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Determination of mechanical properties of FFF 3D printed material by assessing void volume fraction, cooling rate and residual thermal stresses

Rafael Quelho de Macedo (Divisão de Engenharia Mecânica, Instituto Tecnologico de Aeronautica, Sao Jose dos Campos, Brazil)
Rafael Thiago Luiz Ferreira (Divisão de Engenharia Mecânica, Instituto Tecnologico de Aeronautica, Sao Jose dos Campos, Brazil)
Kuzhichalil Jayachandran (Instituto de Engenharia Mecânica, Universidade de Lisboa Instituto Superior Tecnico, Lisboa, Portugal)

Rapid Prototyping Journal

ISSN: 1355-2546

Article publication date: 17 September 2019

Issue publication date: 7 November 2019

599

Abstract

Purpose

This paper aims to present experimental and numerical analyses of fused filament fabrication (FFF) printed parts and show how mechanical characteristics of printed ABS-MG94 (acrylonitrile butadiene styrene) are influenced by the void volume fraction, cooling rate and residual thermal stresses.

Design/methodology/approach

Printed specimens were experimentally tested to evaluate the mechanical properties for different printing speeds, and micrographs were taken. A thermo-mechanical finite element model, able to simulate the FFF process, was developed to calculate the temperature fields in time, cooling rate and residual thermal stresses. Finally, the experimental mechanical properties and the microstructure distribution could be explained by the temperature fields in time, cooling rate and residual thermal stresses.

Findings

Micrographs revealed the increase of void volume fraction with the printing speed. The variations on voids were associated to the temperature fields in time: when the temperatures remained high for longer periods, less voids were generated. The Young's Modulus of the deposited filament varied according to the cooling rate: it decreased when the cooling rate increased. The influence of the residual thermal stresses and void volume fraction on the printed parts failure was also investigated: in the worst scenarios evaluated, the void volume fraction reduced the strength in 9 per cent, while the residual thermal stresses reduced it in 3.8 per cent.

Originality/value

This work explains how the temperature fields can affect the void volume fraction, Young's Modulus and failure of printed parts. Experimental and numerical results are shown. The presented research can be used to choose printing parameters to achieve desired mechanical properties of FFF printed parts.

Keywords

Citation

Quelho de Macedo, R., Ferreira, R.T.L. and Jayachandran, K. (2019), "Determination of mechanical properties of FFF 3D printed material by assessing void volume fraction, cooling rate and residual thermal stresses", Rapid Prototyping Journal, Vol. 25 No. 10, pp. 1661-1683. https://doi.org/10.1108/RPJ-08-2018-0192

Publisher

:

Emerald Publishing Limited

Copyright © 2019, Emerald Publishing Limited

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