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Three-Dimensional Additively Manufactured Microstructures and Their Mechanical Properties

机译:三维含量造成的微观结构及其机械性能

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Metal additive manufacturing (AM) allows for the freeform creation of complex parts. However, AM microstructures are highly sensitive to the process parameters used. Resulting microstructures vary significantly from typical metal alloys in grain morphology distributions, defect populations and crystallographic texture. AM microstructures are often anisotropic and possess three-dimensional features. These microstructural features determine the mechanical properties of AM parts. Here, we reproduce three "canonical" AM microstructures from the literature and investigate their mechanical responses. Stochastic volume elements are generated with a kinetic Monte Carlo process simulation. A crystal plasticity-finite element model is then used to simulate plastic deformation of the AM microstructures and a reference equiaxed microstructure. Results demonstrate that AM microstructures possess significant variability in strength and plastic anisotropy compared with conventional equiaxed microstructures.
机译:金属添加剂制造(AM)允许自由形状产生复杂部件。然而,AM微结构对所使用的工艺参数非常敏感。由晶粒形态分布,缺陷种群和晶体纹理中的典型金属合金产生显微结构显着变化。 AM微观结构通常是各向异性的并且具有三维特征。这些微观结构特征决定了AM部件的机械性能。在这里,我们从文献中重现了三个“规范”的微观结构,并研究了它们的机械反应。随机体积元素采用动力学蒙特卡罗工艺模拟产生。然后使用晶体塑性 - 有限元模型来模拟AM微结构的塑性变形和参考等式微观结构。结果表明,与常规等式的微观结构相比,AM微结构具有强度和塑性各向异性的显着变化。

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