18 research outputs found

    Nonlinear Finite-Element Modeling of Batter Piles under Lateral Load

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    In this paper, a finite-element model is developed in which the nonlinear soil behavior is represented by a hyperbolic relation for static load condition and modified hyperbolic relation, which includes both degradation and gap for a cyclic load condition. Although batter piles are subjected to lateral load, the soil resistance is also governed by axial load, which is incorporated by considering the P-Δ moment and geometric stiffness matrix. By adopting the developed numerical model, static and cyclic load analyses are performed adopting an incremental-iterative procedure where the pile is idealized as beam elements and the soil as elastoplastic spring elements. The proposed numerical model is validated with published laboratory and field pile test results under both static and cyclic load conditions. This paper highlights the importance of the degradation factor and its influence on the soil resistance-displacement (p-y) curve, number of cycles of loading, and cyclic load response

    Nonlinear cyclic load analysis for lateral response of batter piles in soft clay with a rigorous degradation model

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    Nonlinear analysis of batter piles in soft clay is performed using the finite element technique. As the batter piles are not only governed by lateral load but also axial load, the effect of P- Delta moment and geometric stiffness matrix is included in the analysis. For implementing the nonlinear soil behavior, reduction in soil strength (degradation), and formation of gap with number of load cycles, a numerical model is developed where a hyperbolic relation is adopted for the soil in static condition and hyperbolic relation considering degradation and gap for cyclic load condition. The numerical model is validated with published experimental results for cyclic lateral loading and the hysteresis loops are developed to predict the load-deflection behavior and soil resistance behavior during consecutive cycles of loading. This paper highlights the importance of a rigorous degradation model for subsequent cycles of loading on the pile-soil system by a hysteretic representation

    Gap model of one-way cyclic lateral load on vertical files in soft clay

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    For the analysis and design of pile foundation used for coastal structures the prediction of cyclic response, which is influenced by the nonlinear behavior, gap (pile soil separation) and degradation (reduction in strength) of soil becomes necessary. To study the effect of the above parameters a nonlinear cyclic load analysis program using finite element method is developed, incorporating the proposed gap and degradation model and adopting an incremental-iterative procedure. The pile is idealized using beam elements and the soil by number of elastoplastic sub-element springs at each node. The effect of gap and degradation on the load-deflection behavior. elasto-plastic sub-element and resistance of the soil at ground-line have been clearly depicted in this paper

    Behaviour of Laterally Loaded Piles in Soft Clay on Sloping Ground

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    This paper presents the results of static lateral load test carried out on single aluminum model pile embedded in soft clay (consistency index Ic = 0.42) on sloping ground. A series of laboratory model test had been carried out on the instrumented aluminum model pile on sloping ground of varying slopes (1V:1H, 1V:3H and 1V:5H) and with varying embedment length to diameter ratio (L/D) of 20, 25 and 30. From the experimental studies, it was observed that when ground surface changes from horizontal to steep slope (1V:1H), the reduction in pile capacity for L/D ratios 20, 25 and 30 was nearly 50%, 46% and 36% respectively, where as for ground surface changes from horizontal to 1V:5H slope, the reduction in pile capacity was observed to be 1-2% for all L/D ratios (20, 25 and 30)
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