探索土壤水分-空气温度超敏耦合机制

IF 4.6 1区 地球科学 Q2 ENVIRONMENTAL SCIENCES Water Resources Research Pub Date : 2024-07-02 DOI:10.1029/2023wr036490
Hsin Hsu, Paul A. Dirmeyer, Eunkyo Seo
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引用次数: 0

摘要

伴随干旱而来的极端高温对环境和社会经济系统造成了严重影响。因此,提高热浪事件的可预测性是当务之急。实现这一目标的关键之一是更好地了解陆地与大气之间的相互作用。最近的研究记录了土壤水分-温度关系中的超敏感机制:当土壤干燥度低于临界低阈值(称为土壤水分断点)时,气温会随着土壤水分的减少而以更快的速度上升。这种超敏感机制是否植根于地表过程,以及这种土壤水分断裂点是否与已知的植物临界值--永久枯萎点(WP)--相对应(低于该值时潜热通量几乎停止),目前仍不清楚。在本研究中,我们探讨了低土壤湿度与高气温之间的关联机制。通过现场观测,我们证实高敏感度机制作用于从陆地到大气的整个能量过程链。一个简单的能量平衡模型表明,当蒸发冷却急剧下降时,即土壤水分向永久可湿性降水量方向变干时,就会出现高敏感机制,这表明土壤水分断点略高于永久可湿性降水量。我们发现,一个模型如何精确地表达蒸散和土壤水分之间的关系,对于描述超敏感状态的发生至关重要。因此,我们主张天气和气候模式应确保真实地反映土地与大气的相互作用,以获得可靠的极端天气预报和气候预测,帮助评估热浪的脆弱性和适应性。
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Exploring the Mechanisms of the Soil Moisture-Air Temperature Hypersensitive Coupling Regime
High temperature extremes accompanied by drought have led to serious ramifications for environmental and socio-economic systems. Thus, improving the predictability of heat-wave events is a high priority. One key to achieving this is to better understand land-atmosphere interactions. Recent studies have documented a hypersensitive regime in the soil moisture-temperature relationship: when soil dries below a critical low threshold, called the soil moisture breakpoint, air temperatures increase at a greater rate as soil moisture declines. Whether such a hypersensitive regime is rooted in land surface processes and whether this soil moisture breakpoint corresponds to a known plant critical value, the permanent wilting point (WP), below which latent heat flux almost ceases, remains unclear. In this study, we explore the mechanisms linking low soil moisture to high air temperatures. From in situ observations, we confirm that the hypersensitive regime acts throughout the chain of energy processes from land to atmosphere. A simple energy-balance model indicates that the hypersensitive regime occurs when there is a dramatic drop in evaporative cooling, which happens when soil moisture dries toward the permanent WP, suggesting that the soil moisture breakpoint is slightly above the permanent WP. Precisely how a model represents the relationship between evapotranspiration and soil moisture is found to be essential to describe the occurrence of the hypersensitive regime. Thus, we advocate that weather and climate models should ensure a realistic representation of land-atmosphere interactions to obtain reliable forecasts of extremes and climate projections, aiding the assessment of heatwave vulnerability and adaptation.
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来源期刊
Water Resources Research
Water Resources Research 环境科学-湖沼学
CiteScore
8.80
自引率
13.00%
发文量
599
审稿时长
3.5 months
期刊介绍: Water Resources Research (WRR) is an interdisciplinary journal that focuses on hydrology and water resources. It publishes original research in the natural and social sciences of water. It emphasizes the role of water in the Earth system, including physical, chemical, biological, and ecological processes in water resources research and management, including social, policy, and public health implications. It encompasses observational, experimental, theoretical, analytical, numerical, and data-driven approaches that advance the science of water and its management. Submissions are evaluated for their novelty, accuracy, significance, and broader implications of the findings.
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