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Increased high-latitude photosynthetic carbon gain offset by respiration carbon loss during an anomalous warm winter to spring transition

机译:通过呼吸碳损失在异常温暖的冬季来增加高纬度的光合碳,以春跃过渡

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Arctic and boreal ecosystems play an important role in the global carbon (C) budget, and whether they act as a future net C sink or source depends on climate and environmental change. Here, we used complementary in situ measurements, model simulations, and satellite observations to investigate the net carbon dioxide (CO2) seasonal cycle and its climatic and environmental controls across Alaska and northwestern Canada during the anomalously warm winter to spring conditions of 2015 and 2016 (relative to 2010-2014). In the warm spring, we found that photosynthesis was enhanced more than respiration, leading to greater CO2 uptake. However, photosynthetic enhancement from spring warming was partially offset by greater ecosystem respiration during the preceding anomalously warm winter, resulting in nearly neutral effects on the annual net CO2 balance. Eddy covariance CO2 flux measurements showed that air temperature has a primary influence on net CO2 exchange in winter and spring, while soil moisture has a primary control on net CO2 exchange in the fall. The net CO2 exchange was generally more moisture limited in the boreal region than in the Arctic tundra. Our analysis indicates complex seasonal interactions of underlying C cycle processes in response to changing climate and hydrology that may not manifest in changes in net annual CO2 exchange. Therefore, a better understanding of the seasonal response of C cycle processes may provide important insights for predicting future carbon-climate feedbacks and their consequences on atmospheric CO2 dynamics in the northern high latitudes.
机译:北极和北极生态系统在全球碳(C)预算中发挥着重要作用,以及它们是否充当未来的净C水槽或来源取决于气候和环境变化。在这里,我们使用互补的原位测量,模型模拟和卫星观察来研究净二氧化碳(CO2)季节性周期及其在加拿大西北部的净二氧化碳(CO2)季节性周期及其气候和环境控制在大使温暖的冬季至2015年和2016年的春季条件下(相对于2010-2014)。在温泉中,我们发现光合作用比呼吸更多地增强,导致更大的二氧化碳吸收。然而,来自春季变暖的光合增强在前面的异常温暖的冬季期间,通过更大的生态系统呼吸部分抵消,导致对年度净二氧化碳平衡的几乎中立效果。 EDDY协方差CO2助焊剂测量结果表明,空气温度对冬季和弹簧的净二氧化碳交换产生了主要影响,而土壤水分在秋季的净二氧化碳交换中具有初步控制。净额交易所在北极苔原中,净二氧化碳交易所在北极地区的水分较大。我们的分析表明了潜在的C循环过程的复杂季节性相互作用,以应对不断变化的气候和水文,这些过程可能在净年度二氧化碳交易所的变化中不明显。因此,更好地理解C循环过程的季节性响应可以提供对预测未来碳气反馈的重要见解及其对北方高纬度的大气二氧化碳动态的后果。

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