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Microbending losses in double-coated optical fibers caused by axial strain-induced creep deformation of polymeric coatings

机译:由轴向应变引起的聚合物涂层蠕变变形引起的双涂层光纤的微弯曲损耗

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摘要

The viscoelastic behavior of commercial UV-cured polymeric coatings of optical fibers is evaluated using dynamic mechanic analysis. The results indicate that relaxation of stresses and/or strains in these coatings occurs by creep deformation. The axial strain-induced viscoelastic stresses in optical fibers are derived from the exact viscoelastic behavior of the polymeric coatings. Compressive radial stress on the glass fiber produces microbending losses, and therefore, microbending losses in double-coated optical fibers that are caused by axial strain-induced creep deformation of polymeric coatings are investigated. These microbending losses can be minimized by suitably selecting the thickness and physical properties of the polymeric coatings, as follows. The radius, Poisson’s ratio, and strain ratio of the primary coating should be increased, but the Young’s modulus and relaxation time of the primary coating should be decreased. The radius, Young’s modulus, Poisson’s ratio, and strain ratio of the secondary coating should be decreased, but the relaxation time of the secondary coating should be increased. When the thickness and physical properties of the polymeric coating are chosen to minimize the microbending loss, the thickness and Young’s modulus of the secondary coatings should be large enough to withstand an external mechanical force.
机译:使用动态力学分析评估了商用的紫外线固化光纤聚合物涂层的粘弹性行为。结果表明,这些涂层中的应力和/或应变的松弛通过蠕变变形发生。光纤中轴向应变引起的粘弹性应力源自聚合物涂层的精确粘弹性行为。玻璃纤维上的压缩径向应力会产生微弯曲损耗,因此,研究了由轴向应变引起的聚合物涂层蠕变变形引起的双涂层光纤的微弯曲损耗。可以通过如下适当地选择聚合物涂层的厚度和物理性质来使这些微弯曲损失最小化。应增加底涂层的半径,泊松比和应变比,但应减少底涂层的杨氏模量和松弛时间。应减小辅助涂层的半径,杨氏模量,泊松比和应变比,但应增加辅助涂层的弛豫时间。当选择聚合物涂层的厚度和物理性能以最小化微弯曲损失时,辅助涂层的厚度和杨氏模量应足够大以承受外部机械力。

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