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Early Spring Severe Frost Events and Drought Induce Rapid Carbon Loss in High Elevation Meadows

机译:早春严峻的霜冻事件和干旱导致高海拔草甸快速碳损失

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摘要

By the end of the 20th century, the onset of spring in the Sierra Nevada mountain range of California has been occurring on average three weeks earlier than historic records. Superimposed on this trend is an increase in the presence of highly anomalous “extreme” years, where spring arrives either significantly late or early. The timing of the onset of continuous snowpack coupled to the date at which the snowmelt season is initiated play an important role in the development and sustainability of mountain ecosystems. In this study, we assess the impact of extreme winter precipitation variation on aboveground net primary productivity and soil respiration over three years (2011 to 2013). We found that the duration of snow cover, particularly the timing of the onset of a continuous snowpack and presence of early spring frost events contributed to a dramatic change in ecosystem processes. We found an average 100% increase in soil respiration in 2012 and 2103, compared to 2011, and an average 39% decline in aboveground net primary productivity observed over the same time period. The overall growing season length increased by 57 days in 2012 and 61 days in 2013. These results demonstrate the dependency of these keystone ecosystems on a stable climate and indicate that even small changes in climate can potentially alter their resiliency.
机译:到20世纪末,加利福尼亚内华达山脉的春季开始的时间平均比历史记录早了三周。这种趋势的叠加是高度异常的“极端”年份的出现,春季显着晚或早到达。连续积雪的开始时间与融雪季节开始的日期在山区生态系统的发展和可持续性中起着重要作用。在这项研究中,我们评估了三年(2011年至2013年)冬季极端降水变化对地上净初级生产力和土壤呼吸的影响。我们发现积雪的持续时间,特别是连续积雪的开始时间和早春霜冻事件的出现,造成了生态系统过程的巨大变化。我们发现,与2011年相比,2012年和2103年的土壤呼吸作用平均增加了100%,而同期的地面净初级生产力平均下降了39%。整个生长季节的长度在2012年增加了57天,在2013年增加了61天。这些结果证明了这些主要生态系统对稳定气候的依赖性,并且表明即使很小的气候变化也可能改变其弹性。

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