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Application of System Equivalent Model Mixing (SEMM) to model the structural dynamic properties of a complex vehicle component using numerical and experimental data

机译:系统等效模型混合(SEMM)使用数值和实验数据模拟复杂车辆部件的结构动态特性

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A popular strategy in structural dynamic modelling is breaking the structure down into separable, manageable substructures. One can choose the most efficient way of modelling the substructures, before synthesizing the full system model. System Equivalent Model Mixing (SEMM) is a new method that allows mixing of frequency-based models, either of numerical or experimental nature, to form a hybrid structural dynamic model. The method expands measured data onto a numerical mode manifold using Lagrange-Multiplier Frequency Based Substructuring (LM-FBS). Hence, SEMM combines the DoF-space of the numerical model with the dynamic properties of the measured substructure. In this paper, SEMM is applied to a complex vehicle component. Frequency Response Function (FRF) measurements on the component are used to enrich the uncalibrated Finite Element Model of the component. The resulting hybrid model comprises interfaces in six degrees of freedom, which is required for the connectivity to neighboring structures in the FBS framework.
机译:结构动态建模中的流行策略正在将结构分解为可分离的,可管理的子结构。在合成完整系统模型之前,可以选择建模子结构的最有效方式。系统等效模型混合(SEMM)是一种新方法,允许混合频率的模型,数字或实验性质,形成混合结构动态模型。该方法使用基于拉长乘法器频率的子结构(LM-FB)将测量数据扩展到数值模型歧管上。因此,SEMM将数值模型的DOF空间与测量的子结构的动态特性组合。在本文中,SEMM应用于复杂的车辆部件。组件上的频率响应函数(FRF)测量用于丰富组件的未校准有限元模型。得到的混合模型包括六个自由度的接口,这是于FBS框架中的相邻结构的连接所必需的。

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