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Sammanfattning

Boreal forests are critical to the global carbon (C) cycle. Despite recent advances in our understanding of boreal C budgets, C dynamics during compositional transition to late-succession forests remain unclear. Using a carefully replicated 203-year chronosequence, we examined long-term patterns of forest C stocks and net ecosystem productivity (NEP) following stand-replacing fire in the boreal forest of central Canada. We measured all C pools, including understorey vegetation, belowground biomass, and soil C, which are often missing from C budgets. We found a slight decrease in total ecosystem C stocks during early stand initiation, between 1 and 8 years after fire, at -0.90 Mg C ha(-1) y(-1). As stands regenerated, live vegetation biomass increased rapidly, with total ecosystem C stocks reaching a maximum of 287.72 Mg C ha(-1) 92 years after fire. Total ecosystem C mass then decreased in the 140- and 203-year-old stands, losing between -0.50 and -0.74 Mg C ha(-1) y(-1), contrasting with views that old-growth forests continue to maintain a positive C balance. The C decline corresponded with canopy transition from dominance of Populus tremuloides, Pinus banksiana, and Picea mariana in the 92-year-old stands to Betula papyrifera, Picea glauca, and Abies balsamea in the 203-year-old stands. Results from this study highlight the role of succession in long-term forest C dynamics and its importance when modeling terrestrial C flux.

Nyckelord

boreal forest; carbon; climate change; productivity; succession; disturbance; fire

Publicerad i

Ecosystems
2014, volym: 17, nummer: 5, sidor: 778-791
Utgivare: SPRINGER

SLU författare

  • Seedre, Meelis

    • Ceska zemedelska univerzita v Praze
    • Lakehead University

UKÄ forskningsämne

Skogsvetenskap

Publikationens identifierare

  • DOI: https://doi.org/10.1007/s10021-014-9759-3

Permanent länk till denna sida (URI)

https://res.slu.se/id/publ/85161