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Strain Distribution and Sensitivity in Fiber Bragg Grating Sensors

机译:光纤布拉格光栅传感器的应变分布和灵敏度

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Optical Fiber Bragg Gratings (FBG) sensors have seen significant development in recent years. Such sensor technology developed initially for the civil infrastructure is currently attracting the aerospace industry due to the potential versatility of this technology and its measurement capability. The structural health monitoring and the diagnostics and prognostics health management communities are excited about such development and ready to embrace such capability. Sensors reliability and accuracy, however, continue to be two parameters critical to the eventual implementation of the technology in high value targets. Such parameters can be improved by different manufacturing techniques as well as optimum grating's coating selection. This paper presents an evaluation of the mechanical behavior of the FBG strain sensors. A simulated analysis, using finite element modeling, revealed the impact of coating material selection, coating thickness selection, and bonding effect on the strain transfer loss. Results illustrate that metallic fiber coatings are more suitable for improved strain transfer than their polymeric counterparts and acrylic coatings are least effective with adhesive layer as small as possible.
机译:近年来,光纤布拉格光栅(FBG)传感器得到了长足的发展。最初为民用基础设施开发的这种传感器技术由于其潜在的多功能性和测量能力,目前正在吸引航空航天工业。结构健康监测以及诊断和预后健康管理界对这种发展感到兴奋,并准备好接受这种能力。但是,传感器的可靠性和准确性仍然是最终在高价值目标中实施该技术的两个关键参数。可以通过不同的制造技术以及最佳的光栅涂层选择来改善此类参数。本文介绍了FBG应变传感器的机械性能评估。使用有限元建模进行的模拟分析揭示了涂层材料选择,涂层厚度选择以及键合效应对应变传递损耗的影响。结果表明,金属纤维涂层比其聚合物对应物更适合于改善应变传递,而丙烯酸涂层的粘合剂层越小越好。

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