研究论文

选区激光熔化高强韧铝合金的异质结构调控及力学性能

  • 林研 ,
  • 司丞 ,
  • 徐京豫 ,
  • 刘泽 ,
  • 张诚 ,
  • 柳林
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  • 1.华中科技大学 材料科学与工程学院 材料成型与模具技术国家重点实验室 武汉 430074
    2.武汉大学 土木建筑工程学院 工程力学系 武汉 430072
林 研,男,1990年生,博士

收稿日期: 2022-06-23

  修回日期: 2022-07-29

  网络出版日期: 2022-09-02

基金资助

国家自然科学基金项目(52061160483);国家自然科学基金项目(92166130);国家自然科学基金项目(52001075);中国博士后科学基金项目(2021M701290)

Heterogeneous Structure and Mechanical Properties of Strong and Tough Al Alloys Prepared by Selective Laser Melting

  • Yan LIN ,
  • Cheng SI ,
  • Jingyu XU ,
  • Ze LIU ,
  • Cheng ZHANG ,
  • Lin LIU
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  • 1.State Key Lab for Materials Processing and Die & Mold Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, China
    2.Department of Engineering Mechanics, School of Civil Engineering, Wuhan University, Wuhan 430072, China
ZHANG Cheng, associate professor, Tel: (027)87558200, E-mail: czhang@hust.edu.cn

Received date: 2022-06-23

  Revised date: 2022-07-29

  Online published: 2022-09-02

Supported by

National Natural Science Foundation of China(52061160483);National Natural Science Foundation of China(92166130);National Natural Science Foundation of China(52001075);China Postdoctoral Science Foundation(2021M701290)

摘要

同时采用共晶成分设计和晶粒细化的策略,通过异质结构调控提升SLM成形的Al-Fe系列合金的强韧性。结果表明,SLM成形AlFe5合金呈现柱状粗晶和等轴细晶并存的组织结构,其中细晶的体积分数较低,整体显微结构未表现出明显的非均匀性;随着Zr元素的添加,SLM成形AlFe5Zr1合金中细晶体积分数增加,呈现粗、细晶交替分布的非均匀异质结构。同时,SLM成形AlFe5和AlFe5Zr1合金在纳米尺度均呈现胞状结构特征。这种纳米级胞状结构、过饱和Fe元素及高位错密度主导的强化机制使得SLM成形Al-Fe-Zr系列合金的屈服强度达400 MPa,且异质结构可进一步提升AlFe5Zr1合金的应变强化能力,使其抗拉强度达450 MPa。原位断裂韧性测试结果表明,异质结构可促使裂纹在扩展过程中发生偏折和尖端钝化,从而增加裂纹扩展阻力,使AlFe5Zr1合金具有优异的断裂韧性。

本文引用格式

林研 , 司丞 , 徐京豫 , 刘泽 , 张诚 , 柳林 . 选区激光熔化高强韧铝合金的异质结构调控及力学性能[J]. 金属学报, 2022 , 58(11) : 1509 -1518 . DOI: 10.11900/0412.1961.2022.00314

Abstract

Aluminum alloys have been widely used in fields such as automotive and aerospace industries, owing to their excellent mechanical properties, lightweight, and low recycling costs. However, aluminum alloys processed by selective laser melting (SLM) typically suffer from insufficient strength and fracture toughness. To tackle this issue, a new strategy that integrates eutectic composition design and grain refinement has been adopted to create a heterogeneous structure that can improve strength and toughness of SLMed Al-Fe-Zr alloys. The SLMed AlFe5 alloy consists of high-volume-fraction of coarse and columnar grains and low-volume-fraction of fine grains, and no obvious heterogeneity is visible across the microstructure length scale. With the addition of Zr, the volume fraction of fine grains significantly increases, leading to the heterogeneous distribution of coarse and fine grains in the SLMed AlFe5Zr1 alloy. Meanwhile, both AlFe5 and AlFe5Zr1 alloys show a nanoscale cellular structure. This type of a nanosized cellular structure, together with supersaturated Fe and high-density dislocations, contributes to a high yield strength of 400 MPa for the SLMed AlFeZr alloys. The heterogeneous structure can further improve the strain strengthening capability, enabling a tensile strength as high as 450 MPa for the AlFe5Zr1 alloy. Furthermore, the heterogeneous structure promotes crack deflection and crack tip blunting, which can effectively increase crack growth resistance and impart superior fracture toughness to the AlFe5Zr1 alloy.

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