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Mechanical properties of Invar 36 alloy additively manufactured by selective laser melting

机译:通过选择性激光熔融法增材制造的Invar 36合金的机械性能

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摘要

Invar 36 alloy is widely used in aerospace engineering, owing to its extremely low coefficient of thermal expansion. This work aims to explore the underlying influence of process parameters on the microstructures and mechanical properties of Invar 36 additively manufactured by selective laser melting (SLM) with island scanning strategy. A full factorial design for a wide range of SLM process parameter sequence was established. Density and the mechanical properties including hardness, tensile strength as well as microstructures, fractography were characterized. The results confirm that the increment of exposure time and the reduction of point distance remarkably induce stable melting and achieve superior density and hardness. The laser energy density shows a pronounced effect on the microstructures, as extremely low laser energy density induces considerable lack-of fusion pores, unmelted powder particles and blurry boundaries of islands. While, very high laser energy density induces a few keyhole pores, and makes the laser scanning tracks and island boundaries transfer to be irregular. The optimal laser energy density is recommended to be 99.2 J/mm3, and the as-fabricated Invar 36 shows the relative density of 99.5%, Vickers hardness of 1.8 GPa and ultimate tensile strength of 480 MPa those are very comparable to conventionally fabricated one. The testing temperatures of 200 ℃ and 600 ℃ induce the coarsening of y phase, and result in a significant degeneration of tensile properties. The correlations between the SLM process and mechanical properties provide experimental basis of the additive manufacturing Invar 36 alloy.
机译:因瓦合金36因其极低的热膨胀系数而广泛用于航空航天工程。这项工作旨在探讨工艺参数对采用岛扫描策略通过选择性激光熔融(SLM)增材制造的Invar 36的微观结构和力学性能的潜在影响。建立了适用于广泛SLM工艺参数序列的全因子设计。表征了密度和机械性能,包括硬度,抗张强度以及微观结构,断裂形貌。结果证实,曝光时间的增加和点距的减小显着诱导了稳定的熔融并实现了优异的密度和硬度。激光能量密度对微结构表现出显着影响,因为极低的激光能量密度会导致熔合孔,未熔粉末颗粒和岛边界模糊的严重缺乏。同时,非常高的激光能量密度会引起一些小孔,并使激光扫描轨迹和岛边界转移变得不规则。推荐的最佳激光能量密度为99.2 J / mm3,制成的殷钢36的相对密度为99.5%,维氏硬度为1.8 GPa,极限抗拉强度为480 MPa,与常规制造的非常相似。在200℃和600℃的测试温度下会引起y相的粗大化,并导致拉伸性能明显下降。 SLM工艺与机械性能之间的相关性为增材制造Invar 36合金提供了实验基础。

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