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Finite element analysis on the seismic behavior of fully prefabricated steel frames

机译:完全预制钢框架抗震性能的有限元分析

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This paper presents a method of finite element (FE) modeling and analysis of the seismic behavior of fully prefabricated steel frames with end-plate joints, flexible braces and composite slabs. The main idea and objectives of this paper is to develop a finite element model with high accuracy, good stabilization and acceptable computational costs for the simulation of the cyclic behavior of multi-story steel frames with bolted end-plate joints and concrete slabs. Because of the apparent tension-compression asymmetry of flexible braces, and the complex connection details between slabs and steel structures, as well as the huge number of contact interactions between interfaces, the cyclic behavior of this type of frame cannot be simulated accurately with commonly used line-element models, shell element models, or multi-scale models. A quasi-static test of a full-scale three-story fully prefabricated steel frame under cyclic horizontal loads by the present authors was simulated with the finite element model. Hollow section box columns, I-section beams, end-plates, inner diaphragms and stiffeners were modeled using shell elements; high strength bolts and concrete slab were modeled with solid elements; and flexible braces and rebar were modeled with truss elements. In order to develop a mesh skill to reduce computational costs while ensuring calculation accuracy, several FEM models were built and validated against previous experimental studies: static testing of bolted T-stub connections and bolted tension splices, static and cyclic testing of bolted end-plate steel joints, push-out tests of stud shear connectors, as well as static and cyclic testing of bolted end-plate composite joints. To simulate the "elastic-yield-hardening in tension, and buckling-without capacity in compression" behavior of the flexible braces, a simplified model in ABAQUS based on truss elements was developed and validated against previous tests. Results showed that the proposed FE modeling method could accurately simulate the static and cyclic performance of bolted T-stub connections, bolted tension splices, bolted end-plate steel joints, stud shear connectors, bolted end-plate composite joints and flexibly braced steel frames. Deformation capacity, cyclic behavior, horizontal loading performance, energy dissipation and stiffness degradation of steel frames with bolted end-plate joints, prefabricated slabs and flexible braces could be accurately simulated by this FEM model, providing a practical and accurate modeling method for similar structures. In addition, further research on the structural seismic performance simulation, parametric study and seismic design method could be carried out using the finite element model developed in this paper.
机译:本文提出了一种有限元(FE)建模方法,并分析了带有端板节点,柔性支撑和复合板的完全预制钢框架的抗震性能。本文的主要思想和目的是建立一个高精度,良好的稳定性和可接受的计算成本的有限元模型,用于模拟多层螺栓端板接头和混凝土板的钢框架的循环行为。由于挠性支撑的明显的拉-压不对称性,以及平板和钢结构之间的连接细节复杂,以及界面之间存在大量的接触相互作用,因此,通常无法准确地模拟这种框架的循环行为。线元模型,壳单元模型或多尺度模型。用有限元模型模拟了作者在水平水平荷载作用下全尺寸三层全预制预制钢框架的准静态试验。空心截面箱形柱,工字形横梁,端板,内部隔板和加劲肋均使用壳单元进行建模;高强度螺栓和混凝土板均采用实体单元建模;柔性支撑和钢筋都用桁架元素建模。为了开发网格技术以降低计算成本并确保计算精度,我们建立了一些FEM模型并针对先前的实验研究进行了验证:螺栓T型短节连接和螺栓拉伸接头的静态测试,螺栓端板的静态和循环测试钢制接头,螺柱剪切连接器的推出测试以及螺栓端板复合接头的静态和循环测试。为了模拟挠性支撑的“拉伸弹性屈服硬化和无屈曲屈曲能力”行为,在ABAQUS中基于桁架单元的简化模型被开发出来,并针对先前的测试进行了验证。结果表明,所提出的有限元建模方法可以准确地模拟螺栓T形连接,螺栓拉伸接头,螺栓端板钢接头,双头剪力连接器,螺栓端板复合接头和柔性支撑钢框架的静态和循环性能。该有限元模型可以精确地模拟带有螺栓端板接头,预制板和挠性支撑的钢框架的变形能力,循环特性,水平荷载性能,能量耗散和刚度退化,从而为类似结构提供实用而准确的建模方法。另外,本文开发的有限元模型可以对结构抗震性能仿真,参数化研究和抗震设计方法进行进一步的研究。

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