在气候变暖的情况下,实际蒸气压降低会通过蒸气压不足对玉米产量产生重大影响。

IF 3 3区 地球科学 Q2 BIOPHYSICS International Journal of Biometeorology Pub Date : 2024-07-04 DOI:10.1007/s00484-024-02727-0
Yi Zhang, Yanxia Zhao, Qing Sun, Sining Chen, Shao Sun, Li Liu
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引用次数: 0

摘要

了解气候变暖对作物产量的影响及其相关机制对于确保粮食安全至关重要。在此,我们利用丰富的数据集,对中国东北和华北地区 31 个玉米种植区 40 年的时空观测数据进行了深入分析,探讨了水汽压差(VPD)对玉米产量的影响。我们的研究扩展到了玉米生长阶段驱动 VPD 变化的气象影响因素。回归分析表明,VPD 与玉米产量之间呈线性负相关,并表现出不同的时空特征。从空间上看,尽管华北平原(NCP)的 VPD 水平较高,但东北地区(NEC)的玉米产量对 VPD 的敏感性更高。相反的模式表明,高 VPD 并非必然导致对产量的不利影响。时间分析表明,VPD 呈上升趋势,数值分别为 0.05 和 0.02 kPa/10yr,华北平原和华北平原分别在 1996 年和 2006 年前后发生了显著的突变。这些时间上的变化导致这两个地区玉米产量的敏感性提高。重要的是,我们强调需要更密切地关注实际水汽压对玉米生长阶段 VPD 突然变化的实质性影响,尤其是在气候持续变暖的背景下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Reduced actual vapor pressure exerts a significant influence on maize yield through vapor pressure deficit amid climate warming.

Understanding the impact of climate warming on crop yield and its associated mechanisms is paramount for ensuring food security. Here, we conduct a thorough analysis of the impact of vapor pressure deficit (VPD) on maize yield, leveraging a rich dataset comprising temporal and spatial observations spanning 40 years across 31 maize-growing locations in Northeast and North China. Our investigation extends to the influencing meteorological factors that drive changes in VPD during the maize growing phase. Regression analysis reveals a linear negative relationship between VPD and maize yield, demonstrating diverse spatiotemporal characteristics. Spatially, maize yield exhibits higher sensitivity to VPD in Northeast China (NEC), despite the higher VPD levels in North China Plain (NCP). The opposite patterns reveal that high VPD not invariably lead to detrimental yield impacts. Temporal analysis sheds light on an upward trend in VPD, with values of 0.05 and 0.02 kPa/10yr, accompanied by significant abrupt changes around 1996 in NEC and 2006 in NCP, respectively. These temporal shifts contribute to the heightened sensitivity of maize yield in both regions. Importantly, we emphasize the need to pay closer attention to the substantial the impact of actual vapor pressure on abrupt VPD changes during the maize growing phase, particularly in the context of ongoing climate warming.

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来源期刊
CiteScore
6.40
自引率
9.40%
发文量
183
审稿时长
1 months
期刊介绍: The Journal publishes original research papers, review articles and short communications on studies examining the interactions between living organisms and factors of the natural and artificial atmospheric environment. Living organisms extend from single cell organisms, to plants and animals, including humans. The atmospheric environment includes climate and weather, electromagnetic radiation, and chemical and biological pollutants. The journal embraces basic and applied research and practical aspects such as living conditions, agriculture, forestry, and health. The journal is published for the International Society of Biometeorology, and most membership categories include a subscription to the Journal.
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