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Terrestrial water flux responses to global warming in tropical rainforest areas

机译:热带雨林地区陆地水通量对全球变暖的响应

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Precipitation extremes are expected to become more frequent in the changing global climate, which may considerably affect the terrestrial hydrological cycle. In this study, Coupled Model Intercomparison Project Phase 5 archives have been examined to explore the changes in normalized terrestrial water fluxes (precipitation minus evapotranspiration minus total runoff, divided by the precipitation climatology) in three tropical rainforest areas: Maritime Continent, Congo, and Amazon. Results show that a higher frequency of intense precipitation events is predicted for the Maritime Continent in the future climate than in the present climate, but not for the Amazon or Congo rainforests. Nonlinear responses to extreme precipitation lead to a reduced groundwater recharge and a proportionately greater amount of direct runoff, particularly for the Maritime Continent, where both the amount and intensity of precipitation increase under global warming. We suggest that the nonlinear response is related to the existence of a higher near?¢????surface soil moisture over the Maritime Continent than that over the Amazon and Congo rainforests. The wetter soil over the Maritime Continent also leads to an increased subsurface runoff. Thus, increased precipitation extremes and concomitantly reduced terrestrial water fluxes lead to an intensified hydrological cycle for the Maritime Continent. This has the potential to result in a strong temporal heterogeneity in soil water distribution affecting the ecosystem of the rainforest region and increasing the risk of flooding and/or landslides.
机译:在不断变化的全球气候中,极端降水预计将更加频繁,这可能会极大地影响陆地水文循环。在这项研究中,研究了耦合模型比较项目的第5阶段档案,以探索三个热带雨林地区(海洋大陆,刚果和亚马逊河)的标准化陆地水通量(降水量减去蒸散量减去总径流量,除以降水气候)的变化。 。结果表明,与当前气候相比,未来气候中海洋大陆的强降水事件发生频率更高,但亚马逊或刚果雨林则没有。对极端降水的非线性响应导致地下水补给减少,直接径流也成比例增加,特别是对于海洋大陆而言,在全球变暖的情况下,降水量和强度都会增加。我们认为,非线性响应与海洋大陆上比亚马逊和刚果雨林上更高的近地表土壤湿度有关。海事大陆上较湿的土壤也导致地下径流增加。因此,增加的极端降水量和随之减少的陆地水通量导致海洋大陆的水文循环加剧。这有可能导致土壤水分布的时间异质性很强,从而影响雨林地区的生态系统并增加洪水和/或滑坡的风险。

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