Mineralogical and chemical variability of fluvial sediments 1. Bedload sand (Ganga-Brahmaputra, Bangladesh)

被引:249
作者
Garzanti, Eduardo [1 ]
Ando, Sergio [1 ]
France-Lanord, Christian [2 ]
Vezzoli, Giovanni [1 ]
Censi, Paolo [3 ,5 ]
Galy, Valier [2 ]
Najman, Yani [4 ]
机构
[1] Univ Milano Bicocca, Lab Petrog Sedimentario, Dipartimento Sci Geol & Geotecnol, I-20126 Milan, Italy
[2] Ctr Rech Petrog & Geochim, F-54501 Vandoeuvre Les Nancy, France
[3] Univ Palermo, Dipartimento CFTA, I-90123 Palermo, Italy
[4] Univ Lancaster, Dept Environm Sci, Lancaster LA1 4YQ, England
[5] IAMC CNR UOS Capo Granitola, I-91026 Campobello Di Mazara, Trapani, Italy
关键词
sedimentary geochemistry; sedimentary petrology; settling equivalence; selective entrainment; placer sands; opaque minerals; REE-bearing minerals; Eu anomaly; Himalaya; DIFFERENTIAL ZIRCON FERTILITY; GRAIN-SIZE DISTRIBUTION; UPPER CONTINENTAL-CRUST; ORGANIC-CARBON BURIAL; POLYMODAL SEDIMENTS; PROVENANCE ANALYSIS; FOCUSED EROSION; HEAVY MINERALS; DETRITAL MODES; NEPAL HIMALAYA;
D O I
10.1016/j.epsl.2010.09.017
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
This study investigates the natural processes that control concentration of detrital minerals and consequently chemical elements in river sand. The novelty of our approach consists in the systematic integration of detailed textural, petrographical, mineralogical and chemical data, and in the quantitative description and modeling of relationships among mineralogical and chemical variables for each sample and each grain-size class in each sample. Bed sediment in transit in the largest sedimentary system on Earth chiefly consists of fine-grained lithofeldspathoquartzose sand including rich amphibole-epidote-garnet suites, mixed with minor very-fine-grained-sand to silt subpopulations containing less heavy minerals and representing intermittent suspension. Mineralogical and particularly chemical differences between Ganga and Brahmaputra bedload are orders of magnitude less than both intersample variability associated with selective-entrainment effects and intrasample variability associated with settling-equivalence effects. Any provenance interpretation of mineralogical, chemical, or detrital-geochronology datasets therefore requires quantitative understanding of hydraulically controlled compositional variability. Mineralogical and chemical, intrasample and intersample variability can be deduced with simple equations and numerical solutions. The underlying assumptions on the chemical composition of detrital minerals, as well as the possible pitfalls, uncertainties and approximations involved are discussed. Principal results include calibration of rare REE-bearing ultradense minerals, ill-determined by optical analyses but crucial in both detrital-geochronology and settling-equivalence studies, and assessment of progressively changing concentration for any detrital component with increasing intensity of selective-entrainment effects. Contributions by each mineral group to the chemical budget were inferred with sufficient precision and accuracy. Although complex because of diverse controlling factors including provenance, weathering and anthropogenic pollution, mineralogical and consequently chemical variability of fluvial sediments can be quantitatively predicted. This path, difficult because of insufficient information but far from hopeless, shall eventually lead to more accurate calculation of sediment fluxes and chemical budgets, as well as to a deeper understanding of sedimentary geochemistry and fluvial sedimentology. (C) 2010 Elsevier B.V. All rights reserved.
引用
收藏
页码:368 / 381
页数:14
相关论文
共 93 条
[1]   U-Pb zircon ages as a sediment mixing tracer in the Nepal Himalaya [J].
Amidon, WH ;
Burbank, DW ;
Gehrels, GE .
EARTH AND PLANETARY SCIENCE LETTERS, 2005, 235 (1-2) :244-260
[2]   Raman spectroscopy as an effective tool for high-resolution heavy-mineral analysis: Examples from major Himalayan and Alpine fluvio-deltaic systems [J].
Ando, Sergio ;
Bersani, Danilo ;
Vignola, Pietro ;
Garzanti, Eduardo .
SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY, 2009, 73 (03) :450-455
[3]   INTERPRETATION OF POLYMODAL SEDIMENTS [J].
ASHLEY, GM .
JOURNAL OF GEOLOGY, 1978, 86 (04) :411-421
[4]   Residence of REE, Y, Th and U in granites and crustal protoliths; Implications for the chemistry of crustal melts [J].
Bea, F .
JOURNAL OF PETROLOGY, 1996, 37 (03) :521-552
[5]  
Best J.L., 2007, LARGE RIVERS GEOMORP, P395, DOI DOI 10.1002/9780470723722.CH19
[6]  
BRIGGS LI, 1965, J SEDIMENT PETROL, V35, P939
[7]  
BRIGGS LI, 1965, SOC ECONOMIC PALEONT, V12, P5
[8]  
BRISTOW CS, 1987, SEPM SPECIAL PUBLICA, V39, P63
[9]   Routine analyses of trace elements in geological samples using flow injection and low pressure on-line liquid chromatography coupled to ICP-MS: A study of geochemical reference materials BR, DR-N, UB-N, AN-G and GH [J].
Carignan, J ;
Hild, P ;
Mevelle, G ;
Morel, J ;
Yeghicheyan, D .
GEOSTANDARDS NEWSLETTER-THE JOURNAL OF GEOSTANDARDS AND GEOANALYSIS, 2001, 25 (2-3) :187-198
[10]   Simplified settling velocity formula for sediment particle [J].
Cheng, NS .
JOURNAL OF HYDRAULIC ENGINEERING-ASCE, 1997, 123 (02) :149-152