Author:
Marsh Christopher D.,Hill Ross A.,Nowak Matthew G.,Hankinson Emma,Abdullah Abdullah,Gillingham Phillipa,Korstjens Amanda H.
Abstract
AbstractClimate change is predicted to cause widespread disruptions to global biodiversity. Most climate models are at the macroscale, operating at a ~ 1 km resolution and predicting future temperatures at 1.5–2 m above ground level, making them unable to predict microclimates at the scale that many organisms experience temperature. We studied the effects of forest structure and vertical position on microclimatic air temperature within forest canopy in a historically degraded tropical forest in Sikundur, Northern Sumatra, Indonesia. We collected temperature measurements in fifteen plots over 20 months, alongside vegetation structure data from the same fifteen 25 × 25 m plots. We also performed airborne surveys using an unmanned aerial vehicle (UAV) to record canopy structure remotely, both over the plot locations and a wider area. We hypothesised that old-growth forest structure would moderate microclimatic air temperature. Our data showed that Sikundur is a thermally dynamic environment, with simultaneously recorded temperatures at different locations within the canopy varying by up to ~ 15 °C. Our models (R2 = 0.90 to 0.95) showed that temperature differences between data loggers at different sites were largely determined by variation in recording height and the amount of solar radiation reaching the topmost part of the canopy, although strong interactions between these abiotic factors and canopy structure shaped microclimate air temperature variation. The impacts of forest degradation have smaller relative influence on models of microclimatic air temperature than abiotic factors, but the loss of canopy density increases temperature. This may render areas of degraded tropical forests unsuitable for some forest-dwelling species with the advent of future climate change.
Funder
Royal Geographical Society
Primate Society of Great Britain
U.S. Fish and Wildlife Service
Indianapolis Zoological Association
Philadelphia Zoological Association
Association for the Study of Animal Behaviour
International Primate Society
Publisher
Springer Science and Business Media LLC
Subject
Health, Toxicology and Mutagenesis,Atmospheric Science,Ecology
Reference72 articles.
1. Abdulhadi R, Mirmanto E, Kartawinata K (1987) A lowland dipterocarp forest in Sekundur, North Sumatra, Indonesia: five years after mechanized logging. In: Proceedings of the Third Round Table Conference on Dipterocarps, ed Kostermans AJGH (pp. 255–273).
2. Alexander C, Korstjens AH, Hankinson E, Usher G, Harrison N, Nowak MG, Abdullah A, Wich S, Hill RA, R. A. (2018) Locating emergent trees in a tropical rainforest using data from an unmanned aerial vehicle (UAV). International Journal of Applied Earth Observation Geoinformation 72:86–90
3. Alexander C, Korstjens AH, Hill RA (2017) Structural attributes of individual trees for identifying homogeneous patches in a tropical rainforest. International Journal of Applied Earth Observation Geoinformation 55:68–72
4. Anderson K, Gaston KJ (2013) Lightweight unmanned aerial vehicles will revolutionize spatial ecology. Front Ecol Environ 11(3):138–146
5. Arroyo-Rodríguez V, Saldaña-Vázquez RA, Fahrig L, Santos BA (2016) Does forest fragmentation cause an increase in forest temperature? Ecol Res 32(1):81–88
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