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Additive manufactured parts surface treatment through impinged hot air jet technique the theoretical and experimental evaluation

Amin Barzegar (School of Mechanical Engineering, College of Engineering, University of Tehran, Tehran, Iran)
Mohammadreza Farahani (School of Mechanical Engineering, College of Engineering, University of Tehran, Tehran, Iran)
Amirreza Gomroki (School of Mechanical Engineering, College of Engineering, University of Tehran, Tehran, Iran)

Rapid Prototyping Journal

ISSN: 1355-2546

Article publication date: 30 April 2024

Issue publication date: 17 May 2024

24

Abstract

Purpose

Material extrusion-based additive manufacturing is a prominent manufacturing technique to fabricate complex geometrical three-dimensional (3D) parts. Despite the indisputable advantages of material extrusion-based technique, the poor surface and subsurface integrity hinder the industrial application of this technology. The purpose of this study is introducing the hot air jet treatment (HAJ) technique for surface treatment of additive manufactured parts.

Design/methodology/approach

In the presented research, novel theoretical formulation and finite element models are developed to study and model the polishing mechanism of printed parts surface through the HAJ technique. The model correlates reflow material volume, layer width and layer height. The reflow material volume is a function of treatment temperature, treatment velocity and HAJ velocity. The values of reflow material volume are obtained through the finite element modeling model due to the complexity of the interactions between thermal and mechanical phenomena. The theoretical model presumptions are validated through experiments, and the results show that the treatment parameters have a significant impact on the surface characteristics, hardness and dimensional variations of the treated surface.

Findings

The results demonstrate that the average value of error between the calculated theoretical results and experimental results is 14.3%. Meanwhile, the 3D plots of Ra and Rq revealed that the maximum values of Ra and Rq reduction percentages at 255°C, 270°C, 285°C and 300°C treatment temperatures are (35.9%, 33.9%), (77.6%,76.4%), (94%, 93.8%) and (85.1%, 84%), respectively. The scanning electron microscope results illustrate three different treatment zones and the treatment-induced and manufacturing-induced entrapped air relief phenomenon. The measured results of hardness variation percentages and dimensional deviation percentages at different regimes are (8.33%, 0.19%), (10.55%, 0.31%) and (−0.27%, 0.34%), respectively.

Originality/value

While some studies have investigated the effect of the HAJ process on the structural integrity of manufactured items, there is a dearth of research on the underlying treatment mechanism, the integrity of the treated surface and the subsurface characteristics of the treated surface.

Keywords

Acknowledgements

The authors would like to express our gratitude to The Welding and Nondestructive testing applied research center (TWN) of the university of Tehran for its support in this research.

Citation

Barzegar, A., Farahani, M. and Gomroki, A. (2024), "Additive manufactured parts surface treatment through impinged hot air jet technique the theoretical and experimental evaluation", Rapid Prototyping Journal, Vol. 30 No. 5, pp. 858-875. https://doi.org/10.1108/RPJ-10-2023-0376

Publisher

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Emerald Publishing Limited

Copyright © 2024, Emerald Publishing Limited

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