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Selective laser melting Al-3.4Mg-0.5Mn-0.8Sc-0.4Zr alloys: From melting pool to the microstructure and mechanical properties

机译:选择性激光熔融Al-3.4mg-0.5Mn-0.8SC-0.4ZR合金:从熔融库到微观结构和机械性能

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摘要

The addition of Sc and Zr into an Al-Mg-Mn alloy produced by selective laser melting exhibited exceptional properties. Multiple factors eventually lead to the improvement of properties, such as densification behaviors, grain characteristics, texture and the precipitated phases. We firstly investigate evolution of the melt pool characteristics which are varied under different processing parameters and lead to different solidified micro-structures, densification behaviors and corresponding mechanical properties. Meanwhile, the characteristics of melt pool can be predicted through the normalized enthalpy of input energy, which presents more credible relationship with the melt pool dimensions. To this end, the relative density is up to 99.88% when the volume energy density and normalized enthalpy are combined used. Recrystallisation inhabitations induced by the added Sc and Zr is supposed after comparing the grain sizes under different conditions. Regrettably, the relationship between melt pool characteristics and the equiaxed/columnar ratio can not be described accurately, which due to the pseudo-equiaxed regions in XZ/YZ sections through regulating the melt track orientations via 67° scanning rotation. There are dispersed Al_6Mn and Al_3(Sc, Zr) particles exist in as-fabricated samples result in better mechanical properties and the subsequent aging treatment can further improve the comprehensive mechanical properties. Finally, the ultimate tensile strength and ductility is separately about 494.32 ± 4.16 MPa and 15 ± 1.27% after aging for 4 h at 325 °C. In contrast, the processing parameters have little impact on mechanical properties, especially for the yield strength, mainly owing to the homologous precipitate phase and grain sizes when the relative density is similar. The connection involving the whole periods from solidification to the final mechanical properties is discussed that may offer feasible ideas for alloy design and corresponding parameter optimization.
机译:通过选择性激光熔化将SC和Zr添加到通过选择性激光熔化产生的Al-Mg-Mn合金表现出卓越的性质。多种因素最终导致性质的改善,例如致密化行为,晶粒特征,质地和沉淀的阶段。我们首先研究了在不同加工参数下变化的熔池特性的演变,并导致不同的固化微结构,致密化行为和相应的机械性能。同时,可以通过输入能量的归一化焓来预测熔池的特性,这呈现与熔融池尺寸更可靠的关系。为此,当使用体积能密度和标准化焓,相对密度高达99.88%。在比较不同条件下的晶粒尺寸之前,所添加的SC和Zr诱导的重结晶居民应该是假设的。令人遗憾的是,熔池特性与等式/柱状比之间的关系无法准确描述,这是由于XZ / YZ部分中的伪等式区域通过通过67°扫描旋转来调节熔体轨道方向。存在分散的Al_6Mn和Al_3(Sc,Zr)颗粒在以制造的样品中存在,结果更好的机械性能,随后的老化处理可以进一步提高综合机械性能。最后,在325℃下老化4小时后,最终拉伸强度和延展性分别为494.32±4.16MPa和15±1.27%。相反,加工参数对机械性能影响几乎没有影响,特别是对于屈服强度,主要是由于当相对密度相似时的同源沉淀相和晶粒尺寸。讨论了涉及全周期凝固到最终机械性能的连接,这可能为合金设计和相应的参数优化提供可行的思路。

著录项

  • 来源
    《Materials Science and Engineering》 |2021年第21期|141889.1-141889.10|共10页
  • 作者单位

    National Key Laboratory for Precision Hot Processing of Metals School of Materials Science & Engineering Harbin Institute of Technology Harbin 150001 China HIT-Chungu Joint Research Center for Additive Manufacturing Materials Anhui Chungu 3D Printing Institute of Intelligent Equipment and Industrial Technology Wuhu Anhui 241200 China;

    National Key Laboratory for Precision Hot Processing of Metals School of Materials Science & Engineering Harbin Institute of Technology Harbin 150001 China HIT-Chungu Joint Research Center for Additive Manufacturing Materials Anhui Chungu 3D Printing Institute of Intelligent Equipment and Industrial Technology Wuhu Anhui 241200 China;

    National Key Laboratory for Precision Hot Processing of Metals School of Materials Science & Engineering Harbin Institute of Technology Harbin 150001 China;

    HIT-Chungu Joint Research Center for Additive Manufacturing Materials Anhui Chungu 3D Printing Institute of Intelligent Equipment and Industrial Technology Wuhu Anhui 241200 China;

    National Key Laboratory for Precision Hot Processing of Metals School of Materials Science & Engineering Harbin Institute of Technology Harbin 150001 China;

    National Key Laboratory for Precision Hot Processing of Metals School of Materials Science & Engineering Harbin Institute of Technology Harbin 150001 China HIT-Chungu Joint Research Center for Additive Manufacturing Materials Anhui Chungu 3D Printing Institute of Intelligent Equipment and Industrial Technology Wuhu Anhui 241200 China;

    National Key Laboratory for Precision Hot Processing of Metals School of Materials Science & Engineering Harbin Institute of Technology Harbin 150001 China HIT-Chungu Joint Research Center for Additive Manufacturing Materials Anhui Chungu 3D Printing Institute of Intelligent Equipment and Industrial Technology Wuhu Anhui 241200 China;

    National Key Laboratory for Precision Hot Processing of Metals School of Materials Science & Engineering Harbin Institute of Technology Harbin 150001 China HIT-Chungu Joint Research Center for Additive Manufacturing Materials Anhui Chungu 3D Printing Institute of Intelligent Equipment and Industrial Technology Wuhu Anhui 241200 China;

    National Key Laboratory for Precision Hot Processing of Metals School of Materials Science & Engineering Harbin Institute of Technology Harbin 150001 China HIT-Chungu Joint Research Center for Additive Manufacturing Materials Anhui Chungu 3D Printing Institute of Intelligent Equipment and Industrial Technology Wuhu Anhui 241200 China;

    National Key Laboratory for Precision Hot Processing of Metals School of Materials Science & Engineering Harbin Institute of Technology Harbin 150001 China HIT-Chungu Joint Research Center for Additive Manufacturing Materials Anhui Chungu 3D Printing Institute of Intelligent Equipment and Industrial Technology Wuhu Anhui 241200 China;

    National Key Laboratory for Precision Hot Processing of Metals School of Materials Science & Engineering Harbin Institute of Technology Harbin 150001 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Selective laser melting; Al-alloy; Melt pool; Parameter optimized; Scandium;

    机译:选择性激光熔化;铝合金;熔池;参数优化;钪;

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