Experimental and Numerical Study of Low-Velocity Impact and Tensile after Impact for CFRP Laminates Single-Lap Joints Adhesively Bonded Structure
Abstract
:1. Introduction
2. Experimental Procedure
2.1. Materials and Specimens Preparation
2.2. Low-Velocity Impact and Tensile-After Impact Tests
3. Numerical Methods
3.1. Intralaminar Damage Criterion
3.2. Interlaminar and Adhesive Damage Criterion
3.3. Finite Element Modeling
4. Results and Discussion
4.1. Impact Response Analysis of SLJs
4.1.1. Effect of Impact Energy on the Impact Response of SLJs
4.1.2. Effect of Overlap Length on the Impact Response of SLJs
4.2. Impact Damage Results and Analysis of SLJs
4.2.1. Surface Damage Results and Analysis of SLJs
4.2.2. Internal Damage Results and Analysis of SLJs
4.3. Stress Distribution of Adhesive Layer of SLJs under Impact Load
4.4. Residual Strength Analysis of SLJs
4.4.1. Influence of Impact Energy on Residual Strength of SLJs
4.4.2. Influence of Overlap Length on Residual Strength of SLJs
5. Conclusions
- A FEM was established based on the Hashin failure criterion and CZM, and the experimental analysis of different impact loads was carried out on the joint with an overlap length of 20 mm. The errors of peak force and energy absorption for both experimental and simulation results are less than 10%, and the validity of the finite element method was verified;
- When the overlap length is fixed, the impact behavior of SLJs, such as peak force, displacement, and energy absorption, increases with the increase in impact energy. When the impact energy is certain, increasing the overlap length cannot effectively improve the impact performance of SLJs;
- The failure models of SLJs subjected to low-velocity impact are mainly include matrix cracking, fiber damage, and delamination damage. The delamination damage is the most obvious, and the damage areas gradually increase with the increase of impact energy. The stress distribution in the adhesive layer is mainly V-shaped and symmetrical. The stress concentration phenomenon expands from the edge to the middle with the increase of the loading point;
- For the residual strength of the single-lap adhesively bonded structure at low-velocity impact, when the overlap length is 20 mm, the residual strength of SLJs gradually decreases with impact energy. When the overlap length is 40 mm, the residual strength of the CFRP laminate SLJs remains essentially unchanged compared to the lossless joint at smaller impact energy. Merely increasing the overlap length cannot significantly increase the strength of SLJs. Therefore, CFRP laminate SLJs adhesively bonded structures with smaller overlap lengths are more sensitive to low-velocity impact behavior.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Property | CFRP | LJM-170 |
---|---|---|
Young’s modulus E11/MPa | 125,000 | 2200 |
Young’s modulus E22, E33/MPa | 11,300 | |
Shear modulus G12, G13/MPa | 5430 | 815 |
Shear modulus G23/MPa | 3980 | |
Poisson’s ratio v12,v13 | 0.3 | |
Poisson’s ratio v23 | 0.42 | |
Longitudinal tensile strength Xt/MPa | 2000 | |
Longitudinal compressive strength Xc/MPa | 1100 | |
Transverse tensile strength Yt/MPa | 80 | |
Transverse compressive strength Yc/MPa | 280 | |
Shear strength S/MPa | 120 | |
Interface stiffness Knn, Kss, Ktt/(N·mm−3) | 105 | |
Maximum normal traction /MPa | 50 | 31.9 |
Maximum shear traction , /MPa | 90 | 21.2 |
Toughness in tension /(kJ·m−2) | 0.52 | 0.48 |
Toughness in shear , /(kJ·m−2) | 0.92 | 1.83 |
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Hu, C.; Huang, G.; Li, C. Experimental and Numerical Study of Low-Velocity Impact and Tensile after Impact for CFRP Laminates Single-Lap Joints Adhesively Bonded Structure. Materials 2021, 14, 1016. https://doi.org/10.3390/ma14041016
Hu C, Huang G, Li C. Experimental and Numerical Study of Low-Velocity Impact and Tensile after Impact for CFRP Laminates Single-Lap Joints Adhesively Bonded Structure. Materials. 2021; 14(4):1016. https://doi.org/10.3390/ma14041016
Chicago/Turabian StyleHu, Chunxing, Guibin Huang, and Cheng Li. 2021. "Experimental and Numerical Study of Low-Velocity Impact and Tensile after Impact for CFRP Laminates Single-Lap Joints Adhesively Bonded Structure" Materials 14, no. 4: 1016. https://doi.org/10.3390/ma14041016
APA StyleHu, C., Huang, G., & Li, C. (2021). Experimental and Numerical Study of Low-Velocity Impact and Tensile after Impact for CFRP Laminates Single-Lap Joints Adhesively Bonded Structure. Materials, 14(4), 1016. https://doi.org/10.3390/ma14041016