Numerical and Experimental Characterization of Melt Pool in Laser Powder Bed Fusion of SS316l

被引:2
|
作者
Khan, Ahsan [1 ]
Jaffery, Syed Hussain Imran [1 ]
Hussain, Syed Zahid [2 ]
Anwar, Zahid [3 ]
Dilawar, Shakeel [1 ]
机构
[1] Natl Univ Sci & Technol, Sch Mech & Mfg Engn, Dept Design & Mfg Engn, NUST Campus, H-12, Islamabad, Pakistan
[2] Air Univ, Dept Mechatron & Biomed Engn, Islamabad, Pakistan
[3] North Dakota State Univ, Dept Comp Sci, Fargo, ND USA
关键词
Laser powder bed fusion (LPBF); Additive manufacturing (AM); 3D printing; Melt pool; Finite element modeling (FEM); Thermal modeling; 3D Gaussian heat source; SS316L; FINITE-ELEMENT SIMULATION; PROCESS PARAMETERS; RESIDUAL-STRESS; STAINLESS-STEEL; TEMPERATURE DISTRIBUTION; EXPERIMENTAL VALIDATION; THERMOMECHANICAL MODEL; THERMAL-BEHAVIOR; WITHOUT-SUPPORT; HEAT-SOURCE;
D O I
10.1007/s40192-023-00302-w
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Laser powder bed fusion (LPBF), also called selective laser melting, is an additive manufacturing technology with great potential for creating three-dimensional metallic components with intricate designs. The application of dynamic thermal cycles involving melting and cooling makes it difficult to maintain the desired surface quality and shape in the LPBF process. The LPBF process's dynamic stability of the melt pool is essential to ascertain due to its influence on the quality of the manufactured products. Examining the thermal behavior and temperature distribution inside the melt pool is necessary. Subsequent to experimental validation, employing a finite element model (FEM) has the potential to accurately define thermal distributions and the dimensions of the melt pool. A three-dimensional transient model based on a moving Gaussian heat source was employed in this study to examine the influence of process variables (i.e., scan velocity, laser power, laser beam radius, hatch spacing, number of layers, and scan angle for each layer) on the melt pool shape in LPBF of SS316L powder. A finite element model based on three-dimensional parameters was proposed to evaluate the temperature gradient and melt pool characteristics of SS316L when subjected to laser powder bed fusion. The method takes into account the effect of the laser penetration depth on the characteristics of the molten pool, determined by a multiple-layer (15) and multiple-track (6) finite element model with variable process parameters, such as laser power, scanning speed, beam radius and hatch spacing. Experimental data obtained from the literature were used to calibrate the proposed heat source model, and the adjusted finite element model was then validated through further experiments. The modeling results showed concordance with the experimental data. The effects of the interlayer and intertrack were examined. Temperature distributions for each track and layer and the depth, width and length of the melt pool were evaluated, and the observed values for each variable were analyzed. The average melt pool length, width, and depth were determined to have relative errors of 1.88%, 1.49%, and 2.12%, respectively, between the FEM model and experimentally measured dimensions for an optimal range of varied process parameters.
引用
收藏
页码:210 / 230
页数:21
相关论文
共 50 条
  • [1] Numerical and Experimental Characterization of Melt Pool in Laser Powder Bed Fusion of SS316l
    Ahsan Khan
    Syed Hussain Imran Jaffery
    Syed Zahid Hussain
    Zahid Anwar
    Shakeel Dilawar
    [J]. Integrating Materials and Manufacturing Innovation, 2023, 12 : 210 - 230
  • [2] Inter-melt pool corrosion and repassivation of SS316L stainless steel processed by laser powder bed fusion
    Hariharan, Karthikeyan
    Guo, Xiaolei
    Huang, Hsien-Lien
    Sridhar, Narasi
    Srinivasan, Jayendran
    Hwang, Jinwoo
    Frankel, Gerald S.
    Schindelholz, Eric J.
    [J]. CORROSION SCIENCE, 2024, 226
  • [3] Full-Field Mapping and Flow Quantification of Melt Pool Dynamics in Laser Powder Bed Fusion of SS316L
    Rehman, Asif Ur
    Pitir, Fatih
    Salamci, Metin Uymaz
    [J]. MATERIALS, 2021, 14 (21)
  • [4] Microhardness and Tensile Strength Analysis of SS316L/CuCrZr Interface by Laser Powder Bed Fusion
    Jin, Xiang
    Hoo, Zhiong Sheng
    Jin, Chuanjie
    Xiao, Zhongmin
    Yao, Liming
    [J]. MATERIALS, 2024, 17 (12)
  • [5] Investigations on the effect of heat treatment on laser powder bed fusion built SS316L alloy
    Sathies, T.
    Kumaran, M.
    Bharathiraja, G.
    Balaji, N. S.
    Unnikrishnan, T. G.
    Kumar, V. Senthil
    [J]. MATERIALS TODAY-PROCEEDINGS, 2022, 62 : 5411 - 5414
  • [6] Effect of Build Orientation on Anisotropy in Tensile Behavior of Laser Powder Bed Fusion Fabricated SS316L
    Thanumoorthy, Raja S.
    Chaurasia, Jitender K.
    Kumar, V. Anil
    Pradeep, P. I.
    Balan, A. S. S.
    Rajasekaran, B.
    Sahu, Ankit
    Bontha, Srikanth
    [J]. JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2024, 33 (15) : 7930 - 7943
  • [7] Heat Transfer and Fluid Flow During Laser Powder Bed Fusion of SS316L Stainless Steel
    Usha, Yenni
    Das, Atanu
    Bansal, Gaurav K.
    Krishna, K. Gopala
    Mandal, Gopi K.
    [J]. TRANSACTIONS OF THE INDIAN INSTITUTE OF METALS, 2024, 77 (07) : 1805 - 1814
  • [8] Additive Manufacturing of SS316L/IN718 Bimetallic Structure via Laser Powder Bed Fusion
    Mahmud, Asif
    Ayers, Nicolas
    Huynh, Thinh
    Sohn, Yongho
    [J]. MATERIALS, 2023, 16 (19)
  • [9] Experimental investigation on process parameters induced mechanical and microstructural properties for laser powder bed fusion additive manufacturing of SS316L
    Gor, Meet
    Soni, Harsh
    Srivastava, Nishkarsh
    Arora, Amit
    Sahlot, Pankaj
    Oza, Ankit
    Gehlot, Anita
    [J]. PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART E-JOURNAL OF PROCESS MECHANICAL ENGINEERING, 2023,
  • [10] Study and modeling of melt pool evolution in selective laser melting process of SS316L
    Tan, J. L.
    Tang, C.
    Wong, C. H.
    [J]. MRS COMMUNICATIONS, 2018, 8 (03) : 1178 - 1183