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EXPERIMENTAL MODE SHAPE IDENTIFICATION FOR A CANTILEVER BEAM USING OPTICAL FIBER BRAGG GRATINGS

机译:基于光纤布拉格光栅的悬臂梁的实验模式形状识别

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Parameter estimation of a cantilever beam model typically involves estimating the effective parameters of the system for an assumed mode shape. This shape assumption, which is difficult to verify with traditional single-point sensors, can be validated through the distributed strain measurements available from optical Fiber Bragg Grating sensors. In this paper, the experimental mode shapes of a cantilever beam acquired from Fiber Bragg Grating sensors are compared with the analytical predictions of classical beam theory for the first two bending modes. A single degree of freedom model is also analyzed for the first bending mode and compared to the distributed parameter model and experimental data. It is shown that the distributed parameter model provides a good estimate of the strain profile at the first two natural frequencies, and that the single degree of freedom and distributed parameter models are in close agreement at the first natural frequency.
机译:悬臂梁模型的参数估计通常涉及为假定的模式形状估计系统的有效参数。这种形状假设很难用传统的单点传感器来验证,可以通过光纤布拉格光栅传感器提供的分布式应变测量来验证。在本文中,将从光纤布拉格光栅传感器获得的悬臂梁的实验模式形状与前两种弯曲模式的经典光束理论的分析预测进行了比较。还针对第一弯曲模式分析了单自由度模型,并将其与分布参数模型和实验数据进行了比较。结果表明,分布参数模型可以很好地估计前两个固有频率处的应变曲线,并且单自由度和分布参数模型在第一个固有频率处具有很好的一致性。

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