Experimental Studies on Laser Additive Manufacturing of Inconel-625 Structures Using Powder Bed Fusion at 100 µm Layer Thickness

被引:0
|
作者
S. K. Nayak
S. K. Mishra
A. N. Jinoop
C. P. Paul
K. S. Bindra
机构
[1] Homi Bhabha National Institute,Laser Technology Division
[2] Raja Ramanna Centre for Advanced Technology,undefined
关键词
additive manufacturing; Inconel-625; laser powder bed fusion; layer thickness; microscopy; parametric investigation; superalloys;
D O I
暂无
中图分类号
学科分类号
摘要
This paper reports process development and material characterization studies of Inconel-625 (IN625) using laser powder bed fusion (LPBF)-based additive manufacturing at higher layer thickness (100 µm). Conventionally, layer thickness up to 50 µm is used in LPBF due to process instability issues at higher layer thickness. However, successful development of LPBF with higher layer thickness will yield higher build rate. Therefore, systematic parametric investigations are carried out by varying laser power (P), scan speed (v) and hatch spacing (h) from 150 to 450 W, 0.02 to 0.08 m/s and 0.150 to 0.350 mm, respectively, with 100 µm layer thickness. The obtained results are compiled as a function of combined parameter—laser energy density (LED). Samples with relative area density > 99% are achieved for LED of 150, 240 and 360 J/mm3. Geometrical studies show that the deviation from nominal length and range of height of the sample decreases and increases with an increase in LED, respectively. X-ray diffraction shows the presence of face-centered cubic γ-phase at all the conditions with fine crystallites. The microstructure is a mix of cellular and dendritic with the primary arm width increasing with LED. Micro-hardness studies show that the hardness decreases slightly with an increase in LED, while automated ball indentation tests indicate the increase in energy storage capability with increase in LED. The micro-hardness, yield strength and ultimate tensile strength of LPBF built IN625 structure at 100 µm are found to be higher than that of the conventional and laser directed energy deposited IN625 structures and similar to that of the LPBF built IN625 structures at lower layer thickness. The study provides insight into LPBF of IN625 at 100 µm layer thickness and paves way for fabricating components at higher layer thickness with favorable mechanical properties.
引用
收藏
页码:7636 / 7647
页数:11
相关论文
共 50 条
  • [41] Damping Structures in Additive Manufacturing Comparison of Damping Concepts in the Powder Bed Fusion of Metals Using a Laser Beam
    Mair T.
    Wenzler D.
    Praegla P.
    Zäh M.F.
    [J]. ZWF Zeitschrift fuer Wirtschaftlichen Fabrikbetrieb, 2023, 118 (7-8): : 492 - 496
  • [42] Additive manufacturing of Inconel 718/CuCrZr multi-metallic materials fabricated by laser powder bed fusion
    Zhang, Lizheng
    Dong, Peng
    Zeng, Yong
    Yao, Haihua
    Chen, Jimin
    [J]. ADDITIVE MANUFACTURING, 2024, 92
  • [43] Influence of burnishing process on surface integrity of inconel 718 fabricated by laser powder bed fusion additive manufacturing
    Kaya, Mert
    Yaman, Nihal
    Tascioglu, Emre
    Kaynak, Yusuf
    [J]. SIGMA JOURNAL OF ENGINEERING AND NATURAL SCIENCES-SIGMA MUHENDISLIK VE FEN BILIMLERI DERGISI, 2024, 42 (02): : 335 - 343
  • [44] Part scale estimation of residual stress development in laser powder bed fusion additive manufacturing of Inconel 718
    Promoppatum, Patcharapit
    Uthaisangsuk, Vitoon
    [J]. FINITE ELEMENTS IN ANALYSIS AND DESIGN, 2021, 189
  • [45] Geometric feature reproducibility for laser powder bed fusion (L-PBF) additive manufacturing with Inconel 718
    Gradl, Paul R.
    Tinker, Darren C.
    Ivester, John
    Skinner, Shawn W.
    Teasley, Thomas
    Bili, John L.
    [J]. ADDITIVE MANUFACTURING, 2021, 47
  • [46] Design, processing, and assessment of additive manufacturing by laser powder bed fusion: A case study on INCONEL 718 alloy
    Su, Ching-Hua
    Rodgers, Kristina
    Chen, Poshou
    Rabenberg, Ellen
    Gorti, Sridhar
    [J]. JOURNAL OF ALLOYS AND COMPOUNDS, 2022, 902
  • [47] On thermal properties of metallic powder in laser powder bed fusion additive manufacturing
    Zhang, Shanshan
    Lane, Brandon
    Whiting, Justin
    Chou, Kevin
    [J]. JOURNAL OF MANUFACTURING PROCESSES, 2019, 47 : 382 - 392
  • [48] Laser powder bed fusion additive manufacturing of copper wicking structures: fabrication and capillary characterization
    Mezghani, Adnen
    Nassar, Abdalla R.
    Dickman, Corey J.
    Valdes, Eduardo
    Alvarado, Raul
    [J]. RAPID PROTOTYPING JOURNAL, 2021, 27 (06) : 1181 - 1188
  • [49] Recent progress on additive manufacturing of multi-material structures with laser powder bed fusion
    Wang, Di
    Liu, Linqing
    Deng, Guowei
    Deng, Cheng
    Bai, Yuchao
    Yang, Yongqiang
    Wu, Weihui
    Chen, Jie
    Liu, Yang
    Wang, Yonggang
    Lin, Xin
    Han, Changjun
    [J]. VIRTUAL AND PHYSICAL PROTOTYPING, 2022, 17 (02) : 329 - 365
  • [50] Perspectives of using machine learning in laser powder bed fusion for metal additive manufacturing
    Sing, S. L.
    Kuo, C. N.
    Shih, C. T.
    Ho, C. C.
    Chua, C. K.
    [J]. VIRTUAL AND PHYSICAL PROTOTYPING, 2021, 16 (03) : 372 - 386