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Simulation of Phase Transformations in Steel Parts Produced by Laser Powder Deposition

机译:激光粉末沉积钢部件相变仿真

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Multilayer laser powder deposition is being used for the rapid manufacturing of fully dense near net shape components in a wide variety of materials. In this process parts are built by overlapping consecutive layers of a laser melted material. As a result of this overlapping, the material in each layer will undergo successive thermal cycles as new layers are deposited. Despite their short duration, these thermal cycles can activate solid-state transformations that lead to progressive modification of the microstructure and properties of the material. Since the thermal history of the material in the deposited part will differ from point to point, the part will present a complex and heterogeneous microstructure, and properties that differ from point to point. Given that the microstructure and property distribution in steel parts produced by laser powder deposition can only be predicted by modeling, a three-dimensional thermo-kinetic finite element model of laser powder deposition of tool steels was developed. In the present: work this model was applied to the study of the influence of substrate size on the microstructure and properties of a six-layer wall of AISI 420 tool steel. The results show that the temperature field depends significantly on the size of the substrate, leading to distinct microstructures and properties in the final part.
机译:多层激光粉末沉积用于快速制造在各种材料中的完全密集的近净形状。在该过程中,通过重叠连续的激光熔化材料层构建。由于这种重叠的结果,当沉积新层时,每层中的材料将经历连续的热循环。尽管持续时间短,但这些热循环可以激活固态变换,导致材料的微观结构和性质的逐渐改性。由于沉积部分中的材料的热历史与点对点不同,因此部分将呈现复杂且异质的微观结构,以及与点不同的性质不同。鉴于通过建模可以预测激光粉末沉积生产的钢部件的微观结构和性质分布,开发了一种刀钢的激光粉末沉积的三维热动力学有限元模型。在目前:工作本模型应用于基材尺寸对AISI 420钢六层壁的微观结构和性能的研究的研究。结果表明,温度场显着取决于基材的尺寸,导致最终部分中的显着微观结构和性质。

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