Asymptotic Modeling of Optical Fibres: Annular Capillaries and Microstructured Optical Fibres

IF 4 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Fibers Pub Date : 2023-12-01 DOI:10.3390/fib11120104
G. Luzi, Vinzenz Klapper, Antonio Delgado
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引用次数: 0

Abstract

Microstructured optical fibres (MOFs) are a new type of optical fibres that possess a wide range of optical properties and many advantages over common optical fibres. Those are provided by unique structures defined by a pattern of periodic or quasi-periodic arrangement of air holes that run through the fibre length. In recent years, MOFs have opened up new possibilities in the field of optics and photonics, enabling the development of advanced devices and novel optical systems for different applications. The key application areas of MOFs vary from telecommunications and high-power energy transmission to quantum optics and sensing. The stack-and-draw method is a standard manufacturing technique for MOFs, where a preform is first manually created and then drawn in a sophisticated furnace into a fibre with the required final dimensions and position of the air holes. During the manufacturing process, experimenters can control only a few parameters, and mathematical models and numerical simulations of the drawing process are highly requested. They not only allow to deepen the understanding of physical phenomena occurring during the drawing process, but they also accurately predict the final cross-section shape and size of the fibre. In this manuscript, we assume thermal equilibrium between the furnace and the fibre and propose a functional form of the fibre temperature distribution. We utilise it with asymptotic mass, momentum, and evolution equations for free surfaces already available in the literature to describe the process of fibre drawing. By doing so, the complex heat exchange problem between the fibre and the furnace need not be solved. The numerical results of the whole asymptotic model overall agree well with experimental data available in the literature, both for the case of annular capillaries and for the case of holey fibres.
光纤渐近建模:环状毛细管和微结构光纤
微结构光纤(mof)是一种新型光纤,具有广泛的光学性能,比普通光纤有许多优点。它们由独特的结构提供,该结构由贯穿纤维长度的空气孔的周期性或准周期性排列模式定义。近年来,mof在光学和光子学领域开辟了新的可能性,为不同应用的先进器件和新型光学系统的开发提供了可能。mof的关键应用领域从电信和高功率能量传输到量子光学和传感。堆叠拉伸法是mof的标准制造技术,首先手工制作预成型件,然后在复杂的熔炉中拉伸成具有所需最终尺寸和气孔位置的纤维。在制造过程中,实验人员只能控制少数几个参数,对拉伸过程的数学模型和数值模拟提出了很高的要求。它们不仅可以加深对拉伸过程中发生的物理现象的理解,而且还可以准确预测纤维的最终截面形状和尺寸。在本文中,我们假设炉和纤维之间的热平衡,并提出了纤维温度分布的函数形式。我们利用它与文献中已有的自由表面的渐近质量,动量和进化方程来描述纤维拉伸过程。这样就不需要解决纤维与炉间复杂的换热问题。对于环状毛细血管和多孔纤维,整个渐近模型的数值结果与文献中可用的实验数据总体上一致。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Fibers
Fibers Engineering-Civil and Structural Engineering
CiteScore
7.00
自引率
7.70%
发文量
92
审稿时长
11 weeks
期刊介绍: Fibers (ISSN 2079-6439) is a peer-reviewed scientific journal that publishes original articles, critical reviews, research notes and short communications on the materials science and all other empirical and theoretical studies of fibers, providing a forum for integrating fiber research across many disciplines. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Electronic files or software regarding the full details of the calculation and experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material. The following topics are relevant and within the scope of this journal: -textile fibers -natural fibers and biological microfibrils -metallic fibers -optic fibers -carbon fibers -silicon carbide fibers -fiberglass -mineral fibers -cellulose fibers -polymer fibers -microfibers, nanofibers and nanotubes -new processing methods for fibers -chemistry of fiber materials -physical properties of fibers -exposure to and toxicology of fibers -biokinetics of fibers -the diversity of fiber origins
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