An Experimental and Numerical Study on Impact and Compression after Impact of Stiffened Composite Panels
Экспериментальное и численное исследование ударного воздействия и прочности после удара подкреплённых композитных панелей при сжатии
2022-12-29
SCID: 54.1/p3pjqf6v
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Hashin failure criteriacomposite stiffened panelscompression after impactlow-velocity impactpost-buckling behavior
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Abstract (AI)
To develop the full application potential of composite materials, research on the post-buckling behavior of composite stiffened panels is of great significance. In this paper, the impact and compression after impact (CAI) behaviors of four different types of composite stiffened panels were studied by numerical simulation and experimental methods. The low-velocity impact damage simulated dynamically was introduced as the initial state in the compression simulation, and a two-dimensional shell model with Hashin failure criteria and stiffness degradation was adopted to estimate the failure load of composite stiffened panels under impact and CAI. The error between simulation results and test results was less than 10%, showing that the method used in this study achieved considerable accuracy in experimental results. Analysis of the impact test results revealed that the extent of damage is related to many factors, including the cross-sectional size of stiffeners, the spacing of stiffeners, and the material and thickness of the skin. In addition, the influence of fatigue damage on residual strength after impact was also studied experimentally, with results showing that the buckling and failure loads decreased by about 5% under 106 flight fatigue loads. However, there were obvious fluctuations in the load-displacement curves, which may have been caused by debonding between the stiffeners and the skin. Experimental results and the simulation matrix show that the post-buckling ratio increased with the increase of the stiffness ratio, then was stable after 2.0. Furthermore, the thinner the skin, the greater the post-buckling ratio. The experimental and simulation results provide an important reference for the structural design and failure-mechanism analysis of composite stiffened panels.
Key Findings
1
A two-dimensional shell model incorporating Hashin failure criteria and stiffness degradation accurately predicted impact and compression-after-impact failure loads, with errors below 10%.
2
After 10^6 flight fatigue cycles, buckling and failure loads decreased by approximately 5%, with load-displacement fluctuations likely indicating stiffener-skin debonding.
3
Impact damage severity depended on stiffener cross-sectional size, stiffener spacing, and the skin’s material and thickness.
4
The post-buckling ratio increased with stiffness ratio but stabilized once the stiffness ratio exceeded 2.0.
5
Thinner skins produced larger post-buckling ratios in composite stiffened panels.
Research Object
composite stiffened panels under low-velocity impact, compression-after-impact, and flight fatigue loading
Research Subject
impact damage, post-buckling behavior, residual strength, and failure loads as functions of stiffener geometry, skin material and thickness, stiffness ratio, and fatigue damage
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2022-12-29
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