Literature DB >> 22463713

Modeling forest stand dynamics from optimal balances of carbon and nitrogen.

Harry T Valentine1, Annikki Mäkelä2.   

Abstract

We formulate a dynamic evolutionary optimization problem to predict the optimal pattern by which carbon (C) and nitrogen (N) are co-allocated to fine-root, leaf, and wood production, with the objective of maximizing height growth rate, year by year, in an even-aged stand. Height growth is maximized with respect to two adaptive traits, leaf N concentration and the ratio of fine-root mass to sapwood cross-sectional area. Constraints on the optimization include pipe-model structure, the C cost of N acquisition, and agreement between the C and N balances. The latter is determined by two models of height growth rate, one derived from the C balance and the other from the N balance; agreement is defined by identical growth rates. Predicted time-courses of maximized height growth rate accord with general observations. Across an N gradient, higher N availability leads to greater N utilization and net primary productivity, larger trees, and greater stocks of leaf and live wood biomass, with declining gains as a result of saturation effects at high N availability. Fine-root biomass is greatest at intermediate N availability. Predicted leaf and fine-root stocks agree with data from coniferous stands across Finland. Optimal C-allocation patterns agree with published observations and model analyses. No claim to original US government works. New Phytologist
© 2012 New Phytologist Trust.

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Year:  2012        PMID: 22463713     DOI: 10.1111/j.1469-8137.2012.04123.x

Source DB:  PubMed          Journal:  New Phytol        ISSN: 0028-646X            Impact factor:   10.151


  6 in total

1.  Explaining ontogenetic shifts in root-shoot scaling with transient dynamics.

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Review 2.  Organizing principles for vegetation dynamics.

Authors:  Oskar Franklin; Sandy P Harrison; Roderick Dewar; Caroline E Farrior; Åke Brännström; Ulf Dieckmann; Stephan Pietsch; Daniel Falster; Wolfgang Cramer; Michel Loreau; Han Wang; Annikki Mäkelä; Karin T Rebel; Ehud Meron; Stanislaus J Schymanski; Elena Rovenskaya; Benjamin D Stocker; Sönke Zaehle; Stefano Manzoni; Marcel van Oijen; Ian J Wright; Philippe Ciais; Peter M van Bodegom; Josep Peñuelas; Florian Hofhansl; Cesar Terrer; Nadejda A Soudzilovskaia; Guy Midgley; I Colin Prentice
Journal:  Nat Plants       Date:  2020-05-11       Impact factor: 15.793

3.  Where does the carbon go? A model-data intercomparison of vegetation carbon allocation and turnover processes at two temperate forest free-air CO2 enrichment sites.

Authors:  Martin G De Kauwe; Belinda E Medlyn; Sönke Zaehle; Anthony P Walker; Michael C Dietze; Ying-Ping Wang; Yiqi Luo; Atul K Jain; Bassil El-Masri; Thomas Hickler; David Wårlind; Ensheng Weng; William J Parton; Peter E Thornton; Shusen Wang; I Colin Prentice; Shinichi Asao; Benjamin Smith; Heather R McCarthy; Colleen M Iversen; Paul J Hanson; Jeffrey M Warren; Ram Oren; Richard J Norby
Journal:  New Phytol       Date:  2014-05-21       Impact factor: 10.151

Review 4.  Forest carbon allocation modelling under climate change.

Authors:  Katarína Merganičová; Ján Merganič; Aleksi Lehtonen; Giorgio Vacchiano; Maša Zorana Ostrogović Sever; Andrey L D Augustynczik; Rüdiger Grote; Ina Kyselová; Annikki Mäkelä; Rasoul Yousefpour; Jan Krejza; Alessio Collalti; Christopher P O Reyer
Journal:  Tree Physiol       Date:  2019-12-01       Impact factor: 4.196

5.  Global patterns and climatic drivers of above- and belowground net primary productivity in grasslands.

Authors:  Yuanfeng Sun; Yuanhe Yang; Xia Zhao; Zhiyao Tang; Shaopeng Wang; Jingyun Fang
Journal:  Sci China Life Sci       Date:  2020-11-17       Impact factor: 6.038

6.  Urban tree species show the same hydraulic response to vapor pressure deficit across varying tree size and environmental conditions.

Authors:  Lixin Chen; Zhiqiang Zhang; Brent E Ewers
Journal:  PLoS One       Date:  2012-10-31       Impact factor: 3.240

  6 in total

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