https://doi.org/10.1051/epjconf/201714013001
Flow characteristics of metallic powder grains for additive manufacturing
Université du Luxembourg 6, rue Coudenhove-Kalergi L-1359 Luxembourg
* e-mail: bernhard.peters@uni.lu
** e-mail: gabriele.pozzetti@uni.lu
Published online: 30 June 2017
Directed energy deposition technologies for additive manufacturing such as laser selective melting (SLM) or electron beam melting (EBM) is a fast growing technique mainly due to its flexibility in product design. However, the process is a complex interaction of multi-physics on multiple length scales that are still not entirely understood. A particular challenging task are the flow characteristics of metallic powder ejected as jets from a nozzle and shielded by an inert turbulent gas flow. Therefore, the objective is to describe numerically the complex interaction between turbulent flow and powder grains. In order to include both several physical processes and length scales an Euler-Lagrange technology is applied. Within this framework powder is treated by the Discrete-Element-Method, while gas flow is described by Euler approaches as found in classical Computational Fluid Dynamics (CFD). The described method succeeded in delivering more accuracy and consistency than a standard approach based on the volume averaging technique and therefore, is suited for the solution of problems within an engineering framework.
© The Authors, published by EDP Sciences, 2017
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