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Fiber pressure sensors based on periodical mode coupling effects

机译:基于周期模式耦合效应的光纤压力传感器

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Fiber optic sensor technology offers the possibility of implementing low weight, high performance and cost effective health and damage assessment for infrastructure elements. Common fiber sensors are based on the effect of external action on the spectral response of a Fabry-Perot or a Bragg grating section, or on the modal dynamics in multimode (MM) fiber. In the latter case, the fiber itself acts as the sensor, giving it the potential for large range coverage. We were interested in this type of sensor because of its cost advantage in monitoring structural health. In the course of the research, a new type of a rugged modal filter device, based on off-center splicing, was developed. This device, in combination with a MM fiber, was found to be a potential single point-pressure sensing device. Additionally, by translating the pressing point along a MM sensing fiber with a constant load and speed, a sinusoidal intensity modulation was observed. This harmonic behavior, during load translation, is explained by the theory of mode coupling and dispersion. The oscillation period, Λ~0.43 mm, obtained at 980 run in a Corning SMF-28™ fiber, corresponds to the wavevector difference, Δβ, between the two-coupled modes, by Λ = 2π/Δβ. An additional outcome of the present research is the observation that the response of the loaded MM fiber is strongly dependent on the polarization state of the light traveling along the MM fiber due to different response of the modes to polarization active elements. Our main conclusions are that in MM fiber optic sensor design, special cautions need to be taken in order to stabilize the system, and that the sensitivity along a MM fiber sensor is periodic with a period of ~ 0.4 - 0.5 mm, depending on various fiber parameters and excited modes.
机译:光纤传感器技术为基础设施元件提供了实现轻量化,高性能和经济有效的健康与损坏评估的可能性。常见的光纤传感器基于外部作用对Fabry-Perot或Bragg光栅截面的光谱响应的影响,或者基于多模(MM)光纤中的模态动力学。在后一种情况下,光纤本身充当传感器,使其具有大范围覆盖的潜力。我们对这种类型的传感器感兴趣,因为它在监视结构健康方面具有成本优势。在研究过程中,开发了一种新型的基于偏心拼接的坚固型模态滤波器装置。发现该设备与MM光纤相结合是一种潜在的单点压力传感设备。此外,通过以恒定的负载和速度沿MM感应纤维平移压力点,可以观察到正弦强度调制。负载转换过程中的这种谐波行为由模式耦合和色散理论来解释。在康宁SMF-28™光纤中在980牛顿时获得的振荡周期Λ〜0.43 mm,对应于两个耦合模式之间的波矢量差Δβ,Λ=2π/Δβ。本研究的另一个结果是观察到,由于模式对偏振有源元件的响应不同,因此加载的MM光纤的响应强烈依赖于沿着MM光纤传播的光的偏振状态。我们的主要结论是,在MM光纤传感器设计中,需要特别注意以使系统稳定,并且MM光纤传感器的灵敏度是周期性的,周期为〜0.4-0.5 mm,具体取决于各种光纤参数和激发模式。

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