Investigation on the dynamic cumulative damage mechanism and stability of bedding rock slope under the deterioration of rock mass in the hydro-fluctuation belt

被引:0
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作者
Bin Xu
Xinrong Liu
Xiaohan Zhou
Xueyan Guo
Yan Wang
Junhui Huang
Jun Liu
Fei Xiong
Jilu Zhang
机构
[1] Chongqing University,School of Civil Engineering
[2] National Joint Engineering Research Center of Geohazards Prevention in the Reservoir Areas,Key Laboratory of New Technology for Construction of Cities in Mountain Area of the Ministry of Education
[3] Chongqing University,State Key Laboratory of Coal Mine Disaster Dynamics and Control
[4] Chongqing University,undefined
[5] Chongqing University,undefined
[6] Guangzhou Design Institute,undefined
[7] China Construction Second Engineering Bureau Ltd,undefined
关键词
Bedding rock slope; Deterioration of rock mass in the hydro-fluctuation belt; Shaking table model test; UDEC; Cumulative damage mechanism; Dynamic stability;
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中图分类号
学科分类号
摘要
The deterioration of rock mass in the hydro-fluctuation belt and reservoir-induced earthquakes in the Three Gorges Reservoir Area (TGRA) have great impact on the stability of bedding rock slope. The cumulative damage mechanism and stability of bedding rock slope under the deterioration of rock mass in the hydro-fluctuation belt, when subjected to repeated seismic loads, were investigated using the shaking table model test and Universal Distinct Element Code (UDEC) numerical simulation. Under the continuous action of seismic loads, the peak ground acceleration (PGA) amplification coefficient clearly weakens; the cumulative displacement, pore water pressure and earth pressure of the slope show a change trend of increase, increase and decrease, respectively; the damping ratio and damage degree (DG) of the slope increase, while the natural frequency of the slope decreases gradually; the nonlinear cumulative damage mechanical models of the slope in the stages of microseism—small earthquake action and strong earthquake action can be characterized by the cubic function of “S-type” and the exponential function of “steep rise type,” respectively. Based on the good agreement between the experimental observations and numerical simulation results, the evolution process of the dynamic cumulative damage—instability and typical failure modes of the slope (including the hydro-fluctuation belt) was observed. Furthermore, the stability of the slope increases with the decrease of the slope height (A), slope angle (B), seismic load amplitude (C), seismic load frequency (D), or deterioration depth of rock mass in hydro-fluctuation belt (E), while it decreases with the increases of the strength degradation ratio of the rock discontinuities in hydro-fluctuation belt (F); the ranking of sensitivity of the mentioned-above influence factors is C > A > D > E > B > F according to the orthogonal analysis method (OAM).
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