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Spatial Embedded Slip Model for Analyzing Time-Relative Coupling Effects of Creep and Prestress on PC Bridges

机译:用于分析PC桥蠕变和预应力的时效耦合效应的空间嵌入式滑移模型

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This paper presents, for analysis of prestressed concrete (PC) bridges, a spatial embedded slip model that is based on a three-dimensional isoparametric element, truss element, and nonthickness bond element, to simulate concrete, tendon, and the interface of the two, respectively. The bond element is embedded into the slip model via the virtual nodes introduced at the intersection points of tendon and concrete. Based on the displacement-based finite-element framework and the constitutive relations of each component, the elastic finite-element equilibrium equation for the slip model is deduced according to the virtual work principle. The quasilinear regression method is used to fit the creep coefficient in the Chinese bridge design code. Then, based on the elastic equilibrium equation and theoretical incremental formula of creep analysis, the equilibrium equation for analyzing time-relative coupling effects of creep and prestress is derived and the finite-element program is developed. The proposed model allows tendon to go through concrete in any pattern, without consideration for layout and direction of tendon and therefore with convenience in a finite-element mesh. The freedoms of the virtual nodes can be reduced in the formation of the equilibrium equation. Verified by a numerical example of a simply supported beam with a rectangular section, the embedded slip model is proved to support accurate linear and creep computation within an elastic range of materials. (C) 2014 American Society of Civil Engineers.
机译:为了分析预应力混凝土(PC)桥梁,本文提出了一种基于三维等参元素,桁架元素和非厚度粘结元素的空间嵌入式滑移模型,以模拟混凝土,钢筋束和两者的界面, 分别。通过在钢筋和混凝土的交点处引入的虚拟节点将粘结元素嵌入到滑动模型中。在基于位移的有限元框架和各构件本构关系的基础上,根据虚功原理推导了滑移模型的弹性有限元平衡方程。拟线性回归法用于拟合中国桥梁设计规范中的蠕变系数。然后,根据弹性平衡方程和蠕变分析的理论增量公式,导出了用于分析蠕变和预应力的时效耦合效应的平衡方程,并开发了有限元程序。所提出的模型允许钢筋束以任何方式穿过混凝土,而无需考虑钢筋束的布局和方向,因此在有限元网格中具有便利性。可以在平衡方程的形成中减小虚拟节点的自由度。通过一个具有矩形截面的简单支撑梁的数值示例验证,嵌入式滑动模型被证明可以在材料的弹性范围内支持精确的线性和蠕变计算。 (C)2014年美国土木工程师学会。

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