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Tailoring the thermal conductivity of the powder bed in Electron Beam Melting (EBM) Additive Manufacturing

机译:调整电子束熔化(EBM)增材制造中粉末床的导热率

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摘要

Metallic powder bed additive manufacturing is capable of producing complex, functional parts by repeatedly depositing thin layers of powder particles atop of each other whilst selectively melting the corresponding part cross-section into each layer. A weakness with this approach arises when melting overhanging features, which have no prior melted material directly beneath them. This is due to the lower thermal conductivity of the powder relative to solid material, which as a result leads to an accumulation of heat and thus distortion. The Electron Beam Melting (EBM) process alleviates this to some extent as the powder must first be sintered (by the beam itself) before it is melted, which results in the added benefit of increasing the thermal conductivity. This study thus sought to investigate to what extent the thermal conductivity of local regions in a titanium Ti-6Al-4V powder bed could be varied by imparting more energy from the beam. Thermal diffusivity and density measurements were taken of the resulting sintered samples, which ranged from being loosely to very well consolidated. It was found that the calculated thermal conductivity at two temperatures, 40 and 730 °C, was more than doubled over the range of input energies explored.
机译:金属粉末床添加剂制造能够通过在彼此顶部反复沉积粉末颗粒薄层,同时将相应的零件横截面选择性地熔化到每一层中来生产复杂的功能零件。当熔化悬垂特征时,这种方法会出现一个缺点,这些悬垂特征没有直接熔化的材料直接位于其下方。这是由于粉末相对于固体材料的较低的热导率,其结果是导致热量积聚并因此变形。电子束熔化(EBM)工艺在某种程度上缓解了这种情况,因为粉末在熔化之前必须先进行烧结(通过射束本身),这带来了增加导热性的额外好处。因此,本研究试图研究通过向光束施加更多能量而在多大程度上改变钛Ti-6Al-4V粉末床局部区域的热导率。对所得的烧结样品进行了热扩散率和密度测量,测量范围从松散到非常牢固。结果发现,在探索的输入能量范围内,在40和730°C的两个温度下计算出的热导率增加了一倍以上。

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