Crack Propagation Calculations for Optical Fibers under Static Bending and Tensile Loads Using Continuum Damage Mechanics
Abstract
:1. Introduction
- Statistical method based on the failure data.
- Mechanical method based on the crack growth model.
2. Mathematical Modeling
2.1. Static Fatigue Damage Model
- The material and damage variables are isotropic.
- is equal to 0, after which dissipation with damage occurs.
- The initial state is 0.
2.2. Finite Element Modelling
2.2.1. Description of the Finite Element Model
2.2.2. Calculation of the External Loads
2.2.3. Calculation of Crack Propagation Time
3. Simulation Results and Discussion
3.1. Results at Different Bending Radii
3.2. Results at Different Tensile Forces
3.3. Results at Different Optical Fiber Diameters
4. Experimental Verification
4.1. Experimental Procedure
4.2. Results and Discussion
5. Conclusions
- (1)
- From the simulation results, the change of the crack-front shape in the propagation process is consistent with the observed image in the actual test, which indicates that the traces of the crack fronts present a fan-like pattern path.
- (2)
- The crack propagation process can be divided into two stages. Firstly, the crack-initiation stage lasts from the starting point to the moment that nearly 30 elements are killed, and the crack growth rates are relatively low, since a long time is taken for the material to be damaged in the first place. Then, once entering the early crack-extension stage, the crack growth rates increase rapidly as elements are killed faster until the failure criteria are met.
- (3)
- Under different bending radii, the simulated crack propagation time values show that there is an obvious inversely proportional relationship between the crack propagation time and bending radius. The reason is that a smaller bending radius causes a higher bending load on the optical fiber, and it increases the damage-accumulating speed. Additionally, compared with the test data, the simulation results have the same variation tendency and similar magnitude changes in the range of acceptable errors.
- (4)
- Based on the simulation results, greater tensile forces can easily cause elements on the crack flank to take on higher damage values and be killed, leading to the appearance of wider cracks. The phenomenon basically conforms to the test results. In addition, the simulated crack propagation times are close to the extrapolated values from fitting the curve of the experimental results.
- (5)
- The geometry size of optical fibers manufactured can seriously affect the optical fibers’ crack propagation times through the finite element analysis. Through deeply investigating simulation results, the maximum stress on the glass core decreases first and then increases along with the diameter of the glass core, which can explain the non-linear relationship between the crack propagation time and glass core diameter. Thus, there is an optimum diameter for the glass core that takes on the lowest stress, which could give an optimization policy in the size design of optical fibers to improve their usage time under static loads.
Acknowledgments
Author Contributions
Conflicts of Interest
References
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#1 | #2 | #3 | #4 | #5 | |
---|---|---|---|---|---|
Glass core diameter (μm) | 45 | 80 | 125 | 200 | 300 |
Inner coating diameter (μm) | 77 | 120 | 187 | 230 | 330 |
Outer coating diameter (μm) | 115 | 165 | 245 | 500 | 650 |
Critical crack depth (μm) | 11 | 22 | 32 | 50 | 79 |
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Chen, Y.; Cui, Y.; Gong, W. Crack Propagation Calculations for Optical Fibers under Static Bending and Tensile Loads Using Continuum Damage Mechanics. Sensors 2017, 17, 2633. https://doi.org/10.3390/s17112633
Chen Y, Cui Y, Gong W. Crack Propagation Calculations for Optical Fibers under Static Bending and Tensile Loads Using Continuum Damage Mechanics. Sensors. 2017; 17(11):2633. https://doi.org/10.3390/s17112633
Chicago/Turabian StyleChen, Yunxia, Yuxuan Cui, and Wenjun Gong. 2017. "Crack Propagation Calculations for Optical Fibers under Static Bending and Tensile Loads Using Continuum Damage Mechanics" Sensors 17, no. 11: 2633. https://doi.org/10.3390/s17112633
APA StyleChen, Y., Cui, Y., & Gong, W. (2017). Crack Propagation Calculations for Optical Fibers under Static Bending and Tensile Loads Using Continuum Damage Mechanics. Sensors, 17(11), 2633. https://doi.org/10.3390/s17112633