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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >On the role of laser in situ re-melting into pore elimination of Ti-6Al-4V components fabricated by selective laser melting
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On the role of laser in situ re-melting into pore elimination of Ti-6Al-4V components fabricated by selective laser melting

机译:基于选择性激光熔化制造的Ti-6Al-4V部件孔隙消除的作用

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摘要

Laser re-melting is a potential technique performed during the selective laser melting (SLM) process to improve the quality of Ti-6Al-4V alloy, especially the density. In this study, a transient mesoscale model with a packed powder-bed is proposed by a simulation to reveal the pore elimination mechanism during the laser re-melting process intuitively. The effect of the laser re-melting on the temperature distribution, molten pool dynamics and resultant surface morphology is investigated. The results show that the re-melting scanning speed played an essential role in controlling the elimination effect on pores. A higher re-melting scanning speed does not eliminate most of the pores due to the limited energy input. In contrast, a lower re-melting scanning speed introduces new types of pores caused by the unstable molten pool. At an appropriate re-melting scanning speed, most of the pores are eliminated attributing to the sufficient spreading of the molten material due to the drag force of melt flow and the escape of the entrapped gas driven by thermocapillary force. The density and surface quality are determined experimentally. The relative density after laser re-melting at a scanning speed of 300 mm/s is improved 99.2% and the surface roughness reduced to Ra 1.9 mm. The simulation results can serve to provide guidance for parameter optimization and improve the density in high effectiveness and efficiency finally. (C) 2020 Published by Elsevier B.V.
机译:激光重熔是选择性激光熔制Ti-6Al-4V合金的一种潜在技术,可以提高合金的质量,尤其是密度。在本研究中,通过模拟提出了一个填充粉末床的瞬态中尺度模型,以直观地揭示激光重熔过程中的孔隙消除机制。研究了激光重熔对温度分布、熔池动力学及产物表面形貌的影响。结果表明,重熔扫描速度对控制气孔的消除效果起着至关重要的作用。由于能量输入有限,较高的重熔扫描速度并不能消除大部分气孔。相比之下,较低的重熔扫描速度会引入由不稳定熔池引起的新型气孔。在适当的重熔扫描速度下,由于熔体流动的阻力和热毛细力驱动的截留气体逸出,熔融材料充分扩散,大部分气孔被消除。通过实验测定了密度和表面质量。以300mm/s的扫描速度进行激光重熔后,相对密度提高了99.2%,表面粗糙度降低到Ra 1.9mm。仿真结果可以为参数优化提供指导,最终高效地提高密度。(C) 2020年爱思唯尔公司出版。

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