3D Thermal Simulation of a Laser Drilling Process with Meshfree Methods

Numerical simulation of laser drilling is rapidly gaining interest in academia and industry since this process remains one of the most important and widely-used technologies in modern manufacturing. Meshfree methods such as Smoothed Particle Hydrodynamics (SPH) have proven to be successful as a nume...

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Main Authors: Mohamadreza Afrasiabi, Konrad Wegener
Format: Article
Language:English
Published: MDPI AG 2020-06-01
Series:Journal of Manufacturing and Materials Processing
Subjects:
Online Access:https://www.mdpi.com/2504-4494/4/2/58
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spelling doaj-2eca5d3d26284a69a958ecd37efd40202020-11-25T03:45:17ZengMDPI AGJournal of Manufacturing and Materials Processing2504-44942020-06-014585810.3390/jmmp40200583D Thermal Simulation of a Laser Drilling Process with Meshfree MethodsMohamadreza Afrasiabi0Konrad Wegener1Chair of Structural Mechanics & Monitoring, ETH Zurich, Stefano-Franscini-Plz 5, 8093 Zurich, SwitzerlandInstitute of Machine Tools & Manufacturing, ETH Zurich, Leonhardstr. 21, 8092 Zurich, SwitzerlandNumerical simulation of laser drilling is rapidly gaining interest in academia and industry since this process remains one of the most important and widely-used technologies in modern manufacturing. Meshfree methods such as Smoothed Particle Hydrodynamics (SPH) have proven to be successful as a numerical tool for the computation of the heat transfer and material removal associated with a laser drilling problem. Nonetheless, the vast majority of recent developments incorporate an inconsistent SPH kernel into their thermal simulations. In this paper, several enhanced schemes are implemented to address this problem by solving the heat transfer more accurately. These meshfree schemes can provide a second-order accurate discretization of the Laplace operator and abolish the inconsistency issue of the standard SPH kernels. An efficient approach is additionally suggested to handle the associated boundary conditions, which relies on the idea of the color function and particle label. The implementation is initially validated by a 3D benchmark study and then applied for the first time to a laser drilling problem.https://www.mdpi.com/2504-4494/4/2/58laser drillingheat transferboundary conditionsthermal simulationmeshfree methods3D implementation
collection DOAJ
language English
format Article
sources DOAJ
author Mohamadreza Afrasiabi
Konrad Wegener
spellingShingle Mohamadreza Afrasiabi
Konrad Wegener
3D Thermal Simulation of a Laser Drilling Process with Meshfree Methods
Journal of Manufacturing and Materials Processing
laser drilling
heat transfer
boundary conditions
thermal simulation
meshfree methods
3D implementation
author_facet Mohamadreza Afrasiabi
Konrad Wegener
author_sort Mohamadreza Afrasiabi
title 3D Thermal Simulation of a Laser Drilling Process with Meshfree Methods
title_short 3D Thermal Simulation of a Laser Drilling Process with Meshfree Methods
title_full 3D Thermal Simulation of a Laser Drilling Process with Meshfree Methods
title_fullStr 3D Thermal Simulation of a Laser Drilling Process with Meshfree Methods
title_full_unstemmed 3D Thermal Simulation of a Laser Drilling Process with Meshfree Methods
title_sort 3d thermal simulation of a laser drilling process with meshfree methods
publisher MDPI AG
series Journal of Manufacturing and Materials Processing
issn 2504-4494
publishDate 2020-06-01
description Numerical simulation of laser drilling is rapidly gaining interest in academia and industry since this process remains one of the most important and widely-used technologies in modern manufacturing. Meshfree methods such as Smoothed Particle Hydrodynamics (SPH) have proven to be successful as a numerical tool for the computation of the heat transfer and material removal associated with a laser drilling problem. Nonetheless, the vast majority of recent developments incorporate an inconsistent SPH kernel into their thermal simulations. In this paper, several enhanced schemes are implemented to address this problem by solving the heat transfer more accurately. These meshfree schemes can provide a second-order accurate discretization of the Laplace operator and abolish the inconsistency issue of the standard SPH kernels. An efficient approach is additionally suggested to handle the associated boundary conditions, which relies on the idea of the color function and particle label. The implementation is initially validated by a 3D benchmark study and then applied for the first time to a laser drilling problem.
topic laser drilling
heat transfer
boundary conditions
thermal simulation
meshfree methods
3D implementation
url https://www.mdpi.com/2504-4494/4/2/58
work_keys_str_mv AT mohamadrezaafrasiabi 3dthermalsimulationofalaserdrillingprocesswithmeshfreemethods
AT konradwegener 3dthermalsimulationofalaserdrillingprocesswithmeshfreemethods
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