A Highly Resolved Speleothem δ13C Record from Central China and Its Manifestation on Multiple Time Scales during the Last Glacial

Author:

Chen Qingmin1,Cheng Xing12ORCID,Deng Li1,He Kaikai1,Zhang Wenshuo1,Xue Gang23,Zhang Zeke2,Ma Le2,Wang Gaohong1,Cheng Hai45,Edwards R. Lawrence5

Affiliation:

1. Shaanxi Experimental Center of Geological Survey, Shaanxi Institute of Geological Survey, Xi’an 710065, China

2. State Key Laboratory of Loess and Quaternary Geology, Institute of Earth Environment, Chinese Academy of Sciences, Xi’an 710061, China

3. State Key Laboratory of Continental Dynamics, Department of Geology, Northwest University, Xi’an 710069, China

4. Institute of Global Environmental Change, Xi’an Jiaotong University, Xi’an 710049, China

5. Department of Earth Sciences, University of Minnesota, Minneapolis, MN 55455, USA

Abstract

Speleothem δ13C in monsoonal China differs from speleothem δ18O, which is widely used as a climatic proxy for several complex control reasons. Nevertheless, δ13C records have the potential to reveal the implications of hydroclimatic changes. This study reports a speleothem δ13C record from Didonghe (DDH) Cave in central China spanning 34 to 13 kyr BP. After we investigated the factors that influence speleothem δ13C, we found that the δ13C record showed that DDH Cave can prompt directional shifts via local hydroclimatic changes, such as in vegetation types, biomass, and rock–water interaction processes, suggesting that δ13C is mainly controlled by the local hydroclimate. Ensemble empirical mode decomposition (EEMD) results revealed a coupling relationship between δ18O and δ13C on multiple timescales, which suggested that changes in precipitation caused by large-scale monsoonal circulation are controlled by regional hydrological conditions to a great extent. However, the hydrological conditions of the cave were relatively mild and humid during the last glacial maximum (LGM), which revealed the impact of evaporation on changes in the region’s hydrological conditions. We also found that the δ18O and δ13C profiles decoupled when δ13C changed with a shift in the location of the westerly during HS1. The δ13C record correlates well with other paleoclimate records, suggesting that regional hydrological conditions are also modulated by the Earth’s internal and external driving factors.

Funder

Commonweal Geological Survey Project of Shaanxi Province

Shaanxi Province Natural Science Basic Research Program—Youth Project

Opening Fund of State Key Laboratory of Loess and Quaternary Geology

Shaanxi Science and Technology Association Youth Talent Lifting Program

US National Science Foundation

Publisher

MDPI AG

Reference78 articles.

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