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Whispering gallery mode-based micro-optical sensors for structural health monitoring of composite materials

机译:基于回音壁模式的微光学传感器,用于复合材料的结构健康监测

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摘要

Development of smart materials with inherent damage sensing capabilities is of great interest to aerospace and other structural applications. Most of the existing smart materials are based on using embedded sensors for structural health monitoring. However, embedded sensors can lead to undesirable effects such as stress concentration and can cause premature failure. Therefore, using microstructural components for additional function of sensing of the structural health is the only option. Such possibilities exist only in selected few materials. The present study investigates the feasibility of developing fiber- and particle-reinforced composites into smart materials. The sensing approach considered is based on the morphology-dependent shifts of optical modes, referred to as the whispering gallery modes (WGMs), of spherical dielectric micro-particles. The WGMs are excited by coupling light from a tunable diode laser using single mode fibers. The WGMs of the micro-particles can be observed as sharp dips in the transmission spectrum through the fiber and are highly sensitive to the morphology of the particle. A minute change in the size, shape, or refractive index causes a shift of the optical modes, which can be interpreted quantitatively in terms of the parameter that caused the change. A theoretical framework is developed for such sensor systems that provides quantitative relations between the stress applied on the micro-particles and corresponding shift in WGMs. These relations are validated against the available experimental results.
机译:具有固有损伤感测能力的智能材料的开发对于航空航天和其他结构应用非常感兴趣。现有的大多数智能材料都是基于使用嵌入式传感器进行结构健康监测的。但是,嵌入式传感器可能会导致不良后果,例如应力集中,并可能导致过早失效。因此,将微结构组件用于感知结构健康的附加功能是唯一的选择。这种可能性仅存在于少数几种材料中。本研究调查了将纤维和颗粒增强复合材料开发为智能材料的可行性。所考虑的感测方法是基于球形介电微粒的光学模式的形态相关位移,这种光学模式被称为耳语画廊模式(WGM)。 WGM通过使用单模光纤耦合来自可调二极管激光器的光来激发。可以观察到微粒的WGM,它们是通过纤维的透射光谱的急剧下降,并且对微粒的形态高度敏感。尺寸,形状或折射率的微小变化会引起光学模式的偏移,这可以根据引起变化的参数进行定量解释。为此传感器系统开发了一个理论框架,该框架提供了施加在微粒上的应力与WGM中相应位移之间的定量关系。这些关系已针对可用的实验结果进行了验证。

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