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Exploiting Process-Related Advantages of Selective Laser Melting for the Production of High-Manganese Steel

机译:在高锰钢生产中利用选择性激光熔化的工艺相关优势

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摘要

Metal additive manufacturing has strongly gained scientific and industrial importance during the last decades due to the geometrical flexibility and increased reliability of parts, as well as reduced equipment costs. Within the field of metal additive manufacturing methods, selective laser melting (SLM) is an eligible technique for the production of fully dense bulk material with complex geometry. In the current study, we addressed the application of SLM for processing a high-manganese TRansformation-/TWinning-Induced Plasticity (TRIP/TWIP) steel. The solidification behavior was analyzed by careful characterization of the as-built microstructure and element distribution using optical and scanning electron microscopy (SEM). In addition, the deformation behavior was studied using uniaxial tensile testing and SEM. Comparison with conventionally produced TRIP/TWIP steel revealed that elemental segregation, which is normally very pronounced in high-manganese steels and requires energy-intensive post processing, is reduced due to the high cooling rates during SLM. Also, the very fast cooling promoted ε- and α’-martensite formation prior to deformation. The superior strength and pronounced anisotropy of the SLM-produced material was correlated with the microstructure based on the process-specific characteristics.
机译:在过去的几十年中,由于几何形状的灵活性和零件可靠性的提高以及设备成本的降低,金属增材制造在科学和工业领域已获得了重要的地位。在金属增材制造方法领域,选择性激光熔化(SLM)是生产具有复杂几何形状的全密度散装材料的合格技术。在当前的研究中,我们解决了SLM在加工高锰相变/孪晶诱导可塑性(TRIP / TWIP)钢中的应用。使用光学和扫描电子显微镜(SEM)通过仔细表征已建成的微结构和元素分布来分析固化行为。另外,使用单轴拉伸试验和SEM研究了变形行为。与传统生产的TRIP / TWIP钢的比较表明,由于SLM期间的高冷却速度,元素偏析(通常在高锰钢中非常明显并且需要高能耗的后处理)得以减少。同样,非常快的冷却促进了变形前ε和α'马氏体的形成。 SLM生产的材料的优异强度和明显的各向异性与基于过程特定特性的微观结构相关。

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