Numerical Simulation of Transient Three-Dimensional Temperature and Kerf Formation in Laser Fusion Cutting

Author:

Kheloufi Karim1,Hachemi Amara El1,Benzaoui Ahmed2

Affiliation:

1. Laser Material Processing Team, Centre de Développement des Technologies Avancées, P.O. Box 17, Baba-Hassen, Algiers 16303, Algeria e-mail:

2. Laboratoire Thermodynamique et Systèmes Energétiques (LTSE), Faculté de Physique, Université des Sciences et de la Technologie, Houari Boumediene (USTHB), B.P. 32, El Alia - Bab Ezzouar, Algiers 16111, Algeria e-mail:

Abstract

In the present study, a three-dimensional transient numerical model was developed to study the temperature field and cutting kerf shape during laser fusion cutting. The finite volume model has been constructed, based on the Navier–Stokes equations and energy conservation equation for the description of momentum and heat transport phenomena, and the volume of fluid (VOF) method for free surface tracking. The Fresnel absorption model is used to handle the absorption of the incident wave by the surface of the liquid metal, and the enthalpy-porosity technique is employed to account for the latent heat during melting and solidification of the material. To model the physical phenomena occurring at the liquid film/gas interface, including momentum/heat transfer, a new approach is proposed which consists of treating friction force, pressure force applied by the gas jet, and the heat absorbed by the cutting front surface as source terms incorporated into the governing equations. All these physics are coupled and solved simultaneously in fluent CFD®. The main objective of using a transient phase change model in the current case is to simulate the dynamics and geometry of a growing laser-cutting generated kerf until it becomes fully developed. The model is used to investigate the effect of some process parameters on temperature fields and the formed kerf geometry.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference36 articles.

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4. Schulz, W., and Becker, D., 1989, “Mathematical Simulation of Laser Treatment Materials,” European Scientific Laser Workshop on Mathematical Simulation (Lisbon), pp. 178–200.

5. Hydrodynamical Instability of Melt Flow in Laser Cutting;J. Phys. D: Appl. Phys.,1987

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