Litcius/Paper detail

High transpirational cooling by urban trees despite extreme summer heatwaves

Christoph Bachofen, Marion Peillon, Naika Meili, Ilann Bourgeois, Charlotte Grossiord

2025Urban forestry & urban greening18 citationsDOIOpen Access PDF

Abstract

Urban trees cool their environment by shading and transpiration (latent heat, LE ), thereby alleviating urban heat. LE may be critically reduced during heatwaves, when trees reduce stomatal conductance ( g S ) to prevent hydraulic dysfunctions. Recent observations indicate that g S may still be maintained during heatwaves, but implications for urban heat stress mitigation remain elusive. We recorded sap flow on eight Platanus x acerifolia trees in Geneva to assess LE during 2023, which had two record-breaking summer heatwaves. We repeatedly assessed leaf water potentials at pre-dawn and midday (Ψ pre , Ψ mid ), g S , and leaf, canopy, and ground surface temperatures in shaded and sunlit parts (T leaf , T can , T surf ). Using ecohydrological modelling (UT&C), we determined the energy budget of the urban square and assessed whether LE and g S predictions match measurements. Despite air temperatures (T air ) reaching 39.1 ºC, trees continued transpiring up to 37.1 kg h −1 ( LE of 25.3 kW). LE was similar during heatwaves (T air > 30 ºC) as during cooler periods and compensated approximately 33.3 % of the urban heating by solar radiation (R S ). In contrast, the model predicted a higher decrease of g S , and LE to 22.8 % of R S during heatwaves, thereby underestimating actual tree cooling. Despite unprecedented heatwaves, Platanus x acerifolia trees efficiently cooled the urban environment. Measured LE largely surpassed model estimations during heatwaves, hence actual cooling effects of urban trees during heatwaves might be considerably underestimated by current predictions with common stomatal models. Cities with intermittent heatwaves may thus continue to rely on vegetation cooling by transpiration, but further research is needed to determine the best suited tree species to optimise the cooling effect. • Urban tree cooling by transpiration may be critically hampered by heat and drought. • We recorded stomatal conductance and latent heat during record-breaking heatwaves. • Despite unprecedented heat, trees continued transpiration and maintained cooling. • State-of-the-art ecohydrological modelling underestimated tree cooling during heat. • Cities with intermittent heatwaves might continue to rely on urban tree cooling.

Topics & Concepts

Environmental scienceGeographyClimatologyGeologyUrban Heat Island MitigationUrban Green Space and HealthPlant Water Relations and Carbon Dynamics