基于正弦和椭圆结构的弯曲损耗光纤设计

IF 0.7 4区 物理与天体物理 Q4 OPTICS Optica Applicata Pub Date : 2021-01-01 DOI:10.37190/oa210301
N. A. M. Mohd Arif, Dilla Durhya Burhanuddin, S. Shaari, A. Ehsan
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引用次数: 3

摘要

光纤的弯曲损耗是造成光纤损耗的外部衰减之一,是光纤弯曲传感器应用的关键。本文研究了标准单模阶跃折射率光纤在1550nm波长弯曲时的光损耗。测量了宏观弯曲损失随曲率半径和匝数的变化。研究了正弦和椭圆弯曲构型的曲率半径和匝数。结果表明,损耗随弯曲半径和匝数的增加而增大。结果还表明,在180°和360°弯曲角度下,椭圆弯曲结构比正弦弯曲结构损失更大。研究椭圆型和正弦型弯曲结构的曲率半径和匝数对大弯曲损耗的影响,有助于光纤传感器的应用。
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Bend loss fiber optics design based on sinusoidal and ellipse configurations
Bending losses in optical fibers comprise one of the extrinsic attenuations that contribute to optical loss and they are essential for optical fiber bending sensor applications. This work investigated the optical loss in a standard single-mode step-index fiber optics due to fiber bending at 1550 nm wavelength. Variations in macro-bending loss with curvature radius and turn number have been measured. Curvature radius and turn number are examined for sinusoidal and elliptical shaped bending configurations. It has been found that the loss increases as the bending radius and number of turns increase. The result also showed that elliptical shaped bending configuration produced more loss in contrast to that of sinusoidal shaped at bending angles of 180° and 360°. The study on the macro-bending loss in terms of curvature radius and turn number for both elliptical and sinusoidal shaped bending configurations is beneficial for future fiber optic sensor applications.
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来源期刊
Optica Applicata
Optica Applicata 物理-光学
CiteScore
1.00
自引率
16.70%
发文量
21
审稿时长
4 months
期刊介绍: Acoustooptics, atmospheric and ocean optics, atomic and molecular optics, coherence and statistical optics, biooptics, colorimetry, diffraction and gratings, ellipsometry and polarimetry, fiber optics and optical communication, Fourier optics, holography, integrated optics, lasers and their applications, light detectors, light and electron beams, light sources, liquid crystals, medical optics, metamaterials, microoptics, nonlinear optics, optical and electron microscopy, optical computing, optical design and fabrication, optical imaging, optical instrumentation, optical materials, optical measurements, optical modulation, optical properties of solids and thin films, optical sensing, optical systems and their elements, optical trapping, optometry, photoelasticity, photonic crystals, photonic crystal fibers, photonic devices, physical optics, quantum optics, slow and fast light, spectroscopy, storage and processing of optical information, ultrafast optics.
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