Literature DB >> 23663114

Constraining 3-PG with a new δ13C submodel: a test using the δ13C of tree rings.

Liang Wei1, John D Marshall, Timothy E Link, Kathleen L Kavanagh, Enhao DU, Robert E Pangle, Peter J Gag, Nerea Ubierna.   

Abstract

A semi-mechanistic forest growth model, 3-PG (Physiological Principles Predicting Growth), was extended to calculate δ(13)C in tree rings. The δ(13)C estimates were based on the model's existing description of carbon assimilation and canopy conductance. The model was tested in two ~80-year-old natural stands of Abies grandis (grand fir) in northern Idaho. We used as many independent measurements as possible to parameterize the model. Measured parameters included quantum yield, specific leaf area, soil water content and litterfall rate. Predictions were compared with measurements of transpiration by sap flux, stem biomass, tree diameter growth, leaf area index and δ(13)C. Sensitivity analysis showed that the model's predictions of δ(13)C were sensitive to key parameters controlling carbon assimilation and canopy conductance, which would have allowed it to fail had the model been parameterized or programmed incorrectly. Instead, the simulated δ(13)C of tree rings was no different from measurements (P > 0.05). The δ(13)C submodel provides a convenient means of constraining parameter space and avoiding model artefacts. This δ(13)C test may be applied to any forest growth model that includes realistic simulations of carbon assimilation and transpiration.
© 2013 John Wiley & Sons Ltd.

Entities:  

Keywords:  grand fir; litterfall; model tuning; quantum yield; radiation-use efficiency; sap flux; stable carbon isotope ratio

Mesh:

Substances:

Year:  2013        PMID: 23663114     DOI: 10.1111/pce.12133

Source DB:  PubMed          Journal:  Plant Cell Environ        ISSN: 0140-7791            Impact factor:   7.228


  2 in total

1.  Basal area growth, carbon isotope discrimination, and intrinsic water use efficiency after fertilization of Douglas-fir in the Oregon Coast Range.

Authors:  Eladio H Cornejo-Oviedo; Steven L Voelker; Douglas B Mainwaring; Douglas A Maguire; Frederick C Meinzer; J Renée Brooks
Journal:  For Ecol Manage       Date:  2017       Impact factor: 3.558

2.  Investigating old-growth ponderosa pine physiology using tree-rings, δ13 C, δ18 O, and a process-based model.

Authors:  Danielle E M Ulrich; Christopher Still; J Renée Brooks; Youngil Kim; Frederick C Meinzer
Journal:  Ecology       Date:  2019-04-15       Impact factor: 5.499

  2 in total

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