Demonstration of process-based reconstruction of annual temperatures from tree ring oxygen isotope

T. Bose, Supriyo Chakraborty
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Abstract

Forecasting the global warming of the post-industrial period requires knowledge of natural variations in climatic parameters, especially temperature in preceding times. Due to its stable time resolution and known physiochemical formation process, tree ring cellulose isotope datasets have immense potential to yield climatic variability information. The first standardized site-independent  temperature reconstruction model from tree-ring cellulose oxygen isotope data is demonstrated here using data from a montane site in the western Himalayas. This model does not require any statistical calibration and can be directly compared with instrumental or modelled data. The resulting temperature amplitude is dependent on moisture availability and this input is needed to modulate the reconstruction. The present work tests the possibility of input of carbon isotope discrimination as a proxy of relative humidity. This input achieved amplitude control but additional frequency components were introduced to the reconstruction.
从树环氧同位素重建基于过程的年气温演示
预测后工业化时期的全球变暖需要了解气候参数的自然变化,特别是之前时期的温度。由于其稳定的时间分辨率和已知的生理化学形成过程,树环纤维素同位素数据集在提供气候变异信息方面具有巨大潜力。本文利用喜马拉雅山西部一个山地的数据,展示了首个独立于地点的标准化树环纤维素氧同位素温度重建模型。该模型无需任何统计校准,可直接与仪器数据或模型数据进行比较。由此得出的温度振幅取决于水分的可用性,因此需要输入水分来调节重建。本研究测试了输入碳同位素判别作为相对湿度代理的可能性。这种输入实现了振幅控制,但在重建中引入了额外的频率成分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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