{"title":"Mesostructural alteration in porosity of iron tailings sand under freeze-thaw cycle studied by X-ray microcomputed tomography","authors":"Hongyue Zhang, Jiaxu Jin, Pengfei Wu","doi":"10.1016/j.micron.2025.103871","DOIUrl":null,"url":null,"abstract":"<div><div>After experiencing periodic freeze-thaw cycles, the mesostructure of tailings sand in the tailings pond in seasonal frozen regions deteriorates, which directly threatens the safe and stable operation of the tailings pond. In order to reveal the alterations law of the mesostructure of iron tailings sand under the action of freeze-thaw cycles, the pore structure of iron tailings sand was characterized based on industrial X-ray microtomography technology. The response and variation trends of the pore structure of tailings sand to the moisture content and the number of freeze-thaw cycles were analyzed. A numerical model considering the irregular characteristics of particles was established to explore the dynamic process of the mechanical response among tailings sand particles under the action of freeze-thaw cycles. The results show that: the freeze-thaw effect leads to a decrease in the friction angle among tailings sand particles and an increase in the number of particles with an orientation angle of 45 °. The influence of moisture content on the throat diameter and pore coordination number is greater than that of the number of freeze-thaw cycles. There is a dynamic balance between the connection of small pores and the splitting and disintegration of large pores under different numbers of freeze-thaw cycles. During the freezing process of pore water in tailings sand, the particles in the specimen expand from the center to the periphery, and a force chain discontinuity area appears in the center of the model. Moreover, the area of the force chain discontinuity region is affected by the moisture content and the number of freeze-thaw cycles. A higher moisture content results in a larger pore expansion rate, fewer inter-particle contacts and a greater volume expansion. The research results of this paper can provide a reference for the safe and stable operation of tailings dams in seasonal frozen regions, and also support the establishment of the strength deterioration mechanism of tailings sand at the mesoscale under the action of freeze-thaw and the analysis of its influencing factors.</div></div>","PeriodicalId":18501,"journal":{"name":"Micron","volume":"198 ","pages":"Article 103871"},"PeriodicalIF":2.2000,"publicationDate":"2025-07-03","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Micron","FirstCategoryId":"5","ListUrlMain":"https://www.sciencedirect.com/science/article/pii/S0968432825000897","RegionNum":3,"RegionCategory":"工程技术","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"MICROSCOPY","Score":null,"Total":0}
引用次数: 0
Abstract
After experiencing periodic freeze-thaw cycles, the mesostructure of tailings sand in the tailings pond in seasonal frozen regions deteriorates, which directly threatens the safe and stable operation of the tailings pond. In order to reveal the alterations law of the mesostructure of iron tailings sand under the action of freeze-thaw cycles, the pore structure of iron tailings sand was characterized based on industrial X-ray microtomography technology. The response and variation trends of the pore structure of tailings sand to the moisture content and the number of freeze-thaw cycles were analyzed. A numerical model considering the irregular characteristics of particles was established to explore the dynamic process of the mechanical response among tailings sand particles under the action of freeze-thaw cycles. The results show that: the freeze-thaw effect leads to a decrease in the friction angle among tailings sand particles and an increase in the number of particles with an orientation angle of 45 °. The influence of moisture content on the throat diameter and pore coordination number is greater than that of the number of freeze-thaw cycles. There is a dynamic balance between the connection of small pores and the splitting and disintegration of large pores under different numbers of freeze-thaw cycles. During the freezing process of pore water in tailings sand, the particles in the specimen expand from the center to the periphery, and a force chain discontinuity area appears in the center of the model. Moreover, the area of the force chain discontinuity region is affected by the moisture content and the number of freeze-thaw cycles. A higher moisture content results in a larger pore expansion rate, fewer inter-particle contacts and a greater volume expansion. The research results of this paper can provide a reference for the safe and stable operation of tailings dams in seasonal frozen regions, and also support the establishment of the strength deterioration mechanism of tailings sand at the mesoscale under the action of freeze-thaw and the analysis of its influencing factors.
期刊介绍:
Micron is an interdisciplinary forum for all work that involves new applications of microscopy or where advanced microscopy plays a central role. The journal will publish on the design, methods, application, practice or theory of microscopy and microanalysis, including reports on optical, electron-beam, X-ray microtomography, and scanning-probe systems. It also aims at the regular publication of review papers, short communications, as well as thematic issues on contemporary developments in microscopy and microanalysis. The journal embraces original research in which microscopy has contributed significantly to knowledge in biology, life science, nanoscience and nanotechnology, materials science and engineering.