Stress and Deformation Analysis of Prestressed Wound Composite Components with an Arch-Shaped Metal Liner
Abstract
:1. Introduction
2. Materials and Methods
2.1. Stress Distribution of the Prestressed Wound Metal Liner
- Plane assumption—The transverse cross-section is initially a plane before deformation, remains a plane after deformation, and continues to be perpendicular to the deformed axis;
- End effects are neglected, and the component is assumed to be infinitely long;
- Axial stress is neglected, and stress along the axial direction is assumed to be uniformly distributed;
- The applied pressure is a function of the central angle , i.e., .
2.2. FE Modelling
2.3. Experimental Setup
3. Results and Discussion
3.1. Experimental Results and Validation of the FE Model
3.2. Stress Analysis of the Prestressed Wound Arch-Shaped Component with a Metal Liner
3.2.1. Establishing a 2D FE Model for the Prestressed Wound Arch-Shaped Component
3.2.2. Comparison of the 2D and 3D Model Results
3.2.3. Analysis of Stress Distribution in the Arch-Shaped Prestressed Wound Components with a Metal Liner
3.3. Deformation Analysis of the Arch-Shaped and Prestressed Wound Component with a Metal Liner
4. Conclusions
- Under the condition where only the arc segment of the arch-shaped component is subjected to external pressure, the straight segment will experience the additional bending moment caused by the non-circular symmetry of the structure. This additional bending moment significantly influences the ultimate deformation of the arch-shaped component.
- Through experiments on the prestressed winding of arch-shaped sections with metal liners, the accuracy of the 3D FE model for prestressed wound components with a metal liner was validated. The error between the simulation results and experimental results is within 2%.
- By comparing the 3D model with the 2D model, it was observed that the end effect of the arch-shaped component will affect its deformation during the winding process. After a certain distance from the end, the end effect can be neglected. At this point, a 2D model can replace the 3D model for the stress and deformation analysis of prestressed wound components with an arched-shaped liner.
- By comparing the stress distributions of the arch-shaped section and the circular section for prestressed wound components, it was observed that although the stress in the arc segment of the arch-shaped section exhibits a “higher in the center, smaller at both ends” phenomenon, the stress distribution is very similar to that of the circular section except in the transition zone between the straight segment and the arc segment, with differences between the two being less than 5%. The stress in the straight segment is mainly composed of compressive stress and bending stress. A comparison of the stress distributions in the winding layer revealed that the stress distribution in the arc segment of the component with an arch-shaped section is similar to the component with a circular section, and the differences are negligible. The radial stress in the straight segment is zero, and the circumferential stress is comparable to that in the arc segment.
- By comparing the deformations of the arch-shaped section and the circular section of prestressed wound components, it was found that when the ratio of the length of the straight segment of the arch-shaped component to the inner diameter of the arc segment is less than 4, the deformation on the symmetric surface of the arc segment of the arch-shaped component can be approximately considered as the superposition of the deformation of a circular section of the same size under the same load. This finding is of significant reference value for analyzing the stress and deformation of wound components with non-circular sections.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameter | Value |
---|---|
Inner radius of the arc segment in the liner of the arch-shaped section, /mm | 60 |
Outer radius of the arc segment in the liner of the arch-shaped section, /mm | 75 |
Length of the straight segment in the liner of the arch-shaped section, /mm | 130 |
Total number of winding layers, | 16 |
Thickness of a single winding layer, /mm | 0.14 |
Width of a single winding layer, /mm | 6.35 |
Winding tension, /N | 400 |
Material | Modulus/GPa | Poisson’s Ratio |
---|---|---|
Q235 | 210 | 0.34 |
Parameter | Value |
---|---|
Fiber longitudinal elastic modulus, /GPa | 133 |
Transverse elastic modulus, /GPa | 9.7 |
Elastic modulus in the thickness direction, /GPa | 9.7 |
Poisson’s ratio, | 0.29 |
Poisson’s ratio, | 0.29 |
Poisson’s ratio, | 0.3 |
Shear modulus in the 1–2 plane, /GPa | 5.5 |
Shear modulus in the 1–3 plane, /GPa | 5.5 |
Shear modulus in the 2–3 plane, /GPa | 3.35 |
/mm | Additional Bending Moment/(N mm) |
---|---|
30 | 339.9 |
60 | 311.4 |
120 | 256.9 |
240 | 189.2 |
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Wang, J.; Xiao, J.; Huan, D.; Yan, L.; Wang, Z.; Tao, Z. Stress and Deformation Analysis of Prestressed Wound Composite Components with an Arch-Shaped Metal Liner. Materials 2024, 17, 757. https://doi.org/10.3390/ma17030757
Wang J, Xiao J, Huan D, Yan L, Wang Z, Tao Z. Stress and Deformation Analysis of Prestressed Wound Composite Components with an Arch-Shaped Metal Liner. Materials. 2024; 17(3):757. https://doi.org/10.3390/ma17030757
Chicago/Turabian StyleWang, Junsheng, Jun Xiao, Dajun Huan, Lei Yan, Zijie Wang, and Zhiwei Tao. 2024. "Stress and Deformation Analysis of Prestressed Wound Composite Components with an Arch-Shaped Metal Liner" Materials 17, no. 3: 757. https://doi.org/10.3390/ma17030757
APA StyleWang, J., Xiao, J., Huan, D., Yan, L., Wang, Z., & Tao, Z. (2024). Stress and Deformation Analysis of Prestressed Wound Composite Components with an Arch-Shaped Metal Liner. Materials, 17(3), 757. https://doi.org/10.3390/ma17030757