Delamination Resistance and Size Effect in Discontinuous Fiber Composites

Rohith Jayaram, S. Ko, Jinkyu Yang, M. Salviato
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Abstract

In this paper, we investigate Mode-I and Mode-II delamination behavior of Discontinuous Fiber Composites (DFCs). Owing to the complex heterogeneous mesostructure in DFCs, conventional testing methodologies such as the double cantilever beam (DCB) and end-notched flexure (ENF) tests used to characterize Mode-I and Mode-II interlaminar failure may fail to characterize the non-linear behavior during delamination. This is because DCB and ENF tests based on Linear Elastic Fracture Mechanics (LEFM) models, fails to account for the quasi-brittleness of DFCs. As a result, this approach may not be able to capture the variation in the Fracture Process Zone (FPZ) which becomes large due the distributed damage in the platelets. Hence, there is a need to account for this non-linear behavior of the FPZ to effectively estimate the delamination fracture energy. This paper proposes an experimental investigation on the effects of the FPZ on the inter-laminar delamination of DFCs. To shed light on the role of the FPZ size versus the structure size and geometry, geometrically-scaled DCB and ENF specimens were tested. The results show a significant size effect. While for small sizes the specimens exhibit a limited strength reduction by the presence of the crack (which indicates a pseudo-ductile behaviour), the failure becomes more and more brittle for larger sizes. Future work will focus on the understanding of this phenomenon leveraging stochastic Finite Element modelling and quasi-brittle fracture mechanics.
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非连续纤维复合材料的抗分层性能和尺寸效应
本文研究了不连续纤维复合材料(dfc)的i型和ii型分层行为。由于dfc中复杂的非均质细观结构,传统的测试方法,如双悬臂梁(DCB)和端缺口挠曲(ENF)试验,用于表征i型和ii型层间破坏,可能无法表征分层过程中的非线性行为。这是因为基于线弹性断裂力学(LEFM)模型的DCB和ENF试验未能考虑到dfc的准脆性。因此,这种方法可能无法捕获断裂过程区(FPZ)的变化,由于血小板的分布损伤,FPZ变大。因此,有必要考虑FPZ的这种非线性行为,以有效地估计分层断裂能。本文提出了FPZ对dfc层间分层影响的实验研究。为了阐明FPZ尺寸相对于结构尺寸和几何形状的作用,对几何缩放的DCB和ENF试样进行了测试。结果显示出显著的尺寸效应。而对于小尺寸的试样,由于裂纹的存在,表现出有限的强度降低(这表明了一种伪延性行为),而对于大尺寸的试样,破坏变得越来越脆。未来的工作将集中在利用随机有限元建模和准脆性断裂力学来理解这种现象。
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