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Examination of aboveground attributes to predict belowground biomass of young trees

  • Peter Annighoefer
  • , Martina Mund
  • , Dominik Seidel
  • , Christian Ammer
  • , Aitor Ameztegui
  • , Philippe Balandier
  • , Ieva Bebre
  • , Lluis Coll
  • , Catherine Collet
  • , Tobias Hamm
  • , Franka Huth
  • , Heike Schneider
  • , Christian Kuehne
  • , Magnus Loef
  • , Any Mary Petritan
  • , Ion Catalin Petritan
  • , Schall Peter
  • , Bauhus Juergen

Publication: Contribution to journalJournal articlepeer-review

Abstract

Just as the aboveground tree organs represent the interface between trees and the atmosphere, roots act as the interface between trees and the soil. In this function, roots take-up water and nutrients, facilitate interactions with soil microflora, anchor trees, and also contribute to the gross primary production of forests. However, in comparison to aboveground plant organs, the biomass of roots is much more difficult to study. In this study, we analyzed 19 European datasets on above- and belowground biomass of juvenile trees of 14 species to identify generalizable estimators of root biomass based on tree sapling dimensions (e.g. height, diameter, aboveground biomass). Such estimations are essential growth and sequestration modelling. In addition, the intention was to study the effect of sapling dimension and light availability on biomass allocation to roots. All aboveground variables were significant predictors for root biomass. But, among aboveground predictors of root biomass plant height performed poorest. When comparing conifer and broadleaf species, the latter tended to have a higher root biomass at a given dimension. Also, with increasing size, the share of belowground biomass tended to increase for the sapling dimensions considered. In most species, there was a trend of increasing relative belowground biomass with increasing light availability. Finally, the height to diameter ratio (H/D) was negatively correlated to relative belowground biomass. This indicates that trees with a high H/D are not only more unstable owing to the unfavorable bending stress resistance, but also because they are comparatively less well anchored in the ground. Thus, single tree stability may be improved through increasing light availability to increase the share of belowground biomass.
Original languageEnglish
Article number119942
Number of pages11
JournalForest Ecology and Management
Volume505
DOIs
Publication statusPublished - 2022

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 15 - Life on Land
    SDG 15 Life on Land

Keywords

  • Biomass allometry
  • Forest regeneration
  • Seedlings
  • Saplings
  • Root to shoot ratio
  • Height to diameter ratio

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