Paleoenvironmental changes in the northern Okinawa trough since 25 ka BP: REE and organic carbon evidence

Zhaokai Xu , Tiegang Li , Qingyun Nan , Xinke Yu , Anchun Li , Jinyong Choi

Journal of Earth Science ›› 2012, Vol. 23 ›› Issue (3) : 297 -310.

PDF
Journal of Earth Science ›› 2012, Vol. 23 ›› Issue (3) : 297 -310. DOI: 10.1007/s12583-012-0254-5
Article

Paleoenvironmental changes in the northern Okinawa trough since 25 ka BP: REE and organic carbon evidence

Author information +
History +
PDF

Abstract

Paleoenvironmental changes in the northern Okinawa trough covering the last 25 ka were synthetically reconstructed using REE and organic carbon indices of core CSH1. Variations of these parameters revealed three distinct intervals of major sediment provenance changes that can be related to sea-level fluctuation and Tsushima Warm Current evolution. Interval 1 (16–24.7 ka BP) is characterized by dominantly fluvial discharge from the Changjiang (Yangtze River) and Huanghe (Yellow River) as well as high primary productivity. In Interval 2 (7.3–16 ka BP), the Changjiang and Huanghe mouths regressed with sea-level rising. The newly formed Tsushima Warm Current could carry some sediment loads of Taiwan to the study core, especially during its late phase (7.3–8.2 ka BP). Modern oceanographic conditions were finally established since the beginning of Interval 3, leading to more terrigenous contribution from Taiwan, whereas low sea-surface productivity in the study area.

Keywords

paleoenvironmental change / the northern Okinawa trough / Tsushima Warm Current / REE / discriminant function

Cite this article

Download citation ▾
Zhaokai Xu, Tiegang Li, Qingyun Nan, Xinke Yu, Anchun Li, Jinyong Choi. Paleoenvironmental changes in the northern Okinawa trough since 25 ka BP: REE and organic carbon evidence. Journal of Earth Science, 2012, 23(3): 297-310 DOI:10.1007/s12583-012-0254-5

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Bahk J. J., Lee K. E., Chough S. K.. Relative Role of Productivity vs. Stagnation in Dark Laminated Mud Formation during the Last 25 000 Years in the Ulleung Basin, East/Japan Sea. Geosci. J., 2005, 9(4): 297-304.

[2]

Chang F. M., Li T. G., Zhuang L. H., . A Holocene Paleotemperature Record Based on Radiolaria from the Northern Okinawa Trough (East China Sea). Quat. Int., 2008, 183: 115-122.

[3]

Chen J. C., Lo C. Y., Lee Y. T., . Mineralogy and Chemistry of Cored Sediments from Active Margin off Southwestern Taiwan. Geochem. J., 2007, 41: 303-321.

[4]

Diekmann B., Hofmann J., Henrich R., . Detrital Sediment Supply in the Southern Okinawa Trough and Its Relation to Sea-Level and Kuroshio Dynamics during the Late Quaternary. Mar. Geol., 2008, 255: 83-95.

[5]

Dou Y. G., Yang S. Y., Liu Z. X., . Provenance Discrimination of Siliciclastic Sediments in the Middle Okinawa Trough since 30 Ka: Constraints from Rare Earth Element Compositions. Mar. Geol., 2010, 275: 212-220.

[6]

Fairbanks R. G.. A 17 000-Year Glacio-Eustatic Sea Level Record: Influence of Glacial Melting Rates on the Younger Dryas Event and Deep-Ocean Circulation. Nature, 1989, 342: 637-642.

[7]

Hsu S. C., Lin F. J., Jeng W. L., . Observed Sediment Fluxes in the Southwestern-most Okinawa Trough Enhanced by Episodic Events: Flood Runoff from Taiwan Rivers and Large Earthquakes. Deep-Sea Res. I, 2004, 51: 979-997.

[8]

Hu D. X., Yang Z. S.. Key Processes of the East China Sea Flux, 2001, Beijing: Ocean Press

[9]

Iseki K., Okamura K., Kiyomoto Y.. Seasonality and Composition of Downward Particulate Fluxes at the Continental Shelf and Okinawa Trough in the East China Sea. Deep-Sea Res. II, 2003, 50: 457-473.

[10]

Jian Z. M., Wang P. X., Saito Y., . Holocene Variability of the Kuroshio Current in the Okinawa Trough, Northwestern Pacific Ocean. Earth Planet. Sci. Lett., 2000, 184: 305-319.

[11]

Jiang F. Q., Meng Q. Y., Xu Z. K., . The REE Imprint on Sediment Provenance of the Northern Okinawa Trough since the Last 15 Ka B.P.. Oceanol. Limnol. Sin., 2008, 39(2): 112-118.

[12]

Kao S. J., Lin F. J., Liu K. K.. Organic Carbon and Nitrogen Contents and Their Isotopic Compositions in Surficial Sediments from the East China Sea Shelf and the Southern Okinawa Trough. Deep-Sea Res. II, 2003, 50: 1203-1217.

[13]

Katayama H., Watanabe Y.. The Huanghe and Changjiang Contribution to Seasonal Variability in Terrigenous Particulate Load to the Okinawa Trough. Deep-Sea Res. II, 2003, 50: 475-485.

[14]

Kitagawa H., Fukusawa H., Nakamura T., . AMS 14C Dating of Varved Sediments from Lake Suigetsu, Central Japan and Atmospheric 14C Change during the Late Pleistocene. Radiocarbon, 1995, 37(2): 371-378.

[15]

Laj C., Mazaud A., Duplessy J. C.. Geomagnetic Intensity and 14C Abundance in the Atmosphere and Ocean during the Past 50 Kyr. Geophys. Res. Lett., 1996, 23(16): 2045-2048.

[16]

Lambeck K., Yokoyama Y., Purcell T.. Into and out of the Last Glacial Maximum: Sea-Level Change during Oxygen Isotope Stages 3 and 2. Quat. Sci. Rev., 2002, 21: 343-360.

[17]

Lan X. H., Wang H. X., Zhang Z. X., . Distributions of Rare Earth Elements and Provenance Relations in the Surface Sediments of the South Yellow Sea. J. Chin. Rare Earth Soc., 2006, 24(6): 745-749.

[18]

Lee H. J., Chao S. Y.. A Climatological Description of Circulation in and around the East China Sea. Deep-Sea Res. II, 2003, 50: 1065-1084.

[19]

Li C. X., Chen Q. Q., Zhang J. Q., . Stratigraphy and Paleoenvironmental Changes in the Yangtze Delta during the Late Quaternary. J. Asian Earth Sci., 2000, 18: 453-469.

[20]

Li F., Zhang X. R., Li Y. Z., . Buried Paleo-Delta in the South Yellow Sea. Acta Geogr. Sin., 1998, 53(3): 238-244.

[21]

Li F. Y., Shi Y. L., He L. J., . Relationship between the Variations in Sedimentation Rates and Sedimentation Environments in the Okinawa Trough since the Late Pleistocene. Oceanol. Limnol. Sin., 1999, 30(5): 540-545.

[22]

Li G. X., Liu Y., Yang Z. G., . Ancient Changjiang Channel System in the East China Sea Continental Shelf during the Last Glaciation. Sci. China (Ser. D), 2005, 48(11): 1972-1978.

[23]

Li T. G., Liu Z. X., Hall M. A., . Heinrich Event Imprints in the Okinawa Trough: Evidence from Oxygen Isotope and Planktonic Foraminifera. Palaeogeogr. Palaeoclimatol. Palaeoecol., 2001, 176: 133-146.

[24]

Li T. G., Sun R. T., Zhang D. Y., . Evolution and Variation of the Tsushima Warm Current during the Late Quaternary: Evidence from Planktonic Foraminifera, Oxygen and Carbon Isotopes. Sci. China (Ser. D), 2007, 50(5): 725-735.

[25]

Lie H. J., Cho C. H.. Resent Advances in Understanding the Circulation and Hydrography of the East China Sea. Fish. Oceanogr., 2002, 11(6): 318-328.

[26]

Liu J., Saito Y., Kong X. H., . Geochemical Characteristics of Sediment as Indicators of Post-Glacial Environmental Changes off the Shandong Peninsula in the Yellow Sea. Cont. Shelf Res., 2009, 29: 846-855.

[27]

Liu J. P., Milliman J. D., Gao S., . Holocene Development of the Yellow River’s Subaqueous Delta, North Yellow Sea. Mar. Geol., 2004, 209: 45-67.

[28]

Liu J. P., Xu K. H., Li A. C., . Flux and Fate of Yangtze River Sediment Delivered to the East China Sea. Geomorphology, 2007, 85: 208-224.

[29]

Liu N., Meng X. W.. Characteristics of Rare Earth Elements in Surface Sediments from the Middle Okinawa Trough: Implications for Provenance of Mixed Sediments. Mar. Geol. Quat. Geol., 2004, 24(4): 37-43.

[30]

Liu Y. G., Ole B. N., Zhang D. Y., . Holocene Tephra Deposits in the Northern Okinawa Trough. Acta Oceanol. Sin., 2006, 25(1): 78-89.

[31]

Machida H.. The Stratigraphy, Chronology and Distribution of Distal Marker-Tephras in and around Japan. Global Planet. Change, 1999, 21(1–3): 71-94.

[32]

Meng X. W., Liu Y. G., Du D. W., . Terrestrial Flux in Sediments from the Okinawa Trough Estimated Using Geochemical Compositional Data and Its Response to Climate Changes over the Past 35 000 a. Acta Oceanol. Sin., 2009, 28(1): 47-54.

[33]

Oguri K., Matsumoto E., Yanada M., . Sediment Accumulation Rates and Budgets of Depositing Particles of the East China Sea. Deep-Sea Res. II, 2003, 50: 513-528.

[34]

Saito Y., Katayama H., Ikehara K., . Transgressive Highstand System Tracts and Post-Glacial Transgression, the East China Sea. Sedim. Geol., 1998, 122: 217-232.

[35]

Sarnthein M., Winn K., Jung S. J. A., . Changes in East Atlantic Deepwater Circulation over the Last 30 000 Years: Eight Time Slice Reconstructions. Paleoceanography, 1994, 9(2): 209-267.

[36]

Shinjo R., Kato Y.. Geochemical Constraints on the Origin of Bimodal Magmatism at the Okinawa Trough, an Incipient Back-Arc Basin. Lithos, 2000, 54: 117-137.

[37]

Stein R.. Accumulation of Organic Carbon in Marine Sediments, 1991, Berlin: Springer

[38]

Stuiver M., Reimer P. J., Bard E., . INTCAL98 Radiocarbon Age Calibration 24 000-0 Cal BP. Radiocarbon, 1998, 40(3): 1041-1083.

[39]

Sun R. T., Li T. G., Zhang D. Y., . Carbon Isotope Record and Its Environment Implication in the Okinawa Trough during the Last 48 Kys. Oceanol. Limnol. Sin., 2007, 38(4): 314-321.

[40]

Tada R., Irino T., Koizumi I.. Land-Ocean Linkages over Orbital and Millennial Timescales Recorded in Late Quaternary Sediments of the Japan Sea. Paleoceanography, 1999, 14(2): 236-247.

[41]

Thornton S. F., McManus J.. Application of Organic Carbon and Nitrogen Stable Isotope and C/N Ratios as Source Indicators of Organic Matter Provenance in Estuarine Systems: Evidence from the Tay Estuary, Scotland. Estuarine, Coastal Shelf Sci., 1994, 38(3): 219-233.

[42]

Ujiié Y., Ujiié H., Taira A., . Spatial and Temporal Variability of Surface Water in the Kuroshio Source Region, Pacific Ocean, over the Past 21 000 Years: Evidence from Planktonic Foraminifera. Mar. Micropaleontol., 2003, 49: 335-364.

[43]

Wang H. X., Zhang X. J., Lan X. H., . Geochemistry Characteristics of Sediment and Provenance Relations of Sediments in Core NT1 of the South Yellow Sea. J. Chin. Uni. Geosci., 2007, 18(4): 287-298.

[44]

Wang K. L., Chung S. L., Chen C. H., . Geochemical Constraints on the Petrogenesis of High-Mg Basaltic Andesites from the Northern Taiwan Volcanic Zone. Chem. Geol., 2002, 182: 513-528.

[45]

Wang L., Sarnthein M., Erlenkeuser H., . East Asian Monsoon Climate during the Late Pleistocene: High-Resolution Sediment Records from the South China Sea. Mar. Geol., 1999, 156: 245-284.

[46]

Wang Y. J., Cheng H., Edwards R. L., . A High-Resolution Absolute-Dated Late Pleistocene Monsoon Record from Hulu Cave, China. Science, 2001, 294: 2345-2348.

[47]

Wang Y. J., Cheng H., Edwards R. L., . Millennial- and Orbital-Scale Changes in the East Asian Monsoon over the Past 224 000 Years. Nature, 2008, 451: 1090-1093.

[48]

Xiang R., Sun Y. B., Li T. G., . Paleoenvironmental Change in the Middle Okinawa Trough since the Last Deglaciation: Evidence from the Sedimentation Rate and Planktonic Foraminiferal Record. Palaeogeogr. Palaeoclimatol. Palaeoecol., 2007, 243: 378-393.

[49]

Xu X. D., Oda M.. Surface-Water Evolution of the Eastern East China Sea during the Last 36 000 Years. Mar. Geol., 1999, 156: 285-304.

[50]

Xu Z. K., Li A. C., Jiang F. Q., . Geochemical Character and Material Source of Sediments in the Eastern Philippine Sea. Chin. Sci. Bull., 2008, 53(6): 923-931.

[51]

Xu Z. K., Lim D. I., Choi J. Y., . Rare Earth Elements in Bottom Sediments of Major Rivers around the Yellow Sea: Implications for Sediment Provenance. Geo-Mar. Lett., 2009, 29: 291-300.

[52]

Xue C. T., Zhou Y. Q., Zhu X. H.. The Huanghe River Course and Delta from End of Late Pleistocene to the 7th Century BC. Acta Oceanol. Sin., 2004, 26(1): 48-61.

[53]

Yang S. Y., Jung H. S., Li C. X.. Two Unique Weathering Regimes in the Changjiang and Huanghe Drainage Basins: Geochemical Evidence from River Sediments. Sedim. Geol., 2004, 164: 19-34.

[54]

Yang S. Y., Li C. X.. REE Geochemistry and Tracing Application in the Yangtze River and the Yellow River Sediments. Geochimica, 1999, 28(4): 374-380.

AI Summary AI Mindmap
PDF

120

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/