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Accounting axial-moment-shear interaction for force-based fiber modeling of RC frames

机译:考虑RC框架基于力的纤维建模中的轴矩-剪切-剪切相互作用

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This paper presents a novel fiber force-based finite element to predict the nonlinear static response of reinforced concrete frame/wall structures incorporating the axial force - bending moment - shear force interaction. The proposed formulation is especially suited for short elements with low span to depth ratio, where shear dominant behavior can be expected. An iterative algorithm is developed to find the transverse strain that results in negligible transverse clamping stresses, to obtain a complete strain state at the fiber level. The axial force - bending moment - shear force interaction is considered at the fiber level by computing the corresponding stress state for a given strain state through Modified Compression Field Theory. A new algorithm is developed for section state determination that iteratively updates the section deformation vector until section level equilibrium is satisfied, eliminating the generation of residual section deformations that violates compatibility. Hence, an iterative procedure is not required at the element state determination. The proposed method of explicitly satisfying equilibrium at the section level improves upon the existing force based finite element formulations, in which section level equilibrium is only implicitly satisfied by limiting the residual element deformations at the element level. The proposed element has been tested with experimental data of short structural walls in order to demonstrate the capability of predicting the axial force - bending moment - shear force interaction. The proposed formulation is stable and provides excellent agreement with experimental data.
机译:本文提出了一种新颖的基于纤维力的有限元,它结合轴向力-弯矩-剪力相互作用来预测钢筋混凝土框架/墙体结构的非线性静响应。拟议的公式特别适用于跨度与深度之比低的短单元,在这种情况下可以预期剪切占主导地位。开发了一种迭代算法,以找到导致可忽略的横向夹紧应力的横向应变,从而在纤维水平上获得完整的应变状态。通过修改压缩场理论,通过计算给定应变状态下的相应应力状态,可以在纤维级别考虑轴向力-弯矩-剪切力的相互作用。开发了一种用于断面状态确定的新算法,该算法迭代更新断面变形矢量,直到满足断面水平平衡为止,从而消除了破坏兼容性的残余断面变形的产生。因此,在元件状态确定时不需要迭代过程。提出的在截面水平上明确满足平衡的方法对现有的基于力的有限元公式进行了改进,在有限元公式中,仅通过限制元素水平上的残余元素变形来隐式满足截面水平平衡。为了证明预测轴向力-弯矩-剪力相互作用的能力,已使用短结构墙的实验数据对提出的单元进行了测试。拟议的配方是稳定的,并提供与实验数据极好的一致性。

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