WANG Zhongbo, YANG Shouye, LI Rihui, ZHANG Zhixun, LI Jun, BAI Fenglong, LI Chao. DETRITAL MINERAL COMPOSITION OF THE SEDIMENTS FROM HUANGHE AND ITS HYDRODYNAMIC ENVIRONMENTAL CONSTRAINTS[J]. Marine Geology & Quaternary Geology, 2010, 30(4): 73-85. DOI: 10.3724/SP.J.1140.2010.04073
Citation: WANG Zhongbo, YANG Shouye, LI Rihui, ZHANG Zhixun, LI Jun, BAI Fenglong, LI Chao. DETRITAL MINERAL COMPOSITION OF THE SEDIMENTS FROM HUANGHE AND ITS HYDRODYNAMIC ENVIRONMENTAL CONSTRAINTS[J]. Marine Geology & Quaternary Geology, 2010, 30(4): 73-85. DOI: 10.3724/SP.J.1140.2010.04073

DETRITAL MINERAL COMPOSITION OF THE SEDIMENTS FROM HUANGHE AND ITS HYDRODYNAMIC ENVIRONMENTAL CONSTRAINTS

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  • Received Date: February 06, 2010
  • Revised Date: May 06, 2010
  • The composition of detrital minerals of the sediments from Huanghe mainstream and major tributaries are similar in general, albeit certain variation between different rivers. The main assemblages of heavy minerals are opaque minerals-garnet-epidote-carbonate and altered minerals. It is difficult to delineate the source area by using the source index of light minerals. The maturity index of light minerals also shows very complicated variations between different river samples, reflecting the combined controls of the sediment sources and sorting process during transportation and deposition. It is lower in the middle mainstream than in the upper and the lower reaches. The variations of garnet, opaque minerals and hornblende contents obviously suggest the differentiation of suspended loads and hydrodynamics changes of rivers. The regional distribution of ZTR index well corresponds to the provenance of the river sediments. A dif-ferentiation index was proposed in this study to reveal the differentiation of characteristic minerals caused by regional hydrodynamic sorting. The index can be used as a good indicator for study of sedimentary hydrodynamic environment and differentiation of detrital minerals. As a whole, the mineral compositions are not only controlled by their sources, but also constrained by seasonal hydrodynamic intensity of the river and the mineral gravity differentiation induced by sedimentary environment changes. It should be careful to identify sediment sources in the marginal sea just based on the mineral assemblages of the river,such as Huanghe.
  • [1]
    林振宏,吕亚男,高学敏. 冲绳海槽中部表层沉积物的重矿物分布和来源[J]. 青岛海洋大学学报,1996,26(3):361-368.

    [LIN Zhenhong, LÜ Yanan, GAO Xuemin. Distribution and sources of heavy minerals in the surface sediment in the middle Okinawa Trough[J]. Journal of Ocean University of Qingdao,1996,26(3):361-368.]
    [2]
    陈丽蓉. 中国海沉积矿物学[M].北京:海洋出版社,2008:22-30.[CHEN Lirong. Sedimentary Minerals of the China Seas[M]. Beijing:China Ocean Press, 2008:22

    -30]
    [3]
    Morton Andrew C,Hallsworth Claire R. Processes controlling the composition of heavy mineral assemblages in sandstones[J]. Sedimentary Geology,1999,124(1-4):3-29.
    [4]
    Hallsworth C R, Morton A C, Claoue-Long J, Fanning C M. Carboniferous sand provenance in the Pennine Basin, UK:constraints from heavy mineral and detrital zircon age data[J]. Sedimentary Geology, 2000,137:147-185.
    [5]
    Rimington N, Cramp A, Morton A. Amazon Fan sands:implication for provenance[J]. Marine and Petroleum Geology, 2000, 17:267-284.
    [6]
    Singh B P, Pawar J S, Karlupia S K. Dense mineral data from the northwestern Himalayan foreland sedimentary rocks and recent river sediments:evaluation of the hinterland[J]. Journal of Asian Earth Science, 2004, 23:25-35.
    [7]
    孙白云. 黄河、长江和珠江三角洲沉积物中碎屑矿物的组合特征[J]. 海洋地质与第四纪地质,1990,10(3):23-34.

    [SUN Baiyun. Detrital mineral assemblages in the Yellow, Changjiang and Pearl River delta sediments[J]. Marine Geology & Quaternary Geology, 1990, 10(3):23-34.]
    [8]
    王腊春,陈晓玲,储同庆. 黄河、长江泥沙特性对比分析[J]. 地理研究,1997,16(4):71-79.

    [WANG Lachun, CHEN Xiaoling, CHU Tongqing. A contrast analysis on the loads character of the Changjiang River and the Yellow River[J]. Geographical Research, 1997, 16(4):71-79.]
    [9]
    林晓彤,李巍然,时振波. 黄河物源碎屑沉积物的重矿物特征[J]. 海洋地质与第四纪地质,2003,23(3):17-21.

    [LIN Xiaotong, LI Weiran, SHI Zhenbo. Characteristic of mineralogy in the clastic sediments from the Yellow River provenance, China[J]. Marine Geology & Quaternary Geology, 2003, 23(3):17-21.]
    [10]
    王兆印,王文龙,田世民. 黄河流域泥沙矿物成分与分布规律[J]. 泥沙研究,2007,5:1-8.[WANG Zhaoyin, WANG Wenlong, TIAN Shimin. Mineral composition and distribution of the sediment in the Yellow River basin[J]. Journal of Sediment Research, 2007

    ,5:1-8]
    [11]
    Zhang J. Huang,W W Shi.M C Huanghe (Yellow River) and its estuary:sediment origin, transport and deposition[J]. Journal of Hydrology, 1990, 120:203-223.
    [12]
    钱意颖,叶青超,周文浩. 黄河干流水沙变化与河床演化[M].北京:中国建材出版社,1993.[QIAN Yiying, YE Qingchao, ZHOU Wenhao. Water and Sediment Changes and Channel Process in the Lower Yellow River[M]. Beijing:China Building Material Industry Publishing House, 1993.]
    [13]
    叶青超. 黄河流域环境变迁与水沙运行规律研究[M].济南:山东科学技术出版社,1994:1-120.[YE Qingchao. Environmental evolution and laws of water and sediment movement[M]. Jinan:Shandong Science & Techology Press, 1994:1

    -233.]
    [14]
    许炯心. 黄河下游泥沙沉积汇对入海悬移泥沙颗粒的影响[J]. 泥沙研究,2005,6:21-28.[XU Jiongxin. Effect of sediment sink of lower Yellow River on grain size of sediment flux to the sea[J]. Journal of Sediment Research, 2005

    , 6:21-28.]
    [15]
    张仁,钱宁,蔡体录. 高含沙水流长距离输送稳定条件分析[J]. 泥沙研究,1982,3:1-12.[ZHANG Ren, QIAN Ning, CAI Tilu. An analysis on the conditions of transporting flow with hyperconcentration over a long distance[J]. Journal of Sediment Research, 1982

    ,3:1-12.]
    [16]
    许炯心. 黄河干流龙门至三门峡间泥沙沉积汇的研究[J]. 地理学报,2009,64(5):515-530.

    [XU Jiongxin. A study of se-diment sink between Longmen and Sanmenxia on the Yellow River[J]. Acta Geographica Sinica, 2009,64(5):515-530.]
    [17]
    张欧阳,许炯心. 黄河流域产水产沙、输移和沉积系统的划分[J]. 地理研究,2002,21(2):188-194.

    [ZHANG Ouyang, XU Jiongxin. Decoupling of the Yellow River basin system[J]. Geographical Research, 2002, 21(2):188-194.]
    [18]
    佩蒂庄F J, 波特P E, 西弗R. 砂和砂岩[M]. 北京:科学出版社,1977:35-40.[Pettijohn F J, Potter P E, Siever R. Sand and Sandstone[M]. Beijing:Science Press, 1977:35

    -40.]
    [19]
    刘宝珺. 沉积岩石学[M]. 北京:地质出版社,1980:126.[LIU Baojun. Sedimentary Petrology[M]. Beijing:Geological Publishing House, 1980:126.]
    [20]
    张倩,延军平. 渭河下游水沙变化趋势分析[J]. 干旱区资源与环境,2007,21(9):35-40.

    [ZHANG Qian, YAN Junping. Analysis on the runoff and sand flow in the downstream of Weihe in recent years[J]. Journal of Arid Land Resource and Environment, 2007,21(9):35-40.]
    [21]
    吴成基,王生雄,孟彩萍,徐建华. 从自然地理背景宏观判析黄河中游粗泥沙集中来源区[J]. 中国水土保持,2006,9:8-10.[WU Chengji, WANG Shengxiong, MEN Caiping, XU Jianhua. Macro analysis on coarse sand concentrated coming area based on background of physical geology[J]. Soil and Water Conservation in China, 2006

    , 9:8-10.]
    [22]
    陈先德. 黄河水文[M].郑州:黄河水利出版社,1996:81-82.[CHEN Xiande. Huanghe Hydrology[M]. Zhengzhou:Yellow River Conservancy Press, 1996:81

    -82.]
    [23]
    郑洪汉,B K G Theng, Whitton J S. 黄土高原黄土-古土壤的矿物组成及其环境意义[J]. 地球化学,1994,23(增刊):113-122.[ZHENG Honghan, B K G Theng, Whitton J S. Mineral composition of loess-paleosol in the Loess Plateau of China and its environmental implications[J]. Geochimica,1994

    ,23(sup):113-122.]
    [24]
    焦菊英,王万忠,李靖,等. 黄土高原丘陵沟壑区淤地坝的减水减沙效益分析[J]. 干旱区资源与环境, 2001,15(1):78-83.

    [JIAO Juying, WANG Wanzhong, LI Jing, et al. Soil and water conservation benefit of warping dams in hilly and gully regions on the loess plateau[J]. Journal of Arid Land Resources and Environment,2001,15(1):78-83.]
    [25]
    汪丽娜,穆兴民,张晓萍,等. 黄河流域粗泥沙集中来源区径流及输沙特征分析[J]. 干旱区资源与环境,2008,22(10):60-65.

    [WANG Lina, MU Xingmin, ZHANG Xiaoping, et al. The changing characters of water and sediment in coarse sand source regions of the Loess Plateau[J]. Journal of Arid Land Resource and Environment, 2008,22(10):60-65.]
    [26]
    范念念. 秃尾河水沙冲於特征与变化趋势分析[J]. 西北水电,2008,3:1-8.[FAN Niannian. Analysis of scouring and sedimentation characteristic and trend of Tuwei River[J]. Northwest Hydropower, 2008

    ,3:1-8.]
    [27]
    王秀杰,练继建. 近43年黄河上游来水来沙变化特点[J]. 干旱区研究,2008,25(5):342-347.

    [WANG Xiujie, LIAN Jijian. Analysis on the change of stream flow and silt load in the upper reaches of the Yellow River since recent 43 years[J]. Arid Zone Research, 2008,25(3):342-347.]
    [28]
    许炯心,胡春宏,陈建国. 不同粒径粗泥沙对黄河下游沉积的影响及其在黄河治理中的意义[J]. 中国科学E辑,2009,39(2):310-317.

    [XU Jiongxin, HU Chunhong, CHEN Jianguo. Effect of suspended sediment grain size on channel sedimentation in the lower Yellow River and some implications[J]. Science in China(E), 2009,39(2):310-317.]
    [29]
    王琦,曹立华,杨作升,等. 黄河水下三角洲的动力沉积特征[J]. 中国科学B辑,1991,6:659-665.[WANG Qi, CAO Lihua, YANG Zuosheng, et al. The hydrodynamic sedimentary features of the underwater delta of Yellow River[J]. Science China (B), 1991

    , 6:659-665.]
    [30]
    陈丽蓉. 渤海、黄海、东海沉积物中矿物组合的研究[J]. 海洋科学,1989,2:1-8.[CHEN Lirong. A study on mineral assemblages in sediments of the Bohai Sea, the Huanghai Sea, and the East China Sea[J]. Marine Sciences,1989

    , 2:1-8.]
    [31]
    Orman E F, Morad F L, Paul D K. Spatial variations in heavy minerals and patterns of sediment sorting along the Nile Delta, Egypt[J]. Sedimentary Geology, 1995, 97:22-41.

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