IF 5.6 1区 农林科学 Q1 AGRONOMY
Lingxue Yu, Ye Liu, Miaogen Shen, Zicheng Yu, Xuan Li, Huanjun Liu, Vincent Lyne, Ming Jiang, Chaoyang Wu
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引用次数: 0

摘要

植被物候通过改变陆地与大气之间的能量和水分交换来调节气候。然而,人们对极端水文气候条件如何改变这些物候-气候反馈仍知之甚少。在本研究中,我们利用陆地-大气耦合天气研究与预报模型,探讨了在中国温带不同水文气候条件下,提前返青对气温的影响,并通过机制分析阐明了其背后的生物物理机制。根据最近的卫星观测结果,我们将返青期提前了14天,结果发现,在平均气候条件下,返青期提前落叶会立即导致地表降温0.14 °C,而衰老期平均升温0.02 °C。在极度潮湿的条件下,返青期的降温效应扩大到 0.18 °C,并将降温效应延续到衰老期。相反,在极端干旱条件下,较早的返青期会使气温降低 0.09 °C,并将衰老期的升温效应放大到 0.16 °C。机理分析表明,以蒸腾作用为主的非辐射过程驱动了返青期的直接降温,而在极端干旱/潮湿的水文气候条件下,辐射和环流过程主导了衰老期延迟但相反的升温/降温效应。鉴于气候变暖的趋势预计将持续,极端气候事件的发生频率也将增加,因此必须将植被物候的生物物理效应纳入当地的气候适应战略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Extreme hydroclimates amplify the biophysical effects of advanced green-up in temperate China
Vegetation phenology modulates climate by altering energy and water exchange between the land and atmosphere. However, how extreme hydroclimatic conditions modify these phenology-climate feedbacks is still poorly understood. In this study, we used a land–atmosphere-coupled Weather Research and Forecasting model to explore the impacts of advanced green-up on air temperature under different hydroclimate conditions across temperate China and to Mechanistic analysis elucidate the underlying biophysical mechanisms. By imposing a 14-day earlier green-up in line with recent satellite observations, we found that under mean climate conditions, an earlier leaf-out induces immediate surface cooling of 0.14 °C during green-up and a lagging 0.02 °C warming during senescence averaged for temperate China. Extremely humid conditions amplify the cooling effects to 0.18 °C during green-up, extending this cooling into the senescence period. Conversely, under extremely arid conditions, earlier green-up cools air temperature by 0.09 °C, and amplified senescence warming to 0.16 °C. Mechanism analysis revealed that evapotranspiration-dominated non-radiative processes drive immediate cooling during green-up while radiation and circulation process dominates the delayed but opposite warming/cooling effects during senescence in extremely arid/humid hydroclimates. Given the projected continuation of warming trends and increased frequency of extreme climatic events, it is imperative to incorporate the biophysical effects of vegetation phenology into local climate adaptation strategies.
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来源期刊
CiteScore
10.30
自引率
9.70%
发文量
415
审稿时长
69 days
期刊介绍: Agricultural and Forest Meteorology is an international journal for the publication of original articles and reviews on the inter-relationship between meteorology, agriculture, forestry, and natural ecosystems. Emphasis is on basic and applied scientific research relevant to practical problems in the field of plant and soil sciences, ecology and biogeochemistry as affected by weather as well as climate variability and change. Theoretical models should be tested against experimental data. Articles must appeal to an international audience. Special issues devoted to single topics are also published. Typical topics include canopy micrometeorology (e.g. canopy radiation transfer, turbulence near the ground, evapotranspiration, energy balance, fluxes of trace gases), micrometeorological instrumentation (e.g., sensors for trace gases, flux measurement instruments, radiation measurement techniques), aerobiology (e.g. the dispersion of pollen, spores, insects and pesticides), biometeorology (e.g. the effect of weather and climate on plant distribution, crop yield, water-use efficiency, and plant phenology), forest-fire/weather interactions, and feedbacks from vegetation to weather and the climate system.
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