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Variables effects on temperature distributions for coupled single mode optical fibers

机译:变量对耦合单模光纤温度分布的影响

摘要

Fiber Optic network and devices have found increasing usage in everyday life due to their immunisation of electromagnetic wave. Parallel with these development, coupled single fibers had emerged to be one of important aspect in fiber optic technology. Single mode fibers manage to capture many attentions because of their potential in high capacity data processing. In the early days, fibers are coupled using mechanical method but recently researcher had discovered that a more efficient way of coupling fibers that is by using fusion elongation method. Coupled fibers produced using this method was proven to have low excess loss and these coupled fibers were more stable mechanically. Excess loss of the fibers coupled using fusion method depends on the fused region. Since fusion elongation method is a new field in fiber optics, it was found that there are not many research had been done in this area, particularly during the stage of fusing the fibers. It is obvious that during fusion process, heat transfer occur throughout the coupling region of the coupled fiber. Heat transfer occurs mainly through conduction since the fiber is in the form of solid. Using the heat equation in cylinder form, and neglecting the angular component in the equation, the temperature distribution of the fiber had been obtained. Several boundary conditions have been preset in order to obtain the constant values for the governing equation. To simplify the discussion and for the sake of better understanding, the equation for temperature distribution have been classified into three terms. Each of these terms were analysed. The results we obtained matched the physical change that occurs to the fibers. This research also shows that time is the most important component in the fusion coupling process.
机译:光纤网络和设备由于对电磁波的免疫作用,已在日常生活中得到越来越多的使用。与这些发展并行的是,耦合单光纤已经成为光纤技术的重要方面之一。单模光纤因其在高容量数据处理中的潜力而吸引了众多关注。在早期,纤维是通过机械方法进行耦合的,但是最近的研究人员发现,通过融合伸长法可以更有效地耦合纤维。事实证明,使用这种方法生产的耦合纤维具有较低的过量损耗,并且这些耦合纤维的机械稳定性更高。使用熔接方法耦合的光纤的过度损耗取决于熔接区域。由于融合伸长方法是光纤的一个新领域,因此发现在该领域没有进行很多研究,特别是在光纤融合阶段。显然,在熔融过程中,传热发生在整个耦合光纤的耦合区域。因为纤维是固体形式,所以热传递主要通过传导发生。使用圆柱形式的热方程,忽略方程中的角分量,就可以得到纤维的温度分布。为了获得控制方程的常数值,已经预先设置了几个边界条件。为了简化讨论并更好地理解,将温度分布方程分为三项。分析了每个术语。我们获得的结果与纤维发生的物理变化相匹配。这项研究还表明,时间是融合耦合过程中最重要的组成部分。

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