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Geometry-Based Process Adaption to Fabricate Parts with Varying Wall Thickness by Direct Metal Deposition

机译:基于几何工艺适应,通过直接金属沉积制造具有不同壁厚的部件

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The process of direct metal deposition gains recently high attention in the additive manufacturing community, but its capabilities to fabricate complex geometries is still limited. Especially for thin-walled structures, heat accumulation can disturb the process significantly. An adaption of process parameters, for instance by a semi-empirical model, is able to stabilize the process. Herein, an algorithm is proposed that creates a digital twin of the part from a given NC code, analyses the massiveness of the part by calculating a local geometric factor, and alters the laser power accordingly: The heat flux in a thin wall is limited compared to a massive plate due to its smaller cross section and requires therefore less laser power to generate a comparable melt pool, especially if waiting times shall be avoided. The algorithm correlates experimentally determined process parameters to the local geometric factor. Since no physical simulation is performed, it is fast, easy to use, and enables a clearly defined and repeatable process. The buildup of a demonstrator part reveals the potential of the parameter adaption to fabricate arbitrary geometries.
机译:直接金属沉积增益的过程最近在添加剂制造界中高度关注,但其制造复杂几何形状的能力仍然有限。特别是对于薄壁结构,蓄热可以显着扰乱该过程。处理参数的适应,例如通过半经验模型,能够稳定该过程。这里提出了一种算法,其从给定的NC码创建部分的数字双胞胎,通过计算局部几何因子来分析部件的质量,并相应地改变激光功率:薄壁中的热量相比是有限的由于其较小的横截面,到巨大的板,因此需要更少的激光功率来产生可比较的熔池,特别是如果应避免等待时间。该算法将实验确定的工艺参数与局部几何因子相关联。由于未执行物理仿真,因此快速,易于使用,并且可以实现明确定义和可重复的过程。示威者部分的构建揭示了参数适应的潜力,以制造任意几何形状。

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