Ballast deterioration inspection and quantification with 3D form method based on particle inscribed ellipsoid

IF 2.4 3区 工程技术 Granular Matter Pub Date : 2023-07-10 DOI:10.1007/s10035-023-01348-5
Qihang Hu, Rui Gao, Jing Chen, Zhiwen Yuan
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引用次数: 1

Abstract

Effective inspection of ballast deterioration is crucial in minimizing wastage of resources during track bed maintenance activities. However, existing studies on quantification and inspection of ballast deterioration often face challenges in application and inaccurate quantification indicators. To address the issues, a 3D form method based on the inscribed ellipsoid of a particle is proposed. This method captures the overall shape change during ballast deterioration and is modified to find the inscribed ellipsoid of irregular particles, validated using cubes. To compare the proposed form method with existing methods, tests were conducted using 30 fresh particles, and the effectiveness of the proposed form method in quantifying the overall shape was validated. A series of Los Angeles Abrasion test and scanning tests were also conducted to analyze the relationship between particle degradation and form from two perspectives: particle crushing and abrasion. The findings demonstrate that the proposed form method can effectively inspect the degree of ballast deterioration, particularly for high degrees of ballast deterioration. This study is significant for the future revision of ballast maintenance guidelines and the development of ballast deterioration inspection.

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基于颗粒内切椭球体的压载物劣化检测与量化
有效的检查道砟劣化是在轨道床维护活动中尽量减少资源浪费的关键。然而,现有的压载劣化量化和检测研究往往面临应用上的挑战和量化指标不准确的问题。为了解决这一问题,提出了一种基于粒子内切椭球体的三维成形方法。该方法捕获了压舱物劣化过程中的整体形状变化,并对其进行了改进,以找到不规则颗粒的内切椭球体,并使用立方体进行了验证。为了与现有方法进行比较,利用30个新鲜颗粒进行了试验,验证了所提出的形式方法在量化整体形状方面的有效性。通过一系列Los Angeles磨损试验和扫描试验,从颗粒破碎和磨损两个角度分析颗粒降解与成形的关系。研究结果表明,所提出的形式方法可以有效地检测镇流器劣化程度,特别是对高度劣化的镇流器。该研究对今后修订压载物维修指南和发展压载物劣化检验具有重要意义。
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来源期刊
Granular Matter
Granular Matter MATERIALS SCIENCE, MULTIDISCIPLINARY-MECHANICS
CiteScore
4.30
自引率
8.30%
发文量
95
期刊介绍: Although many phenomena observed in granular materials are still not yet fully understood, important contributions have been made to further our understanding using modern tools from statistical mechanics, micro-mechanics, and computational science. These modern tools apply to disordered systems, phase transitions, instabilities or intermittent behavior and the performance of discrete particle simulations. >> Until now, however, many of these results were only to be found scattered throughout the literature. Physicists are often unaware of the theories and results published by engineers or other fields - and vice versa. The journal Granular Matter thus serves as an interdisciplinary platform of communication among researchers of various disciplines who are involved in the basic research on granular media. It helps to establish a common language and gather articles under one single roof that up to now have been spread over many journals in a variety of fields. Notwithstanding, highly applied or technical work is beyond the scope of this journal.
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