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March 29, 2026Ecohydrology0 citations

Canopy Conductance Characteristics and Model Development for Three Representative Tree Species in the Hanjiang River Basin in China

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JWJian WuLCLei ChengQZQuan Zhang

Key Points

  • The study aims to assess canopy conductance characteristics of three tree species in relation to environmental factors.
  • Measured sap flux density and derived canopy conductance from 2021 to 2023.
  • Examined responses of canopy conductance to incoming short-wave radiation and vapour pressure deficit.
  • Developed a statistical model to predict canopy conductance based on environmental factors.
  • Incoming short-wave radiation and vapour pressure deficit are the primary factors influencing canopy conductance.
  • A crossed hysteresis pattern in canopy conductance response to short-wave radiation was observed.
  • A clear threshold relationship for vapour pressure deficit and canopy conductance was established, with different response patterns below and above this threshold.
  • The developed model explained over 64% of the variability in canopy conductance for the three species.

Abstract

ABSTRACT Canopy conductance (Gc) is critical for assessing forest ecosystem responses to climate change. The Hanjiang River Basin represents a typical subtropical humid region in China and serves as the water source for the middle route of the South‐to‐North Water Diversion Project. Studies on canopy conductance of trees in this region remains lacking, limiting the corresponding understanding of forest transpiration and hydrological cycle. In this study, we measured sap flux density and derived canopy conductance (Gc) of three representative tree species of oak, pine and poplar from 2021 to 2023. We then explored characteristics of Gc and the corresponding responses to key environmental factors. Results showed that incoming short‐wave radiation (Rsi) and vapour pressure deficit (VPD) are the two major controlling factors of Gc, and a crossed hysteresis pattern exists in the diurnal response of Gc to Rsi for all the three species, whereas the response of diurnal Gc to VPD (and air temperature) exhibits a closed clockwise hysteresis. The response of Gc to VPD has a clear VPD threshold: A linear relation was found when VPD is lower than the threshold, and a logarithmic relation was found when VPD is higher than the threshold. When taking Rsi and VPD as controlling factors of Gc, a statistical model for canopy conductance was developed; the model can explain over 64% of the variation in Gc for all the three tree species. This study contributes important knowledge to understanding the canopy conductance of representative tree species in the Hanjiang River Basin.

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Cite This Study

Wu et al. (2026) studied this question.

synapsesocial.com/papers/69c8c2d1de0f0f753b39d3c3https://doi.org/10.1002/eco.70200
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