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Reliability assessment of optical fibers under tension and bending loads.

机译:张力和弯曲载荷下光纤的可靠性评估。

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摘要

The mechanical failure of optical fibers must be avoided to ensure reliability of fiber-based systems. The first stress event in a fiber's lifetime is the proof test. The proof test will alter the fiber's strength distribution for all subsequent processing and applications. Thus it is critical to know the fiber strength distribution after proof test (post-proof strength distribution). It is generally assumed that the proof test truncates the strength distribution at the proof test stress level. But, many users are concerned because they know that theoretically it has been shown that after proof test the strength of fiber may be much less than the proof test stress level, and that the minimum post-proof strength is determined only by the unloading rate during the proof test. But this theoretical result is not consistent with historical field data. Historically no one has documented failures stresses below the proof stress level. This dissertation resolves this apparent contradiction by reviewing the theory and conducting a probabilistic assessment.; As optical fibers are used more and more in computer and switching gear backplanes, a new potential mechanical reliability problem arises due to the necessary bends introduced in optical fibers. Previous researchers were concerned with the uniform stress optical fibers saw in long haul underground applications, but bending places a non-uniform stress along the fiber surface. So it is inaccurate to borrow fiber usage mechanical guidelines from long-haul application. This dissertation reviews existing theories and then develops a new analytic approach to assess the mechanical reliability of optical fibers under bending loads and static fatigue conditions. This new analytic approach is verified through a simple static two-point bend experiment. Finally the newly developed reliability assessment method is used to develop new guidelines for bending application and examples are presented to show how the approach can be used to attack some very common mechanical reliability problems with optical fibers.
机译:必须避免光纤的机械故障,以确保基于光纤的系统的可靠性。纤维寿命中的第一个应力事件是验证测试。验证测试将改变纤维的强度分布,以用于所有后续处理和应用。因此,至关重要的是要在验证测试后知道纤维强度分布(验证后强度分布)。通常假设验证试验在验证试验应力水平下截断了强度分布。但是,许多用户对此表示关注,因为他们知道,从理论上讲,已经证明,在验证测试之后,纤维的强度可能远小于验证测试应力水平,并且最小的验证后强度仅由在测试过程中的卸载速率来确定。证明测试。但是这一理论结果与历史实地数据不一致。从历史上看,没有人记录过低于证明应力水平的失效应力。本文通过回顾该理论并进行概率评估,解决了这一明显矛盾。随着光纤越来越多地用于计算机和交换设备底板中,由于光纤中引入了必要的弯曲,因此出现了新的潜在机械可靠性问题。以前的研究人员关注的是在长距离地下应用中看到的均匀应力光纤,但是弯曲会在光纤表面产生不均匀的应力。因此,从长距离应用中借用光纤使用机械指南是不准确的。本文回顾了现有的理论,然后开发了一种新的分析方法来评估弯曲载荷和静态疲劳条件下光纤的机械可靠性。通过一个简单的静态两点弯曲实验验证了这种新的分析方法。最后,新开发的可靠性评估方法被用于开发弯曲应用的新准则,并给出了示例,以说明该方法如何用于解决光纤中一些非常常见的机械可靠性问题。

著录项

  • 作者

    Yang, Yubing.;

  • 作者单位

    University of Maryland College Park.;

  • 授予单位 University of Maryland College Park.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 136 p.
  • 总页数 136
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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