The Effect of Drought on Vegetation Gross Primary Productivity under Different Vegetation Types across China from 2001 to 2020

Remote. Sens. Pub Date : 2022-09-18 DOI:10.3390/rs14184658
Xiaoping Wu, Rongrong Zhang, Virgílio A. Bento, Song Leng, Junyu Qi, J. Zeng, Qianfeng Wang
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引用次数: 14

Abstract

Climate change has exacerbated the frequency and severity of droughts worldwide. Evaluating the response of gross primary productivity (GPP) to drought is thus beneficial to improving our understanding of the impact of drought on the carbon cycle balance. Although many studies have investigated the relationship between vegetation productivity and dry/wet conditions, the capability of different drought indices of assessing the influence of water deficit is not well understood. Moreover, few studies consider the effects of drought on vegetation with a focus on periods of drought. Here, we investigated the spatial-temporal patterns of GPP, the standardized precipitation evapotranspiration index (SPEI), and the vapor pressure deficit (VPD) in China from 2001 to 2020 and examined the relationship between GPP and water deficit/drought for different vegetation types. The results revealed that SPEI and GPP were positively correlated over approximately 70.7% of the total area, and VPD was negatively correlated with GPP over about 66.2% of the domain. Furthermore, vegetation productivity was more negatively affected by water deficit in summer and autumn. During periods of drought, the greatest negative impact was on deciduous forests and croplands, and woody savannas were the least impacted. This research provides a scientific reference for developing mitigation and adaptation measures to lessen the impact of drought disasters under a changing climate.
2001 - 2020年干旱对中国不同植被类型植被总初级生产力的影响
气候变化加剧了全球干旱的频率和严重程度。因此,评价总初级生产力(GPP)对干旱的响应有助于提高我们对干旱对碳循环平衡影响的认识。尽管许多研究已经探讨了植被生产力与干湿条件之间的关系,但不同干旱指数评估水分亏缺影响的能力尚未得到很好的了解。此外,很少有研究关注干旱期对植被的影响。研究了2001 - 2020年中国不同植被类型的GPP、标准化降水蒸散指数(SPEI)和水汽压亏缺(VPD)的时空格局,并探讨了GPP与水分亏缺/干旱的关系。结果表明,SPEI与GPP在约70.7%的面积上呈正相关,VPD与GPP在约66.2%的面积上呈负相关。夏季和秋季水分亏缺对植被生产力的负面影响更大。在干旱期间,对落叶林和农田的负面影响最大,而对木本稀树草原的影响最小。该研究为在气候变化条件下制定缓解和适应干旱灾害的措施提供了科学参考。
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