Automated structural parameter estimation of semi-rigid complex joints in a benchmark laboratory steel grid by experimental modal analysis

Milad Mehrkash, Erin Santini-Bell
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Abstract

The mechanical properties of joints may impact a system’s static and dynamic behavior. Since connections are usually complex, modeling their geometric details could take time and effort. Thus, joints of structures are often overlooked in model creation and calibration. Therefore, reliable analytical modeling of in-service structures requires accurate and efficient parameter estimation of the connections in their simplified models. However, joints are physically small parts of a system, and parameter estimation techniques may not be sufficiently sensitive to the variations of connections’ mechanical properties. This paper examines the finite element model updating of a laboratory steel grid focusing on the structural parameter estimation of its complex connections using modal data. The mechanical properties of the joints are parametrized by added mass and reduced rigidity. Therefore, several modified models with different combinations of heavier semi-rigid joints are developed. Each model is updated using two modal-based error functions, and the most representative updated model is selected. The results demonstrate how the grid modal outputs are influenced by updating the mass and stiffness of its connections. Moreover, mass and stiffness interactions of the grid joints in the parameter estimation procedure are illustrated. The updated models can efficiently simulate the structural behavior of the grid with increased confidence and reliability.
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通过实验模态分析自动估算基准实验室钢网格中半刚性复杂接头的结构参数
连接件的机械特性可能会影响系统的静态和动态行为。由于连接通常比较复杂,对其几何细节进行建模需要花费大量的时间和精力。因此,在模型创建和校准过程中,结构的连接处经常被忽略。因此,要对在役结构进行可靠的分析建模,就必须对其简化模型中的连接点进行准确有效的参数估计。然而,连接件是系统的物理小部件,参数估计技术可能对连接件机械性能的变化不够敏感。本文研究了实验室钢格栅的有限元模型更新,重点是利用模态数据估算其复杂连接的结构参数。连接件的力学性能是通过增加质量和降低刚度来参数化的。因此,开发了几种具有不同组合的较重半刚性连接的改进模型。使用两个基于模态的误差函数对每个模型进行更新,然后选择最具代表性的更新模型。结果表明了网格模态输出如何受到连接质量和刚度更新的影响。此外,还说明了参数估计过程中网格连接质量和刚度的相互作用。更新后的模型可以有效地模拟网格的结构行为,并提高其可信度和可靠性。
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