Self-heating behavior during cyclic loadings of 316L stainless steel specimens manufactured or repaired by Directed Energy Deposition

被引:34
作者
Balit, Yanis [1 ]
Joly, Louis-Romain [2 ]
Szmytka, Fabien [3 ]
Durbecq, Sylvain [1 ]
Charkaluk, Eric [1 ]
Constantinescu, Andrei [1 ]
机构
[1] Ecole Polytech, Inst Polytech Paris, CRNS, Lab Mecan Solides, F-91128 Palaiseau, France
[2] Direct Innovat & Rech SNCF, 1 Ave Francois Mitterand, F-93210 St Denis, France
[3] Inst Polytech Paris, ENSTA Paris, Inst Mech Sci & Ind Applicat, CEA,EDF,CNRS, 828 Blvd Marechaux, F-91762 Palaiseau, France
来源
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING | 2020年 / 786卷
关键词
Directed energy deposition; Fatigue; Microstructure; Repair; Self-heating; MECHANICAL-PROPERTIES; FATIGUE PROPERTIES; PROCESSING PARAMETERS; METALLIC COMPONENTS; LASER; MICROSTRUCTURE; ALLOY; PARTS; DEFORMATION; EVOLUTION;
D O I
10.1016/j.msea.2020.139476
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The purpose of this article is to assess a self-heating testing method for the characterization of fatigue properties of single-track thickness additively manufactured specimens. It also evaluates the impact of the microstructure orientation with respect to the loading direction on the dissipative behavior and the initiation of microcracks. The 316L stainless steel specimens under scrutiny were manufactured by Directed Energy Deposition in two configurations: (i) fully printed specimens (2 orientations) and (ii) repaired specimens. The paper first presents a morphologic and crystallographic texture analysis and second, a series of self-heating tests under cyclic loading. The microstructural analysis revealed elongated grains with their sizes, shapes and preferred orientations controlled by process parameters. The self-heating measurements under cyclic tensile loading proved that the dissipation estimation through infrared measurements can be performed on small scale, thin specimens. The self-heating curves could successfully be represented by the Munier model. Moreover, several links between the printing parameters and self-heating results could be established. For example, a smaller vertical increment between successively deposited layers leads to higher mean endurance limits in all configurations. Repaired specimens had a lower mean endurance limit when compared with fully printed or conventionally manufactured substrate specimens. Finally, anisotropy was highlighted during these cyclic tests: specimens loaded orthogonally to the printing direction (PD) showed higher fatigue limits when compared with the ones tested along the PD. Additionally, post-mortem observations revealed characteristic microcracking patterns initiated during the self-heating experiments. Loading along the printing direction induced a classical dominating crack, whereas orthogonal loading generated a network of microcracks along the printing direction. This suggests that the damage, such as void opening, where concentrated at the interlayers. Additionally these damage patterns can be correlated with patterns of plasticity at the grains scale observed in a previous study.
引用
收藏
页数:14
相关论文
共 50 条
  • [21] Influence of Heat Treatment on Stainless Steel 316L Alloy Manufactured by Hybrid Additive Manufacturing Using Powder Bed Fusion and Directed Energy Deposition
    Kumaran, M.
    Senthilkumar, V
    METALS AND MATERIALS INTERNATIONAL, 2023, 29 (02) : 467 - 484
  • [22] Investigation of hybrid manufacturing of stainless steel 316L components using direct energy deposition
    Tapoglou, Nikolaos
    Clulow, Joseph
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART B-JOURNAL OF ENGINEERING MANUFACTURE, 2021, 235 (10) : 1633 - 1643
  • [23] Microstructure, mechanical properties and machinability of 316L stainless steel fabricated by direct energy deposition
    Ding, Hongjian
    Zou, Bin
    Wang, Xinfeng
    Liu, Jikai
    Li, Lei
    INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2023, 243
  • [24] On the fatigue crack growth behavior in 316L stainless steel manufactured by selective laser melting
    Riemer, A.
    Leuders, S.
    Thoene, M.
    Richard, H. A.
    Troester, T.
    Niendorf, T.
    ENGINEERING FRACTURE MECHANICS, 2014, 120 : 15 - 25
  • [25] Influence of heat treatment on stainless steel 316L alloy fabricated using directed energy deposition
    Kumaran, M.
    Sathies, T.
    Balaji, N. S.
    Bharathiraja, G.
    Mohan, S.
    Senthilkumar, V
    MATERIALS TODAY-PROCEEDINGS, 2022, 62 : 5307 - 5310
  • [26] Influence of native oxide film on corrosion behavior of additively manufactured stainless steel 316L
    Choundraj, Jahnavi Desai
    Kelly, Robert G.
    Monikandan, Rebhadevi
    Singh, Preet M.
    Kacher, Josh
    CORROSION SCIENCE, 2023, 217
  • [27] Fatigue Strength Improvement of Laser-Directed Energy Deposition 316L Stainless Steel with In Situ Ultrasonic Rolling by Preliminary Investigation
    Liu, Guan
    Su, Yigui
    Pi, Xuyu
    Liu, Defu
    Lin, Yongcheng
    MATERIALS, 2024, 17 (15)
  • [28] Effect of build height on the properties of large format stainless steel 316L fabricated via directed energy deposition
    Feenstra, D. R.
    Cruz, V.
    Gao, X.
    Molotnikov, A.
    Birbilis, N.
    ADDITIVE MANUFACTURING, 2020, 34
  • [29] A novel strategy to fabricate thin 316L stainless steel rods by continuous directed energy deposition in Z direction
    Weng, Fei
    Gao, Shiming
    Jiang, Jingchao
    Wang, JianJian
    Guo, Ping
    ADDITIVE MANUFACTURING, 2019, 27 (474-481) : 474 - 481
  • [30] Deformation and Fracture Behavior of Additively Manufactured 316L Stainless Steel
    Byun, Thak Sang
    Gussev, Maxim N.
    Lach, Timothy G.
    JOM, 2024, 76 (01) : 362 - 378