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Melt pool geometry control of Ti-6Al-4V utilizing multi-energy source laser-arc + wire directed energy deposition

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2026-01-09

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1755-5817

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Wainwright J, Sierra DR, Davis A, et al., (2026) Melt pool geometry control of Ti-6Al-4V utilizing multi-energy source laser-arc + wire directed energy deposition. CIRP Journal of Manufacturing Science and Technology, Volume 64, February 2026, pp. 79-91

Abstract

This study investigates the applicability of a novel laser-arc multi-energy deposition of Ti-6Al-4V with independent control of bead geometry and thermal input. A plasma transferred arc is used to generate an initial melt pool and melt wire feedstock, before controlled lateral elongation of the melt pool via a fiber laser and galvo scanner. The applicability to Ti-6Al-4V was first investigated using deposition parameters previously identified. Once successful bead geometry control was achieved, process parameters more conducive to wire directed energy deposition were investigated. This included investigation of the energy per unit area required to achieve accurate deposition of Ti-6Al-4V with minimal penetration and investigation into scanning strategy. In each case, optical microscopy was conducted and analysis of the bead geometry, penetration and heat-affected zone considered to determine the effect of each parameter change. The results demonstrated that independent control of bead geometry and thermal input could be achieved, allowing deposition of Ti-6Al-4V at a desired scan width and layer height and providing a framework for future multi-energy source directed energy deposition of Ti-6Al-4V.

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Git repository

Keywords

40 Engineering, 7 Affordable and Clean Energy, 4014 Manufacturing engineering, Wire + arc additive manufacturing, Multi-energy source, Thermal control, Bead geometry control, Process control

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Attribution 4.0 International

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The authors would like to express their gratitude to BAE Systems and the Engineering and Physical Science Research Council (EPSRC) for supporting this research via NEWAM [grant number: EP/R027218/1]

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