATES-Hydro
title_full_unstemmed Inclusion of a cold hardening scheme to represent frost tolerance is essential to model realistic plant hydraulics in the Arctic-Boreal Zone in CLM5.0-FATES-Hydro
title_sort inclusion of a cold hardening scheme to represent frost tolerance is essential to model realistic plant hydraulics in the arctic-boreal zone in clm5.0-fates-hydro
publishDate 2022
url https://doi.org/10.5194/gmd-2022-136
https://gmd.copernicus.org/preprints/gmd-2022-136/
geographic Arctic
geographic_facet Arctic
genre Arctic
Climate change
genre_facet Arctic
Climate change
op_source eISSN: 1991-9603
op_relation doi:10.5194/gmd-2022-136
https://gmd.copernicus.org/preprints/gmd-2022-136/
op_doi https://doi.org/10.5194/gmd-2022-136
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