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A micromechanical constitutive modeling of WC hardmetals using finite-element and uniform field models

机译:WC硬质合金的微机械本构模型的有限元和均匀场模型

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摘要

For constitutive modeling of WC hardmetals we used a full field finite element simulations of accurately reproduced scanning electron microscope images and a simple uniform field two-phase model. Both models combine isotropic Drucker-Prager elastic-plastic behavior of WC grains and isotropic von Mises elastic-plastic behavior of the binder, and include non-linear hardening. We performed simulations for representative volume elements using the generalized 2.5D formulation and demonstrated a good agreement between the two models in terms of the effective mechanical behavior. Effective elastic properties and coefficients of thermal expansion were obtained. Effective yield stresses evaluated at 0.1% of effective plastic strain were also computed for six different loading paths. Probability and joint probability histograms obtained in FE simulations are presented. We also studied the effect of residual thermal stresses, which appear in WC hardmetals due to cooling from sintering temperatures. Finally, we obtained a realistic yield surface for a three-dimensional microstructure using a uniform field model with spherical inclusions. This surfaCe combines a Drucker-Prager region for moderate pressures and a von Mises region for high pressures, with a sharp transition between these two regions. Four different WC hardmetal grades were considered. In total, nine microstructures were reproduced in finite element models with the binder content ranging from 10% to 19%. A sensitivity study on the binder plastic properties was carried out, thus the obtained results for the yield surface are applicable to real hardmetals with different binder materials and various binder content. (C) 2016 Elsevier Ltd. All rights reserved.
机译:对于WC硬质合金的本构模型,我们使用了精确复制的扫描电子显微镜图像的全场有限元模拟和简单的均匀场两相模型。两种模型都结合了WC晶粒的各向同性Drucker-Prager弹塑性行为和粘合剂的各向同性von Mises弹塑性行为,并包括非线性硬化。我们使用广义的2.5D公式对代表性的体积元素进行了模拟,并在有效力学行为方面证明了这两个模型之间的良好一致性。获得了有效的弹性和热膨胀系数。还针对六个不同的加载路径计算了以有效塑性应变的0.1%评估的有效屈服应力。给出了有限元仿真中获得的概率和联合概率直方图。我们还研究了残余热应力的影响,该残余热应力由于烧结温度的冷却而出现在WC硬质合金中。最后,我们使用带有球形夹杂物的均匀场模型获得了三维微观结构的实际屈服面。此表面结合了Drucker-Prager地区(用于中等压力)和von Mises地区(用于高压),并且在这两个区域之间有明显的过渡。考虑了四种不同的WC硬质合金等级。总共在有限元模型中复制了9个微结构,其粘合剂含量为10%至19%。进行了粘合剂塑性性能的敏感性研究,因此所得屈服面的结果适用于具有不同粘合剂材料和不同粘合剂含量的实际硬质合金。 (C)2016 Elsevier Ltd.保留所有权利。

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