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Fully resolved numerical simulations of fused deposition modeling. Part I: fluid flow

Huanxiong Xia (Department of Aerospace and Mechanical Engineering, University of Notre Dame, Notre Dame, Indiana, USA)
Jiacai Lu (Department of Aerospace and Mechanical Engineering, University of Notre Dame, Notre Dame, Indiana, USA)
Sadegh Dabiri (School of Mechanical Engineering, Purdue University, West Lafayette, Indiana, USA)
Gretar Tryggvason (Department of Aerospace and Mechanical Engineering, University of Notre Dame, Notre Dame, Indiana, USA)

Rapid Prototyping Journal

ISSN: 1355-2546

Article publication date: 12 March 2018

Issue publication date: 12 March 2018

1353

Abstract

Purpose

This paper aims to present a first step toward developing a comprehensive methodology for fully resolved numerical simulations of fusion deposition modeling (FDM).

Design/methodology/approach

A front-tracking/finite volume method previously developed for simulations of multiphase flows is extended to model the injection of hot polymer and its cooling down.

Findings

The accuracy and convergence properties of the new method are tested by grid refinement, and the method is shown to produce convergent solutions for the shape of the filament, the temperature distribution, contact area and reheat region when new filaments are deposited on top of previously laid down filaments.

Research limitations/implications

The present paper focuses on modeling the fluid flow and the cooling. The modeling of solidification, volume changes and residual stresses will be described in Part II.

Practical implications

The ability to carry out fully resolved numerical simulations of the fusion deposition process is expected to help explore new deposition strategies and provide the “ground truth” for the development of reduced-order models.

Originality/value

The present paper is the first fully resolved simulation of the deposition in fusion filament modeling.

Keywords

Citation

Xia, H., Lu, J., Dabiri, S. and Tryggvason, G. (2018), "Fully resolved numerical simulations of fused deposition modeling. Part I: fluid flow", Rapid Prototyping Journal, Vol. 24 No. 2, pp. 463-476. https://doi.org/10.1108/RPJ-12-2016-0217

Publisher

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Emerald Publishing Limited

Copyright © 2018, Emerald Publishing Limited

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