A Novel Multifractal Method for Geochemical Element Distribution Analysis

IF 4.8 2区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY
Mengyu Zhao, Yi Jin, Jiabin Dong, Junling Zheng, Qinglin Xia
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引用次数: 0

Abstract

Accurately analysis of the multifractal characteristics of geochemical element distribution is crucial for identifying geochemical anomalies and meaningful element associations. However, the most commonly used multifractal method, i.e., the method of moments, may generate different multifractal spectra for a single element distribution due to variations in the range of moment orders. This is because multifractals and their control mechanisms are not well defined. Fractal topography provides a basis for defining multifractals and clarifies the physical meaning of the singularity index. Therefore, a multifractal analysis method based on fractal topography is proposed to generate a unified multifractal spectrum and give new insight into the singularity analysis of element distribution. The similarities and distinctions between the two methods were evaluated using the de Wijs model. The distributions of two multifractal spectra are shown to be fundamentally consistent. The novel method, nevertheless, utilizes fewer statistics and presents a simplified criterion for element enrichment or depletion. To demonstrate its application, Cu geochemical distribution in the Zhongdian area, China, was used as a case study. Based on the comparison results of the two approaches, the proposed novel approach proves beneficial for accurately characterizing the heterogeneity of geochemical element distribution while maintaining a consistent range of the singularity index. The singularity index distribution map at a fine scale provides a comprehensively detailed zonation of geochemical anomalies and, at different scales, it can effectively reveal and interpret the variation of element distribution.

地球化学元素分布分析的多重分形新方法
准确分析地球化学元素分布的多重分形特征对于识别地球化学异常和有意义的元素组合至关重要。然而,最常用的多重分形方法,即矩量法,由于矩阶范围的变化,可能会对单个元素分布产生不同的多重分形谱。这是因为多重分形及其控制机制没有很好地定义。分形形貌为多重分形的定义提供了依据,阐明了奇点指数的物理含义。为此,提出一种基于分形形貌的多重分形分析方法,生成统一的多重分形谱,为元素分布的奇异性分析提供新的思路。使用de Wijs模型评估了这两种方法之间的异同。两个多重分形谱的分布基本一致。然而,新方法利用较少的统计数据,并提出了元素富集或耗尽的简化标准。以中国中甸地区铜地球化学分布为例,说明了其应用价值。两种方法的对比结果表明,该方法能够在保持奇异指数范围一致的情况下准确表征地球化学元素分布的非均质性。精细比例尺奇异指数分布图提供了全面细致的地球化学异常分带,在不同比例尺上可以有效地揭示和解释元素分布的变化。
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来源期刊
Natural Resources Research
Natural Resources Research Environmental Science-General Environmental Science
CiteScore
11.90
自引率
11.10%
发文量
151
期刊介绍: This journal publishes quantitative studies of natural (mainly but not limited to mineral) resources exploration, evaluation and exploitation, including environmental and risk-related aspects. Typical articles use geoscientific data or analyses to assess, test, or compare resource-related aspects. NRR covers a wide variety of resources including minerals, coal, hydrocarbon, geothermal, water, and vegetation. Case studies are welcome.
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