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Self-centering fiber alignment structures for high-precision field-installable single-mode fiber connectors

机译:自定心光纤对准结构,适用于高精度现场安装的单模光纤连接器

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There is a steady increase in the demand for internet bandwidth, primarily driven by cloud services and high-definition video streaming. Europe's Digital Agenda states the ambitious objective that by 2020 all Europeans should have access to internet at speeds of 30Mb/s or above, with 50% or more of households subscribing to connections of 100Mb/s. Today however, internet access in Europe is mainly based on the first generation of broadband, meaning internet accessed over legacy telephone copper and TV cable networks. In recent years, Fiber-To-The-Home (FTTH) networks have been adopted as a replacement of traditional electrical connections for the 'last mile' transmission of information at bandwidths over 1Gb/s. However, FTTH penetration is still very low (< 5%) in most major Western economies. The main reason for this is the high deployment cost of FTTH networks. Indeed, the success and adoption of optical access networks critically depend on the quality and reliability of connections between optical fibers. In particular a further reduction of insertion loss of field-installable connectors must be achieved without a significant increase in component cost. This requires precise alignment of fibers that can differ in terms of ellipticity, eccentricity or diameter and seems hardly achievable using today's widespread ferrule-based alignment systems. In this paper, we present a field-installable connector based on deflectable/compressible spring structures, providing a self-centering functionality for the fiber. This way, it can accommodate for possible fiber cladding diameter variations (the tolerance on the cladding diameter of G.652 fiber is typically ±0.7μm). The mechanical properties of the cantilever are derived through an analytical approximation and a mathematical model of the spring constant, and finite element-based simulations are carried out to find the maximum first principal stress as well as the stress distribution distribution in the fiber alignment structure. Elastic constants of the order of 10~4N/m are found to be compatible with a proof stress of 70 MPa. We show the successful prototyping of 3-spring fiber alignment structures using deep proton writing and investigate their compatibility with replication techniques such as hot embossing and injection moulding. Fiber insertion in our self-centering alignment structures is achieved by means of a dedicated interferometric setup allowing assessment of the fiber facet quality, of the fiber's position in relation to the connector's front and of the spring deformation during fiber insertion. These self-centering structures have the potential to become the basic building blocks for a new generation of field-installable connectors, ultimately breaking the current paradigm of ferrule-based connectivity requiring extensive pre-engineering and highly specialized manpower for field deployment.
机译:对互联网带宽需求的稳定增长主要是由云服务和高清视频流驱动的。欧洲的《数字议程》提出了一个宏伟的目标,即到2020年,所有欧洲人都应该以30Mb / s或更高的速度访问互联网,其中50%或更多的家庭订购100Mb / s的连接。但是,今天,欧洲的互联网访问主要基于第一代宽带,这意味着可以通过旧式电话铜线和电视电缆网络访问互联网。近年来,已采用光纤到户(FTTH)网络来替代传统的电气连接,以1Gb / s以上的带宽“最后一英里”传输信息。但是,在大多数西方主要经济体中,FTTH的渗透率仍然很低(<5%)。造成这种情况的主要原因是FTTH网络的高昂部署成本。确实,光接入网的成功与采用关键取决于光纤之间连接的质量和可靠性。特别地,必须在不显着增加组件成本的情况下进一步减少可现场安装的连接器的插入损耗。这要求对光纤进行精确的对准,这些光纤的椭圆率,偏心率或直径可能会有所不同,并且使用当今广泛使用的基于插芯的对准系统似乎很难实现。在本文中,我们介绍了一种基于可偏转/可压缩弹簧结构的可现场安装的连接器,它为光纤提供了自动定心功能。这样,它可以适应可能的光纤包层直径变化(G.652光纤的包层直径公差通常为±0.7μm)。通过分析近似和弹簧常数的数学模型得出悬臂的机械性能,并进行了基于有限元的模拟,以找到最大的第一主应力以及纤维排列结构中的应力分布。发现10〜4N / m量级的弹性常数与70 MPa的屈服应力兼容。我们展示了使用深质子书写成功地制作3弹簧纤维对准结构的原型,并研究了它们与复制技术(如热压花和注塑成型)的兼容性。光纤插入我们的自对中对准结构是通过专用的干涉仪实现的,该干涉仪可以评估光纤的小平面质量,光纤相对于连接器正面的位置以及光纤插入过程中的弹簧变形。这些自对中的结构有可能成为新一代可现场安装连接器的基本构建块,最终打破了当前基于套圈的连接方式,这需要大量的预工程和高度专业的人员来进行现场部署。

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