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Hybrid-hybrid turning of micro-SiCp/AA2124 composites: A comparative study of laser-and-ultrasonic vibration-assisted machining

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posted on 2023-01-06, 10:39 authored by Jin Kim, Lorenzo Zani, Ahmad Abdul-Kadir, Anish RoyAnish Roy, Konstantinos BaxevanakisKonstantinos Baxevanakis, Lewis JonesLewis Jones, Vadim SilberschmidtVadim Silberschmidt

Machining of micro SiCp/AA2124 composites remains a challenge with conventional machining yielding poor surface quality with high tool wear. In this paper, we study two distinct and unique hybrid machining processes with the aim of improving the machining outcome of three types of micro-SiC/AA2124 composites with different particulate volume fractions and sizes. The class of composites studied is available commercially and is being used in industrial applications, thus assessing the machining outcomes becomes even more pertinent. Vibratory machining where the tool is made to vibrate at ultrasonic frequencies, known as ultrasonically assisted turning (UAT), is shown to yield some clear improvements in machining. Next, we incorporate laser assistance with the goal of inducing thermal softening in the process zone. This hybrid-hybrid machining process which is referred to as laser-ultrasonic-assisted turning (LUAT) has the potential for improved machining outcomes with significantly reduced machining forces and surface topology improvement. Our studies indicate that an optimum laser power exists for each type of metal matrix composite considering the particle size and volume fraction of the particulate reinforcements yielding benefits in terms of machining force reduction, surface topology improvement and potentially tool life enhancement. In addition, a computational machining model was developed which can be used to predict the machining outcomes with variable machining parameters. 

Funding

H2 Manufacturing: Hybrid-Hybrid machining of next generation aerospace materials

Engineering and Physical Sciences Research Council

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H2 Manufacturing: Hybrid-Hybrid machining of next generation aerospace materials

Engineering and Physical Sciences Research Council

Find out more...

H2 Manufacturing: Hybrid-Hybrid machining of next generation aerospace materials

Engineering and Physical Sciences Research Council

Find out more...

History

School

  • Mechanical, Electrical and Manufacturing Engineering

Published in

Journal of Manufacturing Processes

Volume

86

Issue

2023

Pages

109 - 125

Publisher

Elsevier

Version

  • VoR (Version of Record)

Rights holder

© The Authors

Publisher statement

This is an Open Access Article. It is published by Elsevier under the Creative Commons Attribution 4.0 International Licence (CC BY). Full details of this licence are available at: http://creativecommons.org/licenses/by/4.0/

Acceptance date

2022-12-13

Publication date

2023-01-04

Copyright date

2022

ISSN

1526-6125

Language

  • en

Depositor

Dr Lewis Jones. Deposit date: 5 January 2023

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