Determining the laser absorptivity of Ti-6Al-4V during laser powder bed fusion by calibrated melt pool simulation

被引:32
作者
Cook, Peter S. [1 ]
Ritchie, David J. [1 ]
机构
[1] CSIRO Mfg, Private Bag 10, Clayton, Vic 3169, Australia
关键词
Additive manufacturing (AM) process; Multiphysics model; Ti-6Al-4V laser absorptivity; Laser powder bed fusion; Simulation; THERMOPHYSICAL PROPERTIES; HEAT-TRANSFER; FLUID-FLOW; TEMPERATURE; EMISSIVITY; ALLOY; BEAM; MICROSTRUCTURE; 90TI-6AL-4V; BENCHMARK;
D O I
10.1016/j.optlastec.2023.109247
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Additive manufacturing processes such as laser powder bed fusion (LPBF) are now routinely used for advanced medical and aerospace components. However, moving from these bespoke applications to high-volume com-mercial manufacturing requires higher levels of predictability and control of part properties. Detailed simulations of the LPBF process can assist this transition by providing understanding of defect mechanisms and guiding paths to improvement. An accurate value of laser absorptivity for the material is critical for LPBF simulation but the published literature contains surprisingly little absorptivity data applicable to actual LPBF operating conditions. Here we determine the in-situ laser absorptivity of the alloy Ti-6Al-4V during LPBF to be 0.27 +/-0.03, for a laser wavelength of 1.07 mu m. Our technique involves calibrating melt pool CFD simulations against single-track experiments conducted over a range of energy densities and can be extended to other materials. The simulations incorporate multiple laser reflections and cover the transition from conduction to keyhole mode. We also discuss physical mechanisms that may be responsible for changes in the absorption behaviour at high laser energy density which are observed in this and other work.
引用
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页数:14
相关论文
共 77 条
  • [61] Vapor-plasma plume investigation during high-power fiber laser welding
    Shcheglov, P. Yu
    Gumenyuk, A. V.
    Gornushkin, I. B.
    Rethmeier, M.
    Petrovskiy, V. N.
    [J]. LASER PHYSICS, 2013, 23 (01)
  • [62] The effect of alloying additions on the emissivity of titanium in the neighborhood of polymorphous transformation
    Shur, BA
    Peletskii, VE
    [J]. HIGH TEMPERATURE, 2004, 42 (03) : 414 - 420
  • [63] The causal relationship between melt pool geometry and energy absorption measured in real time during laser-based manufacturing
    Simonds, Brian J.
    Tanner, Jack
    Artusio-Glimpse, Alexandra
    Williams, Paul A.
    Parab, Niranjan
    Zhao, Cang
    Sun, Tao
    [J]. APPLIED MATERIALS TODAY, 2021, 23
  • [64] Simonds BJ, 2018, PHYS REV APPL, V10, DOI [10.1103/PhysRevApplied.10.044061, 10.1103/physrevapplied.10.044061]
  • [65] Steen WM, 2010, LASER MATERIAL PROCESSING, 4TH EDITION, P1, DOI 10.1007/978-1-84996-062-5
  • [66] Touloukian Y.S., 1976, Thermophysical Properties of Matter - the TPRC Data Series. Volume 6S. Specific Heat - Nonmetallic Liquids and Gases
  • [67] Heat capacities and thermal conductivities of palladium and titanium melts and correlation between thermal diffusivity and density of states for transition metals in a liquid state
    Watanabe, Manabu
    Adachi, Masayoshi
    Fukuyama, Hiroyuki
    [J]. JOURNAL OF MOLECULAR LIQUIDS, 2021, 324
  • [68] Mechanistic models for additive manufacturing of metallic components
    Wei, H. L.
    Mukherjee, T.
    Zhang, W.
    Zuback, J. S.
    Knapp, G. L.
    De, A.
    DebRoy, T.
    [J]. PROGRESS IN MATERIALS SCIENCE, 2021, 116
  • [69] Parametric study of surface morphology for selective laser melting on Ti6Al4V powder bed with numerical and experimental methods
    Wu, Yu-Che
    Hwang, Weng-Sing
    San, Cheng-Hung
    Chang, Chih-Hsiang
    Lin, Huey-Jiuan
    [J]. INTERNATIONAL JOURNAL OF MATERIAL FORMING, 2018, 11 (06) : 807 - 813
  • [70] Surface Tension and Viscosity of Industrial Ti-Alloys Measured by the Oscillating Drop Method on Board Parabolic Flights
    Wunderlich, Rainer K.
    [J]. HIGH TEMPERATURE MATERIALS AND PROCESSES, 2008, 27 (06) : 401 - 412