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Quantification and characterisation of porosity in selectively laser melted Al–Si10–Mg using x-ray computed tomography

机译:使用X射线计算机体层摄影术对选择性激光熔融Al–Si10–Mg中的孔隙度进行定量和表征

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摘要

We used X-ray computed tomography (CT), microscopy and hardness measurements to study Al–Si10–Mg produced by selective laser melting (SLM). Specimens were subject to a series of heat treatments including annealing and precipitation hardening. The specimen interiors were imaged with X-ray CT, allowing the non-destructive quantification and characterisation of pores, including their spatial distribution. The specimens had porosities less than 0.1%, but included some pores with effective cross-sectional diameters up to 260 μm. The largest pores were highly anisotropic, being flat and lying in the plane normal to the build direction. Annealing cycles caused significant coarsening of the microstructure and a reduction of the hardness from (114 ± 3) HV, in the as-built state, to (45 ± 1) HV, while precipitation hardening increased this to a final hardness of (59 ± 1) HV. The pore size and shape distributions were unaffected by the heat treatments. We demonstrate the applicability of CT measurements and quantitative defect analysis for the purposes of SLM process monitoring and refinement.
机译:我们使用X射线计算机断层扫描(CT),显微镜和硬度测量来研究选择性激光熔化(SLM)产生的Al–Si10–Mg。标本经过一系列热处理,包括退火和沉淀硬化。样品内部通过X射线CT成像,可以对孔进行无损定量和表征,包括孔的空间分布。样品的孔隙率小于0.1%,但包括一些有效横截面直径最大为260μm的孔。最大的孔是高度各向异性的,是扁平的并且位于垂直于构造方向的平面上。退火循环导致显微组织明显变粗,硬度从刚形成时的(114±3)HV降低到(45±1)HV,而沉淀硬化将其最终硬度提高为(59± 1)高压孔径和形状分布不受热处理的影响。我们证明了CT测量和定量缺陷分析对于SLM过程监控和改进的适用性。

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