Unveiling the cellular microstructure-property relations in martensitic stainless steel via laser powder bed fusion

被引:1
|
作者
Wu, Lingzhi [1 ]
Zhang, Cong [1 ]
Khan, Dil Faraz [2 ]
Zhang, Ruijie [1 ,4 ]
Wang, Yongwei [1 ]
Jiang, Xue [1 ,3 ,4 ]
Yin, Haiqing [1 ,3 ,4 ]
Qu, Xuanhui [1 ,3 ,4 ,5 ]
Liu, Geng [6 ]
Su, Jie [6 ]
机构
[1] Univ Sci & Technol Beijing, Collaborat Innovat Ctr Steel Technol, Beijing 100083, Peoples R China
[2] Univ Sci & Technol Bannu, Dept Phys, Bannu 28100, Pakistan
[3] Univ Sci & Technol Beijing, Beijing Adv Innovat Ctr Mat Genome Engn, Beijing 100083, Peoples R China
[4] Univ Sci & Technol Beijing, Beijing Key Lab Mat Genome Engn, Beijing 100083, Peoples R China
[5] Univ Sci & Technol Beijing, Inst Adv Mat & Technol, Beijing 100083, Peoples R China
[6] Cent Iron & Steel Res Inst, Inst Special Steel Res, Beijing 100081, Peoples R China
基金
中国国家自然科学基金;
关键词
laser powder bed fusion; martensitic stainless steel; cellular microstructure; mechanical properties; strengthening mechanism; MECHANICAL-PROPERTIES; STRENGTHENING BEHAVIOR; PROCESS PARAMETERS; ENERGY DENSITY; SCANNING SPEED; HEAT-TREATMENT; MELTING SLM; EVOLUTION; DUCTILITY; HARDNESS;
D O I
10.1007/s12613-024-2947-z
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Laser powder bed fusion (LPBF) is a widely recognized additive manufacturing technology that can fabricate complex components rapidly through layer-by-layer formation. However, there is a paucity of research on the effect of laser scanning speed on the cellular microstructure and mechanical properties of martensitic stainless steel. This study systematically investigated the influence of laser scanning speed on the cellular microstructure and mechanical properties of a developed Fe11Cr8Ni5Co3Mo martensitic stainless steel produced by LPBF. The results show that increasing the laser scanning speed from 400 to 1000 mm/s does not lead to a noticeable change in the phase fraction, but it reduces the average size of the cellular microstructure from 0.60 to 0.35 mu m. The scanning speeds of 400 and 1000 mm/s both had adverse effects on performances of sample, resulting in inadequate fusion and keyhole defects respectively. The optimal scanning speed for fabricating samples was determined to be 800 mm/s, which obtained the highest room temperature tensile strength and elongation, with the ultimate tensile strength measured at (1088.3 +/- 2.0) MPa and the elongation of (16.76 +/- 0.10)%. Furthermore, the mechanism of the evolution of surface morphology, defects, and energy input were clarified, and the relationship between cellular microstructure size and mechanical properties was also established.
引用
收藏
页码:2476 / 2487
页数:12
相关论文
共 50 条
  • [41] Microstructure simulation and experimental evaluation of the anisotropy of 316 L stainless steel manufactured by laser powder bed fusion
    Omar Barrionuevo, German
    Andres Ramos-Grez, Jorge
    Walczak, Magdalena
    Sanchez-Sanchez, Xavier
    Guerra, Carolina
    Debut, Alexis
    Haro, Edison
    RAPID PROTOTYPING JOURNAL, 2023, 29 (03) : 425 - 436
  • [42] On the effect of rapid annealing on the microstructure and mechanical behavior of additively manufactured stainless steel by Laser Powder Bed Fusion
    Jandaghi, Mohammad Reza
    Saboori, Abdollah
    Iuliano, Luca
    Pavese, Matteo
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2021, 828
  • [43] Process Optimization and Microstructure Analysis to Understand Laser Powder Bed Fusion of 316L Stainless Steel
    Vallejo, Nathalia Diaz
    Lucas, Cameron
    Ayers, Nicolas
    Graydon, Kevin
    Hyer, Holden
    Sohn, Yongho
    METALS, 2021, 11 (05)
  • [44] Microstructure-property gradients in Ni-based superalloy (Inconel 738) additively manufactured via electron beam powder bed fusion
    Lim, Bryan
    Chen, Hansheng
    Chen, Zibin
    Haghdadi, Nima
    Liao, Xiaozhou
    Primig, Sophie
    Babu, Sudarsanam Suresh
    Breen, Andrew J.
    Ringer, Simon P.
    ADDITIVE MANUFACTURING, 2021, 46
  • [45] Microstructure, corrosion behavior, and fatigue resistance of laser powder bed fusion-produced precipitation-hardening martensitic M789 stainless steel
    Laliberte-Riverin, Simon
    Yassine, Sarah R.
    Mena-Morcillo, Emmanuel
    Sanni, Kashim
    Cova, Matteo
    Hassanipour, Meysam
    Provencher, Paul R.
    Mauzeroll, Janine
    Brochu, Myriam
    SURFACES AND INTERFACES, 2024, 45
  • [46] Microstructure-property relations of a steel powder metal under varying temperatures, strain rates, and stress states
    Allison, P. G.
    Horstemeyer, M. F.
    Hammi, Y.
    Brown, H. R.
    Tucker, M. T.
    Hwang, Y. -K.
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2011, 529 : 335 - 344
  • [47] Nickel-Free Austenitic Stainless Steel Manufactured by Laser Powder-Bed Fusion from Martensitic Powder Mixed with Interstitial Compounds
    Somers, Marcel A.J.
    König, Christina
    Valente, Emilie H.
    Nadimpalli, Venkata K.
    Tokman, Yasmine Gigi
    Christiansen, Thomas L.
    HTM - Journal of Heat Treatment and Materials, 2024, 79 (06): : 269 - 287
  • [48] How Austenitic Is a Martensitic Steel Produced by Laser Powder Bed Fusion? A Cautionary Tale
    Zhang, Fan
    Stoudt, Mark R.
    Hammadi, Souzan
    Campbell, Carelyn E.
    Lass, Eric A.
    Williams, Maureen E.
    METALS, 2021, 11 (12)
  • [49] Effect of laser polishing on the microstructure and mechanical properties of stainless steel 316L fabricated by laser powder bed fusion
    Chen, Lan
    Richter, Brodan
    Zhang, Xinzhou
    Bertsch, Kaila B.
    Thoma, Dan J.
    Pfefferkorn, Frank E.
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2021, 802
  • [50] Effect of laser polishing on the microstructure and mechanical properties of stainless steel 316L fabricated by laser powder bed fusion
    Chen, Lan
    Richter, Brodan
    Zhang, Xinzhou
    Bertsch, Kaila B.
    Thoma, Dan J.
    Pfefferkorn, Frank E.
    Materials Science and Engineering: A, 2021, 802