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首页> 外文期刊>Structural Engineering and Mechanics >Experimentally validated FEA models of HF2V damage free steel connections for use in full structural analyses
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Experimentally validated FEA models of HF2V damage free steel connections for use in full structural analyses

机译:经过实验验证的HF2V无损钢连接的FEA模型可用于完整结构分析

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摘要

The aim of this research is to model the behaviour of recently developed high force to volume (HF2V) passive energy dissipation devices using a simple finite element (FE) model. Thus, the end result will be suitable for use in a standard FE code to enable computationally fast and efficient analysis and design. Two models are developed. First, a detailed axial model that models an experimental setup is created to validate the approach versus experimental results. Second, a computationally and geometrically simpler equivalent rotational hinge element model is presented. Both models are created in ABAQUS, a standard nonlinear FE code. The elastic, plastic and damping properties of the elements used to model the HF2V devices are based on results from a series of quasi-static force-displacement loops and velocity based tests of these HF2V devices. Comparison of the FE model results with the experimental results from a half scale steel beam-column sub-assembly are within 10% error. The rotational model matches the output of the more complex and computationally expensive axial element model. The simpler model will allow computationally efficient non-linear analysis of large structures with many degrees of freedom, while the more complex and physically accurate axial model will allow detailed analysis of joint connection architecture. Their high correlation to experimental results helps better guarantee the fidelity of the results of such investigations.
机译:这项研究的目的是使用简单的有限元(FE)模型对最近开发的高体积比(HF2V)被动耗能设备的行为进行建模。因此,最终结果将适合在标准FE代码中使用,以实现计算上快速有效的分析和设计。开发了两种模型。首先,创建一个模拟实验装置的详细轴向模型,以验证该方法与实验结果之间的关系。其次,提出了一种在计算和几何上更简单的等效旋转铰链元件模型。两种模型均以标准非线性FE代码ABAQUS创建。用于对HF2V装置建模的元件的弹性,塑性和阻尼特性基于一系列准静态力-位移回路和这些HF2V装置的基于速度的测试的结果。 FE模型结果与半比例钢梁柱子组件的实验结果的比较误差在10%以内。旋转模型与更复杂且计算成本更高的轴向元素模型的输出匹配。更简单的模型将允许对具有许多自由度的大型结构进行高效的非线性分析计算,而更复杂且物理精度更高的轴向模型将允许对连接结构进行详细分析。它们与实验结果的高度相关性有助于更好地保证此类调查结果的真实性。

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