首页> 外文会议>Proceedings of the ASME international design engineering technical conferences and computers and information in engineering conference 2009 >FINITE ELEMENT MODELING OF STRUCTURES WITH L-SHAPED BEAMS AND BOLTED JOINTS: MODEL UPDATING AND PREDICTIVE MODELING APPROACHES
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FINITE ELEMENT MODELING OF STRUCTURES WITH L-SHAPED BEAMS AND BOLTED JOINTS: MODEL UPDATING AND PREDICTIVE MODELING APPROACHES

机译:具有L形梁和节点连接的结构的有限元建模:模型更新和预测建模方法

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Due to bending-torsion coupled vibrations of the L-shaped beams and numerous uncertainties associated with the bolted joints, modeling structures with L-shaped beams and bolted joints is a challenging task. With the recent development of the modeling techniques for L-shaped beams by the authors [1], this work focuses on developing new finite element (FE) models for bolted joints in these structures. While the complicated behavior of a single bolted connection can be analyzed using commercial FE software, it is computationally expensive and inefficient to directly simulate the global dynamic response of an assembled structure with bolted joints, and it is necessary to develop relatively simple and accurate models for bolted joints. Three new approaches, two model updating approaches and a predictive modeling approach, are developed in this work to capture the stiffness and mass effects of bolted joints on the global dynamic response of assembled structures. The unknown parameters of the models in the model updating approaches are determined by comparing the calculated and measured natural frequencies. In the predictive modeling approach, the effective area of a bolted connection is determined using contact FE models and an analytical beam model; its associated stiffnesses can also be determined. The models developed for the bolted joints have relatively small sizes and can be easily embedded into a FE model of an assembled structure. For the structures studied, including a three-bay space frame structure with L-shaped beams and boltedrnjoints, and some of its components, the errors between the calculated and measured natural frequencies are within 2% for at least the first 13 elastic modes, and the associated modal assurance criterion values are all over 94%.
机译:由于L形梁的弯曲-扭转耦合振动以及与螺栓连接相关的众多不确定性,使用L形梁和螺栓连接的结构建模是一项艰巨的任务。随着作者[1]对L形梁建模技术的最新发展,这项工作的重点是为这些结构中的螺栓连接开发新的有限元(FE)模型。虽然可以使用商业有限元分析软件来分析单个螺栓连接的复杂行为,但是直接模拟带有螺栓连接的装配结构的整体动力响应在计算上是昂贵且效率低下的,因此有必要开发相对简单而准确的模型螺栓连接。在这项工作中,开发了三种新方法,两种模型更新方法和一种预测建模方法,以捕获螺栓连接的刚度和质量对组装结构整体动力响应的影响。通过比较计算出的实测频率和实测固有频率,可以确定模型更新方法中模型的未知参数。在预测建模方法中,使用接触式有限元模型和分析梁模型确定螺栓连接的有效面积。也可以确定其相关的刚度。为螺栓连接开发的模型尺寸较小,可以轻松地嵌入到组装结构的有限元模型中。对于所研究的结构,包括带有L形梁和螺栓连接的三托架空间框架结构及其某些组件,至少对于前13个弹性模态,计算和测量的固有频率之间的误差在2%以内,并且相关的模态保证标准值均超过94%。

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