Eisseler Rocco, Gutsche Daniel, Maucher Clemens, Möhring Hans-Christian
Institute for Machine Tools, University of Stuttgart, Holzgartenstrasse 17, 70174 Stuttgart, Germany.
Materials (Basel). 2021 Dec 21;15(1):26. doi: 10.3390/ma15010026.
In powder bed-based additive manufacturing (AM), complex geometries can be produced in a layer-wise approach. Results of material science experiments regarding material property identification, e.g., tensile strength, show interdependencies between the test load direction and the layer orientation. This goes hand-in-hand with the measured cutting force, changing with the relative angle between cutting direction and layer orientation in orthogonal cutting tests. However, due to the specific process characteristics, the layer orientation results in anisotropic material properties. Therefore, during machining, the material behaves depending on the buildup direction, which influences the cutting process. To predict this behavior, a simplified inverse approach is developed to determine the buildup direction-dependent parameters of a modified Johnson-Cook model for cutting simulation. To qualify these cutting models, mainly the cutting force and additionally the chip formation examined during orthogonal cuts are used. In the present paper, the influence of the laser-powder-bed-fusion (LPBF) process parameters on subtractive post-processing are shown. A good agreement between verification experiments and simulations is achieved.
在基于粉末床的增材制造(AM)中,可以采用逐层方式制造复杂的几何形状。材料科学实验中关于材料性能识别(如拉伸强度)的结果表明,测试载荷方向与层取向之间存在相互依存关系。这与测量的切削力密切相关,在正交切削试验中,切削力会随着切削方向与层取向之间的相对角度而变化。然而,由于特定的工艺特性,层取向会导致材料性能呈现各向异性。因此,在加工过程中,材料的行为取决于堆积方向,这会影响切削过程。为了预测这种行为,开发了一种简化的逆向方法,以确定用于切削模拟的修正约翰逊 - 库克模型中与堆积方向相关的参数。为了验证这些切削模型,主要使用切削力,此外还会在正交切削过程中研究切屑形成情况。在本文中,展示了激光粉末床熔融(LPBF)工艺参数对减法后处理的影响。验证实验与模拟结果之间取得了良好的一致性。