Abstract
AbstractKnowledge on mesoclimatic zonation and microclimatic variations within mountain forest ecosystems is crucial for understanding regional species turnover and effects of climate change on these systems. The temperate mountain forests in the Andean region of South America are among the largest and contiguous natural deciduous forest areas in the world. Due to their pronounced disturbance regime and different successional stages, a climatic zonation combined with the characterisation of its microclimatic variation is important to identify thresholds of species occurrences.We used micro-loggers to measure air temperature and relative humidity for one year at 40 measurement locations along longitudinal and elevation gradients in mountain forests in Northern Patagonia, Argentina. Our results unveil mesoclimatic patterns within these forests characterised by variations in temperature and vapour pressure deficit along the elevational gradient in general, but also at different times of the year. For example, Austrocedrus chilensis and Nothofagus dombeyi forests differed mainly by temperature and its diurnal range in the warmest months of the year. Also, differences between forest stands and gaps were more pronounced in the warmest months of the year and at lower elevations, with up to 2.5 K higher temperatures in the second half of the day in gaps. We found clear indications that shrubland of Nothofagus antarctica representing a successional stage after disturbances alters the mesoclimatic pattern, favouring forest fire ignition. Such mesoclimatic variations have a major influence on tree species turnover and ecological processes within these forest ecosystems.The findings contribute to our understanding of the complex interplay between topography, climate, and vegetation in shaping the spatial patterns of species occurrences.
Funder
Bundesanstalt für Landwirtschaft und Ernährung
Hochschule für angewandte Wissenschaft und Kunst (HAWK)
Publisher
Springer Science and Business Media LLC
Reference68 articles.
1. Amigo J, Rodríguez Guitián M (2011) Bioclimatic and phytosociological diagnosis of the species of the Nothofagus genus (Nothofagaceae) in South America. Int J Geobot Res 1:1–20. https://doi.org/10.5616/ijgr110001
2. Analog Devices. 2023 DS1923 iButton Hygrochron temperature/humidity logger with 8KB data-log memory https://www.analog.com/en/products/ds1923.html#product-overview (19.05.2023).
3. Barberá I, Paritsis J, Ammassari L, Morales JM, Kitzberger T (2023) Microclimate and species composition shape the contribution of fuel moisture to positive fire-vegetation feedbacks. Agric For Meteorol 330:109289. https://doi.org/10.1016/j.agrformet.2022.109289
4. Barry RG (2010) Mountain Weather and Climate, 3rd edn. Cambridge University Press
5. Blandford T, Humes K, Harshburger B, Moore B, Walden V, Ye H (2008) Seasonal and synoptic variations in near-surface air temperature lapse rates in a mountainous basin. J Appl Meteorol Climatol 47:249. https://doi.org/10.1175/2007JAMC1565.1
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