A global synthesis of transpiration rate and evapotranspiration partitioning in the shrub ecosystems

蒸腾作用 蒸散量 环境科学 灌木 生态系统 水文学(农业) 农林复合经营 生态学 地质学 光合作用 植物 生物 岩土工程
作者
Guangyao Gao,Di Wang,Tianshan Zha,Lixin Wang,Bojie Fu
出处
期刊:Journal of Hydrology [Elsevier]
卷期号:606: 127417-127417 被引量:38
标识
DOI:10.1016/j.jhydrol.2021.127417
摘要

• Worldwide studies that measured transpiration (T) and evapotranspiration (ET) partitioning of shrubs were synthesized for the first time. • Mean T/ET of shrubs (0.54 ± 0.14) was lower than that of forest, grassland and cropland ecosystems. • Variations of T rate of shrubs were mainly controlled by biotic factors, whereas T/ET was mainly affected by abiotic factors. • T/ET of shrubs significantly decreased with aridity index and annual mean precipitation, and increased with latitude. Transpiration (T) is a fundamental process in understanding the ecophysiology of plants, and it is the dominant component of evapotranspiration (ET) in the terrestrial water cycle. Although previous studies have examined T characteristics of shrub ecosystems in some regions, global-scale synthesis that integrates the spatial variations of T, ET and ratio of T to ET (T/ET) and the associated influences of bio-/abiotic factors in the shrub ecosystems is currently lacking. In this study, we synthesized and analyzed T rate, ET rate and T/ET of the shrub ecosystems from the peer-reviewed articles using field observations around the world. These studies were mainly distributed in drylands with aridity index (ratio of precipitation to potential ET) < 0.65, which accounted for 86.4% of the study locations. Globally, the mean daily T and ET rates of shrubs were 1.5 ± 1.0 mm d −1 and 2.4 ± 0.8 mm d −1 , with coefficient of variation of 63.2% and 36.2% among the study locations, respectively. Mean T/ET of the shrubs over the growing season was 0.54 ± 0.14, which was generally lower compared with forest, grassland and cropland ecosystems. The T rate of shrubs was positively related to shrub age, shrub height, leaf area index, and vegetation coverage ( p < 0.05), and the effects of biotic factors on T rate were stronger compared with abiotic factors. The ET rate of shrubs was positively related to aridity index, long-term annual mean precipitation, mean soil water content, as well as shrub height and vegetation coverage ( p < 0.05). By contrast, the effects of biotic factors on variations of shrub T/ET were weaker than those of abiotic factors, and the T/ET of shrubs was negatively related to aridity index, long-term annual mean precipitation and mean soil water content, but positively related to latitude ( p < 0.05). This study is an important supplement of our knowledge gap in terrestrial water cycle, and the findings suggest that T accounted for about half of the water into atmosphere from shrub ecosystems, and the variations of T rate of shrubs were mainly controlled by biotic factors, whereas ET rate and T/ET was mainly affected by abiotic factors.
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