4.7 Article

Partitioning growing season water balance within a forested boreal catchment using sap flux, eddy covariance, and a process-based model

期刊

HYDROLOGY AND EARTH SYSTEM SCIENCES
卷 24, 期 6, 页码 2999-3014

出版社

COPERNICUS GESELLSCHAFT MBH
DOI: 10.5194/hess-24-2999-2020

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资金

  1. Swedish Research Council (VR) [2015-04791]
  2. Knute and Alice Wallenberg Foundation [2015.0047]
  3. Academy of Finland [310203, 296116]
  4. Swedish Research Council
  5. Swedish Integrated Carbon Observation System (ICOS-Sweden) Research Infrastructure
  6. Swedish Infrastructure for Ecosystem Science (SITES)
  7. Erkko Visiting Professor Programme of the Jane and Aatos Erkko 375th Anniversary Fund through the University of Helsinki
  8. Academy of Finland (AKA) [296116, 310203, 296116, 310203] Funding Source: Academy of Finland (AKA)
  9. Swedish Research Council [2015-04791] Funding Source: Swedish Research Council

向作者/读者索取更多资源

Although it is well known that evapotranspiration (ET) represents an important water flux at local to global scales, few studies have quantified the magnitude and relative importance of ET and its individual flux components in high-latitude forests. In this study, we combined empirical sapflux, throughfall, and eddy-covariance measurements with estimates from a process-based model to partition the water balance in a northern boreal forested catchment. This study was conducted within the Krycklan catchment, which has a rich history of hydrological measurements, thereby providing us with the unique opportunity to compare the absolute and relative magnitudes of ET and its flux components to other water balance components. During the growing season, ET represented ca. 85 % of the incoming precipitation. Both empirical results and model estimates suggested that tree transpiration (T) and evaporation of intercepted water from the tree canopy (I-C) represented 43 % and 31 % of ET, respectively, and together were equal to ca. 70 % of incoming precipitation during the growing season. Understory evapotranspiration (ETu) was less important than T and I-C during most of the study period, except for late autumn, when ETu was the largest ET flux component. Overall, our study high-lights the importance of trees in regulating the water cycle of boreal catchments, implying that forest management impacts on stand structure as well as climate change effects on tree growth are likely to have large cascading effects on the way water moves through these forested landscapes.

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