4.7 Article

Divergent environmental responses of long-term variations in evapotranspiration over four grassland ecosystems in China based on eddy-covariance measurements

期刊

JOURNAL OF HYDROLOGY
卷 625, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.jhydrol.2023.130030

关键词

Evapotranspiration; Interannual variation; Environmental response; Surface conductance; Eddy covariance; China Grassland Transect

向作者/读者索取更多资源

This study analyzes the long-term variation in evapotranspiration (ET) and its responses to environmental conditions across four grassland ecosystems in China. The study finds that precipitation and relative humidity have a major influence on the annual ET variation in typical temperate grasslands and alpine meadow-steppes, while leaf area index is the dominant factor in alpine shrubland meadows. Additionally, net radiation plays a crucial role in annual ET variation in alpine marsh meadows. The findings contribute to a better understanding of the ET process and provide insights for modeling efforts.
Understanding the long-term variation in evapotranspiration (ET) for the spatially distributed grasslands is crucial for the accurate prediction of ET response to climate change. In this study, we analyzed the interannual variability (IAV) of ET and its responses to environmental conditions at four grassland ecosystems across a wide range of climatic and biome conditions based on the long-term (9-11 years) eddy-covariance measurements. The four ecosystems encompassed the most prevalent grassland vegetations in China, containing a typical temperate steppe, an alpine meadow-steppe, an alpine shrubland meadow, and an alpine marsh meadow. The IAVs of annual ET at the typical temperate steppe and the alpine meadow-steppe were primarily affected by either change in precipitation (P) or relative humidity (RH). Leaf area index (LAI) was the dominant factor controlling the IAVs of annual and growing-season ET at the alpine shrubland meadow, and the IAV of LAI was significantly correlated with P variation. As to the alpine marsh meadow, net radiation turned to be the dominant factor for the IAV of annual ET, additionally with significant effects from water supply condition (P and RH) on the IAV of growing-season ET. Similar environmental responses were also found for the IAVs of mean surface conductance (g(s)) across the sites. Specifically, annual and growing-season mean gs significantly increased with increases in LAI at the alpine shrubland meadow, and appeared to be more sensitive to changes in water availability and VPD at the typical temperate steppe and the alpine meadow-steppe. Significant linear relationships were also observed among the IAVs of mean Priestley-Taylor coefficient (alpha = ET/ETeq, where ETeq is the equilibrium evaporation), decoupling coefficient (Omega), and g(s) on both the annual and growing-season basis in this study. Moreover, the variabilities of annual mean g(s), Omega, and alpha further demonstrated the energy-limited conditions at the alpine marsh meadow, and the overall water-limited conditions at the other three grasslands. This study reveals the divergent environmental responses of long-term ET variations over grassland ecosystems, and contributes to the comprehensive understanding on the ET process and modeling efforts as well.

作者

我是这篇论文的作者
点击您的名字以认领此论文并将其添加到您的个人资料中。

评论

主要评分

4.7
评分不足

次要评分

新颖性
-
重要性
-
科学严谨性
-
评价这篇论文

推荐

暂无数据
暂无数据