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FIBER OPTICS STRUCTURAL MECHANICS AND NANO-TECHNOLOGY BASED NEW GENERATION OF FIBER COATINGS

机译:基于光纤结构力学和纳米技术的新型光纤涂层

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This paper consists of two parts - review and extension. The review part deals with typical fiber optics structures (bare, single- and dual-coated fibers; fibers experiencing low temperature micro-bending; fibers soldered into ferrules or adhesively bonded into capillaries; role of the non-linear stress-strain relationship, etc.) subjected to thermally induced and/or mechanical loading in bending, tension, compression, or to various combinations of such loadings. The emphasis is on the state-of-the-art in the area of optical fiber coatings and the functional (optical), mechanical and environmental problems that occur in polymer-coated or metallized fibers. The solutions to the examined problems are obtained using analytical methods (predictive models) of structural mechanics. The review is based primarily on the author's research conducted at Bell Laboratories, Murray Hill, NJ, during his eighteen years tenure with this company. The extension part addresses a new generation of optical fiber coatings and deals with the application of a newly developed (by the ERS/Siloptix Co.) nano-particle material (NPM) that is used as an attractive substitute for the existing optical fiber coatings. This NPM-based coating has all the merits of polymer and metal coatings, but is free of their shortcomings. The developed material is an unconventional inhomogeneous "smart" composite material, which is equivalent to a homogeneous material with the following major properties: low Young's modulus, immunity to corrosion, good-to-excellent adhesion to adjacent material(s), non-volatile, stable properties at temperature extremes (from - 220℃ to +350℃), very long (practically infinite) lifetime, "active" hydrophobicity - the material provides a moisture barrier (to both water and water vapor), and, if necessary, can even "wick" moisture away from the contact surface; ability for "self-healing" and "healing": the NPM is able to restore its own dimensions, when damaged, and is able to fill existing or developed defects (cracks and other "imperfections") in contacted surfaces; very low (near unity) effective refractive index (if needed). NPM can be designed, depending on the application, to enhance those properties most important. NPM properties have been confirmed through testing. The tests have demonstrated the outstanding mechanical reliability, extraordinary environmental durability and, in particular applications, improved optical performance of the light guide.
机译:本文由两部分组成-回顾和扩展。综述部分介绍了典型的光纤结构(裸露,单涂层和双涂层光纤;经历低温微弯曲的光纤;焊接到套圈中或粘合到毛细管中的光纤;非线性应力-应变关系的作用等)。 。)在弯曲,拉伸,压缩时承受热诱导和/或机械载荷,或承受此类载荷的各种组合。重点是光纤涂层领域的最新技术以及聚合物涂层或金属化纤维中发生的功能性(光学),机械和环境问题。使用结构力学的分析方法(预测模型)可获得已解决问题的解决方案。这篇评论主要基于作者在新泽西州Murray Hill的贝尔实验室进行的18年任期内的研究。扩展部分解决了新一代光纤涂层的问题,并处理了新开发的(由ERS / Siloptix公司生产)纳米颗粒材料(NPM)的应用,该材料被用作现有光纤涂层的有吸引力的替代品。这种基于NPM的涂料具有聚合物和金属涂料的所有优点,但没有缺点。开发的材料是一种非常规的非均质“智能”复合材料,它等效于具有以下主要特性的均质材料:杨氏模量低,耐腐蚀,与相邻材料的粘合性极佳,不挥发,在极端温度下(-220℃至+350℃)具有稳定的特性,非常长的(实际上是无限的)寿命,“活性”疏水性-该材料提供了对水和水蒸气的防潮层,并且,如果需要,甚至可以从接触表面“吸走”水分;具有“自我修复”和“修复”的能力:NPM能够在受损时恢复其自身的尺寸,并能够填补接触表面中现有或已发展的缺陷(裂纹和其他“缺陷”);非常低(接近统一)的有效折射率(如果需要)。可以根据应用设计NPM,以增强最重要的性能。 NPM属性已通过测试确认。这些测试证明了出色的机械可靠性,非凡的环境耐久性,并且在特定应用中还改善了光导的光学性能。

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