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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part B. Journal of engineering manufacture >A numerical investigation of thermal property effects on melt pool characteristics in powder-bed electron beam additive manufacturing
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A numerical investigation of thermal property effects on melt pool characteristics in powder-bed electron beam additive manufacturing

机译:粉床电子束添加剂制造中熔池特性热性能效应的数值研究

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摘要

Powder-bed electron beam additive manufacturing has the potential to be a cost-effective alternative in producing complex-shaped, custom-designed metal parts using various alloys. Material thermal properties have a rather sophisticated effect on the thermal characteristics such as the melt pool geometry in fabrications, impacting the build part quality. The objective of this study is to achieve a quantitative relationship that can correlate the material thermal properties and the melt pool geometric characteristics in the electron beam additive manufacturing process. The motivation is to understand the interactions of material property effect since testing individual properties is insufficient because of the change of almost all thermal properties when switching from one to the other material. In this research, a full-factorial simulation experiment was conducted to include a wide range of the thermal properties and their combinations. A developed finite element thermal model was applied to perform electron beam additive manufacturing process thermal simulations incorporating tested thermal properties. The analysis of variance method was utilized to evaluate different thermal property effects on the simulated melt pool geometry. The major results are summarized as follows. (1) The material melting point is the most dominant factor to the melt pool size. (2) The role of the material thermal conductivity may outweigh the melting point and strongly affects the melt pool size, if the thermal conductivity is very high. (3) Regression equations to correlate the material properties and the melt pool dimension and shape have been established, and the regression-predicted results show a reasonable agreement with the simulation results for tested real-world materials. However, errors still exist for materials with a small melt pool such as copper.
机译:粉床电子束添加剂制造具有使用各种合金生产复杂的定制设计的金属部件的经济有效的替代方案。材料热性能对诸如制造中的熔体池几何形状的热特性具有相当复杂的效果,影响构建部分质量。本研究的目的是实现定量关系,可以将材料热性能和熔池池几何特性相关联,在电子束添加剂制造过程中。动机是理解材料性质效应的相互作用,因为当测试单个性质是不充分的,因为当从一个到另一个材料切换到几乎所有热性能时,这种性质不足。在该研究中,进行了全因子仿真实验,包括广泛的热性质及其组合。应用了开发的有限元热模型来进行包含测试热性能的电子束添加剂制造工艺热模拟。方差法分析用于评估模拟熔体池几何形状的不同热性效应。主要结果总结如下。 (1)材料熔点是熔融池大小最大的因素。 (2)如果导热系数非常高,材料导热率的作用可能超过熔点并强烈影响熔融池尺寸。 (3)已经建立了回归方程,以与材料特性和熔融池尺寸和形状相关,回归预测结果显示了与经过测试的现实材料的模拟结果合理的协议。然而,具有小熔池的材料仍然存在诸如铜的材料。

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