A Nonlinear Crack Model for Concrete Structure Based on an Extended Scaled Boundary Finite Element Method
Abstract
:1. Introduction
2. Extended Scaled Boundary Finite Element Method
2.1. Extended Finite Element Method
2.2. Scaled Boundary Finite Element Method
2.3. Force Balance and Displacement Coordination
3. A Nonlinear Crack Model with Iterative Method for Cohesive Interactions in the FPZ
- Assume that the structure is only affected by the external force so that the relative displacement of the super-element crack surface can be obtained based on the linear elastic assumptions of X-SBFEM, and that the corresponding cohesive traction can be obtained according to Figure 5.
- As shown in Figure 6, the external force and the cohesive force obtained in the previous step are applied to the structure, wherein the cohesive traction is applied in the form of a side-face force, formulated in accordance to the following equation:
- C.
- Repeat the steps until the relationship between and becomes consistent with the pattern of variation plotted in Figure 5.
4. Numerical Examples
4.1. A Three-Point Bending Beam
4.2. A Four-Point Shear Beam
4.3. An Experimental Concrete Gravity Dam with Single-Crack Expansion
4.4. Static Cohesive Crack Propagation Simulation of Koyna Dam
5. Conclusions
- (1)
- A nonlinear X-SBFEM model using the linear superposition of the iterative method was developed and validated to include the cohesive tractions and the fracture energy from FPZ.
- (2)
- The proposed model can be applied to complex structures without inserting CIEs.
- (3)
- The accuracy of the proposed model was in close agreement with the experiments showing improvement over the linear SBFEM method.
- (4)
- The numerical procedure is easily implemented within the finite element method software and can be compatible with various nonlinear constitutive relations.
Author Contributions
Acknowledgments
Conflicts of Interest
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Li, J.-b.; Gao, X.; Fu, X.-a.; Wu, C.; Lin, G. A Nonlinear Crack Model for Concrete Structure Based on an Extended Scaled Boundary Finite Element Method. Appl. Sci. 2018, 8, 1067. https://doi.org/10.3390/app8071067
Li J-b, Gao X, Fu X-a, Wu C, Lin G. A Nonlinear Crack Model for Concrete Structure Based on an Extended Scaled Boundary Finite Element Method. Applied Sciences. 2018; 8(7):1067. https://doi.org/10.3390/app8071067
Chicago/Turabian StyleLi, Jian-bo, Xin Gao, Xing-an Fu, Chenglin Wu, and Gao Lin. 2018. "A Nonlinear Crack Model for Concrete Structure Based on an Extended Scaled Boundary Finite Element Method" Applied Sciences 8, no. 7: 1067. https://doi.org/10.3390/app8071067
APA StyleLi, J. -b., Gao, X., Fu, X. -a., Wu, C., & Lin, G. (2018). A Nonlinear Crack Model for Concrete Structure Based on an Extended Scaled Boundary Finite Element Method. Applied Sciences, 8(7), 1067. https://doi.org/10.3390/app8071067