环氧树脂固化光纤连接器性能评价的实验与数值研究

K. Broadwater, P. Mead
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引用次数: 1

摘要

光纤连接器(FOC)是一种无源光器件,在许多应用中都有应用,其功能是物理和光连接两个光纤接头。确定这些部件的退化和失效机制对光纤基础设施的可靠性至关重要。本文回顾了马里兰大学CALCE中心为实现这一目标所做的工作,包括利用光纤传感器进行实验应变分析,计算和模型来预测FOCs中的应力及其对所使用传感器响应的影响。光纤内布拉格光栅传感器被用于研究端接在ST连接器中的光纤的机械应变状态。我们的研究结果表明,端接传感器经历的压缩应变的大小取决于这些连接器中使用的环氧密封剂的固化概况。具体来说,我们发现室温固化比热固化样品的应变更低。测量的应变大小也被认为对传感器沿连接器轴线的位置很敏感。人们认为,要充分考虑这种现象的发生,并预测连接器的失效和退化,环氧密封剂的行为和响应是一个关键的考虑因素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental and numerical studies in the evaluation of epoxy-cured fiber optic connectors
The fiber optic connector (FOC) is a passive optical component that is used in many applications and whose function is to physically and optically link two fiber joints. It is important for the reliability of fiber optic infrastructure to identify the mechanisms of degradation and failure of these components. This paper reviews work at the University of Maryland CALCE Center to accomplish this, including experimental strain analysis utilizing fiber sensors and calculations and models to predict the stresses in FOCs and their effect on the response of the sensors used. In-fiber Bragg grating sensors have been used to study the mechanical strain state in optical fibers that have been terminated in ST connectors. Our findings indicate that terminated sensors experience a compressive strain whose magnitude depends on the cure profile of the epoxy encapsulant used in these connectors. Specifically, we have found that room temperature cures result in lower strain as compared to thermally cured samples. The measured strain magnitude is also believed to be sensitive to the position of the sensor along the axis of the connector. It is believed that to adequately account for such phenomena to occur and predict failure and degradation of the connector, the behavior and response of the epoxy encapsulant is a key consideration.
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