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Practical spatial resolution limits of high-resolution fibre Bragg grating sensors using layer peeling

机译:使用层剥离的高分辨率光纤布拉格光栅传感器的实际空间分辨率极限

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Inverse scattering methods such as layer peeling have been shown to reconstruct the longitudinal refractive index of fibre Bragg gratings with very high spatial resolution. These high spatial resolution measurements can be used to detect strain fields and thermal variations through the strain-optic and thermo-optic effects. However, physical constraints do not allow the refractive index to change on scales as short as these methods are capable of resolving. We demonstrate that this imposes a practical limitation of resolution on sensing applications. We use finite element modelling and compare this with experimental results. Longitudinal and transverse strains, as well as high resolution temperature sensing are considered. We show that the practical resolution limits are 40 (mu)m for transverse stress sensing, 100 (mu)m for longitudinal strain and 800 (mu)m for thermal sensing.
机译:已经显示出诸如层剥离的反向散射方法可以以非常高的空间分辨率重建光纤布拉格光栅的纵向折射率。这些高空间分辨率的测量结果可用于通过应变光学和热光学效应检测应变场和热变化。但是,只要这些方法能够解决,物理约束条件就不允许折射率按比例变化。我们证明这对传感应用施加了分辨率的实际限制。我们使用有限元建模,并将其与实验结果进行比较。考虑了纵向和横向应变以及高分辨率温度感应。我们表明,对于横向应力感应,实际分辨率极限为40μm,对于纵向应变,极限分辨率为100μm,对于热感应,极限分辨率为800μm。

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