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Nonlinear finite element simulation of unbonded prestressed concrete beams

机译:无粘结预应力混凝土梁的非线性有限元模拟

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Prestressed concrete with internal unbonded tendons has been recognized as an excellent structural option for beams and slabs and is employed worlwide. Numerical solutions for the analysis of such structures are still an active field of research. This work presents a finite element model for the physical and geometrical nonlinear analysis of prestressed concrete beams with unbonded internal tendons, under short-term loading. The reinforced concrete beam is modeled by Euler-Bernoulli nonlinear plane frame elements and a total Lagrangian approach. The prestressing tendon is modeled by a single polygonal element embedded in a specified subset of the frame elements. Due to lack of strain compatibility between the concrete and the tendon at a given crosssection, the cable strain is computed from the displacements of all associated frame elements. Geometric and material nonlinearities are considered for both the reinforced concrete beam and the prestressing tendons. The internal force vector and corresponding tangent stiffness matrix of each element under large displacements are derived consistently, and novel expressions for the tangent stiffness operator which ensure the convergence rates of the Newton-Raphson scheme are developed. The accuracy of the formulation is assessed by comparison with experimental tests, with very good results.
机译:具有内部未粘结筋的预应力混凝土已被公认为是梁和楼板的绝佳结构选择,并在全世界范围内广泛使用。用于分析这种结构的数值解仍然是研究的活跃领域。这项工作提出了一个有限元模型,用于在短期荷载下具有未粘结内部筋的预应力混凝土梁的物理和几何非线性分析。钢筋混凝土梁通过Euler-Bernoulli非线性平面框架单元和总拉格朗日方法建模。预应力筋由嵌入框架元素指定子集中的单个多边形元素建模。由于在给定的截面上混凝土和钢筋束之间缺乏应变兼容性,因此根据所有关联框架元素的位移来计算电缆应变。钢筋混凝土梁和预应力筋都考虑了几何和材料非线性。一致地推导了大位移下每个单元的内力矢量和相应的切线刚度矩阵,并开发了确保牛顿-拉夫森方案收敛速度的切线刚度算子的新表达式。通过与实验测试进行比较,评估了配方的准确性,并获得了很好的结果。

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