Four peat humification-recorded Holocene hydroclimate changes in the southern Altai Mountains of China

Author:

Zhang Dongliang12ORCID,Chen Liang34,Feng Zhaodong34,Ran Min34,Yang Yunpeng34ORCID,Zhang Yan5,Liu Qi6

Affiliation:

1. State Key Laboratory of Desert and Oasis Ecology, Xinjiang Institute of Ecology and Geography, Chinese Academy of Sciences, China

2. Research Center for Ecology and Environment of Central Asia, Chinese Academy of Sciences, China

3. College of Environment and Planning, Henan University, China

4. Key Laboratory of Geospatial Technology for the Middle and Lower Yellow River Regions (Ministry of Education), Henan University, China

5. Key Laboratory of Humid Subtropical Eco-Geographical Process Ministry of Education, Institute of Geographical Sciences, Fujian Normal University, China

6. College of Resource and Environment Sciences, Xinjiang University, China

Abstract

In this study, Holocene humification records were derived from four ombrotrophic peatlands to investigate the millennial-scale and decadal-centennial-scale variability of peat decomposition and to explore the paleoclimatic and paleohydrological implications. After eliminating the species-specific and site-specific noise and removing the time-dependency effect for each of four peat sequences, the averaged residuals of four peat humification sequences exhibit two-order variations. The millennial-scale variation of averaged residuals of four peat humification is characterized by a bow-shaped curve and is basically moisture-dependent. In detail, the humification in the middle Holocene (~8200–~4000 cal. yr BP) was higher than in the early Holocene (before ~8200 cal. yr BP) and also than in the late Holocene (after ~4000 cal. yr BP). The decadal/centennial-scale variations are superimposed on the bow-shaped curve and have been primarily paced by the sea surface temperature in the North Atlantic whose signals were propagated to Central Asia via the prevailing westerlies, which implies that lower temperature and lower temperature-suppressed evaporation (i.e. elevated moisture level) were most likely responsible for limiting the decomposition activity in the uppermost peat layer. These results indicate the potential for humification records from ombrotrophic peatlands in Central Asia to elucidate paleoclimate variability.

Funder

Postdoctoral Innovative Talent Support Program of China

Western Young Scholar Program-B of Chinese Academy of Sciences

National Natural Science Grants of China

Publisher

SAGE Publications

Subject

Paleontology,Earth-Surface Processes,Ecology,Archaeology,Global and Planetary Change

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