层状充填体各向异性特征:力学性能与能量耗散

IF 9.4 1区 工程技术 Q1 ENGINEERING, GEOLOGICAL
Huisheng Qu , Lang Liu , Yonglu Suo , Mengbo Zhu , Pan Yang , Caixing Zhang , Geng Xie
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引用次数: 0

摘要

分层充填体是矿山开采中常用的一种充填体,分层参数对分层充填体的力学性能影响较大。通过制备13个不同分层次数和不同分层角度的试件,研究了充填体的各向异性力学行为、能量耗散特性和裂缝发育情况。进行了纵波速度、单轴压缩、扫描电镜(SEM)和声发射(AE)实验。结果表明:(1)纵波速度分别与分层面数和分层角呈线性和椭圆关系;强度、分层参数和纵波速度在函数关系上表现出高度重合,可实现强度的快速预测。(2)脱层表面的微观结构比基体的微观结构更松散,导致孔隙-裂隙压实阶段强度降低,强度增加。分层的数量和角度随各向异性系数的增加而线性增加。(3)角切充填体能量演化可分为4个阶段,随着分层面数和分层角度的增加,起始应力和峰值应力处弹性能所占比例减小。(4)裂纹发展随着分层面数和分层角度的增加而增加,导致能量耗散系数和声发射峰值能量降低。这些发现为采矿作业中充填材料和工艺的设计提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Anisotropic characteristics of layered backfill: Mechanical properties and energy dissipation

Layered backfill is commonly used in mining operations, and its mechanical behavior is strongly influenced by delamination parameters. In this study, 13 specimens with different numbers of delamination and delamination angle were prepared to investigate the anisotropic mechanical behavior, energy dissipation characteristics and crack development of backfill. P-wave velocity, uniaxial compression, scanning electron microscope (SEM), and acoustic emission (AE) experiments were conducted. The results indicate that: (1) The P-wave velocity has linear and elliptical relationships with the number of delamination surface and delamination angle, respectively; the strength, delamination parameters and P-wave velocity show a high degree of coincidence in terms of their function relationship, which can realize the rapid prediction of strength. (2) The microstructure of the delaminated surface is looser than that of the matrix, leading to a decrease in strength and an increase at the pore-fissure compaction stage. The number and angle of delamination increase linearly with the anisotropy coefficient. (3) The energy evolution in angle-cut backfill can be divided into four stages, with a decrease in the proportion of elastic energy at the initiation stress and peak stress with increasing number of delamination planes and delamination angle. (4) Crack development increases with the number of delamination surface and delamination angle, resulting in a decrease in energy dissipation coefficient and peak AE energy. These findings provide valuable insights for the design of filling materials and processes in mining operations.

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来源期刊
Journal of Rock Mechanics and Geotechnical Engineering
Journal of Rock Mechanics and Geotechnical Engineering Earth and Planetary Sciences-Geotechnical Engineering and Engineering Geology
CiteScore
11.60
自引率
6.80%
发文量
227
审稿时长
48 days
期刊介绍: The Journal of Rock Mechanics and Geotechnical Engineering (JRMGE), overseen by the Institute of Rock and Soil Mechanics, Chinese Academy of Sciences, is dedicated to the latest advancements in rock mechanics and geotechnical engineering. It serves as a platform for global scholars to stay updated on developments in various related fields including soil mechanics, foundation engineering, civil engineering, mining engineering, hydraulic engineering, petroleum engineering, and engineering geology. With a focus on fostering international academic exchange, JRMGE acts as a conduit between theoretical advancements and practical applications. Topics covered include new theories, technologies, methods, experiences, in-situ and laboratory tests, developments, case studies, and timely reviews within the realm of rock mechanics and geotechnical engineering.
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