Evaluating Different Track Sub-Ballast Solutions Considering Traffic Loads and Sustainability

Guilherme Castro, Jonathan Saico, Edson de Moura, R. Motta, L. Bernucci, A. Paixão, E. Fortunato, Luciano Oliveira
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Abstract

The railway industry is seeking high-performance and sustainable solutions for sub-ballast materials, particularly in light of increasing cargo transport demands and climate events. The meticulous design and construction of track bed geomaterials play a crucial role in ensuring an extended track service life. The global push for sustainability has prompted the evaluation of recycling ballast waste within the railway sector, aiming to mitigate environmental contamination, reduce the consumption of natural resources, and lower costs. This study explores materials for application and compaction using a formation rehabilitation machine equipped with an integrated ballast recycling system designed for heavy haul railways. Two recycled ballast-stabilised soil materials underwent investigation, meeting the necessary grain size distribution for the proper compaction and structural conditions. One utilised a low-bearing-capacity silty sand soil stabilised with recycled ballast fouled waste (RFBW) with iron ore at a 3:7 weight ratio, while the second was stabilised with 3% cement. Laboratory tests were conducted to assess their physical, chemical, and mechanical properties, and a non-linear elastic finite element numerical model was developed to evaluate the potential of these alternative solutions for railway sub-ballast. The findings indicate the significant potential of using soils stabilised with recycled fouled ballast as sub-ballast for heavy haul tracks, underscoring the advantages of adopting sustainable sub-ballast solutions through the reuse of crushed deteriorated ballast material.
考虑交通负荷和可持续性,评估不同的轨道底层道碴解决方案
铁路行业正在寻求高性能和可持续的底层道碴材料解决方案,尤其是在货物运输需求和气候事件不断增加的情况下。轨道道床土工材料的精心设计和施工在确保延长轨道使用寿命方面发挥着至关重要的作用。全球对可持续发展的推动促使人们对铁路部门的道碴废料回收利用进行评估,旨在减轻环境污染、减少自然资源消耗并降低成本。本研究探讨了使用配备了专为重载铁路设计的综合道碴回收系统的平整修复机器进行应用和压实的材料。对两种回收的道碴稳定土材料进行了调查,以满足适当压实和结构条件所需的粒度分布。其中一种采用了低承载力的淤泥质砂土,并以 3:7 的重量比添加了铁矿石的回收道碴污泥(RFBW)进行稳定,而第二种则以 3% 的水泥进行稳定。通过实验室测试评估了它们的物理、化学和机械性能,并开发了一个非线性弹性有限元数值模型,以评估这些替代解决方案在铁路底层道碴方面的潜力。研究结果表明,使用回收的污损道碴稳定土作为重型运输轨道的底层道碴具有巨大的潜力,突出了通过重复使用破碎的劣化道碴材料来采用可持续底层道碴解决方案的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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