Simulation of tree-ring widths with a model for primary production, carbon allocation, and growth

We present a simple, generic model of annual tree growth, called "<i>T</i>". This model accepts input from a first-principles light-use efficiency model (the "<i>P</i>" model). The <i>P</i> model provides values for gross primary production (GP...

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Main Authors: G. Li, S. P. Harrison, I. C. Prentice, D. Falster
Format: Article
Language:English
Published: Copernicus Publications 2014-12-01
Series:Biogeosciences
Online Access:http://www.biogeosciences.net/11/6711/2014/bg-11-6711-2014.pdf
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spelling doaj-1b71e9b3e257467598628f31cb42e8972020-11-24T23:16:58ZengCopernicus PublicationsBiogeosciences1726-41701726-41892014-12-0111236711672410.5194/bg-11-6711-2014Simulation of tree-ring widths with a model for primary production, carbon allocation, and growthG. Li0S. P. Harrison1I. C. Prentice2D. Falster3Department of Biological Sciences, Macquarie University, North Ryde, NSW 2109, AustraliaDepartment of Biological Sciences, Macquarie University, North Ryde, NSW 2109, AustraliaDepartment of Biological Sciences, Macquarie University, North Ryde, NSW 2109, AustraliaDepartment of Biological Sciences, Macquarie University, North Ryde, NSW 2109, AustraliaWe present a simple, generic model of annual tree growth, called "<i>T</i>". This model accepts input from a first-principles light-use efficiency model (the "<i>P</i>" model). The <i>P</i> model provides values for gross primary production (GPP) per unit of absorbed photosynthetically active radiation (PAR). Absorbed PAR is estimated from the current leaf area. GPP is allocated to foliage, transport tissue, and fine-root production and respiration in such a way as to satisfy well-understood dimensional and functional relationships. Our approach thereby integrates two modelling approaches separately developed in the global carbon-cycle and forest-science literature. The <i>T</i> model can represent both ontogenetic effects (the impact of ageing) and the effects of environmental variations and trends (climate and CO<sub>2</sub>) on growth. Driven by local climate records, the model was applied to simulate ring widths during the period 1958–2006 for multiple trees of <i>Pinus koraiensis</i> from the Changbai Mountains in northeastern China. Each tree was initialised at its actual diameter at the time when local climate records started. The model produces realistic simulations of the interannual variability in ring width for different age cohorts (young, mature, and old). Both the simulations and observations show a significant positive response of tree-ring width to growing-season total photosynthetically active radiation (PAR<sub>0</sub>) and the ratio of actual to potential evapotranspiration (α), and a significant negative response to mean annual temperature (MAT). The slopes of the simulated and observed relationships with PAR<sub>0</sub> and α are similar; the negative response to MAT is underestimated by the model. Comparison of simulations with fixed and changing atmospheric CO<sub>2</sub> concentration shows that CO<sub>2</sub> fertilisation over the past 50 years is too small to be distinguished in the ring-width data, given ontogenetic trends and interannual variability in climate.http://www.biogeosciences.net/11/6711/2014/bg-11-6711-2014.pdf
collection DOAJ
language English
format Article
sources DOAJ
author G. Li
S. P. Harrison
I. C. Prentice
D. Falster
spellingShingle G. Li
S. P. Harrison
I. C. Prentice
D. Falster
Simulation of tree-ring widths with a model for primary production, carbon allocation, and growth
Biogeosciences
author_facet G. Li
S. P. Harrison
I. C. Prentice
D. Falster
author_sort G. Li
title Simulation of tree-ring widths with a model for primary production, carbon allocation, and growth
title_short Simulation of tree-ring widths with a model for primary production, carbon allocation, and growth
title_full Simulation of tree-ring widths with a model for primary production, carbon allocation, and growth
title_fullStr Simulation of tree-ring widths with a model for primary production, carbon allocation, and growth
title_full_unstemmed Simulation of tree-ring widths with a model for primary production, carbon allocation, and growth
title_sort simulation of tree-ring widths with a model for primary production, carbon allocation, and growth
publisher Copernicus Publications
series Biogeosciences
issn 1726-4170
1726-4189
publishDate 2014-12-01
description We present a simple, generic model of annual tree growth, called "<i>T</i>". This model accepts input from a first-principles light-use efficiency model (the "<i>P</i>" model). The <i>P</i> model provides values for gross primary production (GPP) per unit of absorbed photosynthetically active radiation (PAR). Absorbed PAR is estimated from the current leaf area. GPP is allocated to foliage, transport tissue, and fine-root production and respiration in such a way as to satisfy well-understood dimensional and functional relationships. Our approach thereby integrates two modelling approaches separately developed in the global carbon-cycle and forest-science literature. The <i>T</i> model can represent both ontogenetic effects (the impact of ageing) and the effects of environmental variations and trends (climate and CO<sub>2</sub>) on growth. Driven by local climate records, the model was applied to simulate ring widths during the period 1958–2006 for multiple trees of <i>Pinus koraiensis</i> from the Changbai Mountains in northeastern China. Each tree was initialised at its actual diameter at the time when local climate records started. The model produces realistic simulations of the interannual variability in ring width for different age cohorts (young, mature, and old). Both the simulations and observations show a significant positive response of tree-ring width to growing-season total photosynthetically active radiation (PAR<sub>0</sub>) and the ratio of actual to potential evapotranspiration (α), and a significant negative response to mean annual temperature (MAT). The slopes of the simulated and observed relationships with PAR<sub>0</sub> and α are similar; the negative response to MAT is underestimated by the model. Comparison of simulations with fixed and changing atmospheric CO<sub>2</sub> concentration shows that CO<sub>2</sub> fertilisation over the past 50 years is too small to be distinguished in the ring-width data, given ontogenetic trends and interannual variability in climate.
url http://www.biogeosciences.net/11/6711/2014/bg-11-6711-2014.pdf
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