2014Rock and Soil MechanicsRequires access

Discussion on slope stability analysis with double strength reduction technique

Zhao Lian-hen

Open publisher page 7 citations

Abstract

Based on the analysis of energy consumption theory, the different reduction coefficients of strength on the cohesion and internal friction angle are assumed; different ways to define the comprehensive slope safety factor is used, and the objective function expression of respective comprehensive safety factor is derived from the principle of virtual work. Using sequential quadratic programming method and interior point method, a nonlinear programming iteration procedure for optimization solution of comprehensive safety factor is established. According to the obtained solution, we investigate the effect of double strength reduction technique evaluation method on the calculation of slope safety factor. The results show that due to many factors affecting the stability of slope, the well-determined function relationship between reduction factor of shear strength parameter c and φ does not exist; the current presupposed processing method that the strength reduction of cohesive force and internal friction angle are under a certain proportion is difficult to give full reasonable explanation. Through the shortest path of strength reduction to define the comprehensive safety factor of the slope is of more clear physical meaning, through which it can deepen engineering technicians' understanding of strength reduction technology used in slope stability analysis.

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What this paper is about

Based on the analysis of energy consumption theory, the different reduction coefficients of strength on the cohesion and internal friction angle are assumed; different ways to define the comprehensive slope safety factor is used, and the objective function expression of respective comprehensive safety factor is derived from the principle of virtual work. Using sequential quadratic programming method and interior point method, a nonlinear programming iteration procedure for optimization solution of comprehensive safety factor is established. According to the obtained solution, we investigate the effect of double strength reduction technique evaluation method on the calculation of slope safety factor. The results show that due to many factors affecting the stability of slope, the well-determined function relationship between reduction factor of shear strength parameter c and φ does not exist; the current presupposed processing method that the strength reduction of cohesive force and internal friction angle are under a certain proportion is difficult to give full reasonable explanation. Through the shortest path of strength reduction to define the comprehensive safety factor of the slope is of more clear physical meaning, through which it can deepen engineering technicians' understanding of strength reduction technology used in slope stability analysis.

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Available abstract

Based on the analysis of energy consumption theory, the different reduction coefficients of strength on the cohesion and internal friction angle are assumed; different ways to define the comprehensive slope safety factor is used, and the objective function expression of respective comprehensive safety factor is derived from the principle of virtual work. Using sequential quadratic programming method and interior point method, a nonlinear programming iteration procedure for optimization solution of comprehensive safety factor is established. According to the obtained solution, we investigate the effect of double strength reduction technique evaluation method on the calculation of slope safety factor. The results show that due to many factors affecting the stability of slope, the well-determined function relationship between reduction factor of shear strength parameter c and φ does not exist; the current presupposed processing method that the strength reduction of cohesive force and internal friction angle are under a certain proportion is difficult to give full reasonable explanation. Through the shortest path of strength reduction to define the comprehensive safety factor of the slope is of more clear physical meaning, through which it can deepen engineering technicians' understanding of strength reduction technology used in slope stability analysis.

Key concepts: Strength reduction, Cohesion (chemistry), Safety factor, Slope stability, Slope stability analysis, Reduction (mathematics), Factor of safety, Nonlinear system

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