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Integrated simulation and monitoring to analyze failure mechanism of the anti-dip layered slope with soft and hard rock interbedding 被引量:2
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作者 Jinduo Li Yuan Gao +5 位作者 Tianhong Yang Penghai Zhang Yong Zhao Wenxue Deng Honglei Liu Feiyue Liu 《International Journal of Mining Science and Technology》 SCIE EI CAS CSCD 2023年第9期1147-1164,共18页
The significant difference between the mechanical properties of soft rock and hard rock results in the complexity of the failure mode of the anti-dip layered slope with soft and hard rock interbedding.In order to reve... The significant difference between the mechanical properties of soft rock and hard rock results in the complexity of the failure mode of the anti-dip layered slope with soft and hard rock interbedding.In order to reveal the landslide mechanism,taking the north slope of Fushun West Open-pit Mine as an example,this paper analyzed the failure mechanism of different landslides with monitoring and field surveys,and simulated the evolution of landslides.The study indicated that when the green mudstone(hard rock)of the anti-dip slope contains siltized intercalations(soft rock),the existence of weak layers not only aggravates the toppling deformation of anti-dip layered slope with high dip,but also causes the shear failure of anti-dip layered slope with stable low dip.The shear failure including subsidence induced sliding and wedge failure mainly exists in the unloading zone of the slope.Its failure depth and failure time were far less than that of toppling failure.In terms of the development characteristics of deformation,toppling deformation has the long-term and progressive characteristics,but shear failure deformation has the abrupt and transient characteristics.This study has deepened the understanding of such slope landslide mechanism,and can provide reference for similar engineering. 展开更多
关键词 anti-dip layered slope Soft and hard rock interbedding Toppling failure Wedge failure Fushun West Open-pit Mine
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Investigation of the block toppling evolution of a layered model slope by centrifuge test and discrete element modeling 被引量:1
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作者 Leilei Jin Hongkai Dong +3 位作者 Fei Ye Yufeng Wei Jianfeng Liu Changkui Wang 《Journal of Rock Mechanics and Geotechnical Engineering》 SCIE CSCD 2024年第1期112-122,共11页
Primary toppling usually occurs in layered rock slopes with large anti-dip angles.In this paper,the block toppling evolution was explored using a large-scale centrifuge system.Each block column in the layered model sl... Primary toppling usually occurs in layered rock slopes with large anti-dip angles.In this paper,the block toppling evolution was explored using a large-scale centrifuge system.Each block column in the layered model slope was made of cement mortar.Some artificial cracks perpendicular to the block column were prefabricated.Strain gages,displacement gages,and high-speed camera measurements were employed to monitor the deformation and failure processes of the model slope.The centrifuge test results show that the block toppling evolution can be divided into seven stages,i.e.layer compression,formation of major tensile crack,reverse bending of the block column,closure of major tensile crack,strong bending of the block column,formation of failure zone,and complete failure.Block toppling is characterized by sudden large deformation and occurs in stages.The wedge-shaped cracks in the model incline towards the slope.Experimental observations show that block toppling is mainly caused by bending failure rather than by shear failure.The tensile strength also plays a key factor in the evolution of block toppling.The simulation results from discrete element method(DEM)is in line with the testing results.Tensile stress exists at the backside of rock column during toppling deformation.Stress concentration results in the fragmented rock column and its degree is the most significant at the slope toe. 展开更多
关键词 Block toppling CENTRIFUGE anti-dip slope Failure mechanism Discrete element method
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Analysis of blasting vibration signal of high steep anti-dip layered rock slope 被引量:2
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作者 SUN Xiao-ming PANG Shi-hui +3 位作者 QIN Ke SHITing-ting ZHU Chun TAO Zhi-gang 《Journal of Mountain Science》 SCIE CSCD 2022年第11期3257-3269,共13页
Blasting is one of the most economical and efficient mining methods in open-pit mine production.However,behind the huge benefits,it poses a hidden threat to the quality of slope rock mass,stability of slope,and safety... Blasting is one of the most economical and efficient mining methods in open-pit mine production.However,behind the huge benefits,it poses a hidden threat to the quality of slope rock mass,stability of slope,and safety of nearby buildings.In order to explore the influence of blasting vibration on the stability of anti-dip layered rock slopes,herein,the site near the large-scale toppling failure area of Changshanhao gold mine stope of Inner Mongolia Taiping Mining Co.,Ltd.was selected for on-site blasting test and monitoring.The Peak Particle Velocity(PPV)measured at the monitoring point is located on the lower side of the maximum allowable vibration velocity curve that is prepared based on the allowable speed standard evaluation chart in the full frequency domain established by standards practiced in various countries such as German DIN4150,the USBM RI 8507,and Chinese GB6722-2014.This indicates that the blasting vibration has less influence on the location of the monitoring point.The vibration signals obtained in the blasting test were analyzed using the wavelet packet theory,and it was concluded that the blasting vibration signals measured in the anti-dip layered rock slope were mainly concentrated in two frequency bands of 0-80 Hz and 115-160 Hz.The sum of energy of the two frequency bands accounted for more than 99%,wherein,the energy contained in the 0-80 Hz frequency band accounted for more than 85%of the monitoring signals.The vibration signal with 0-80 Hz frequency band monitored at the slope toe was selected for the energy attenuation analysis.The results showed that the energy attenuation decreased in radial,vertical,and tangential directions.Further,the Energy Attenuation Rate per Meter(EARPM)was calculated.In conjunction with the site characteristics analysis,it was found that the energy attenuation rate was significantly affected by the rock mass characteristics of the structural plane.The slope reinforcement project can effectively reduce the absorption of vibration energy by the slope and increase slope stability. 展开更多
关键词 anti-dip rocky slope Blasting vibration PPV Wavelet packet theory EARPM
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块裂反倾巨厚层状岩质边坡变形破坏颗粒流模拟及稳定性分析 被引量:15
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作者 岑夺丰 黄达 黄润秋 《中南大学学报(自然科学版)》 EI CAS CSCD 北大核心 2016年第3期984-993,共10页
为了研究块裂反倾巨厚层状岩质边坡破坏机制及稳定性,基于PFC2D平行黏结模型和持续增加重力加速度方法,研究边坡破坏模式、应力-变形及能量耗散演化,并用临界重力加速度量化研究其稳定性。研究结果表明:边坡破坏模式主要有滑移、倾倒和... 为了研究块裂反倾巨厚层状岩质边坡破坏机制及稳定性,基于PFC2D平行黏结模型和持续增加重力加速度方法,研究边坡破坏模式、应力-变形及能量耗散演化,并用临界重力加速度量化研究其稳定性。研究结果表明:边坡破坏模式主要有滑移、倾倒和溃屈破坏3类且随岩层倾角增大而逐渐转变;随岩块两相邻边长比l/h增大,边坡越倾向于发生倾倒破坏;滑移和倾倒破坏模式从坡脚向上坡体应力逐步达到峰值并峰后跌落,具有渐进破坏特征。而溃屈破坏模式坡体各部位应力呈"捆绑"型波动性塑性流动状态,具有大面积剧烈整体性破坏特征;随着岩层倾角(45°,60°,75°)增大,边坡临界重力加速度先减小再增大,稳定性在60°时最弱。边坡稳定性随岩块增大而增强,并主要受层间裂隙间距控制。 展开更多
关键词 块裂反倾边坡 变形破坏 稳定性 演化 颗粒流
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基于重度增加法的岩坡破坏过程流形元分析 被引量:4
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作者 王述红 高红岩 张紫杉 《东北大学学报(自然科学版)》 EI CAS CSCD 北大核心 2016年第3期403-407,共5页
考虑岩体边坡滑动大变形破坏特性和现有研究分析手段,提出利用第一作者团队开发研制的Geo SM A-3D,在现场岩体结构信息采集的基础上,建立岩体边坡空间数值模型,实体表征岩体三维模型;利用现代数值流形法(NMM)模拟岩体大变形破坏分析手段... 考虑岩体边坡滑动大变形破坏特性和现有研究分析手段,提出利用第一作者团队开发研制的Geo SM A-3D,在现场岩体结构信息采集的基础上,建立岩体边坡空间数值模型,实体表征岩体三维模型;利用现代数值流形法(NMM)模拟岩体大变形破坏分析手段,在块体理论的基础上,运用有限元分析中经常用到的重度增加法,不断增加岩体的重度,直到岩体边坡中的"关键块体"产生滑动,使边坡发生大变形破坏;同时以最危险"关键块体"水平位移随重度增加发生突变为破坏依据,对边坡的安全系数进行评定.实例分析某边坡工程的破坏过程,实现了岩体边坡大变形数字表征,为边坡支护提出解决方案,为工程施工和边坡灾害的处置提供参考和借鉴. 展开更多
关键词 重度增加法 块体 大变形分析 数值流形法 岩体边坡
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密集匹配点云下的矿石块度提取 被引量:1
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作者 崔欣 王井利 +1 位作者 吴冬 赵鑫 《科学技术与工程》 北大核心 2022年第18期7823-7830,共8页
在矿山爆破作业中,评判矿山爆破质量的重要指标是爆破后矿石块度的大小。矿石块度的大小直接影响着后期的生产作业。针对露天矿施工过程中矿石块度测定问题,提出了一种基于密集匹配点云数据的矿石块度测定方法。首先通过寻找矿石堆中最... 在矿山爆破作业中,评判矿山爆破质量的重要指标是爆破后矿石块度的大小。矿石块度的大小直接影响着后期的生产作业。针对露天矿施工过程中矿石块度测定问题,提出了一种基于密集匹配点云数据的矿石块度测定方法。首先通过寻找矿石堆中最高点与最低点计算不同矿石堆的坡度;然后依据计算得到的矿石堆坡度信息以及点云灰度信息、邻域特征等,采用粗提取与精提取相结合的方式对矿石点云边界线进行提取;依据提取出的边界线实现不同矿石点云的有效分割;最后利用分割得到的单个矿石点云进行块度估算以及矿石分布规律研究。试验表明:本文方法可以有效地分割出单个矿石点云,且分割效果较好,研究区内矿石块度大多介于0.5~1.0 m。 展开更多
关键词 密集匹配点云 坡度 邻域特征 边界线 矿石块度
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