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首页> 外文期刊>Applied Geochemistry: Journal of the International Association of Geochemistry and Cosmochemistry >Compositional data analysis of Holocene sediments from the West Bengal Sundarbans, India: Geochemical proxies for grain-size variability in a delta environment
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Compositional data analysis of Holocene sediments from the West Bengal Sundarbans, India: Geochemical proxies for grain-size variability in a delta environment

机译:来自印度西孟加拉邦Sundarbans的全新世沉积物的成分数据分析:三角洲环境中粒度变化的地球化学代理

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This paper is part of a special issue of Applied Geochemistry focusing on reliable applications of compositional multivariate statistical methods. This study outlines the application of compositional data analysis (CoDa) to calibration of geochemical data and multivariate statistical modelling of geochemistry and grain-size data from a set of Holocene sedimentary cores from the Ganges-Brahmaputra (G-B) delta. Over the last two decades, understanding near-continuous records of sedimentary sequences has required the use of core-scanning X-ray fluorescence (XRF) spectrometry, for both terrestrial and marine sedimentary sequences. Initial XRF data are generally unusable in 'raw-format', requiring data processing in order to remove instrument bias, as well as informed sequence interpretation. The applicability of these conventional calibration equations to core-scanning XRF data are further limited by, the constraints posed by unknown measurement geometry and specimen homogeneity, as well as matrix effects. Log ratio based calibration schemes have been developed and applied to clastic sedimentary sequences focusing mainly on energy dispersive-XRF (ED-XRF) core-scanning. This study has applied high resolution core-scanning XRF to Holocene sedimentary sequences from the tidal-dominated Indian Sundarbans, (Ganges-Brahmaputra delta plain). The Log-Ratio Calibration Equation (LRCE) was applied to a subset of core-scan and conventional ED-XRF data to quantify elemental composition. This provides a robust calibration scheme using reduced major axis regression of log-ratio transformed geochemical data. Through partial least squares (PLS) modelling of geochemical and grain-size data, it is possible to derive robust proxy information for the Sundarbans depositional environment. The application of these techniques to Holocene sedimentary data offers an improved methodological framework for unravelling Holocene sedimentation patterns. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文是《应用地球化学》特刊的一部分,着重于成分多元统计方法的可靠应用。这项研究概述了成分数据分析(CoDa)在地球化学数据校准以及来自恒河-布拉马普特拉(G-B)三角洲一套全新世沉积岩心的地球化学和粒度数据的多元统计建模中的应用。在过去的二十年中,要了解近乎连续的沉积序列记录,就需要对陆地和海洋沉积序列使用岩心扫描X射线荧光(XRF)光谱仪。初始XRF数据通常无法以“原始格式”使用,需要进行数据处理以消除仪器偏差,并进行有根据的序列解释。这些常规校准方程式对岩心扫描XRF数据的适用性进一步受到未知测量几何形状和样品均质性以及基体效应的限制。已经开发了基于对数比的校准方案,并将其应用于主要集中于能量色散-XRF(ED-XRF)岩心扫描的碎屑沉积序列。这项研究已将高分辨率岩心扫描XRF应用于以潮汐为主的印度苏达尔班(Ganges-Brahmaputra三角洲平原)的全新世沉积序列。将对数比校准方程(LRCE)应用于核心扫描和常规ED-XRF数据的子集以量化元素组成。这提供了使用减少的对数比转换的地球化学数据的主轴回归的可靠校准方案。通过对地球化学和粒度数据进行偏最小二乘(PLS)建模,可以为Sundarbans沉积环境导出可靠的代理信息。这些技术在全新世沉积数据中的应用为揭示全新世沉积模式提供了一种改进的方法框架。 (C)2016 Elsevier Ltd.保留所有权利。

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