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Multiphysics Modeling and Simulation of Selective Laser Sintering Manufacturing Processes

机译:选择性激光烧结制造过程的多物理场建模与仿真

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A significant percentage of materials used in industry start in particulate form. In many modern applications, these systems undergo processing which necessitate a multiphysical analysis. Several manufacturing applications have arisen that involve the multiphysical response of particulate systems in the presence of strongly coupled electromagnetic, optical, and thermal fields. The significant multifield coupling requires methods that can capture the unique and essential physics of these systems. Specifically, in this work, the modeling and simulation of selective laser sintering of particulate materials is discussed. Such processes involve harnessing optical energy to heat and fuse powdered materials together in an additive process. Selective laser sintering allows for the rapid manufacturing or prototyping of parts with complex geometries. In order to simulate such a process in a rapid manner, the approach pursued by the authors is to develop a computational tool by assembling relatively simple, physically meaningful, models at the small scale, for many interacting particles. This allows for much more refined estimates of the resulting overall system temperature and, ultimately, its change of phase from a solid, to a liquid, and possibly even to a gas. Large-scale three-dimensional examples are provided.
机译:工业上使用的很大一部分材料都是以颗粒形式开始的。在许多现代应用中,这些系统都经过处理,因此需要进行多物理场分析。在涉及强耦合电磁场,光学场和热场的情况下,出现了一些涉及颗粒系统的多物理响应的制造应用。显着的多场耦合需要能够捕获这些系统独特且必不可少的物理特性的方法。具体而言,在这项工作中,讨论了颗粒材料选择性激光烧结的建模和仿真。此类过程涉及利用光能在加成过程中将粉末状材料加热并融合在一起。选择性激光烧结可以快速制造或加工具有复杂几何形状的零件。为了快速模拟这样的过程,作者追求的方法是通过为许多相互作用的粒子以小规模组装相对简单,具有物理意义的模型来开发计算工具。这样就可以对所得的整个系统温度进行更精细的估算,最终可以估算出其从固体到液体甚至是气体的相变。提供了大规模的三维示例。

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