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首页> 外文期刊>Journal of Materials Research and Technology >Comparative analysis of the hot-isostatic-pressing densification behavior of atomized and milled Ti6Al4V powders
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Comparative analysis of the hot-isostatic-pressing densification behavior of atomized and milled Ti6Al4V powders

机译:雾化和研磨Ti6Al4V粉末热等静压致密化行为的比较分析

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A numerical model is established based on the plasticity theory and a thermomechanical coupled finite element method (FEM) to simulate the hot isostatic pressing (HIP) process of atomized and milled Ti6Al4V powders and is then experimentally verified. Key material parameters related to the simulation are obtained by experimental and calculation methods. The HIP densification mechanism for two types of Ti6Al4V powders are clarified through the analysis of the powder flow and relative density distribution of compacts using the proposed model. The results indicate that the densification trends of the two powders are not much different under the same working conditions and that milled powder with a higher energy is more conducive to densification and can better overcome the “corner effect” compared to atomized powder. The equiaxed microstructure of the milled powder sintered body contributes to increasing its strength, whereas the lamellar microstructure of the atomized powder sintered body contributes to increasing its plasticity.
机译:基于塑性理论和热机械耦合有限元方法(FEM)建立了数值模型,以模拟雾化和研磨的Ti6Al4V粉末的热等静压(臀部)过程,然后进行实验验证。通过实验和计算方法获得与模拟相关的关键材料参数。通过使用所提出的模型分析粉末流量和紧凑型的相对密度分布,阐明了两种类型Ti6Al4V粉末的髋孔致密化机制。结果表明,在相同的工作条件下,两种粉末的致密化趋势在相同的工作条件下没有太大差异,具有较高能量的碾磨粉末更有利于致密化,并且可以更好地克服与雾化粉末相比的“角效应”。碾磨粉末烧结体的等轴微观结构有助于提高其强度,而雾化粉末烧结体的层状微观结构有助于提高其可塑性。

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