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首页> 外文期刊>IEEE sensors journal >Dynamics-Based Stereo Visual Inspection Using Multidimensional Modal Analysis
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Dynamics-Based Stereo Visual Inspection Using Multidimensional Modal Analysis

机译:基于多维模态分析的基于动力学的立体视觉检查

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This paper proposes the concept of multidirectional-modal-parameter-based visual inspection with high-frame-rate (HFR) stereo video analysis as a novel active sensing methodology for determining the dynamic properties of a vibrating object. HFR stereo video is used for observing the 3-D vibration distribution of an object under unknown excitations in the audio-frequency range, and the projections of the vibration displacement vectors along multiple directions can be verified using output-only modal analysis that can estimate their modal parameters such as resonant frequencies and mode shapes. Through implementing a fast output-only modal parameter estimation algorithm on a 10000-fps stereo vision platform, we developed a real-time multidirectional-modal-parameter-based visual inspection system; it can measure the 3-D vibration displacement vectors of 30 points on a beam-shaped object from 512$,times,$96 pixel stereo images at 10000 fps and can determine its resonant frequencies and mode shapes along 72 different directions around its beam axis as its input-invariant modal parameters. To demonstrate the performance of our system in modal-parameter-based visual inspection, the asymmetric dynamic properties, caused by cracks, of several steel beams vibrating at dozens of hertz and having artificial cracks were inspected in real time by determining the modal parameters along 72 directions around their beam axes.
机译:本文提出了基于多方向模态参数的目视检查和高帧率(HFR)立体视频分析的概念,将其作为一种确定振动对象动态特性的新型主动传感方法。 HFR立体声视频用于观察在音频范围内未知激励下物体的3-D振动分布,并且可以使用仅输出模态分析来验证振动位移矢量沿多个方向的投影,该模态分析可以估计它们的方向模态参数,例如谐振频率和模态形状。通过在10000 fps立体视觉平台上实现快速的仅输出模态参数估计算法,我们开发了基于实时多方向模态参数的视觉检查系统;它可以从512 $,times,$ 测量梁状物体上30个点的3-D振动位移矢量以10000 fps拍摄96个像素的立体图像,并可以确定其共振频率和围绕光束轴的72个不同方向的模式形状作为其输入不变模态参数。为了证明我们的系统在基于模态参数的目视检查中的性能,通过确定沿72的模态参数,实时检查了由裂纹引起的数十赫兹振动并具有人工裂纹的几根钢梁的不对称动力特性。围绕其光束轴的方向。

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