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Insights into crack prevention and property improvement for additively manufactured ultra-high-strength steel structures with complex geometries

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2025-09-08

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2772-3690

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Wang J, Taylor M, Diao C, et al., (2025) Insights into crack prevention and property improvement for additively manufactured ultra-high-strength steel structures with complex geometries. Additive Manufacturing Letters, Volume 14, July 2025, Article number 100307

Abstract

Hybrid wire-arc directed energy deposition (WDED), in which complex features are deposited onto a forged base, offers a cost-effective solution for manufacturing geometrically complex ultra-high-strength steel components, particularly for aerospace applications. However, cracking at the base forging/build interface during post-build heat treatment limits its widespread application. This study investigates the underlying causes of interfacial cracking, highlighting microstructural inhomogeneity, elemental segregation and transformation stresses as likely key contributing factors. A modified three-step post-build heat treatment incorporating a normalisation step was developed to mitigate some of these issues. The optimised process successfully suppressed cracking by refining prior-austenite grains before the application of a conventional quenching step. This enhanced tensile performance beyond AMS6419K standards, supporting the industrial implementation of hybrid WDED in aerospace structures.

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Keywords

300 m ultra-high-strength steel, Wire-based direct energy deposition, Post heat treatment, Cracking prevention, material performance, 4014 Manufacturing Engineering, 40 Engineering

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Attribution 4.0 International

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This work is financially supported by the ‘Hybrid Direct Energy Deposition Sprint’ project (NO. 113345) funded by the Aerospace Technology Institute (ATI) and ‘Landing Gear Industrial Breakthroughs (I-Break)’ (10003486) funded by Innovate UK.
The authors would also like to acknowledge facilities access and support from the Henry Royce Institute through EPSRC grants EP/R00661X/1, EP/S019367/1, EP/P025021/1, and EP/P025498/1.

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