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On the failure and post-failure of fiber composites in compression.

机译:关于纤维复合材料在压缩中的破坏和破坏。

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The failure and post-failure behavior of an AS4/PEEK composite in axial compression was studied through experiments and analysis. Compressive stresses cause shearing of the matrix in regions of fiber misaligned. Increasing stresses yield the matrix, resulting in fiber collapse and failure of the composite. The strength is strongly imperfection sensitive. After failure, deformation localizes into an inclined region of rotated fibers called a kink band.; Compressive failure was investigated using 2-D and 3-D finite element models and three simpler models. When properly calibrated, their strength predictions are quite similar, especially for larger fiber misalignments. However, the FE models allow examination of post-failure events leading to kink band formation. The rate dependence of compressive strength was examined experimentally and with a modified version of a simple model.; The addition of a far-field shear stress significantly reduces the compressive strength. Failure predictions from modified versions of the 2-D model and the simple models agree well with experimental data. Post-failure events are very similar to those observed for pure compression loading, except that failure can occur in a controlled manner for certain loading paths.; It has been discovered that the kink bands formed during compressive failure can propagate axially in a steady-state manner at a constant stress level termed the propagation stress. This propagation stress, a new characteristic stress of the material, is approximately 40% of the compressive strength for AS4/PEEK. Steadystate propagation can give “ductility” to a material normally considered quite brittle. The propagation has been observed directly, revealing the mechanism of propagation as well as new details about fiber rotation in the band. A 3-D numerical model was developed which simulates the steady-state propagation. The propagation stress and deformation are predicted reasonably well.; As a basis for modeling of failure and post-failure, the non-linear rate-dependent behavior of the composite was investigated experimentally using a custom-built test fixture. Transverse compression and shear tests at various loading rates show the composite is rate-dependent at room temperature. Thirteen biaxial tests were conducted along three distinct loading paths. Significant path dependence was observed, as was unusual yielding behavior.
机译:通过实验和分析研究了AS4 / PEEK复合材料在轴向压缩下的破坏和失效后行为。压缩应力在纤维未对准的区域中引起基质的剪切。应力的增加会导致基体屈服,从而导致纤维塌陷和复合材料破坏。强度对瑕疵非常敏感。破坏后,变形局部化到旋转纤维的倾斜区域,称为扭结带。使用2-D和3-D有限元模型以及三个更简单的模型研究了压缩破坏。如果正确校准,它们的强度预测将非常相似,尤其是对于较大的光纤未对准情况。但是,有限元模型可以检查导致扭结带形成的故障后事件。抗压强度的速率依赖性通过实验和简单模型的修改版本进行了检验。远场剪切应力的增加显着降低了抗压强度。修改后的2-D模型和简单模型的失效预测与实验数据非常吻合。故障后事件与纯压缩加载中观察到的事件非常相似,不同之处在于对于某些加载路径,故障可以受控方式发生。已经发现,在压缩破坏期间形成的扭结带可以在称为传播应力的恒定应力水平下以稳态方式轴向传播。这种传播应力是材料的新特征应力,约为AS4 / PEEK抗压强度的40%。稳态传播可以使通常被认为很脆的材料具有“延展性”。直接观察到了传播,揭示了传播机理以及有关带内光纤旋转的新细节。开发了一个3D数值模型,用于模拟稳态传播。可以很好地预测传播应力和变形。作为建模故障和失效后的基础,使用定制的测试夹具对复合材料的非线性速率依赖性行为进行了实验研究。在各种加载速率下的横向压缩和剪切测试表明,复合材料在室温下与速率相关。沿着三个不同的加载路径进行了十三项双轴测试。观察到显着的路径依赖性,以及异常的屈服行为。

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