任意折射率弱导电光纤的场和能量研究

IF 0.1 Q4 ENGINEERING, MULTIDISCIPLINARY
Vyacheslav A. Gladkikh, V. D. Vlasenko
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引用次数: 0

摘要

介绍。我们考虑单模区弱导电梯度光纤,并在第一近似中以一般形式解出该光纤芯内电场的方程。本研究的目的是研究弱导电梯度光纤芯中的场和能量,而不考虑幂律(一般)折射率分布情况下单模区中的偏振。材料与方法。从介质麦克斯韦方程出发,导出了具有梯度折射率剖面的光纤中的场方程。通过适当的替换,用高斯函数代替零阶贝塞尔函数,并对所得方程进行必要的近似,得到了用Wentzel - Kramers - Brillouin法求解的方程,并得到了任意折射率下波导内场和能量的解析表达式。得到了幂律折射率光纤场方程的解。进行了数值计算。绘制了无量纲量(“归一化”能量)与波导参数前五次幂(n = 1,2,3,4,5)的关系图。讨论与结论。结果表明,当n = 1时,截面能量增加较快,在此值之后,截面能量急剧增加,当n > 1时,能量增长随n的增加而减小。本工作的结果可用于创建节能磁芯,进行信息传输的可能分析,以及考虑特定应用的波导设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of Field and Energy in a Weakly-Conducting Optical Fiber with an Arbitrary Degree of Refractive Index Profile
Introduction. We consider a weakly conductive gradient fiber in the single-mode regime and solve the equation for the electric field in the core of this fiber in a general form in the first approximation. The aim of this study is to study the field and energy in the core of a weakly conductive gradient fiber without taking into account the polarization in the single-mode regime in the case of a power-law (generally) refractive index profile. Materials and Methods. From Maxwell’s equations for dielectric media, there was derived an equation for the field in a fiber with gradient refractive index profile. Making the appropriate substitutions, replacing the zero-order Bessel function with a Gaussian function, and making the necessary approximation of the resulting equation, we arrive at an equation that we solve by the Wentzel – Kramers – Brillouin method and obtain analytical expressions for the field and energy inside waveguide for an arbitrary degree of the refractive index. Results. There was obtained a solution of the equation for the field in fiber with a powerlaw refractive index profile. Numerical calculations were carried out. A graph of the dependence of a dimensionless quantity – “normalized” energy – on the waveguide parameter for the first five powers of the profile (n = 1, 2, 3, 4, 5) was plotted. Discussion and Conclusion. It is shown that the energy increases faster for the profile with n = 1, and after this value, the energy for the profile with n = 1 increases sharply, and for n > 1, the energy growth decreases with increasing n. The results obtained in this work can be used for creating an energy-efficient core, for carrying out a possible analysis of information transmission, and for designing waveguides taking into account specific applications.
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来源期刊
Engineering Technologies and Systems
Engineering Technologies and Systems ENGINEERING, MULTIDISCIPLINARY-
自引率
33.30%
发文量
29
审稿时长
12 weeks
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