Numerical simulation of particles flow in Laser Metal Deposition technology comparing Eulerian-Eulerian and Lagrangian-Eulerian approaches

2021 ◽  
Vol 68 ◽  
pp. 186-197
Author(s):  
Mauro Murer ◽  
Valentina Furlan ◽  
Giovanni Formica ◽  
Simone Morganti ◽  
Barbara Previtali ◽  
...  
2021 ◽  
Vol 2144 (1) ◽  
pp. 012001
Author(s):  
P S Rodin ◽  
V D Dubrov

Abstract The control of the track shape in laser metal deposition technology by the QCW laser mode has been studied. The different geometric characteristics of the tracks are shown to obtain at the same average laser power, depending on the selected laser power control mode. The difference in the temperature regimes of track formation is shown.


2013 ◽  
Vol 380-384 ◽  
pp. 4327-4331
Author(s):  
Kai Zhang ◽  
Lei Wang ◽  
Xin Min Zhang

Laser Metal Deposition Shaping (LMDS) is an emerging manufacturing technique that ensures significant reduction of process time between initial design and final components. The fabrication of fully dense parts with appropriate properties using the LMDS process requires an in-depth understanding of the entire thermal behavior of the process. In this paper, the thermal behavior during LMDS was studied, both numerically and experimentally. Temperature distribution and gradient in the fabricated part were obtained by finite element method (FEM) simulation. The numerical results are in good agreement with the experimental observations. The numerical method contributes to the comprehension and control of the thermal behavior, and may be used to optimize process parameters and predict the thermal response of LMDS fabricated components.


2021 ◽  
Author(s):  
Mauro Murer ◽  
Giovanni Formica ◽  
Franco Milicchio ◽  
Simone Morganti ◽  
Ferdinando Auricchio

Abstract We present a Computational Fluid Dynamics (CFD) framework for the numerical simulation of the Laser Metal Deposition (LMD) process in 3D printing. Such a framework, comprehensive of both numerical formulations and solvers, aims at providing an exhaustive scenario of the process, where the carrier gas, modeled as an Eulerian incompressible fluid, transports metal powders, tracked as Langrangian discrete particles, within the 3D printing chamber. On the basis of heat sources coming from the laser beam and the heated substrate, the particle model is developed to interact with the carrier gas also by heat transfer and to evolve in a melted phase according to a growth law of the particle liquid mass fraction. Enhanced numerical solvers, characterized by a modified Netwon-Raphson scheme and a parallel algorithm for tracking particles, are employed to obtain both e ffi ciency and accuracy of the numerical strategy. In the perspective of investigating optimal design of the whole LMD process, we propose a sensitivity analysis specifically addressed to assess the influence of inflow rates, laser beams intensity, and nozzle channel geometry. Such a numerical campaign is performed with an in-house C++ code developed with the deal.II open source Finite Element library.


Applied laser ◽  
2012 ◽  
Vol 32 (6) ◽  
pp. 510-515
Author(s):  
钦兰云 Qin Lanyun ◽  
王维 Wang Wei ◽  
杨光 Yang Guang ◽  
卞宏友 Bian Hongyou ◽  
佟明 Tong Ming ◽  
...  

2018 ◽  
Author(s):  
Masahiro Tsukamoto ◽  
Yuji Sato ◽  
Ritsuko Higashino ◽  
Kohei Asano ◽  
Yoshinori Funada ◽  
...  

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