Forest temperature buffering in pure and mixed stands: A high-resolution temporal analysis with generalized additive models

dc.contributor.authorSteinparzer, Matthias
dc.contributor.authorGillerot, Loïc
dc.contributor.authorRewald, Boris
dc.contributor.authorGodbold, Douglas Lawrence
dc.contributor.authorHaluza, Daniela
dc.contributor.authorGuo, Qiwen
dc.contributor.authorVospernik, Sonja
dc.date.accessioned2026-08-25T02:04:11Z
dc.date.issued2025
dc.date.updated2026-08-25T02:04:11Z
dc.description.abstractForests foster buffered microclimates, but causal mechanisms have rarely been studied on longer timescales and in differently diverse stands. Here, we explore temperature regulation by a young experimental forest in Austria, focusing on four common colline broadleaf species (Acer platanoides L., Tilia cordata Mill., Quercus robur L., Carpinus betulus L.) in monocultures, two- and four-species mixed stands. Air temperature was monitored in 28 forest plots for two years and compared to open-field controls. Using generalized additive models (GAMs), we investigated direct temperature offsets and lags between open-field and sub-canopy temperatures, considering diurnal and seasonal changes, and causal factors such as global mean radiation, relative air humidity, wind, and leaf area index (LAI). Forests generally had a cooling effect during the summer and a warming effect in winter, where the cooling magnitude varied with species composition and environmental conditions. Specifically, Acer platanoides and Carpinus betulus demonstrated the highest cooling capacities, and Quercus robur the lowest. Mixed species stands exhibited higher temperature buffering effects relative to monospecific stands, suggesting that species diversity in forests can increase the ability to regulate microclimates. Solar radiation, relative air hu midity, wind speed, and LAI all significantly influenced offsets. These findings are crucial for urban forestry and environmental planning, suggesting that careful selection of tree species can optimize temperature regulation, thereby improving human thermal comfort and ecosystem processes alike.en
dc.description.versionOA-hybrid
dc.format122582
dc.identifier.issn0378-1127Open policy finderJCR
dc.identifier.orcidRewald, Boris 0000-0001-8098-0616
dc.identifier.orcidGodbold, Douglas Lawrence 0000-0001-5607-5800
dc.identifier.urihttp://hdl.handle.net/20.500.12698/2292
dc.project.ID101087262
dc.project.IDERA-Chair: Striving for Excellence in the Forest Ecosystem Research (EXCELLENTIA)
dc.publisherElsevier Science BV
dc.relationEC/HE/101087262/ERA-Chair:Striving for Excellence in the Forest Ecosystem Research/EXCELLENTIA
dc.relation.funderEU
dc.relation.ispartofForest Ecology and Management
dc.relation.urihttps://doi.org/10.1016/j.foreco.2025.122582
dc.rightsCC BY 4.0
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.subjectForest microclimateen
dc.subjectTemperature offseten
dc.subjectGAMen
dc.subjectMicroclimate modelingen
dc.subjectTree diversityen
dc.titleForest temperature buffering in pure and mixed stands: A high-resolution temporal analysis with generalized additive modelsen
dc.typeJ_ČLÁNEK
local.contributor.affiliationLDF
local.horizonHE
local.identifier.doi10.1016/j.foreco.2025.122582
local.identifier.e-issn1872-7042Open policy finderJCR
local.identifier.obd43928108
local.identifier.scopus2-s2.0-85218425966
local.identifier.wos001434727000001
local.number1 May
local.volume583

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