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Metallurgical investigations of laser remelted additively manufactured AlSi10Mg parts

机译:激光重熔增材制造的AlSi10Mg零件的冶金研究

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摘要

Selective laser melting is gaining importance to manufacture reliable and highly complex parts. However, the surfaces of the selective laser melted parts exhibit for many applications an insufficient high roughness, thus require subsequent post processing steps. A relatively new way to reduce the surface roughness is the laser polishing technique. In the present paper, additively manufactured AlSi10Mg samples were polished with different laser intensities and laser modes. The investigations contain the potential of roughness reduction and enhancement of the surface appearances, which can be achieved by laser polishing of the as-built surfaces. An initial arithmetic mean roughness of 8.43 mu m was remarkably reduced up to 98 %. The compositions of the polished surfaces were detected and the surface appearances were examined. Reasons and mechanisms were explained and depicted for the occurred shade formations on the polished surfaces. High laser intensity led to segregation of silicon and magnesium on the surface. A higher laser intensity enabled an increased melt depth within the conture layer of the selective laser melting structure. Through increasing melt depth, a porosity of max. 1.7 % was detected in the remolten area. Hardness investigations of the initial and laser remolten cross section revealed no significant reduction in hardness.
机译:选择性激光熔化对于制造可靠且高度复杂的零件越来越重要。然而,对于许多应用而言,选择性激光熔化部件的表面表现出不足的高粗糙度,因此需要随后的后处理步骤。减少表面粗糙度的一种相对新的方法是激光抛光技术。在本文中,用不同的激光强度和激光模式对增材制造的AlSi10Mg样品进行了抛光。研究包含降低粗糙度和增强表面外观的潜力,这可以通过对已加工表面进行激光抛光来实现。最初的算术平均粗糙度为8.43微米,明显降低了98%。检测抛光表面的组成并检查表面外观。解释和描绘了在抛光表面上形成阴影的原因和机理。高激光强度导致表面上的硅和镁偏析。较高的激光强度使选择性激光熔化结构的对流层内的熔化深度增加。通过增加熔体深度,最大孔隙率为在重熔区域检测到1.7%。初始和激光重熔横截面的硬度研究表明,硬度没有明显降低。

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