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Tree-ring isotopes adjacent to Lake Superior reveal cold winter anomalies for the Great Lakes region of North America

机译:苏必利尔湖附近的年轮同位素揭示了北美大湖地区的寒冷冬季异常

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摘要

Tree-ring carbon isotope discrimination (Δ13C) and oxygen isotopes (δ18O) collected from white pine (Pinus strobus) trees adjacent to Lake Superior show potential to produce the first winter-specific paleoclimate reconstruction with inter-annual resolution for this region. Isotopic signatures from 1976 to 2015 were strongly linked to antecedent winter minimum temperatures (Tmin), Lake Superior peak ice cover, and regional to continental-scale atmospheric winter pressure variability including the North American Dipole. The immense thermal inertia of Lake Superior underlies the unique connection between winter conditions and tree-ring Δ13C and δ18O signals from the following growing season in trees located near the lake. By combining these signals, we demonstrate feasibility to reconstruct variability in Tmin, ice cover, and continental-scale atmospheric circulation patterns (r ≥ 0.65, P < 0.001).
机译:从苏必利尔湖附近的白松树(Pinus strobus)树木中收集到的年轮碳同位素判别(Δ 13 C)和氧同位素(δ 18 O)显示出产生潜力该地区首次进行年际解析的冬季特定古气候重建。 1976年至2015年的同位素特征与先前的冬季最低温度(Tmin),苏必利尔湖峰冰盖以及区域至大陆尺度的冬季冬季气压变化(包括北美偶极子)密切相关。苏必利尔湖巨大的热惯性是冬季条件与来自附近生长季节的树轮的Δ 13 C和δ 18 O信号之间唯一联系的基础。湖。通过组合这些信号,我们证明了重建Tmin,冰盖和大陆尺度大气环流模式变化的可行性(r≥0.65,P <0.001)。

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