The Influence of RC Nonlinearity on p-y Curves for CIDH Bridge Piers

L. Massone, A. Lemnitzer
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引用次数: 2

Abstract

Abstract The p-y method is one of the most popular methods in pile design and has been calibrated for various boundary conditions using numerical and experimental studies during recent years. Most studies on reinforced concrete (RC) piles have included the impact of flexural nonlinearity, (e.g. nonlinear moment–curvature relations) but not considered associated pile shear deformations when deriving p-y curves from field data. Common p-y curves may be better applicable for piles with flexure dominated failures (e.g. piles with free- head boundary conditions). For piles with fixed head boundaries (i.e. rotation restrained piles) shear deformations could be of significant influence. To study this problem, a coupled shear flexure interaction model for axial-bending-shear behavior coded in OpenSees was applied to a 0.61 m (2 ft) diameter flagpole and a 0.61m (2 ft) diameter fixed head pile specimen to investigate the possible influence of shear deformations to the overall pile responses. The surrounding soil was represented by p-y curves derived from prior large scale testing on piles with similar boundary conditions. Analysis results show that for flagpole piles, shear forces and shear deformations were insignificant. Considerable contributions of pile shear displacements and forces were observed for the fixed head pile, with shear displacements contributing up to 40% of the total pile displacement. Results suggest that nonlinear shear deformations for reinforced concrete piles should be considered for fixedhead or similar conditions, and that currently used p-y curves may underestimate the actual lateral pile displacement and possibly lead to unsafe design for the particular boundary condition.
RC非线性对CIDH桥墩p-y曲线的影响
p-y法是桩基设计中最常用的方法之一,近年来通过数值和实验研究对其进行了各种边界条件的标定。大多数关于钢筋混凝土(RC)桩的研究都包括了弯曲非线性的影响(例如非线性弯矩-曲率关系),但在根据现场数据推导p-y曲线时,没有考虑相关的桩剪力变形。普通的p-y曲线可能更适用于以弯曲为主导的破坏桩(如具有自由桩头边界条件的桩)。对于桩头边界固定的桩(即旋转约束桩),剪切变形可能会产生重大影响。为了研究这一问题,将OpenSees编码的轴向-弯曲-剪切行为耦合剪切-弯曲相互作用模型应用于直径0.61m (2 ft)的旗杆和直径0.61m (2 ft)的固定头桩试件,以研究剪切变形对整体桩响应的可能影响。周围土体用p-y曲线表示,p-y曲线是由以前在边界条件相似的桩上进行的大规模试验得出的。分析结果表明,旗杆桩的剪力和剪切变形不显著。对于固定头桩,桩身剪切位移和力的贡献较大,剪切位移对桩身总位移的贡献高达40%。结果表明,在固定桩头或类似条件下,应考虑钢筋混凝土桩的非线性剪切变形,目前使用的p-y曲线可能低估了实际桩侧位移,并可能导致特定边界条件下的不安全设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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