Laser-induced heating of dynamic particulate depositions in additive manufacturing

被引:13
|
作者
Zohdi, T. I. [1 ]
机构
[1] Univ Calif Berkeley, Dept Mech Engn, 6117 Etcheverry Hall, Berkeley, CA 94720 USA
关键词
Particles; Dynamic deposition; Laser; Heating; COUPLED AEROELASTIC PROBLEMS; NONSPHERICAL HARD PARTICLES; SPRAYED CERAMIC COATINGS; COMPUTATIONAL FRAMEWORK; PARTITIONED PROCEDURES; TRANSIENT SOLUTION; ELASTIC PROPERTIES; ELEMENT-METHOD; SIMULATION; ALGORITHMS;
D O I
10.1016/j.cma.2017.11.003
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Many applications in additive manufacturing involve the dynamic deposition of powders and the in-flight heating of such material by a laser. In order to characterize such systems, the Discrete Element Method (DEM) is employed. Specifically, this paper focuses on the initial stages of this process by developing a modular discrete-element type multiphysics simulation method for the particle dynamics and heating by a laser and detailed thermal behavior. The objective is to provide researchers with a framework to construct computational tools for this growing industry. In order to achieve this, from a simulation standpoint, the overall particle-mixture system is constructed by coupling submodels for each primary physical process (dynamics and heating) together. An iterative staggering scheme is developed whereby, within every time step, each individual particle is solved "freezing" the state of the remaining multiparticle system. The state of the particle is then updated and the algorithm moves to the next particle in the system and the process is repeated. The overall process sweeps through the entire system repeatedly until convergence is achieved in an appropriate norm. As the system evolves, an error estimate dictates the time-step size that is needed to induce convergence to below an appropriate error level. Thus, the process can be considered as an implicit time-stepping scheme, which is combined with an (internal) iterative staggering process. In order to control rates of convergence within a time-step, the algorithm adjusts the time-step size. If the iterative process does not converge within a desired number of iterations, below an error tolerance, the time-step is reduced. The degree of time-step reduction is determined by utilizing an estimate of the spectral radius of the coupled system. Since the construction of model and solution process is modular, one can easily replace physical submodels with other choices, making it easy to numerically experiment with a variety of models. Qualitative and quantitative analyses are provided, as well as three-dimensional numerical examples. This paper addresses the first of two overall "macrostages" of a complex manufacturing process with DEM. The first stage, addressed in this paper, concentrates on dry-powder materials, which are of a discrete particulate character, using DEM to characterize the deposition and in-flight particle heating. Other papers of the author (Zohdi, 2010, 2013, 2014, 2015 [81,82], 2008) have addressed stage two, namely phase transformations, curing (cooling) and stress analysis, using more appropriate continuum and hybrid DEM-continuum approaches. (C) 2017 Elsevier B.V. All rights reserved.
引用
收藏
页码:232 / 258
页数:27
相关论文
共 50 条
  • [21] Selective powder feeding system in additive manufacturing using laser-induced forward transfer technique
    Tamura, Asato
    Fujita, Takashi
    Takeuchi, Atsushi
    ADDITIVE MANUFACTURING, 2021, 46
  • [22] Microstructure and Properties of 316 Stainless Steel Produced by Laser-Induced Arc Hybrid Additive Manufacturing
    Li X.
    Song G.
    Zhang Z.
    Liu L.
    Zhongguo Jiguang/Chinese Journal of Lasers, 2019, 46 (12):
  • [23] Influence of laser-induced heating on MnO nanoparticles
    Hadzic, B.
    Vasic, B.
    Matovic, B.
    Kuryliszyn-Kudelska, I.
    Dobrowolski, W.
    Romcevic, M.
    Romcevic, N.
    JOURNAL OF RAMAN SPECTROSCOPY, 2018, 49 (05) : 817 - 821
  • [24] Characterization of laser-induced local heating in a substrate
    Yu, Peng
    Zeng, Yan
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2017, 106 : 989 - 996
  • [25] COMMENTS ON LASER-INDUCED ANOMALOUS HEATING OF A PLASMA
    MEYER, HC
    SHATAS, RA
    PHYSICS OF FLUIDS, 1972, 15 (08) : 1542 - &
  • [26] LASER-INDUCED MICROWAVE SOUND BY SURFACE HEATING
    BRIENZA, MJ
    DEMARIA, AJ
    APPLIED PHYSICS LETTERS, 1967, 11 (02) : 44 - &
  • [27] Numerical simulation of laser-induced heating on multilayers
    Hu, Peng
    Chen, Faliang
    2ND INTERNATIONAL SYMPOSIUM ON LASER INTERACTION WITH MATTER (LIMIS 2012), 2013, 8796
  • [28] Heating in ultraintense laser-induced shock waves
    Eliezer, Shalom
    Pinhasi, Shirly Vinikman
    Martinez Val, Jose Maria
    Raicher, Erez
    Henis, Zohar
    LASER AND PARTICLE BEAMS, 2017, 35 (02) : 304 - 312
  • [29] ON LASER-INDUCED LATTICE HEATING IN A POLAR SEMICONDUCTOR
    VASCONCELLOS, AR
    LUZZI, R
    PHYSICA STATUS SOLIDI B-BASIC RESEARCH, 1984, 126 (01): : 63 - 70
  • [30] LASER INTERFEROMETRIC STUDIES OF LASER-INDUCED SURFACE HEATING AND DEFORMATION
    LEE, WK
    DAVIS, CC
    IEEE JOURNAL OF QUANTUM ELECTRONICS, 1986, 22 (04) : 569 - 573