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A Reduced Beam And Joint Concept Modeling Approach To Optimize Global Vehicle Body Dynamics

机译:减少梁和联合概念建模方法以优化整体车身动力学

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Ideally, NVH simulations become available already in the concept phase of vehicle development. The initial computer-aided design (CAD) can then be improved (by already including countermeasures), and the feasibility to balance NVH with other performance attributes is increased. In this early design stage, when exact geometrical information is not or scarcely available, conventional virtual prototyping techniques based on detailed CAD and FE models are not directly applicable. A state-of-the-art overview of concept NVH simulation methods in vehicle industry is given. This paper then presents a "Reduced Beam and Joint Modeling" approach to analyze and optimize the global bending and torsion modes of a vehicle body. Concept modifications in the body beam-like sections and in the joints are analyzed using the body reduced modal model. This small-sized model can be used to quickly and accurately optimize the low-frequency vehicle performance. The modifications are considered with respect to the existing (predecessor) model. Equivalent beam properties are estimated from the body FE model; modifications in the beam-like sections are then implemented with beam elements from a standard FE library. The joint modifications are considered through static superelements: stiffness formulations between the end points of the joint connected to the beam layout. The validity of the approach is first demonstrated on simple example models. An industrial vehicle BIW application case is subsequently presented. A beam and joint layout is created, and used for a fast sensitivity analysis to identify suitable modifications to improve the global modes. Next, two application cases are presented. First, a fast optimization analysis is performed to optimize the global body modes. Subsequently, suitable physical modifications are identified and applied to the full FE model; it is shown that the effect of these physical modifications is accurately predicted with the fast sensitivity analysis.
机译:理想情况下,NVH模拟已经在车辆开发的概念阶段可用。然后可以改进初始计算机辅助设计(CAD)(通过已经包括对策),并且可以提高NVH与其他性能属性之间的平衡。在这个早期的设计阶段,当确切的几何信息不可用或几乎不可用时,基于详细的CAD和FE模型的传统虚拟样机技术将无法直接应用。给出了汽车行业概念NVH仿真方法的最新概述。然后,本文提出了一种“减少梁和关节建模”的方法来分析和优化车身的整体弯曲和扭转模式。使用人体简化模态模型分析了人体梁状截面和关节中的概念修改。该小型模型可用于快速准确地优化低频车辆性能。相对于现有(先前)模型考虑了修改。等效光束特性是根据车身有限元模型估算的;然后使用标准FE库中的梁元素对梁状截面进行修改。关节的修改是通过静态超元来考虑的:连接到梁布局的关节端点之间的刚度公式。首先在简单的示例模型上证明了该方法的有效性。随后介绍了工业车辆BIW应用案例。创建了梁和关节布局,并将其用于快速灵敏度分析,以识别适当的修改以改善全局模式。接下来,介绍两个应用案例。首先,执行快速优化分析以优化整体身体模式。随后,确定适当的物理修改并将其应用于完整的有限元模型;结果表明,通过快速灵敏度分析可以准确预测这些物理修饰的效果。

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