2019Global Change BiologyOpen access

Biomass increases attributed to both faster tree growth and altered allometric relationships under long‐term carbon dioxide enrichment at a temperate forest

Dohyoung Kim, David Medvigy, Chris A. Maier, Kurt H. Johnsen, Sari Palmroth

Open full text 17 citations

Abstract

Abstract Increases in atmospheric carbon dioxide (CO2) concentrations are expected to lead to increases in the rate of tree biomass accumulation, at least temporarily. On the one hand, trees may simply grow faster under higher CO2concentrations, preserving the allometric relations that prevailed under lower CO2concentrations. Alternatively, the allometric relations themselves may change. In this study, the effects of elevated CO2(eCO2) on tree biomass and allometric relations were jointly assessed. Over 100 trees, grown at Duke Forest, NC, USA, were harvested from eight plots. Half of the plots had been subjected to CO2enrichment from 1996 to 2010. Several subplots had also been subjected to nitrogen fertilization from 2005 to 2010. Allometric equations were developed to predict tree height, stem volume, and aboveground biomass components for loblolly pine (Pinus taedaL.), the dominant tree species, and broad‐leaved species. Using the same diameter‐based allometric equations for biomass, it was estimated that plots with eCO2contained 21% more aboveground biomass, consistent with previous studies. However, eCO2significantly affected allometry, and these changes had an additional effect on biomass. In particular,P. taedatrees at a given diameter were observed to be taller under eCO2than under ambient CO2due to changes in both the allometric scaling exponent and intercept. Accounting for allometric change increased the treatment effect of eCO2on aboveground biomass from a 21% to a 27% increase. No allometric changes for the nondominant broad‐leaved species were identified, nor were allometric changes associated with nitrogen fertilization. ForP. taeda, it is concluded that eCO2affects allometries, and that knowledge of allometry changes is necessary to accurately compute biomass under eCO2. Further observations are needed to determine whether this assessment holds for other taxa.

About this research paper

What this paper is about

Abstract Increases in atmospheric carbon dioxide (CO2) concentrations are expected to lead to increases in the rate of tree biomass accumulation, at least temporarily. On the one hand, trees may simply grow faster under higher CO2concentrations, preserving the allometric relations that prevailed under lower CO2concentrations. Alternatively, the allometric relations themselves may change. In this study, the effects of elevated CO2(eCO2) on tree biomass and allometric relations were jointly assessed. Over 100 trees, grown at Duke Forest, NC, USA, were harvested from eight plots. Half of the plots had been subjected to CO2enrichment from 1996 to 2010. Several subplots had also been subjected to nitrogen fertilization from 2005 to 2010. Allometric equations were developed to predict tree height, stem volume, and aboveground biomass components for loblolly pine (Pinus taedaL.), the dominant tree species, and broad‐leaved species. Using the same diameter‐based allometric equations for biomass, it was estimated that plots with eCO2contained 21% more aboveground biomass, consistent with previous studies. However, eCO2significantly affected allometry, and these changes had an additional effect on biomass. In particular,P. taedatrees at a given diameter were observed to be taller under eCO2than under ambient CO2due to changes in both the allometric scaling exponent and intercept. Accounting for allometric change increased the treatment effect of eCO2on aboveground biomass from a 21% to a 27% increase. No allometric changes for the nondominant broad‐leaved species were identified, nor were allometric changes associated with nitrogen fertilization. ForP. taeda, it is concluded that eCO2affects allometries, and that knowledge of allometry changes is necessary to accurately compute biomass under eCO2. Further observations are needed to determine whether this assessment holds for other taxa.

Why it matters

OpenAlex reports 17 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Abstract Increases in atmospheric carbon dioxide (CO2) concentrations are expected to lead to increases in the rate of tree biomass accumulation, at least temporarily. On the one hand, trees may simply grow faster under higher CO2concentrations, preserving the allometric relations that prevailed under lower CO2concentrations. Alternatively, the allometric relations themselves may change. In this study, the effects of elevated CO2(eCO2) on tree biomass and allometric relations were jointly assessed. Over 100 trees, grown at Duke Forest, NC, USA, were harvested from eight plots. Half of the plots had been subjected to CO2enrichment from 1996 to 2010. Several subplots had also been subjected to nitrogen fertilization from 2005 to 2010. Allometric equations were developed to predict tree height, stem volume, and aboveground biomass components for loblolly pine (Pinus taedaL.), the dominant tree species, and broad‐leaved species. Using the same diameter‐based allometric equations for biomass, it was estimated that plots with eCO2contained 21% more aboveground biomass, consistent with previous studies. However, eCO2significantly affected allometry, and these changes had an additional effect on biomass. In particular,P. taedatrees at a given diameter were observed to be taller under eCO2than under ambient CO2due to changes in both the allometric scaling exponent and intercept. Accounting for allometric change increased the treatment effect of eCO2on aboveground biomass from a 21% to a 27% increase. No allometric changes for the nondominant broad‐leaved species were identified, nor were allometric changes associated with nitrogen fertilization. ForP. taeda, it is concluded that eCO2affects allometries, and that knowledge of allometry changes is necessary to accurately compute biomass under eCO2. Further observations are needed to determine whether this assessment holds for other taxa.

Key concepts: Allometry, Tree allometry, Biomass (ecology), Temperate climate, Ecology, Biology, Temperate forest, Environmental science

Related papers

Back to paper searchBrowse research topicsOriginal source
Biomass increases attributed to both faster tree growth and altered allometric relationships under long‐term carbon dioxide enrichment at a temperate forest — Research Paper | ScholarLens