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A Numerical Study on Toppling Failure of a Jointed Rock Slope by Using the Distinct Lattice Spring Model
by
Ji-Jian, Lian
, Xi-Fei Deng
, Zu-Yu, Chen
, Gao-Feng, Zhao
, Li, Qin
in
Boundary conditions
/ Centrifuges
/ Computer simulation
/ Failure
/ Finite element method
/ Gravitation
/ Gravity
/ Inclination
/ Jointed rock
/ Joints (timber)
/ Mathematical models
/ Rocks
/ Slope
/ Solutions
/ Spring
2018
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A Numerical Study on Toppling Failure of a Jointed Rock Slope by Using the Distinct Lattice Spring Model
by
Ji-Jian, Lian
, Xi-Fei Deng
, Zu-Yu, Chen
, Gao-Feng, Zhao
, Li, Qin
in
Boundary conditions
/ Centrifuges
/ Computer simulation
/ Failure
/ Finite element method
/ Gravitation
/ Gravity
/ Inclination
/ Jointed rock
/ Joints (timber)
/ Mathematical models
/ Rocks
/ Slope
/ Solutions
/ Spring
2018
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Do you wish to request the book?
A Numerical Study on Toppling Failure of a Jointed Rock Slope by Using the Distinct Lattice Spring Model
by
Ji-Jian, Lian
, Xi-Fei Deng
, Zu-Yu, Chen
, Gao-Feng, Zhao
, Li, Qin
in
Boundary conditions
/ Centrifuges
/ Computer simulation
/ Failure
/ Finite element method
/ Gravitation
/ Gravity
/ Inclination
/ Jointed rock
/ Joints (timber)
/ Mathematical models
/ Rocks
/ Slope
/ Solutions
/ Spring
2018
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A Numerical Study on Toppling Failure of a Jointed Rock Slope by Using the Distinct Lattice Spring Model
Journal Article
A Numerical Study on Toppling Failure of a Jointed Rock Slope by Using the Distinct Lattice Spring Model
2018
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Overview
In this work, toppling failure of a jointed rock slope is studied by using the distinct lattice spring model (DLSM). The gravity increase method (GIM) with a sub-step loading scheme is implemented in the DLSM to mimic the loading conditions of a centrifuge test. A classical centrifuge test for a jointed rock slope, previously simulated by the finite element method and the discrete element model, is simulated by using the GIM-DLSM. Reasonable boundary conditions are obtained through detailed comparisons among existing numerical solutions with experimental records. With calibrated boundary conditions, the influences of the tensional strength of the rock block, cohesion and friction angles of the joints, as well as the spacing and inclination angles of the joints, on the flexural toppling failure of the jointed rock slope are investigated by using the GIM-DLSM, leading to some insight into evaluating the state of flexural toppling failure for a jointed slope and effectively preventing the flexural toppling failure of jointed rock slopes.
Publisher
Springer Nature B.V
Subject
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