As a result of different types of disturbance, forests are a mixture of
stands at different stages of ecological succession. Successional stage is
likely to influence forest productivity and carbon storage, linking the
degree of forest disturbance to the global carbon cycle and climate.
Although tropical montane forests are an important part of tropical forest
ecosystems (c. 8 %, elevation > 1000 m a.s.l.), there are still
significant knowledge gaps regarding the carbon dynamics and stocks of
these forests, and how these differ between early (ES) and late
successional (LS) stages. This study examines the carbon (C) stock,
relative growth rate (RGR), and net primary production (NPP) of ES and LS
forest stands in an Afromontane tropical rainforest using data from
inventories of quantitatively important ecosystem compartments in fifteen
0.5 ha plots in Nyungwe National Park in Rwanda. The total C stock was
35 % larger in LS compared to ES plots due to significantly larger above
ground biomass (AGB; 185 and 76 Mg C ha−1 in LS and ES plots,
respectively), while the soil and root C stock (down to 45 cm depth in the
mineral soil) did not significantly differ between the two successional
stages (178 and 204 Mg C ha−1 in LS and ES plots, respectively). The main
reasons for the difference in AGB were that ES trees had significantly
lower stature and wood density compared to LS trees. However, ES and LS
stands had similar total NPP (canopy, wood and roots of all plots
~ 9.4 Mg C ha−1) due to counterbalancing effects of differences in AGB
(higher in LS stands) and RGR (higher in ES stands). The AGB in the LS
plots was considerably higher than the average value reported for
old-growth tropical montane forest of Southeast Asia and central and South
America at similar elevations and temperatures, and of the same magnitude
as in tropical lowland forest of different regions. The results of this
study highlight the importance of accounting for disturbance regimes and
differences in wood density and allometry of tree species dominating at
different successional stages in attempts to quantify the C stock and sink
strength of tropical montane forests and how it may differ among
continents. Above ground biomass in
Nyungwe tropical montane forestThe data file contain
the following information in separte sheets: (1) Plots, (2) Species,
Breast height diameter classes, Above-ground biomass, Recruitment and
mortality of trees, (3) Height vs DBH relationship, (4) Wood density, (5)
Header definition, (6) Citations, (7) Data use policy.Data package Nyirambangutse et
al 2017.xlsx