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首页> 外文期刊>Composite Structures >Progressive delamination analysis through two-way global-local coupling approach preserving energy dissipation for single-mode and mixed-mode loading
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Progressive delamination analysis through two-way global-local coupling approach preserving energy dissipation for single-mode and mixed-mode loading

机译:通过双向全球局部耦合方法进行逐步分解分析,保留单模和混合模式加载的能量耗散

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摘要

Together with fiber breakage and matrix cracking, delamination is one of the common damage mechanisms occurring in laminated fiber-reinforced composite structures. Delamination initiates due to the relatively low interlaminar strength of adjacent plies. Delamination onset and propagation can be induced by various combinations of loads and usually leads to a significant reduction of the load-carrying capacity of the structure. For this reason, an efficient and reliable progressive failure analysis capability is required. In this work, the delamination process is simulated by means of a two-way global-local coupling approach. In particular, within this novel global-local approach a method is introduced that ensures the preservation of the dissipated energy when switching between the global and local level. This approach is tested and illustrated under single-mode I and II, and mixed-mode loading in the double cantilever beam (DCB), the end-notched flexure (ENF) and the mixed-mode bending (MMB) benchmark tests, respectively, and the results are compared to available analytical solutions. Finally, the developed method has been applied to a one-stringer stiffened panel and a good agreement was attained compared to the solid model reference solution.
机译:与纤维破裂和基质开裂一起,分层是层压纤维增强复合材料结构中发生的常见损伤机构之一。除了相邻层的间隔强度相对较低,分层引发。可以通过载荷的各种组合引起分层并传播,并且通常导致结构的承载能力显着降低。因此,需要有效且可靠的渐进式故障分析能力。在这项工作中,通过双向全球局部耦合方法模拟分层过程。特别地,在这种新颖的全球局部方法中,引入了一种方法,该方法确保在全局和局部之间切换时保存耗散的能量。在单模I和II下测试和说明该方法,以及双悬臂梁(DCB)中的混合模式加载,端部缺口弯曲(ENF)和混合模式弯曲(MMB)基准测试,并将结果与​​可用的分析解决方案进行比较。最后,通过固体模型参考解决方案比较了开发方法已应用于单架硬化板,并达到了良好的协议。

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