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Effects of spatial modes on ladar vibration signature estimation

机译:空间模式对激光振动特征估计的影响

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摘要

Ladar-based vibrometry has been shown to be a powerful technique in enabling the plant identification of machines. Rather than sensing the geometric shape of a target laser vibrometers sense motions of the target induced by moving parts within the system. Since the target need not be spatially resolved, vibration can be sensed reliably and provide positive identification at ranges beyond the imaging limits of the aperture. However, as the range of observation increases, the diffraction-limited beam size on the target increases as well, and may encompass multiple vibrational modes on the target's surface. As a result, vibration estimates formed from large laser footprints illuminating multiple modes on a vibrating target will experience a degradation. This degradation is manifest as a spatial low-pass filtering effect: high-order mode shapes, associated with high-frequency vibrations, will be averaged out while low-frequency vibrations will be affected less. A model to predict this phenomenology is proposed for both pulse-pair and cw vibrometry systems. The cw model is compared to results obtained using an off-the-shelf laser vibrometry system.
机译:基于雷达的振动测定法已被证明是一种强大的技术,可实现对机器的工厂识别。并非感测目标激光振动计的几何形状,而是感测系统内移动部件引起的目标运动。由于不需要在空间上分辨目标,因此可以可靠地检测振动,并在超出孔径成像限制的范围内提供可靠的识别。但是,随着观察范围的增加,目标上受衍射限制的光束尺寸也会增加,并且可能会在目标表面上包含多种振动模式。结果,由照亮振动目标上多种模式的大激光足迹形成的振动估计将下降。这种降级表现为空间低通滤波效果:与高频振动相关的高阶模态将被平均化,而低频振动的影响则较小。针对脉冲对和连续波振动测量系统都提出了一种预测这种现象的模型。将cw模型与使用现成的激光振动测量系统获得的结果进行比较。

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