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Experimental evidence and numerical simulation of size effects on the ductile fracture of metallic materials

机译:金属材料延性骨折尺寸效应实验证据及数值模拟

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The results of experimental tests investigating the size effects on single-edge-notched metallic specimens loaded in three-point bending are presented. Five different specimen scales were tested, with dimensions varying within the range 1:16. The samples were subjected to a fatigue pre-cracking to produce a sharp crack stemming from the notch root and, then, a quasi-static loading process was carried out up to the complete failure, in order to capture also the post-peak response. Notable size effects on the overall behaviour were obtained, with a variation of the failure mode from plastic collapse to ductile fracture and brittle failure by increasing the specimen size. An interpretation of the obtained size effects on ductile fracture is proposed based on numerical simulations carried out with a finite-element model that combines the cohesive method and the plasticity to take into account all the possible mechanisms for energy dissipation. The best-fitting of the experimental results is obtained by scaling the mechanical properties with the specimen size, thus proving the need of considering size-dependent constitutive laws to correctly predict the ductile fracture. Finally, scale-invariant cohesive properties are derived on the base of the fractal approach to the size effect.
机译:提出了研究在三点弯曲中装载的单边缘缺口金属样品上的尺寸效应的实验试验结果。测试了五种不同的样本鳞片,尺寸在1:16范围内变化。对样品进行疲劳前裂缝以产生从凹口根部的尖锐的裂纹,然后,进行准静态加载过程,达到完全失败,以便也捕获后峰值响应。获得了对整体行为的显着尺寸效果,通过增加样品尺寸,通过塑性塌陷与韧性断裂和脆性失效的失效模式变化。基于使用有限元模型进行的数值模拟,提出了对延展性裂缝的尺寸效应的解释,该有限元模型结合了粘性方法和可塑性的所有可能的能量耗散机制。通过用样品尺寸缩放机械性能来获得实验结果的最佳拟合,从而证明需要考虑尺寸依赖性本构规则以正确预测延性骨折。最后,尺度不变的粘性属性是在分形效应的分形方法的基础上得到的。

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