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An optical-based technique to obtain operating deflection shapes of structures with complex geometries

机译:一种基于光学的技术,用于获得具有复杂几何形状的结构的操作偏转形状

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The dynamic characteristics of structures are conventionally obtained by exciting the structure using an impulse hammer or a mechanical shaker and measuring the response using uniaxial or multi-axial accelerometers. However, contact-based sensors can mass-load the structure and do not provide full-field data. Hence, obtaining the true dynamics of the structure using conventional sensors can be challenging. That makes test engineers seek different non-contact techniques that can provide full-field data without mass-loading the structure. Recently, stereo-photogrammetry and three-dimensional digital image correlation (3D DIC) have been adopted to collect operating data for structural analysis. These non-contact optical techniques provide a wealth of distributed data over the entire structure. However, the stereo-camera system is limited by the field-of-view of the cameras; a single pair of DIC cameras may not be able to provide deformation data for the entire structure. Hence, it is challenging to obtain the vibration characteristics of the entire structure. In the current work, a multi-view 3D DIC approach is used and validated to predict the vibrational characteristics of an automotive muffler with a complex structure. A pair of DIC cameras travels over the entire structure to capture the deformation of each field of view. The measured data includes the geometry and displacement data, which is later mapped into a global coordinate system. The measured data in the time domain for each field-of-view is transformed to the frequency domain to extract the operational deflection shapes and resonant frequencies for each field of view. The obtained deflection shapes are stitched together in the frequency domain to extract the operating deflection shapes and resonant frequencies of the automotive body panel with a complex structure. (C) 2019 Elsevier Ltd. All rights reserved.
机译:结构的动态特性通常通过使用脉冲锤或机械振动器激励结构来获得并使用单轴或多轴向加速度计测量响应。但是,基于接触的传感器可以大量负载结构并且不提供全场数据。因此,使用传统传感器获得结构的真实动态可能是具有挑战性的。这使得测试工程师寻求不同的非接触技术,可以提供全场数据而不容纳结构。最近,已经采用立体摄影测量和三维数字图像相关(3D DIC)收集用于结构分析的操作数据。这些非接触式光学技术提供了整个结构上的大量分布式数据。然而,立体声相机系统受摄像机视野的限制;一对DIC摄像机可能无法为整个结构提供变形数据。因此,获得整个结构的振动特性是具有挑战性的。在当前的工作中,使用多视图3D DIC方法并验证以预测具有复杂结构的汽车消声器的振动特性。一对DIC摄像机在整个结构上传播,以捕获每个视野的变形。测量数据包括几何和位移数据,后来映射到全局坐标系。每个视野视野的时域中的测量数据被转换为频域,以针对每个视野提取操作偏转形状和谐振频率。所获得的偏转形状在频域中缝合在一起,以用复杂的结构提取汽车车身面板的操作偏转形状和谐振频率。 (c)2019 Elsevier Ltd.保留所有权利。

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