Skip to main content

Advertisement

Log in

Environmental magnetic record of a ~ 3000-years subalpine peat core from the western Nanling Mountains, South China

  • Original paper
  • Published:
Journal of Paleolimnology Aims and scope Submit manuscript

Abstract

A 95-cm subalpine peat core from the Daping Swamp, located in the transition zone between the middle and southern subtropical regions of China, provides an environmental mineral magnetism record over the past ~ 3000 years. Magnetic concentration-dependent parameters [i.e. magnetic susceptibility (χlf), anhysteretic susceptibility (χARM), and saturation isothermal remanent magnetization (SIRM)] and grain size-dependent parameters [i.e. percentage frequency-dependent susceptibility (χfd%), SIRM/χlf, and χARMlf] of core and catchment sediments were measured to characterize provenance and catchment processes. Multi-magnetic parameters revealed that the primary magnetic minerals in the peat samples were mainly detrital magnetic minerals, which originated from catchment surface soil erosion. Changes in vegetation coverage as well as pedogenesis induced by rainfall variation play an important role in controlling the input of magnetic materials. Therefore, we infer that variations of magnetic features in the core bear potential to elucidate the history of environmental changes in the past ~ 3000 years, which are closely related to Asian summer monsoon evolution. Multiple parameters revealed that in three periods (i.e. 2700–2500, 1600–1000, and 500–300 cal year BP), decreased pedogenesis intensity and increased erosion induced by decline in vegetation coverage under dry conditions led to increased input of magnetic minerals, especially the coarser minerals in peat samples. However, in the two periods (i.e. 2500–1600, and 1000–500 cal year BP), multi-magnetic proxies indicate increased pedogenesis and decreased input of magnetic minerals dominated by fine-grained magnetic minerals caused by increased vegetation coverage under relatively wet and warm conditions. These climatic periods are of broad regional consistence across the world. The general trend of the late Holocene climate revealed by magnetic parameters confirms the sensitivity of environmental magnetism in this peat succession from the subalpine western Nanling Mountains to the climatic/environmental variability in the Asian summer monsoon region.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Fig. 1
Fig. 2
Fig. 3
Fig. 4
Fig. 5
Fig. 6
Fig. 7
Fig. 8
Fig. 9

Similar content being viewed by others

References

  • Agnihotri R, Dutta K, Bhushan R, Somayajulu BLK (2002) Evidence for solar forcing on the Indian monsoon during the last millennium. Earth Planet Sci Lett 198:521–527

    Article  Google Scholar 

  • Alley RB (2000) The Younger Dryas cold interval as viewed from central Greenland. Quat Sci Rev 19:213–226

    Article  Google Scholar 

  • Ammann CM, Naveau P (2003) Statistical analysis of tropical explosive volcanism occurrences over the last 6 centuries. Geophys Res Lett. https://doi.org/10.1029/2000gl016388

    Google Scholar 

  • Anderson NJ, Rippey B (1988) Diagenesis of magnetic minerals in the recent sediments of a eutrophic lake. Limnol Oceanogr 33(6):1476–1492

    Google Scholar 

  • Ao H, Dekkers MJ, Deng CL, Zhu RX (2009) Palaeclimatic significance of the Xiantai fluvio-lacustrine sequence in the Nihewan Basin (North China), based on rock magnetic properties and clay mineralogy. Geophys J Int 177(3):913–924

    Article  Google Scholar 

  • Blaha U, Saptoka B, Appel E, Stanjek H, Rösler W (2008) Micro-scale grain-size analysis and magnetic properties of coal-fired power plant fly ash and its relevance for environmental magnetic pollution studies. Atmos Environ 42:8359–8370

    Article  Google Scholar 

  • Chen FH, Liu JB, Xu QH, Li YC, Chen JH, Wei HT, Liu QS, Wang ZL, Cao XY, Zhang SR (2013) Environmental magnetic studies of sediment cores from Gonghai Lake: implications for monsoon evolution in North China during the late glacial and Holocene. J Paleolimnol 49:447–464

    Article  Google Scholar 

  • Chu GQ, Liu JQ, Sun Q, Lu HY, Gu ZY, Wang WY, Liu TS (2002) The ‘mediaeval warm period’ drought recorded in Lake Huguangyan, tropical South China. Holocene 12(5):511–516

    Article  Google Scholar 

  • Day R, Fuller M, Schmidt VA (1977) Hysteresis properties of titanomagnetites: grain-size and compositional dependence. Phys Earth Planet Inter 13(4):260–267

    Article  Google Scholar 

  • Dearing JA (1999) Environmental Magnetic susceptibility using the Bartington MS2 system, 2nd edn. Chinese Publications, Kenilworth

    Google Scholar 

  • Dearing JA, Dann RJL, Hay K, Lees JA, Loveland PJ, Maher BA, O’Grady K (1996) Frequency-dependent susceptibility measurements of environmental materials. Geophys J Int 124(1):228–240

    Article  Google Scholar 

  • Dearing JA, Bird PM, Dann RJL, Benjamin SF (1997) Secondary ferrimagnetic minerals in Welsh soils: a comparison of mineral magnetic detection methods and implications for mineral formation. Geophys J Int 130(3):727–736

    Article  Google Scholar 

  • Deng CL, Zhu RX, Jackson MJ, Verosub KL, Singer MJ (2001) Variability of the temperature–dependent susceptibility of the Holocene eolian deposits in the Chinese loess plateau: a pedogenesis indicator. Phys Chem Earth Part A 26(11–12):873–878

    Article  Google Scholar 

  • Deng CL, Vidic NJ, Verosub KL, Singer MJ, Liu QS, Shaw J, Zhu RX (2005) Mineral magnetic variation of the Jiaodao Chinese loess/paleosol sequence and its bearing on long-term climatic variability. J Geophys Res Solid Earth 110(B3):B03103

    Article  Google Scholar 

  • Duan ZQ, Liu QS, Yang XQ, Gao X, Su YL (2014) Magnetism of the Huguangyan Maar Lake sediments, Southeast China and its paleoenvironmental implications. Palaeogeogr Palaeoecol 395:158–167

    Article  Google Scholar 

  • Duan ZQ, Liu QS, Gai CC, Zhao XX (2017) Magnetostratigraphic and environmental implications of greigite (Fe3S4) formation from Hole U1433A of the IODP expedition 349, South China Sea. Mar Geol 394:82–97

    Article  Google Scholar 

  • Dunlop DJ (2002) Theory and application of the day plot (Mrs/Ms versus Hcr/Hc) 2. Application to data for rocks, sediments, and soils. J Geophys Res Solid Earth 107(B3):EPM 5–1–EPM 5–15

    Google Scholar 

  • Dunlop DJ, Özdemir Ö (1997) Rock magnetism: fundamentals and frontiers. Cambridge University Press, London

    Book  Google Scholar 

  • Egli R, Chen AP, Winklhofer M, Kodama KP, Horng CS (2010) Detection of noninteracting single domain particles using first-order reversal curve diagrams. Geochem Geophys Geosyst 11(1):1–22

    Article  Google Scholar 

  • Evans ME, Heller F (2003) Environmental magnetism: principles and applications of enviromagnetics. Academic Press, London

    Google Scholar 

  • Foster IDL, Oldfield F, Flower RJ, Keatings K (2008) Mineral magnetic signatures in a long core from Lake Qarun, Middle Egypt. J Paleolimnol 40(3):835–849

    Article  Google Scholar 

  • Gao YX, Xu SY, Guo QY (1962) Monsoon region and regional climate in China. In: Gao YX, Xu SY (eds) Some problems of East Asian Monsoon: 49–63. Science Press, Beijing (in Chinese)

    Google Scholar 

  • He BY, Zhang S, Cai SM (2006) Climatic changes recorded in peat from the Dajiu lake basin in Shennongjia since the last 2,600 years. Mar Geol Quat Geol 23(2):109–115 (in Chinese)

    Google Scholar 

  • Heslop D, Roberts AP, Chang L (2014) Characterizing magnetofossils from first-order reversal curve (FORC) central ridge signatures. Geochem Geophys Geosyst 15:2170–2179

    Article  Google Scholar 

  • Hu CY, Henderson GM, Huang JH, Xie SC, Sun Y, Johnson KR (2008) Quantification of Holocene Asian monsoon rainfall from spatially separated cave records. Earth Planet Sci Lett 266:221–232

    Article  Google Scholar 

  • Joos F, Gerber S, Prentice IC, Otto-Bliesner BL, Valdes PJ (2004) Transient simulations of Holocene atmospheric carbon dioxide and terrestrial carbon since the Last Glacial Maximum. Glob Biogeochem Cycles 18:GB2002

    Article  Google Scholar 

  • King J, Banerjee SK, Marvin J, Özdemir Ö (1982) A comparison of different magnetic methods for determining the relative grain size of magnetite in natural materials: some results from lake sediments. Earth Planet Sci Lett 59(2):404–419

    Article  Google Scholar 

  • Kopp RE, Kirschvink JL (2008) The identification and biogeochemical interpretation of fossil magnetotactic bacteria. Earth Sci Rev 86:42–61

    Article  Google Scholar 

  • Li YX, Yu ZC, Kodama KP, Moeller RE (2006) A 14,000-year environmental change history revealed by mineral magnetic data from White Lake, New Jersey, USA. Earth Planet Sci Lett 246(1–2):27–40

    Article  Google Scholar 

  • Liu QS, Roberts AP, Torrent J, Horng CS, Larrasoaña JC (2007) What do the HIRM and S-ratio really measure in environmental magnetism? Geochem Geophys Geosyst 80(9):1–10

    Google Scholar 

  • Liu SZ, Deng CL, Xiao ZL, Li JH, Paterson GA, Chang L, Yi L, Qin HF, Pan YX, Zhu RX (2015) Insolation driven biomagnetic response to the Holocene Warm Period in semi-arid East Asia. Sci Rep UK 5:8001

    Article  Google Scholar 

  • Liu SZ, Deng CL, Xiao ZL, Li JH, Paterson GA, Chang L, Yi L, Qin HF, Zhu RX (2016) High-resolution enviromagnetic records of the last deglaciation from Dali Lake, Inner Mongolia. Palaeogeogr Palaeoecol 454:1–11

    Article  Google Scholar 

  • Maher BA, Taylor RM (1988) Formation of ultrafine-grained magnetite in soils. Nature 336:368–370

    Article  Google Scholar 

  • Maher BA, Thompson R (1999) Quaternary environments, climate and magnetism. Cambridge University Press, London

    Book  Google Scholar 

  • Mann ME, Zhang ZH, Hughes MK, Bradley RS, Miller SK, Rutherford S, Ni FB (2008) Proxy-based reconstructions of hemispheric and global surface temperature variations over the past two millennia. Proc Natl Acad Sci USA 105(36):13252–13257

    Article  Google Scholar 

  • Martínez-Cortizas A, Varela EP, Bindler R, Biester H, Cheburkin A (2012) Reconstructing historical Pb and Hg pollution in NW Spain using multiple cores from the Chao de Lamoso bog (Xistral Mountains). Geochim Cosmochim Acta 82:68–78

    Article  Google Scholar 

  • Moberg A, Sonechkin DM, Holmgren K, Datsenko NM, Karlén W, Lauritzen SE (2005) Highly variable Northern Hemisphere temperatures reconstructed from low- and high-resolution proxy data. Nature 433:613–617

    Article  Google Scholar 

  • Oches EA, Banerjee SK (1996) Rock-magnetic proxies of climate change from loess–paleosol sediments of the Czech Republic. Stud Geophys Geod 40(3):287–300

    Article  Google Scholar 

  • Oldfield F (1999) The rock magnetic identification of magnetic mineral and grain size assemblages. In: Walden J, Oldfield F, Smith J (eds) Environmental magnetism, a practical guide technical guide no. 6. Quaternary Research Association, London

    Google Scholar 

  • Oldfield F (2013) Mud and magnetism: records of late Pleistocene and Holocene environmental change recorded by magnetic measurements. J Paleolimnol 49(3):465–480

    Article  Google Scholar 

  • Oldfield F, Battarbee RW, Boyle JF, Cameron NG, Davis B, Evershed RP, McGovern AD, Jones V, Thompson R, Walker R (2010) Terrestrial and aquatic ecosystem responses to late Holocene climate change recorded in the sediments of Lochan Uaine, Cairngorms, Scotland. Quat Sci Rev 29:1040–1054

    Article  Google Scholar 

  • Ouyang PT, Tian CJ, Zhu ZY, Qiu Y, Appel E, Fu SQ (2014) Magnetic characteristics and its environmental implications of core YSJD-86GC sediments from the southern South China Sea. Sci Bull 59(25):3176–3187 (in Chinese)

    Article  Google Scholar 

  • Pan YX, Zhu RX, Banerjee SK, Gill J, Williams Q (2000) Rock magnetic properties related to thermal treatment of siderite: behavior and interpretation. J Geophys Res Solid Earth 105:783–794

    Article  Google Scholar 

  • Peters C, Thompson R (1998) Magnetic identification of selected natural iron oxides and sulphides. J Magn Magn Mater 183(3):365–374

    Article  Google Scholar 

  • Qian WH, Lin X, Zhu YF, Xu Y, Fu JL (2007) Climatic regime shift and decadal anomalous events in China. Clim Change 84(2):167–189

    Article  Google Scholar 

  • Rawat S, Gupta AK, Srivastava P, Sangode SJ, Nainwal HC (2015) A 13,000 year record of environmental magnetic variations in the lake and peat deposits from the Chandra valley, Lahaul: implications to Holocene monsoonal variability in the NW Himalaya. Palaeogeogr Palaeoecol 440:116–127

    Article  Google Scholar 

  • Reimer PJ, Bard E, Bayliss A, Beck JW, Blackwell PG, Ramsey CB, Buck CE, Cheng H, Edwards RL, Friedrich M, Grootes PM, Guilderson TP et al (2013) Intcal13 and marine13 radiocarbon age calibration curves 0–50,000 years cal BP. Radiocarbon 55(4):1869–1887

    Article  Google Scholar 

  • Roberts AP, Turner GM (1993) Diagenetic formation of ferrimagnetic iron sulphide minerals in rapidly deposited marine sediments, South Island, New Zealand. Earth Planet Sci Lett 115:257–273

    Article  Google Scholar 

  • Roberts AP, Pike CR, Verosub KL (2000) First-order reversal curve diagrams: a new tool for characterizing the magnetic properties of natural samples. J Geophys Res Solid Earth 105:28461–28475

    Article  Google Scholar 

  • Roberts AP, Heslop D, Zhao X, Pike CR (2014) Understanding fine magnetic particle systems through use of first-order reversal curve diagrams. Rev Geophys 52:557–602

    Article  Google Scholar 

  • Roberts AP, Zhao X, Harrison RJ, Heslop D, Muxworthy AR, Rowan CJ, Larrasoaña JC, Florindo F (2018) Signatures of reductive magnetic mineral diagenesis from unmixing of first-order reversal curves. J Geophys Res Solid Earth 123:4500–4522

    Article  Google Scholar 

  • Sandeep K, Shankar R, Warrier AK, Zhou WJ, Lu XF (2015) The environmental magnetic record of palaeoenvironmental variations during the past 3100 years: a possible solar influence? J Appl Geophys 118:24–36

    Article  Google Scholar 

  • Sheng EG, Yu KK, Xu H, Lan JH, Liu B, Che S (2015) Late Holocene Indian summer monsoon precipitation history at Lake Lugu, northwestern Yunnan Province, southwestern China. Palaeogeogr Palaeoecol 438:24–33

    Article  Google Scholar 

  • Snowball IF (1993) Geochemical control of magnetite dissolution in subarctic lake sediments and the implications for environmental magnetism. J Quat Sci 8(4):339–346

    Article  Google Scholar 

  • Snowball IF, Thompson R (1988) The occurrence of greigite in sediments from Loch Lomond. J Quat Sci 3(2):121–125

    Article  Google Scholar 

  • Thompson R, Oldfield F (1986) Environmental magnetism. Allen and Unwin Environmental Magnetism, London

    Book  Google Scholar 

  • Wang CL, Liu S, Wu J, Zhou YG, Shi XM, Liang HY (2013) Ore-forming element distribution around the southwestern domain of the Miaoershan-Yuechengling complex in the northeastern Guangxi and its geological implication. Geochimica 42(5):405–413 (in Chinese)

    Google Scholar 

  • Wang HY, Song YQ, Cheng Y, Luo Y, Zhang CN, Gao YS, Qiu AA, Deng L, Liu HY (2016) Mineral magnetism and other characteristics of sediments from a sub-alpine lake (3080 m a. s. l.) in central east China and their implications on environmental changes for the last 5,770 years. Earth Planet Sci Lett 452:44–59

    Article  Google Scholar 

  • Wanner H, Beer J, Bütikofer J, Crowley TJ, Cubasch U, Flückiger J, Goosse H, Grosjean M, Joos F, Kaplan JO, Küttel M, Müller SA, Prentice IC, Solomina O, Stocker TF, Tarasov P, Wagner M, Widmann M (2008) Mid- to Late Holocene climate change: an overview. Quat Sci Rev 27:1791–1828

    Article  Google Scholar 

  • Warrier AK, Shankar R, Manjunatha BR, Harshavardhana BG (2014) Mineral magnetism of atmospheric dust over southwest coast of India. Impact of anthropogenic activities and implications to public health. J Appl Geophys 102:1–9

    Article  Google Scholar 

  • Wei ZQ, Zhong W, Shang ST, Ye SS, Tang XW, Xue JB, Ouyang J, Smol JP (2018) Lacustrine mineral magnetic record of postglacial environmental changes from Dahu Swamp, southern China. Glob Planet Change 170:62–75

    Article  Google Scholar 

  • Zhang Y, Guo ZT, Deng CL, Zhang SQ, Wu HB, Zhang CX, Ge JY, Zhao DA, Li Q, Song Y, Zhu RX (2014) The use of fire at Zhoukoudian: evidence from magnetic susceptibility and color measurements. Sci Bull 59(10):1013–1020 (in Chinese)

    Article  Google Scholar 

  • Zhao C, Chang YP, Chen MT, Liu ZH (2013) Possible reverse trend in Asian summer monsoon strength during the late Holocene. J Asian Earth Sci 69:102–112

    Article  Google Scholar 

  • Zhao X, Heslop D, Roberts AP (2015) A protocol for variable-resolution first-order reversal curve measurements. Geochem Geophys Geosyst 16(5):1364–1377

    Article  Google Scholar 

  • Zhong W, Xue JB, Ouyang J, Cao JY, Peng ZH (2014) Evidence of late Holocene climate variability in the western Nanling Mountains, South China. J Paleolimnol 52:1–10

    Article  Google Scholar 

  • Zhong W, Cao JY, Xue JB, Ouyang J (2015a) A 15,400-year record of climate variation from a subalpine lacustrine sedimentary sequence in the western Nanling Mountains in South China. Quat Res 84(2):246–254

    Article  Google Scholar 

  • Zhong W, Cao JY, Xue JB, Ouyang J (2015b) Last deglacial and Holocene vegetation evolution and climate variability in the subalpine western Nanling Mountains in South China. Holocene 25(8):1330–1340

    Article  Google Scholar 

  • Zhong W, Wei ZQ, Shang ST, Ye SS, Tang XW, Zhu C, Xue JB, Ouyang J, John PS (2018) A 15,400-year record of environmental magnetic variations in sub-alpine lake sediments from the western Nanling Mountains in South China: implications for palaeoenvironmental changes. J Asian Earth Sci 154:82–92

    Article  Google Scholar 

  • Zhou WJ, Yu XF, Jull AJT, Burr G, Xiao JY, Xian F (2004) High-resolution evidence from southern China of an early Holocene optimum and a mid-Holocene dry event during the past 18,000 years. Quat Res 62:39–48

    Article  Google Scholar 

Download references

Acknowledgements

Measurement of conventional 14C dates was carried out at the Key Lab of Western China’s Environmental Systems (Ministry of Education of China), Lanzhou University. The magnetic measurements were finished in the Rock magnetic laboratory of the Institute of Guangzhou Geochemistry (CAS) and the Laboratory of Paleomagnetism of Sun Yat-Sen University (SYSU). We thank Prof. Ouyang Tinping of South China Normal University and Prof. Yang Xiaoqiang of SYSU for their help in magnetic measurements. Thanks are given to Prof. Roberts A.P. and Dr. Zhao Xiang of Australian National University for their help to measure and interpret the FORCs diagram. We are grateful to three anonymous reviewers and Prof. Steffen Mischke (the Associate Editor of this Journal) for their constructive comments. Liwen Bianji, Edanz Group China (www.liwenbianji.cn/ac), helps to edit the English text of this manuscript. This work was supported by the NSF of China (Grant Nos. 41571187 and 41071137) and the NSF of Guangdong Province (Grant Nos. 2014A030313435 and S2011010003413).

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Wei Zhong.

Additional information

Publisher's Note

Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.

Rights and permissions

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Ye, S., Zhong, W., Wei, Z. et al. Environmental magnetic record of a ~ 3000-years subalpine peat core from the western Nanling Mountains, South China. J Paleolimnol 62, 229–244 (2019). https://doi.org/10.1007/s10933-019-00079-z

Download citation

  • Received:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s10933-019-00079-z

Keywords

Navigation