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首页> 外文期刊>Vadose zone journal VZJ >The Effects of Bulk Density and Water Potential on Multifractal Characteristics of Soil Penetration Resistance Microprofiles Measured on Disturbed Soil Samples
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The Effects of Bulk Density and Water Potential on Multifractal Characteristics of Soil Penetration Resistance Microprofiles Measured on Disturbed Soil Samples

机译:堆积密度和水势对扰动土壤样品测得的抗土壤渗透性微剖面的多重分形特征的影响

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摘要

Soil compaction may interact with available soil water and aeration porosity, affecting root and crop growth. Most commonly, soil compaction status is assessed by penetration resistance (PR) tests. The Least Limiting Water Range (LLWR) is an indicatorof soil structural quality that appraises the simultaneous effects of water availability, aeration, and PR on plant growth. High resolution PR microprofiles are commonly acquired for LLWR assessment. Multifractal analysis of these microprofiles providesa new opportunity to investigate highly localized heterogeneity at the scale of small soil cores. The objectives of this work were to characterize the scaling properties of depth-dependent PR microprofiles using multifractal analyses and to explore theeffects of soil bulk density and water potential on the degree of multifractality of these PR data series. Disturbed soil cores from a clayey Oxisol (Rhodic Hapludox) were assayed at seven different levels of bulk density (ρb) in the range of 1.00–1.60kg dm-3 and at six different matric potentials (psi) from -6 to -1500 kPa, yielding 42 treatments. Each treatment was replicated three times and three PR microprofiles were recorded per soil core, so that 378 PR data series were analyzed. Singularity and Rényi spectra revealed the multifractal behavior of PR microprofiles, and the multifractal approach provided considerable detailed information on their depth-dependent structure. Rényi spectra and singularity spectra of PR microprofiles, and specially the branches accounting for the most negative statistical moments, depended on ρb and psi. Effects of bulk density on multifractal parameters were modeled by a linear equation, while water potential effects were modeled by an exponential relationshipto log (-psi). Increasing ρb gradually reduced the degree of multifractality. Increased dryness increased the degree of multifractality, notably near the wilting point, while higher water contents near field capacity showed no significant effects on thedegree of multifractality.
机译:土壤压实可能会与可用的土壤水分和通气孔隙度相互作用,从而影响根系和农作物的生长。最常见的是,土壤的压实状态通过抗渗透性(PR)测试进行评估。最低限水范围(LLWR)是土壤结构质量的指标,可评估水的可利用性,通气量和PR对植物生长的同时影响。高分辨率PR微剖面通常用于LLWR评估。这些微观剖面的多重分形分析提供了一个新的机会,可以研究小土壤核心规模的高度局部异质性。这项工作的目的是利用多重分形分析来表征深度相关的PR微观剖面的尺度特征,并探讨土壤容重和水势对这些PR数据系列的多重分形程度的影响。在1.00-1.60kg dm-3范围内的七个不同水平的堆积密度(ρb)和-6至-1500 kPa的六个不同的基质电势(psi)下测定了来自黏土Oxisol(Rhodic Hapludox)的扰动的土壤核心,产生42种治疗方法。每种处理重复三次,每个土壤核心记录三个PR微观剖面,因此分析了378个PR数据序列。奇异性和Rényi光谱揭示了PR微剖面的多重分形行为,并且多重分形方法提供了有关其深度相关结构的大量详细信息。 PR微剖面的Rényi光谱和奇异光谱,特别是占最大负统计矩的分支,取决于ρb和psi。堆积密度对多重分形参数的影响通过线性方程式建模,而水势影响通过对数指数关系(-psi)建模。 ρb的增加逐渐降低了多重分形的程度。增加的干燥度增加了多重分形的程度,特别是在枯萎点附近,而在田间持水量附近较高的水分含量对多重分形的程度没有显着影响。

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