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Sandia fracture challenge 2: Sandia California's modeling approach

机译:桑迪亚骨折挑战2:加州桑迪亚的建模方法

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The second Sandia Fracture Challenge illustrates that predicting the ductile fracture of Ti-6Al-4V subjected to moderate and elevated rates of loading requires thermomechanical coupling, elasto-thermo-poro-viscoplastic constitutive models with the physics of anisotropy and regularized numerical methods for crack initiation and propagation. We detail our initial approach with an emphasis on iterative calibration and systematically increasing complexity to accommodate anisotropy in the context of an isotropic material model. Blind predictions illustrate strengths and weaknesses of our initial approach. We then revisit our findings to illustrate the importance of including anisotropy in the failure process. Mesh-independent solutions of continuum damage models having both isotropic and anisotropic yields surfaces are obtained through nonlocality and localization elements.
机译:第二个Sandia断裂挑战表明,要预测中等载荷和升高载荷下的Ti-6Al-4V的韧性断裂,需要热力学耦合,具有各向异性物理学的弹性-热-多孔-粘塑性本构模型以及用于裂纹萌生的规则化数值方法和传播。我们详细介绍了初始方法,重点是迭代校准,并系统地增加了复杂性以适应各向同性材料模型中的各向异性。盲目的预测说明了我们初始方法的优缺点。然后,我们重新审视我们的发现,以说明在失效过程中包括各向异性的重要性。通过非局域性和局域性元素可以获得具有各向同性和各向异性屈服面的连续损伤模型的独立于网格的解。

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