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Dynamic simulations of the late MIS 3 transgressions in the East China Sea and southern Yellow Sea, China

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Abstract

Abundant evidences of higher sea levels from Jiangsu and Fujian coasts have proved a marine transgression event during 30–40 ka BP, suggesting that there was a stage with high sea level and a warm climate when ice sheets shrank in the Northern Hemisphere. The duration of 30–40 ka BP spanned a period in the late Marine Isotope Stage 3 (MIS 3) and was in nature an interstadial epoch during the Last Glacial period of the Quaternary. Different from the glacial period with a cold climate, this marine transgression considered as a penultimate higher sea level during the Quaternary remains a puzzle that why the evidence is contrary to the Quaternary glacial theory. It is important to understand sea level rise for these areas sensitively responding to the global changes in the future. To recognize the key issues on sea level changes, the eustatic sea level (H S) was defined as the glaciation-climateforced sea levels, and the relative sea level change (H R) was defined as that a sea level record was preserved in sediment that experienced multiple secondary actions of land and sea effects. On the basis as defined above, we constructed multi-level models of climate-driven glacio-eustatic changes and land-sea systems. By integrating data sets from eight borehole cores and prescribing the boundary conditions, we simulated the changes of H S and H R in the East China Sea and southern Yellow Sea areas in the late MIS 3. The marine transgression strata from the borehole core data was identified at ca. 30 m below present sea level as a result of the collective influence of ice melting water, neotectonic subsidence, sediment compaction and terrestrial sediment filling since ca. 35 ka ago, whereas the simulated relative sea-levels turned out to be–26.3––29.9 m a.s.l. The small error involved in the simulation results of ±(2.5–4.5) m demonstrated the credibility of the results. Our results indicated that sea level change in the late MIS 3 was dominated by glacial effects, in which the eustatic sea-level was between–19.2––22.1 m a.s.l. The study sheds light on the nature of sea-level changes along the east coast of China in the late MIS 3 and contributes to understanding the characteristics of marine transgression under the effects of multiple complex land-sea interactions.

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References

  • Bard E, Hamelin B, Fairarks R G. 1990. U-Th ages obtained by mass spectrometry in corals from Barbados: sea level during the past 130, 000 years. Nature, 346(6283): 456–458

    Article  Google Scholar 

  • Bureau of Geology and Mineral Resources of Jiangsu. 1984. Regional Geological Log of Jiangsu and Shanghai (in Chinese). Beijing: Geology Press, 50–113

    Google Scholar 

  • Cann J H, Belperio A P, Murray-Wallace C V. 2000. Late Quaternary paleo-sea levels and paleoenvironments inferred from foraminifera, northern Spencer Gulf, South Australia. Journal of Foraminiferal Research, 30(1): 29–53

    Article  Google Scholar 

  • Chai Ligen. 1988. An introduction to the tectonic system of the East China Sea. Oil and Gas Geology (in Chinese), 9(1): 100–108

    Google Scholar 

  • Chappell J, Omura A, Esat T, et al. 1996. Reconciliation of late Quaternary sea levels derived from coral terraces at Huon Peninsula with deep sea oxygen isotope records. Earth and Planetary Science Letters, 141(1): 227–236

    Article  Google Scholar 

  • Chappell J, Shackleton N J. 1986. Oxygen isotopes and sea level. Nature, 324(6093): 137–140

    Article  Google Scholar 

  • Chen Wanli, Gu Hongqun, Zhang Daozheng. 1998a. Study on the Quaternary marine transgression and coastline change. Jiangsu Geology (in Chinese), 22(Supp): 45–50

    Google Scholar 

  • Chen Wenrui, Lan Dongzhao, Chen Chenghui. 1998b. Late Quaternary diatom and sea level changes in estuarine plain of the Jiulong River. Acta Oceanologica Sinica, 17(4): 509–518

    Google Scholar 

  • Clapperton C M, Sugden D E, Kaufman D S, et al. 1995. The last glaciation in central Magellan Strait, southernmost Chile. Quaternary Research, 44(2): 133–148

    Article  Google Scholar 

  • Clark P U, Clague J J, Curry B B, et al. 1993. Initiation and development of the Laurentide and Cordilleran ice sheets following the last interglaciation. Quaternary Science Reviews, 12(2): 79–114

    Article  Google Scholar 

  • Fuji N, Horowitz A. 1989. Brunhes epoch paleoclimates of Japan and Israel. Palaeogeography, Palaeoclimatology, Palaeoecology, 72: 79–88

    Article  Google Scholar 

  • Gao Shu. 2013. Holocene shelf-coastal sedimentary systems associated with the Changjiang River: An overview. Acta Oceanologica Sinica, 32(12): 4–12

    Article  Google Scholar 

  • Gao Zhiqiang, Liu Xiangyang, Ning Jicai, et al. 2014. Analysis on changes in coastline and reclamation area and its causes based on 30-year satellite data in China. Transactions of the Chinese Society of Agricultural Engineering (in Chinese), 30(12): 140–147

    Google Scholar 

  • He Yaotang. 2011. The sedimentary sporopollen and microbody paleontology and its paleoenvironment significance of the Late Quaternary period basin in Quanzhou city, Fujian province. Geology of Fujian (in Chinese), 30(3): 224–232

    Google Scholar 

  • Hu Huimin, Huang Liren, Yang Guohua. 1992. Recent crustal vertical movement in the Chang-Jiang River delta and its adjacent area. Acta Geographica Sinica (in Chinese), 47(1): 22–30

    Google Scholar 

  • Huang Zhenguo, Li Pingri, Zhang Zhongying, et al. 1986. Sea-level Changes in South China since the Late Pleistocene Epoch (in Chinese). Beijing: China Ocean Press, 178–194

    Google Scholar 

  • Huang Baoqi, Yang Wenyu. 2006. Variations of upper water structure in MIS 3 from the Northern South China Sea. Quaternary Sciences (in Chinese), 26(3): 436–441

    Google Scholar 

  • Huang Liren, Yang Guohua, Hu Huimin. 1990. Studies on the isostatic datum of coast sea level changes of China. In: Shi Yafeng, Wang Mingxing, Zhang Piyuan, et al., eds. A Review of Climatic and Sea Level Changes of China (1) (in Chinese). Beijing: State Seismic Bureau, 54–55

    Google Scholar 

  • Jiang Minggen. 1999. Application of consolidation study in sedimentary environment analysis. Coal Geology and Exploration (in Chinese), 27(1): 1–3

    Google Scholar 

  • Lambeck K, Bard E. 2000. Sea-level change along the French Mediterranean coast for the past 30, 000 years. Earth and Planetary Science Letters, 175(3–4): 203–222

    Article  Google Scholar 

  • Lambeck K, Chappell J. 2001. Sea level change through the last glacial cycle. Science, 292(5517): 679–686

    Article  Google Scholar 

  • Li Yongfei. 2014. Stratigraphy and the sedimentary environments in Fujian Coast since the Late Quaternary (in Chinese) [dissertation]. Nanjing: Nanjing Institute of Geography and Limnology, Chinese Academy of Sciences, 30–45

    Google Scholar 

  • Li Yanyan, Wang Jian, Cao Guangjie. 2012. Sedimentary evolution characteristics of the Yangtze River at Yangzhong section during the last 50, 000 years. Journal of Nanjing Normal University (Natural Science Edition) (in Chinese), 35(2): 108–112

    Google Scholar 

  • Lowe J J, Walker M J C. 1997. Reconstructing Quaternary Environments. 2nd ed. Harlow: Addison Wesley Longman Press, 17–86

    Google Scholar 

  • Martinson D G, Pisias N G, Hays J D, et al. 1987. Age dating and the orbital theory of the ice ages: Development of a high-resolution 0 to 300, 000-year chronostratigraphy. Quaternary Research, 27(1): 1–29

    Article  Google Scholar 

  • McManus J F, Oppo D W, Cullen J L. 1999. A 0. 5-million-year record of millennial-scale climate variability in the North Atlantic. Science, 283(5404): 971–975

    Article  Google Scholar 

  • Peltier W R. 1994. Ice age paleotopography. Science, 265(5169): 195–201

    Article  Google Scholar 

  • Ren Meie. 2006. Sediment discharge of the Yellow River, China: past, present and future-a synthesis. Advances in Earth Science (in Chinese), 21(6): 551–563

    Google Scholar 

  • Shackleton N J. 1987. Oxygen isotopes, ice volume and sea level. Quaternary Science Reviews, 6(3–4): 183–190

    Article  Google Scholar 

  • Shi Kai. 2010. Evolution of Paleoenvironment since Late Pleistocene of SC1 core in Chenghu Lake, Jiangsu Province. Geoscience (in Chinese), 24(2): 214–220

    Google Scholar 

  • Shi Yafeng, Yao Tandong. 2002. MIS-3b (54~44 ka BP) cold period and glacial advance in middle and low latitudes. Journal of Glaciology and Geocryology (in Chinese), 24(1): 1–9

    Google Scholar 

  • Shi Yafeng, Yu Ge, Liu Xiaodong, et al. 2001. Reconstruction of the 30–40 ka BP enhanced Indian monsoon climate based on geological records from the Tibetan Plateau. Palaeogeography, Palaeoclimatology, Palaeoecology, 169(1–2): 69–83

    Article  Google Scholar 

  • Skene K I, Piper D J W, Aksu A E, et al. 1998. Evaluation of the global oxygen isotope curve as a proxy for Quaternary sea level by modeling of delta progradation. Journal of Sedimentary Research, 68(6): 1077–1092

    Article  Google Scholar 

  • Stumpf A J, Broster B E, Levson V M. 2000. Multiphase flow of the Late Wisconsinan Cordilleran ice sheet in western Canada. Geological Society of America Bulletin, 112(12): 1850–1663

    Article  Google Scholar 

  • Sun Xiangping. 2006. Offshore Regional Seas of China (in Chinese). Beijing: China Ocean Press, 1–10

    Google Scholar 

  • Ukkonen P, Lunkka J P, Jungner H, et al. 1999. New radiocarbon dates from Finnish mammoths indicating large ice-free areas in Fennoscandia during the Middle Weichselian. Journal of Quaternary Science, 14(7): 711–714

    Article  Google Scholar 

  • Wang Longsheng, Hu Shouyun, Yu Ge, et al. 2015. Paleoenvironmental reconstruction of the radial sand ridge field in the South Yellow Sea (east China) since 45 ka using the sediment magnetic properties and granulometry. Journal of Applied Geophysics, 122: 1–10

    Article  Google Scholar 

  • Wang Xueyu, Ke Xiankun. 1997. Grain-size characteristics of the extant tidal flat sediments along the Jiangsu coast, China. Sediment Geology, 112(1–2): 105–122

    Article  Google Scholar 

  • Wang Qiang, Li Fenglin, Li Yude, et al. 1986. The nomenclature of the Quaternary transgression of West and North coast plains of Bohai Sea. Haiyang Xuebao (in Chinese), 8(1): 72–82

    Google Scholar 

  • Wang Jintai, Wang Pingxian. 1980. Relationship between sea-level changes and climatic fluctuations in East China since Late Pleistocene. Acta Geographica Sinica (in Chinese), 35(4): 299–312

    Google Scholar 

  • Wei Taoyuan, Chen Zhongyuan, Wei Zixin, et al. 2006. The distribution of geochemical trace elements in the Quaternary sediments of the Changjiang River mouth and the paleoenvironmental implications. Quaternary Sciences (in Chinese), 26(3): 397–405

    Google Scholar 

  • Winograd I J. 2001. The magnitude and proximate cause of ice-sheet growth since 35,000 yr B.P.. Quaternary Research, 56(3): 299–307

    Article  Google Scholar 

  • Xie Zhiren, Yuan Linwang, Lv Guonian. 2012. The Changes of Sea Level and Land Surface System (in Chinese). Beijing: Sciences Press, 55–63

    Google Scholar 

  • Yang Xianzhong, Wei Naiyi, Wang Qiang, et al. 2010. Sedimentary characteristics of an ancient river channel in Zhenjiang-Jiangdu segment of Yangtze River delta. Marine Geology and Quaternary Geology (in Chinese), 30(5): 11–18

    Google Scholar 

  • Yu Ge, Gui Feng, Shi Yafeng, et al. 2007. Late marine isotope stage 3 palaeoclimate for East Asia: A data-model comparison. Palaeogeography, Palaeoclimatology, Palaeoecology, 250(1–4): 167–183

    Article  Google Scholar 

  • Yu Ge, Zheng Yiqun, Ke Xiankun. 2005. 35 ka BP climate simulations in East Asia and probing the mechanisms of climate changes. Chinese Science Bulletin, 50(1): 58–67

    Article  Google Scholar 

  • Zeng Congsheng. 1997. Transgressions and sea level changes along the northeast coast of Fujian during the Late Quaternary. Journal of Fujian Teachers University (Natural Science) (in Chinese), 13(4): 94–101

    Google Scholar 

  • Zhang Lu. 2008. A kinematic model and dynamic cause of Quaternary tectonic movement of Southeastern coastal basins in Fujian province (in Chinese) [dissertation]. Beijing: Institute of Geology, China Earthquake Administration, 215

    Google Scholar 

  • Zhang Zhenke, Xie Li, Zhang Yunfeng, et al. 2010. Sedimentary records of the MIS 3 transgression event in the North Jiangsu plain, China. Quaternary Sciences (in Chinese), 30(5): 883–891

    Google Scholar 

  • Zhen Zhiguo, Zhong Wei, Xue Jibin, et al. 2008. Progress in the studies of climatic features in different areas of China during the MIS-3. Journal of Glaciology and Geocryology (in Chinese), 30(5): 815–824

    Google Scholar 

  • Zhu Xiaodong, Ren Meie, Zhu Dakui. 1999. Changes in depositional environments in the area near the center of the North Jiangsu radial banks since the Late Pleistocene. Oceanologia et Limnologia Sinica (in Chinese), 30(4): 427–434

    Google Scholar 

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Correspondence to Ge Yu.

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Foundation item: the National Basic Research Program of China under contract Nos 2013CB956501 and 2012CB956103.

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Ye, L., Yu, G., Liao, M. et al. Dynamic simulations of the late MIS 3 transgressions in the East China Sea and southern Yellow Sea, China. Acta Oceanol. Sin. 35, 48–55 (2016). https://doi.org/10.1007/s13131-016-0919-5

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  • DOI: https://doi.org/10.1007/s13131-016-0919-5

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