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Crack Propagation Calculations for Optical Fibers under Static Bending and Tensile Loads Using Continuum Damage Mechanics

机译:使用连续损伤力学计算光纤在静态弯曲和拉伸载荷下的裂纹扩展

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abstract_textpStatic fatigue behavior is the main failure mode of optical fibers applied in sensors. In this paper, a computational framework based on continuum damage mechanics (CDM) is presented to calculate the crack propagation process and failure time of optical fibers subjected to static bending and tensile loads. For this purpose, the static fatigue crack propagation in the glass core of the optical fiber is studied. Combining a finite element method (FEM), we use the continuum damage mechanics for the glass core to calculate the crack propagation path and corresponding failure time. In addition, three factors including bending radius, tensile force and optical fiber diameter are investigated to find their impacts on the crack propagation process and failure time of the optical fiber under concerned situations. Finally, experiments are conducted and the results verify the correctness of the simulation calculation. It is believed that the proposed method could give a straightforward description of the crack propagation path in the inner glass core. Additionally, the predicted crack propagation time of the optical fiber with different factors can provide effective suggestions for improving the long-term usage of optical fibers./p/abstract_text
机译:静态疲劳行为是应用于传感器的光纤的主要失效模式。该文提出一种基于连续损伤力学(CDM)的计算框架,用于计算光纤在静态弯曲和拉伸载荷下的裂纹扩展过程和失效时间。为此,研究了静态疲劳裂纹在光纤玻璃纤芯中的扩展。结合有限元法(FEM),我们利用连续损伤力学对玻璃芯进行计算裂纹扩展路径和相应的失效时间。此外,还研究了弯曲半径、拉力和光纤直径3个因素,找出了它们在相关情况下对光纤裂纹扩展过程和失效时间的影响。最后,进行了实验,验证了仿真计算的正确性。结果表明,所提方法能够直接描述玻璃内芯裂纹扩展路径。此外,不同因素对光纤裂纹扩展时间的预测可以为提高光纤的长期使用率提供有效的建议。

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