{"title":"Shear strength-dilation characteristics of coral sand contained fines","authors":"Xue Li, Jiankun Liu, Zhaohui Sun","doi":"10.1007/s10064-023-03349-3","DOIUrl":null,"url":null,"abstract":"<div><p>Coral sand (CS) always contain different contents of fines and consequently cause some changes to shear behavior which is distinct from the regular silicious sand. To examine the effects of stress level (<i>σ</i><sub>3</sub>), fines (FS), and relative density (<i>D</i><sub><i>r</i></sub>) on shear strength-dilation behaviors of CS, a series of consolidated drained tests and gray correlation analysis were conducted. Results show that peak strength of sandy soil improved by increasing <i>σ</i><sub>3</sub> and <i>D</i><sub><i>r</i></sub> but reduced as increasing FS content. However, the peak strength loss rate <i>η</i> increased with an increase of <i>D</i><sub><i>r</i></sub> or FS content but decreased as increasing <i>σ</i><sub>3</sub>. In addition, strain softening of mixture was aggravated by increasing <i>σ</i><sub>3</sub>, <i>D</i><sub><i>r</i></sub>, and FS percentage. Particularly, the shear dilatancy of mixture transformed to shear contraction as <i>σ</i><sub>3</sub> increased from 200 to 400 kPa. Maximum angle of dilation has an approximate linear relation with peak-state friction angle. Gray correlation analysis indicated that the influence of stress level and FS content on peak strength and strain-softening of sandy soil is more prominent than <i>D</i><sub><i>r</i></sub>. Furthermore, when <i>D</i><sub><i>r</i></sub> increased or FS content decreased, the internal friction angle of mixture increased linearly. The cohesion force of mixture has a positive linear relation with <i>D</i><sub><i>r</i></sub> while appears a hyperbolic relation with FS content. Based on the concept of equivalent void ratio, the grain contact and mixture phase were discussed. Finally, the modified Mohr-Coulomb criterion of mixture was proposed considering <i>D</i><sub><i>r</i></sub> and FS content.</p></div>","PeriodicalId":500,"journal":{"name":"Bulletin of Engineering Geology and the Environment","volume":"82 9","pages":""},"PeriodicalIF":3.7000,"publicationDate":"2023-08-12","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Bulletin of Engineering Geology and the Environment","FirstCategoryId":"5","ListUrlMain":"https://link.springer.com/article/10.1007/s10064-023-03349-3","RegionNum":2,"RegionCategory":"工程技术","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q3","JCRName":"ENGINEERING, ENVIRONMENTAL","Score":null,"Total":0}
引用次数: 0
Abstract
Coral sand (CS) always contain different contents of fines and consequently cause some changes to shear behavior which is distinct from the regular silicious sand. To examine the effects of stress level (σ3), fines (FS), and relative density (Dr) on shear strength-dilation behaviors of CS, a series of consolidated drained tests and gray correlation analysis were conducted. Results show that peak strength of sandy soil improved by increasing σ3 and Dr but reduced as increasing FS content. However, the peak strength loss rate η increased with an increase of Dr or FS content but decreased as increasing σ3. In addition, strain softening of mixture was aggravated by increasing σ3, Dr, and FS percentage. Particularly, the shear dilatancy of mixture transformed to shear contraction as σ3 increased from 200 to 400 kPa. Maximum angle of dilation has an approximate linear relation with peak-state friction angle. Gray correlation analysis indicated that the influence of stress level and FS content on peak strength and strain-softening of sandy soil is more prominent than Dr. Furthermore, when Dr increased or FS content decreased, the internal friction angle of mixture increased linearly. The cohesion force of mixture has a positive linear relation with Dr while appears a hyperbolic relation with FS content. Based on the concept of equivalent void ratio, the grain contact and mixture phase were discussed. Finally, the modified Mohr-Coulomb criterion of mixture was proposed considering Dr and FS content.
期刊介绍:
Engineering geology is defined in the statutes of the IAEG as the science devoted to the investigation, study and solution of engineering and environmental problems which may arise as the result of the interaction between geology and the works or activities of man, as well as of the prediction of and development of measures for the prevention or remediation of geological hazards. Engineering geology embraces:
• the applications/implications of the geomorphology, structural geology, and hydrogeological conditions of geological formations;
• the characterisation of the mineralogical, physico-geomechanical, chemical and hydraulic properties of all earth materials involved in construction, resource recovery and environmental change;
• the assessment of the mechanical and hydrological behaviour of soil and rock masses;
• the prediction of changes to the above properties with time;
• the determination of the parameters to be considered in the stability analysis of engineering works and earth masses.