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A Novel Multi-Scale Particle Morphology Descriptor with the Application of SPHERICAL Harmonics

机译:具有球形谐波的新型多尺度粒子形态描述符

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摘要

Particle morphology is of great significance to the grain- and macro-scale behaviors of granular soils. Most existing traditional morphology descriptors have three perennial limitations, i.e., dissensus of definition, inter-scale effect, and surface roughness heterogeneity, which limit the accurate representation of particle morphology. The inter-scale effect refers to the inaccurate representation of the morphological features at the target relative length scale (RLS, i.e., length scale with respective to particle size) caused by the inclusion of additional morphological details existing at other RLS. To effectively eliminate the inter-scale effect and reflect surface roughness heterogeneity, a novel spherical harmonic-based multi-scale morphology descriptor is proposed to depict the incremental morphology variation (IMV) at different RLS. The following conclusions were drawn: (1) the IMV at each RLS decreases with decreasing RLS while the corresponding particle surface is, in general, getting rougher; (2) artificial neural network (ANN)-based mean impact values (MIVs) of at different RLS are calculated and the results prove the effective elimination of inter-scale effects by using ; (3) shows a positive correlation with the rate of increase of surface area at all RLS; (4) can be utilized to quantify the irregularity and roughness; (5) the surface morphology of a given particle shows different morphology variation in different sections, as well as different variation trends at different RLS. With the capability of eliminating the existing limitations of traditional morphology descriptors, the novel multi-scale descriptor proposed in this paper is very suitable for acting as a morphological gene to represent the multi-scale feature of particle morphology.
机译:颗粒形态对粒状土壤的晶粒和宏观规模行为具有重要意义。大多数现有的传统形态学描述符具有三个多年生局限性,即定义,级别效应和表面粗糙度异质性的议定书,这限制了颗粒形态的准确表示。级别的效果是指由在其他RLS存在的另外的形态细节包括包含另外的形态细节,靶相对长度尺度(RLS,即长度尺度的形态学特征的不准确表示。为了有效地消除级别的效果和反射表面粗糙度异质性,提出了一种新的球形谐波的多尺度形态描述符,以描述不同R1的增量形态变化(IMV)。绘制了以下结论:(1)每个RLS的IMV随着RLS的降低而降低,而相应的颗粒表面通常是粗糙的; (2)计算不同RL的人工神经网络(ANN)基于不同RL的平均冲击值(MIV),结果证明了通过使用的有效消除级别效应; (3)显示了与所有RLS的表面积增加速率的正相关; (4)可用于量化不规则性和粗糙度; (5)给定粒子的表面形态显示不同部分的不同形态变化,以及不同R1的不同变异趋势。利用消除传统形态描述符的现有局限性的能力,本文提出的新型多尺度描述符非常适合作为形态学基因代表颗粒形态的多尺度特征。

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