Stress Concentration and Damage Factor Due to Central Elliptical Hole in Functionally Graded Panels Subjected to Uniform Tensile Traction
Abstract
:1. Introduction
2. Problem Description
2.1. Problem Description
2.2. Inhomogeneity Variation
2.3. Stress Concentration and Damage Factor
3. Results and Discussions
3.1. Verification
3.1.1. Verification 1: Analysis of Homogeneous Rectangular Panel with a Circular Hole
3.1.2. Stress Analysis of FGM Panel without Hole
3.1.3. Stress Analysis of FGM Panel with a Circular Hole
3.2. Stress Concentration Factor
3.2.1. The Power-Law Inhomogeneous Variation When c > 0
3.2.2. The Power-Law Inhomogeneous Variation When c < 0
3.3. Failure Index and Damage Factor
3.3.1. The Power-Law Inhomogeneous Variation When c > 0
3.3.2. The Power-Law Inhomogeneous Variation When c < 0
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Values | ||||
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Simulations Parameters | Width of Rectangle Panel W | Length of Rectangle Panel L | Semi-Major Axis of Elliptical Hole a | Semi-Minor Axis of Elliptical Hole b |
Figure 2 | 200 mm | L/W changes from 1 to 5 | a/W changes from 0.05 to 0.4 | b = a |
Figure 3 | 200 mm | 200 mm | Case for no hole, b = a = 0 mm | |
Figure 4 | 200 mm | 200 mm | 10 mm | b = a |
Figure 5, Figure 6, Figure 7, Figure 8, Figure 9, Figure 10, Figure 11 and Figure 12 | 200 mm | 300 mm | 60 mm | 40 mm |
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Wang, W.; Yuan, H.; Li, X.; Shi, P. Stress Concentration and Damage Factor Due to Central Elliptical Hole in Functionally Graded Panels Subjected to Uniform Tensile Traction. Materials 2019, 12, 422. https://doi.org/10.3390/ma12030422
Wang W, Yuan H, Li X, Shi P. Stress Concentration and Damage Factor Due to Central Elliptical Hole in Functionally Graded Panels Subjected to Uniform Tensile Traction. Materials. 2019; 12(3):422. https://doi.org/10.3390/ma12030422
Chicago/Turabian StyleWang, Wenshuai, Hongting Yuan, Xing Li, and Pengpeng Shi. 2019. "Stress Concentration and Damage Factor Due to Central Elliptical Hole in Functionally Graded Panels Subjected to Uniform Tensile Traction" Materials 12, no. 3: 422. https://doi.org/10.3390/ma12030422