Dissecting the Characteristics and Driver Factors on Global Water Use Efficiency Using GLASS Data Sets

IF 7.3 1区 地球科学 Q1 ENVIRONMENTAL SCIENCES Earths Future Pub Date : 2024-06-18 DOI:10.1029/2024EF004630
Z. Y. Hu, Q. H. Dai, Y. J. Yan, Y. Zhang, H. Y. Li, H. Zhou, Y. W. Yao
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Abstract

Ecosystem water use efficiency (WUE) is a crucial parameter for understanding the interaction between carbon and water cycles. However, the spatio–temporal evolution and drivers of WUE remain unclear. This study utilized global annual scale global land surface satellite gross primary productivity and evapotranspiration data from 1982 to 2018 to estimate WUE and analyze its spatio–temporal characteristics. Additionally, the study investigated the response of WUE changes to five environmental factors (precipitation [PRE], soil moisture, temperature [TEM], palmer drought severity index, and vapor pressure deficit [VPD]) on WUE changes using partial correlation and structural equation modeling. The results suggested that the global annual WUE increased markedly over the study period, at an average rate of 0.0016 gC m−2 mm−1 H2O year−1. In contrast to the existing knowledge on the drivers of WUE change, climate change was found to have a larger contribution to WUE changes at the global and regional scales, especially in terms of TEM and VPD. A positive correlation between TEM and WUE was observed, but extreme TEM could lead to a decrease in WUE. VPD had the most significant direct effect on WUE, and its negative effect offset the positive influence of TEM especially in hyper-arid, semi-arid, and arid regions. These findings offer new insights into the impact of VPD and global warming on WUE.

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利用 GLASS 数据集剖析全球用水效率的特征和驱动因素
生态系统水分利用效率(WUE)是了解碳循环和水循环之间相互作用的一个重要参数。然而,WUE 的时空演变和驱动因素仍不清楚。本研究利用1982年至2018年全球年尺度陆地表面卫星总初级生产力和蒸散量数据估算WUE,并分析其时空特征。此外,该研究还利用偏相关和结构方程模型研究了WUE变化对5个环境因子(降水[PRE]、土壤水分、温度[TEM]、帕尔默干旱严重程度指数和蒸汽压赤字[VPD])对WUE变化的响应。结果表明,在研究期间,全球年WUE明显增加,平均速率为0.0016 gC m-2 mm-1 H2O year-1。与现有的关于WUE变化驱动因素的知识相比,气候变化对全球和区域尺度上WUE变化的贡献更大,尤其是在TEM和VPD方面。据观察,TEM 与 WUE 之间呈正相关,但极端 TEM 会导致 WUE 下降。VPD对WUE的直接影响最为显著,其负面影响抵消了TEM的正面影响,尤其是在超干旱、半干旱和干旱地区。这些发现为了解VPD和全球变暖对WUE的影响提供了新的视角。
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来源期刊
Earths Future
Earths Future ENVIRONMENTAL SCIENCESGEOSCIENCES, MULTIDI-GEOSCIENCES, MULTIDISCIPLINARY
CiteScore
11.00
自引率
7.30%
发文量
260
审稿时长
16 weeks
期刊介绍: Earth’s Future: A transdisciplinary open access journal, Earth’s Future focuses on the state of the Earth and the prediction of the planet’s future. By publishing peer-reviewed articles as well as editorials, essays, reviews, and commentaries, this journal will be the preeminent scholarly resource on the Anthropocene. It will also help assess the risks and opportunities associated with environmental changes and challenges.
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