2023 Vol. 29, No. 4
Article Contents

ZHAO Hongmei, MAO Xin, LIU Chunlei, LI Yasong, LIU Linjing. 2023. Transgression–regression processes since the MIS 3 in the coastal zone of Quanzhou Bay, Fujian. Journal of Geomechanics, 29(4): 569-583. doi: 10.12090/j.issn.1006-6616.2023046
Citation: ZHAO Hongmei, MAO Xin, LIU Chunlei, LI Yasong, LIU Linjing. 2023. Transgression–regression processes since the MIS 3 in the coastal zone of Quanzhou Bay, Fujian. Journal of Geomechanics, 29(4): 569-583. doi: 10.12090/j.issn.1006-6616.2023046

Transgression–regression processes since the MIS 3 in the coastal zone of Quanzhou Bay, Fujian

    Fund Project: This research is financially supported by the Geological Survey Projects of the China Geological Survey (Grants DD20190303, DD20221773 and DD20221929) and the Special Fund of Chinese Central Government for Basic Scientific Research Operations in Commonweal Research Institutes (Grants SK202105 and SK202213).
More Information
  • The coastal zone is sensitive to sea–land interaction, making it an ideal place to study the transgression–regression process in Quaternary coastal areas. Based on the stratigraphic and lithologic characteristics of two Quaternary drill cores (DZ01 and DZ02) in the coastal zone of Quanzhou Bay, Fujian Province, a stratigraphic chronological framework was established by using AMS-14C and OSL dating methods. Combined with the statistical analysis results of geochemical element content of indicating facies in modern sediments in Quanzhou Bay, the geochemical element ratios, foraminifers, and ostracods' environmental indicators were used to identify transgressive strata since the Late Pleistocene. The transgression–regression processes since the MIS 3 in Quanzhou Bay were analyzed by comparing it with the regional borehole data. The results show that the Sr/Ba and Mn/Fe values vary significantly in the marine sediments at different water depths in Quanzhou Bay, making them suitable as indicator elements in the marine and sea–land transitional sediments in the Quanzhou Bay coast, with the limit values of Sr/Ba<0.16 and Mn/Fe<0.23, respectively; there have been two transgression–regression processes since the MIS 3 in Quanzhou Bay. The first transgression occurred in the MIS3, corresponding to the regional "Fuzhou transgression," which peaked at about 35 ka B.P. The second transgression occurred in the Holocene, corresponding to the regional "Changle transgression," which peaked at about 7–4 ka B.P. The research results are significant for reconstructing the history of sedimentary environment changes in coastal zones, understanding sea–land interaction, and predicting future environmental changes.

  • 加载中
  • [1] BARD E, HAMELIN B, DELANGHE-SABATIER D, 2010. Deglacial meltwater pulse 1B and younger Dryas sea levels revisited with boreholes at Tahiti[J]. Science, 327(5970): 1235-1237. doi: 10.1126/science.1180557

    CrossRef Google Scholar

    [2] BERKELEY A, PERRY C T, SMITHERS S G, et al. , 2009. Foraminiferal biofacies across mangrove-mudflat environments at Cocoa Creek, North Queensland, Australia[J]. Marine Geology, 263(1-3): 64-86.

    Google Scholar

    [3] CAI L Z, 1988. Apreliminary study on ZK 3702 Quaternary micropaleobiocoensis and marine transgression of Xiamen Yuandang Harbour, Fujian[J]. Geology of Fujian, 7(3): 178-185. (in Chinese with English abstract)

    Google Scholar

    [4] CHAPPELL J, OMURA A, ESAT T, et al. , 1996. Reconciliaion of late Quaternary sea levels derived from coral terraces at Huon Peninsula with deep sea oxygen isotope records[J]. Earth and Planetary Science letters, 141(1-4): 227-236. doi: 10.1016/0012-821X(96)00062-3

    CrossRef Google Scholar

    [5] CHARRIEAU L M, FILIPSSON H L, LJUNG K, et al. , 2018. The effects of multiple stressors on the distribution of coastal benthic foraminifera: a case study from the Skagerrak-Baltic Sea region[J]. Marine Micropaleontology, 139: 42-56. doi: 10.1016/j.marmicro.2017.11.004

    CrossRef Google Scholar

    [6] CHEN C H, LAN D Z, YU Y F, et al. , 1990. Late quaternary stratigraphy in the Western Taiwan strait[J]. Quaternary Sciences(4): 301-307.

    Google Scholar

    [7] CHEN D G, YE W C, ZHENG G M, et al. , 2016. Report on evaluation results of engineering geological survey of Haixi harbor industrial zone[R]. Fujian Geological survey Institute: 45-59. (in Chinese)

    Google Scholar

    [8] CHEN H X, LUO M M, WANG J H, et al. , 2014. Sedimentary characteristics and depositional environmental evolution of the Quaternary in Jiulongjiang Estuary, Fujian Province[J]. Journal of Palaeogeography, 16(2): 263-273. (in Chinese with English abstract)

    Google Scholar

    [9] CHEN R S, LIN D Y, LIU N Z, et al. , 2004. Preliminary study on Quaternary stratigraphic division and Late Pleistocene sea-level changes in the south of Fujian[C]//Geoscience and technology forum of six provinces and one city in East China. Fuzhou: Chinese Geological Society, Fujian Provincial Geological Society: 67-72. (in Chinese)

    Google Scholar

    [10] CHEN W G, 1983. Sedimentation and modern fault block movement of coastal Quaternary basins (or troughs) in Fujian Province[J]. South China Journal of Seismology, 3(3): 26-32. (in Chinese)

    Google Scholar

    [11] CHEN W R, LAN D Z, CHEN C H, 1998. Late Quaternary diata and sea level changes in estuarine plain of the Jiulong River[J]. Acta Oceanologica Sinica, 20(2): 65-72. (in Chinese with English abstract)

    Google Scholar

    [12] CHEN Z Y, CHEN Z L, ZHANG W G, 1997. Quaternary stratigraphy and trace-element indices of the Yangtze delta, Eastern China, with special reference to marine transgressions[J]. Quaternary Research, 47(2): 181-191. doi: 10.1006/qres.1996.1878

    CrossRef Google Scholar

    [13] CHENG Q S, 1991. Neotectonics of Quanzhou Plain, Fujian Province[J]. Geology of Fujian, 10(4): 309-320. (in Chinese with English abstract)

    Google Scholar

    [14] CHENG Q S, 1993. Classification and correlation of Quaternary System in Quanzhou Plain, Fujian[J]. Journal of oceanography in Taiwan Strait, 12(3): 257-265. (in Chinese with English abstract)

    Google Scholar

    [15] COOPER J A G, MEIRELES R P, GREEN A N, et al. , 2018. Late Quaternary stratigraphic evolution of the inner continental shelf in response to sea-level change, Santa Catarina, Brazil[J]. Marine Geology, 397: 1-14. doi: 10.1016/j.margeo.2017.11.011

    CrossRef Google Scholar

    [16] GUO X D, 1979. Sea level changes since Late Pleistocene in China[J]. Scientia Geologica Sinica(4): 330-341. (in Chinese with English abstract)

    Google Scholar

    [17] HAN S H, ZHANG J, 1992. Quaternary stratigraphic division and marine bed analysis of Mawei area, Fuzhou[J]. Marine Geology & Quaternary Geology, 12(1): 85-95. (in Chinese with English abstract)

    Google Scholar

    [18] HANEBUTH T J J, STATTEGGER K, GROOTES P M, 2000. Rapid flooding of the Sunda shelf: a late-glacial sea-level record[J]. Science, 288(5468): 1033-1035. doi: 10.1126/science.288.5468.1033

    CrossRef Google Scholar

    [19] HAO Y C, QIU S Y, LIN J X, et al. , 1980. Foraminifera[M]. Beijing: Science Press. (in Chinese)

    Google Scholar

    [20] HASHIMOTO W, TAIRA K, KURIHARA K, et al. , 1970. Studies on the Younger Cenozoic deposits in Taiwan (Formosa): Part 1. The younger Cenozoic deposits of the middle Part of West Taiwan[J]. Geology and Palaeontology of Southeast Asia, 8: 237-252.

    Google Scholar

    [21] HE M, LIU G Y, ZHOU G H, et al. , 2021. Transgression-regression process recorded by borehole sediments in Fuzhou Basin since MIS3[J]. Journal of Earth Environment, 12(1): 44-56. (in Chinese with English abstract)

    Google Scholar

    [22] HE Y T, 2011. The sedimentary sporopollen and microbody paleontology and its paleoenvironment significance of the Late Quaternary period basin in Quanzhou city, Fujian province[J]. Geology of Fujian, 30(3): 224-232. (in Chinese with English abstract)

    Google Scholar

    [23] HE Y T, 2014. Characteristic of Holocene beach rock and source environment analysis in Quanzhou gulf, Fujian Province[J]. Geology of Fujian, 33(2): 112-118. (in Chinese with English abstract)

    Google Scholar

    [24] HOU H T, GOU Y X, CHEN D Q, 2002. Ostracoda of China[M]. Beijing: Science Press. (in Chinese)

    Google Scholar

    [25] IPCC, 2019: Summary for Policymakers. In: IPCC Special Report on the Ocean and Cryosphere in a Changing Climate [H. -O. Pörtner, D. C. Roberts, V. Masson-Delmotte, P. Zhai, M. Tignor, E. Poloczanska, K. Mintenbeck, A. Alegría, M. Nicolai, A. Okem, J. Petzold, B. Rama, N. M. Weyer (eds. )]. In press.

    Google Scholar

    [26] LAMBECK K, CHAPPELL J, 2001. Sea level change through the last glacial cycle[J]. Science, 292(5517): 679-686. doi: 10.1126/science.1059549

    CrossRef Google Scholar

    [27] LAN D Z, YU Y F, CHEN C H, et al. , 1986. Preliminary study on Late Pleistocene transgression and Holocene sea-level fluctuation in Fuzhou Basin[J]. Marine Geology & Quaternary Geology, 6(3): 103-111. (in Chinese with English abstract)

    Google Scholar

    [28] LEI Y L, LI T G, 2016. Atlas of benthic foraminifera from China seas: the Bohai Sea and the Yellow Sea[M]. Berlin: Springer.

    Google Scholar

    [29] LIN J, HONG Y, LIN Z W, et al. , 2021. Spatiotemporal dynamics and its driving mechanism of the Quanzhou Bay Estuary Wetland, Fujian Province of eastern China[J]. Journal of Beijing Forestry University, 43(6): 75-82. (in Chinese with English abstract)

    Google Scholar

    [30] LIN J X, 1979. Preliminary understanding of Holocene transgression along the coast of Fujian[J]. Chinese Science Bulletin(11): 517-520. (in Chinese)

    Google Scholar

    [31] LIN X, LIU H J, WU Z H, et al. , 2021. Provenance study on geochemical elements of detrital K-feldspar in Quaternary gravel layer in Yichang and its geological significance[J]. Journal of Geomechanics, 27(6): 1024-1034. (in Chinese with English abstract)

    Google Scholar

    [32] LINSLEY B K, 1996. Oxygen-isotope record of sea level and climate variations in the Sulu Sea over the past 150, 000 years[J]. Nature, 380(6571): 234-237. doi: 10.1038/380234a0

    CrossRef Google Scholar

    [33] LIU J, WANG H, LI S Q, et al. , 2004. Postglacial transgressive sedimentary records of muddy sedimentary areas in the north of the South Yellow Sea[J]. Marine Geology & Quaternary Geology, 24(3): 1-10. (in Chinese with English abstract)

    Google Scholar

    [34] LIU J, SAITO Y, KONG X H, et al. , 2010. Delta development and channel incision during marine isotope stages 3 and 2 in the western South Yellow Sea[J]. Marine Geology, 278(1-4): 54-76. doi: 10.1016/j.margeo.2010.09.003

    CrossRef Google Scholar

    [35] LIU J, ZHANG X H, MEI X, et al. , 2018. The sedimentary succession of the last ~ 3.50 Myr in the western South Yellow Sea: paleoenvironmental and tectonic implications[J]. Marine Geology, 399: 47-65. doi: 10.1016/j.margeo.2017.11.005

    CrossRef Google Scholar

    [36] MAUZ B, HASSLER U, 2000. Luminescence chronology of Late Pleistocene raised beaches in southern Italy: new data of relative sea-level changes[J]. Marine Geology, 170(1-2): 187-203. doi: 10.1016/S0025-3227(00)00074-8

    CrossRef Google Scholar

    [37] MEI X, ZHANG X H, LIU J, et al. , 2019. Elemental geochemical record of land and sea environmental evolution since 3.50 Ma in South Yellow Sea[J]. Journal of Jilin University (Earth Science Edition), 49(1): 74-84. (in Chinese with English abstract)

    Google Scholar

    [38] Ministry of Natural Resources, 2022. Sea level bulletin of China in 2021[EB/OL]. (2022-04-08). http://gi.mnr.gov.cn/202205/t20220507_2735509.html. (in Chinese)

    Google Scholar

    [39] MO W C, 2017. Study on remote sensing monitoring and landscape pattern dynamics of Quanzhou Bay coastal wetland during the past 20 years[D]. Fuzhou: Fujian Agriculture and Forestry University. (in Chinese with English abstract)

    Google Scholar

    [40] PELTIER W R, 2002. On eustatic sea level history: Last glacial maximum to Holocene[J]. Quaternary Science Reviews, 21(1-3): 377-396. doi: 10.1016/S0277-3791(01)00084-1

    CrossRef Google Scholar

    [41] PELTIER W R, FAIRBANKS R G, 2006. Global glacial ice volume and Last Glacial Maximum duration from an extended Barbados sea level record[J]. Quaternary Science Reviews, 25(23-24): 3322-3337. doi: 10.1016/j.quascirev.2006.04.010

    CrossRef Google Scholar

    [42] QI L, QIAO Y S, LIU Z X, et al. , 2021. Geochemical characteristics of the Tertiary and Quaternary Eolian deposits in eastern Gansu province: Implications for provenance and weathering intensity[J]. Journal of Geomechanics, 27(3): 475-490. (in Chinese with English abstract)

    Google Scholar

    [43] RAMSEY C B, 2009. Bayesian analysis of radiocarbon dates[J]. Radiocarbon, 51(1): 337-360. doi: 10.1017/S0033822200033865

    CrossRef Google Scholar

    [44] RODRIGUEZ A B, ANDERSON J B, BANFIELD L A, et al. , 2000. Identification of a -15 m Wisconsin shoreline on the Texas inner continental shelf[J]. Palaeogeography, Palaeoclimatology, Palaeoecology, 158(1-2): 25-43. doi: 10.1016/S0031-0182(00)00027-4

    CrossRef Google Scholar

    [45] SHACKLETON N J, 1987. Oxygen isotopes, ice volume and sea level[J]. Quaternary Science Reviews, 6(3-4): 183-190. doi: 10.1016/0277-3791(87)90003-5

    CrossRef Google Scholar

    [46] SHEN L N, LI C, CHEN D G, et al. , 2017. Late Holocene palynological record and its palaeoenvironmental implication in the Western Quanzhou Bay, Fujian Province, East China[J]. Acta Micropalaeontologica Sinica, 34(2): 218-226. (in Chinese with English abstract)

    Google Scholar

    [47] SUN D D, LIU P, ZHANG J, et al. , 2022. Identification and significance of the Late Pleistocene transgressive strata in the bays of northern Fujian Province based on geochemical element indicators of sedimentary origin[J]. Journal of Palaeogeography, 24(1): 139-151. (in Chinese with English abstract)

    Google Scholar

    [48] SUN Z Y, LI G, YIN Y, 2015. The Yangtze River deposition in southern Yellow Sea during Marine Oxygen Isotope Stage 3 and its implications for sea-level changes[J]. Quaternary Research, 83(1): 204-215. doi: 10.1016/j.yqres.2014.08.008

    CrossRef Google Scholar

    [49] WA X L L, WANG J H, ZHENG Y W, et al. , 2014. Pollen characteristics and their Paleoclimatic significance since MIS4 in Xiamen Bay and Jiulong River estuary[J]. Acta Scientiarum Naturalium Universitatis Sunyatseni, 53(6): 53-62. (in Chinese with English abstract)

    Google Scholar

    [50] WALKER M J C, BERKELHAMMER M, BJÖRCK S, et al. , 2012. Formal subdivision of the Holocene series/Epoch: a discussion paper by a working Group of INTIMATE (Integration of ice-core, marine and terrestrial records) and the Subcommission on quaternary stratigraphy (International Commission on Stratigraphy)[J]. Journal of Quaternary Science, 27(7): 649-659. doi: 10.1002/jqs.2565

    CrossRef Google Scholar

    [51] WANG G P, LIU J S, ZHAI Z L, 2005. Ratio of elements and their implications within typical sedimentation profile in the marsh: Salinization indicators and climatic change between the arid and the humid[J]. Scientia Geographica Sinica, 25(3): 3335-3339. (in Chinese with English abstract)

    Google Scholar

    [52] WANG P X, MIN Q B, BIAN Y H, et al. , 1981. Strata of quaternary transgressions in East China: a preliminary study[J]. Acta Geologica Sinica(1): 1-13. (in Chinese with English abstract)

    Google Scholar

    [53] WANG P X, 1992. The use and misuse of microfossils in marine transgression studies[J]. Quaternary Sciences, 12(4): 321-331. (in Chinese with English abstract)

    Google Scholar

    [54] WANG P X, CHAPPELL J, 2001. Foraminifera as Holocene environmental indicators in the south Alligator River, Northern Australia[J]. Quaternary International, 83-85: 47-62. doi: 10.1016/S1040-6182(01)00030-1

    CrossRef Google Scholar

    [55] WANG S H, YANG J M, ZENG C S, et al. , 1994. Sea level changes since Late Pleistocene along Fujian coast[J]. Journal of Oceanography in Taiwan Strait, 13(2): 166-175. (in Chinese with English abstract)

    Google Scholar

    [56] WANG Y Y, GUO W Y, ZHANG G D, 1979. Application of some geochemical indicators in determining of sedimentary environment of the Funing Group(Paleogene), Jin-Hu depression, Kiangsu Province[J]. Journal of Tongji University(2): 51-60. (in Chinese with English abstract)

    Google Scholar

    [57] WANG Y Y, WU P, 1983. Geochemical criteria of sediments in the coastal area of Jiangsu and Zhejiang provinces[J]. Journal of Tongji University(4): 79-87. (in Chinese with English abstract)

    Google Scholar

    [58] WANG Z H, JONES B G, CHEN T, et al. , 2013. A raised OIS 3 sea level recorded in coastal sediments, southern Changjiang delta plain, China[J]. Quaternary Research, 79(3): 424-438. doi: 10.1016/j.yqres.2013.03.002

    CrossRef Google Scholar

    [59] WEI D G, JIE Y J, HUANG T G, 1997. Regional geological structure of Fujian[J]. Regional Geology of China, 16(2): 162-170. (in Chinese with English abstract)

    Google Scholar

    [60] WOODROFFE C D, MURRAY-WALLACE C V, 2012. Sea-level rise and coastal change: the past as a guide to the future[J]. Quaternary Science Reviews, 54: 4-11. doi: 10.1016/j.quascirev.2012.05.009

    CrossRef Google Scholar

    [61] WU C Q, CAI F, WU J Z, et al. , 2011. Topographic and morphologic features in the coastal zone of Quanzhou Bay and their controlling factors[J]. Marine Geology and Quaternary Geology, 31(4): 75-81. (in Chinese with English abstract) doi: 10.3724/SP.J.1140.2011.04075

    CrossRef Google Scholar

    [62] XIONG X H, XIAO J F, 2011. Geochemical indicators of sedimentary environments-a summary[J]. Earth and Environment, 39(3): 405-414. (in Chinese with English abstract)

    Google Scholar

    [63] YANG J M, 1988. The last marine transgression and sea level changes along the Fujian coast during Late Pleistocene[J]. Marine Sciences(5): 5-9. (in Chinese with English abstract)

    Google Scholar

    [64] YAO Q Y, 1982. Neotectonic movement and earthquakes along the southeast coast of Fujian (Quanzhou Bay—Dongshan island)[J]. South China Journal of Seismology, 2(1): 18-23. (in Chinese)

    Google Scholar

    [65] YIN J H, ZHENG Y G, LIU Y X, 2005. An overview of radiocarbon calibration[J]. Seismology and Geology, 27(4): 678-688. (in Chinese with English abstract)

    Google Scholar

    [66] ZENG C S, 1997. Transgressions and sea level changes along the Northeast Coast of Fujian during the Late Quaternary[J]. Journal of Fujian Teachers University (Natural Science), 13(4): 94-101. (in Chinese with English abstract)

    Google Scholar

    [67] ZENG C S, 2000. Geochemical characters of the “Old Red Sands” along the coast of Southeast Fujian[J]. Journal of Desert Research, 20(3): 248-251. (in Chinese with English abstract)

    Google Scholar

    [68] ZENG J L, WU L, HAN M K, 1991. Quaternary division and sea level changes in the Jiulong River Estuary Plain, Fujian Province[C]//Proceedings on quaternary geology along the Southeast Coast of China: 115-121. (in Chinese)

    Google Scholar

    [69] ZHANG J W, LI G Y, ZHAO X T, 1982. Chronology studies on the Late Quaternary stratigraphy and Neotectonic movement along the coastal area of South Fujian and East Guangdong[J]. Seismology and Geology, 4(3): 27-37. (in Chinese with English abstract)

    Google Scholar

    [70] ZHANG P, CHEN J Q, TIAN M Z, et al. , 2005. Grain-size characteristics of quaternary sediments and its sedimentary environment implication in Quanzhou City, Fujan province[J]. Journal of Salt Lake Research, 13(2): 25-33. (in Chinese with English abstract)

    Google Scholar

    [71] ZHAO H M, LIU C L, MAO X, et al. , 2022a. Evolution of holocene stratigraphy and sedimentary environment in Quanzhou Bay coast[J]. Journal of Stratigraphy, 46(4): 401-410. (in Chinese with English abstract)

    Google Scholar

    [72] ZHAO H M, LIU T B, MAO X, et al. , 2022b. Special report on Quaternary transgression records and sedimentary environment evolution in Xiamen, Zhangzhou and Quanquan coastal zone[R]. Institute of Hydrogeology and Environmental Geology, Chinese Academy of Geological Sciences: 19-20. (in Chinese)

    Google Scholar

    [73] ZHAO X T, GENG X S, ZHANG J W, 1979. Sea level changes of the Eastern China during the past 20000 years[J]. Acta Oceanologia Sinica, 1(2): 269-281. (in Chinese with English abstract)

    Google Scholar

    [74] ZHENG R Z, CHEN G H, XU X W, et al. , 2005. Strata division of buried Late Quaternary of Fuzhou Basin[J]. Seismology and Geology, 27(4): 556-565. (in Chinese with English abstract)

    Google Scholar

    [75] ZHI C Y, WANG K F, LAN D Z, et al. , 2003. Study on the relationship between diatom assemblage and paleoenvironment of the Late Quaternary in the Taiwan Channel and Xiamen Island[J]. Acta Micropalaeontologica Sinica, 20(3): 244-252. (in Chinese with English abstract)

    Google Scholar

    [76] 蔡丽珠, 1988. 厦门筼筜港ZK3702第四纪微体古生物群及海侵初探[J]. 福建地质, 7(3): 178-185.

    Google Scholar

    [77] 陈承惠, 蓝东兆, 于永芬, 等, 1990. 台湾海峡西部海域晚第四纪地层[J]. 第四纪研究(4): 301-307.

    Google Scholar

    [78] 陈大桂, 叶文超, 郑国明, 等, 2016. 海西临港工业区工程地质调查评价成果报告[R]. 福建省地质调查研究院: 45-59.

    Google Scholar

    [79] 陈慧娴, 骆美美, 王建华, 等, 2014. 福建九龙江河口第四纪沉积物特征及沉积环境演变[J]. 古地理学报, 16(2): 263-273.

    Google Scholar

    [80] 陈润生, 林东燕, 刘乃忠, 等, 2004. 闽南地区第四纪地层划分及晚更新世海平面变化的初步研究[C]//2004年华东六省一市地学科技论坛论文集. 福州: 中国地质学会, 福建省地质学会: 67-72.

    Google Scholar

    [81] 陈文瑞, 蓝东兆, 陈承惠, 1998. 九龙江河口平原晚第四纪硅藻及海平面变化初探[J]. 海洋学报, 20(2): 65-72.

    Google Scholar

    [82] 陈伟光, 1983. 福建省沿海第四纪盆地(或槽地)的沉积与近代断块运动[J]. 华南地震, 3(3): 26-32.

    Google Scholar

    [83] 程乾盛, 1991. 泉州平原的新构造[J]. 福建地质, 10(4): 309-320.

    Google Scholar

    [84] 程乾盛, 1993. 泉州平原第四纪地层的划分对比[J]. 台湾海峡, 12(3): 257-265.

    Google Scholar

    [85] 郭旭东, 1979. 晚更新世以来中国海平面的变化[J]. 地质科学(4): 330-341.

    Google Scholar

    [86] 韩书华, 张静, 1992. 福州市马尾地区第四纪地层划分及海相层分析[J]. 海洋地质与第四纪地质, 12(1): 85-95.

    Google Scholar

    [87] 郝诒纯, 裘松余, 林甲兴, 等, 1980. 有孔虫[M]. 北京: 科学出版社.

    Google Scholar

    [88] 何梅, 刘庚余, 周国华, 等, 2021. 福州盆地钻孔沉积物记录的MIS3以来海侵—海退过程[J]. 地球环境学报, 12(1): 44-56.

    Google Scholar

    [89] 何耀堂, 2011. 福建泉州晚第四纪盆地沉积的孢粉和微体古生物及其古环境意义[J]. 福建地质, 30(3): 224-232.

    Google Scholar

    [90] 何耀堂, 2014. 福建泉州湾全新世海滩岩特征及物源环境分析[J]. 福建地质, 33(2): 112-118.

    Google Scholar

    [91] 侯祜堂, 勾韵娴, 陈德琼, 2002. 中国介形类化石[M]. 北京: 科学出版社.

    Google Scholar

    [92] 蓝东兆, 于永芬, 陈承惠, 等, 1986. 福州盆地晚更新世海侵及全新世海面波动的初步研究[J]. 海洋地质与第四纪地质, 6(3): 103-111.

    Google Scholar

    [93] 林津, 洪宇, 林志玮, 等, 2021. 福建泉州湾河口湿地时空动态及其驱动机理[J]. 北京林业大学学报, 43(6): 75-82.

    Google Scholar

    [94] 林景星, 1979. 福建沿海全新世海进的初步认识[J]. 科学通报(11): 517-520.

    Google Scholar

    [95] 林旭, 刘海金, 吴中海, 等, 2021. 宜昌第四纪砾石层钾长石主、微量元素物源研究及其地质意义[J]. 地质力学学报, 27(6): 1024-1034.

    Google Scholar

    [96] 刘健, 王红, 李绍全, 等, 2004. 南黄海北部泥质沉积区冰后期海侵沉积记录[J]. 海洋地质与第四纪地质, 24(3): 1-10.

    Google Scholar

    [97] 梅西, 张训华, 刘健, 等, 2019. 南黄海3.50 Ma以来海陆环境演变的元素地球化学记录[J]. 吉林大学学报(地球科学版), 49(1): 74-84.

    Google Scholar

    [98] 自然资源部, 2022. 2021年中国海平面公报[EB/OL]. (2022-04-08). http://gi.mnr.gov.cn/202205/t20220507_2735509.html.

    Google Scholar

    [99] 莫文超, 2017. 近20年泉州湾滨海湿地遥感监测与景观格局分析[D]. 福州: 福建农林大学.

    Google Scholar

    [100] 綦琳, 乔彦松, 刘宗秀, 等, 2021. 陇东新近纪红粘土与第四纪黄土地球化学特征及其物源和风化指示意义[J]. 地质力学学报, 27(3): 475-490.

    Google Scholar

    [101] 沈林南, 李超, 陈大桂, 等, 2017. 福建泉州湾西部晚全新世孢粉组合特征及其古环境意义[J]. 微体古生物学报, 34(2): 218-226.

    Google Scholar

    [102] 孙丹丹, 刘平, 张杰, 等, 2022. 基于沉积成因地化元素指标的闽北海湾晚更新世海侵地层辨识及其意义[J]. 古地理学报, 24(1): 139-151.

    Google Scholar

    [103] 瓦西拉里, 王建华, 郑艳伟, 等, 2014. 厦门湾—九龙江口地区MIS4以来孢粉组合特征及古气候意义[J]. 中山大学学报(自然科学版), 53(6): 53-62.

    Google Scholar

    [104] 王国平, 刘景双, 翟正丽, 2005. 沼泽沉积剖面特征元素比值及其环境意义: 盐碱化指标及气候干湿变化[J]. 地理科学, 25(3): 3335-3339.

    Google Scholar

    [105] 汪品先, 闵秋宝, 卞云华, 等, 1981. 我国东部第四纪海侵地层的初步研究[J]. 地质学报(1): 1-13.

    Google Scholar

    [106] 汪品先, 1992. 微体化石在海侵研究中的应用与错用[J]. 第四纪研究, 12(4): 321-331.

    Google Scholar

    [107] 王绍鸿, 杨建明, 曾从盛, 等, 1994. 福建沿海晚更新世以来的海平面变化[J]. 台湾海峡, 13(2): 166-175.

    Google Scholar

    [108] 王益友, 郭文莹, 张国栋, 1979. 几种地球化学标志在金湖凹陷阜宁群沉积环境中的应用[J]. 同济大学学报(2): 51-60.

    Google Scholar

    [109] 王益友, 吴萍, 1983. 江浙海岸带沉积物的地球化学标志[J]. 同济大学学报(4): 79-87.

    Google Scholar

    [110] 韦德光, 揭育金, 黄廷淦, 1997. 福建省区域地质构造特征[J]. 中国区域地质, 16(2): 162-170.

    Google Scholar

    [111] 吴承强, 蔡锋, 吴建政, 等, 2011. 泉州湾海岸带地形地貌特征及控制因素[J]. 海洋地质与第四纪地质, 31(4): 75-81.

    Google Scholar

    [112] 熊小辉, 肖加飞, 2011. 沉积环境的地球化学示踪[J]. 地球与环境, 39(3): 405-414.

    Google Scholar

    [113] 杨建明, 1988. 福建沿岸晚更新世末次海侵及其海平面的变化[J]. 海洋科学(5): 5-9.

    Google Scholar

    [114] 姚庆元, 1982. 闽东南沿海(泉州湾—东山岛)新构造运动与地震[J]. 华南地震, 2(1): 18-23.

    Google Scholar

    [115] 尹金辉, 郑勇刚, 刘粤霞, 2005. 古地震14C年龄的日历年代校正[J]. 地震地质, 27(4): 678-688.

    Google Scholar

    [116] 曾从盛, 1997. 闽东北沿海晚第四纪海侵与海面变动[J]. 福建师范大学学报(自然科学版), 13(4): 94-101.

    Google Scholar

    [117] 曾从盛, 2000. 闽东南沿海老红砂的地球化学特征[J]. 中国沙漠, 20(3): 248-251.

    Google Scholar

    [118] 曾金炉, 邬芲, 韩慕康, 1991. 福建九龙江河口平原第四系划分与海平面变化[C]//中国东南沿海第四纪地质论文集: 115-121.

    Google Scholar

    [119] 张景文, 李桂英, 赵希涛, 1982. 闽南粤东沿海晚第四纪地层与新构造运动的年代学研究[J]. 地震地质, 4(3): 27-37.

    Google Scholar

    [120] 张璞, 陈建强, 田明中, 等, 2005. 福建省泉州市第四纪沉积物粒度特征及沉积环境分析[J]. 盐湖研究, 13(2): 25-33.

    Google Scholar

    [121] 赵红梅, 刘春雷, 毛欣, 等, 2022a. 泉州湾海岸带全新世地层及沉积环境演化[J]. 地层学杂志, 46(4): 401-410.

    Google Scholar

    [122] 赵红梅, 刘泰北, 毛欣, 等, 2022b. 厦漳泉海岸带第四纪海侵记录及沉积环境演化专题报告[R]. 中国地质科学院水文地质环境地质研究所: 19-20.

    Google Scholar

    [123] 赵希涛, 耿秀山, 张景文, 1979. 中国东部20000年来的海平面变化[J]. 海洋学报(中文版), 1(2): 269-281.

    Google Scholar

    [124] 郑荣章, 陈桂华, 徐锡伟, 等, 2005. 福州盆地埋藏晚第四纪沉积地层划分[J]. 地震地质, 27(4): 556-565.

    Google Scholar

    [125] 支崇远, 王开发, 蓝东兆, 等, 2003. 闽南第四纪晚期沉积硅藻组合与古环境研究[J]. 微体古生物学报, 20(3): 244-252.

    Google Scholar

  • 加载中
通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索

Figures(5)

Tables(5)

Article Metrics

Article views(827) PDF downloads(29) Cited by(0)

Access History

Other Articles By Authors

Catalog

    /

    DownLoad:  Full-Size Img  PowerPoint