Numerical simulations of a complete laser powder bed fusion (LPBF) additive manufacturing (AM) process are extremely challenging or even impossible to achieve without a radical model reduction of the complex physical phenomena occurring during the process. However, even when we adopt reduced model with simplified physics, the complex geometries of parts usually produced by LPBF AM processes make this kind of analysis computationally expensive. In fact, small geometrical features - which might be generated when the part is design following the principal of the so-called design for AM, for instance, by means of topology optimization procedures - often require complex conformal meshes. Immersed boundary methods seem to offer a valid alternative to deal with this kind of complexity. The two-level method lies within this family of numerical methods and presents a very flexible tool to deal with multi-scale problems. In this contribution, we apply the recently introduced two-level method to part-scale thermal analysis of LPBF manufactured components, first validating the proposed part-scale model with respect to experimental measurements from the literature and then applying the presented numerical framework to simulate a complete LPBF process of a topologically optimized structure, showing the capability of the method to easily deal with complex geometrical features.
翻译:然而,即使我们采用简化物理学的简化模型,LPBFAM过程通常产生的部件的复杂地形使这种分析成本很高。事实上,小型几何特征——如果部分是按照所谓的AM设计原则设计,例如,通过地形优化程序——往往需要复杂的相容模模件。混合边界方法似乎为处理这种复杂问题提供了有效的替代方法。两种层次的方法属于数字方法的这一类,为处理多层次问题提供了一个非常灵活的工具。我们在这一贡献中,我们采用了最近采用的两级方法对LPBF制造的部件进行局部热分析,首先验证拟议的关于从文献中进行实验测量的局部模型,然后应用所提出的数字框架模拟完整的LPBF的地形特征,同时展示了采用复杂地形优化结构的能力。