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Fatigue Crack Initiation and Propagation in Polyamide-6 and in Polyamide-6 Nanocomposites

机译:聚酰胺6和聚酰胺6纳米复合材料的疲劳裂纹萌生和扩展

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摘要

Recent developments in polymer nanocomposites have led to improvements in conventional short-term, but the long-term mechanical properties have received little attention. The objective of the present study was to characterize the effect of nanoparticles on the fatigue crack initiation and propagation mechanisms and on the fatigue properties of polyamide-6 (PA6) nanocomposite (PA6NC) prepared by in situ polymerization with montmorillonite clay. Two approaches were employed: fatigue life measurements and crack growth monitoring. Compared with non-filled PA6 at the same stress amplitude, the number of cycles to fracture was higher for the nanocomposite, which suggests an increase in the intrinsic resistance of the material to crack initiation. However, the crack growth rate results indicated that nanoparticles decreased the resistance to crack propagation. Post-fatigue fractographic observations indicated a change in the fatigue crack propagation mechanism resulting from the addition of nanoparticles, primarily attributed to the increase in yield stress, which favors the development of a fibrillated deformation zone. The fibrillation process in the relatively high crack propagation rate regime appeared to be preceded by plastic deformation at approximately constant volume. Most of the effect of nanoparticles on the fatigue behavior and properties results probably from the mechanical reinforcement on the microstructure and its effect on the yield stress and Young\u2019s modulus rather than from the effect of the inorganic filler to act as a stress concentrator.
机译:聚合物纳米复合材料的最新发展已导致常规短期改进,但长期的机械性能却很少受到关注。本研究的目的是表征纳米粒子对通过蒙脱石粘土原位聚合制备的聚酰胺6(PA6)纳米复合材料(PA6NC)的疲劳裂纹萌生和扩展机理以及疲劳性能的影响。采用了两种方法:疲劳寿命测量和裂纹扩展监测。与相同应力幅度下的未填充PA6相比,纳米复合材料的断裂循环数更高,这表明该材料对裂纹萌生的固有抵抗力增加。然而,裂纹扩展速率结果表明纳米颗粒降低了对裂纹扩展的抵抗力。疲劳后的分形观察表明,由于添加了纳米颗粒,导致了疲劳裂纹扩展机制的变化,这主要归因于屈服应力的增加,这有利于原纤化变形区的发展。在相对较高的裂纹扩展速率范围内的原纤化过程似乎是在近似恒定体积的塑性变形之前。纳米粒子对疲劳行为和性能的大多数影响可能是由于对微观结构的机械增强及其对屈服应力和杨氏模量的影响,而不是由无机填料作为应力集中剂的影响。

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