Structural Metamaterial Lattices by Laser Powder-Bed Fusion of 17-4ph Steel

13 Pages Posted: 22 Sep 2023

See all articles by Felicity Freeman

Felicity Freeman

University of Sheffield - Department of Materials Science and Engineering

Luke Jones

University of Sheffield - Department of Civil & Structural Engineering

Alexander D. Goodall

University of Sheffield - Department of Materials Science and Engineering

Hassan Ghadbeigi

University of Sheffield - Department of Civil & Structural Engineering

Iain Todd

University of Sheffield - Department of Materials Science and Engineering

Abstract

Additive manufacturing build parameters are used to engineer structural metamaterial lattices with controllable mechanical performance, achieved through microstructural grading of 17-4PH steel without compositional or geometric modification. The high solidification rates of laser powder-bed fusion suppress the thermal martensitic transformation and lead to elevated levels of retained austenite. Diamond cubic lattices built at low energy density (low thermal strain) retain a low martensite phase fraction (3 wt%) and exhibit a bend-dominated compression response. Lattices built at high energy density experience increased thermal strain during the build, causing in-situ deformation-driven transformation, yielding 44 wt% martensite; these exhibit a stretch-dominated compression response. Metamaterial lattices, with high and low energy density parameters in different configurations, exhibit mixed compression responses. Controllable mechanical response was achieved through control of microstructure, using build parameters to adjust thermal strain and selectively suppress or trigger the martensitic phase transformation in-situ.

Keywords: Structural metamaterial, Martensitic transformation, Additive manufacturing, Laser powder bed fusion, Mechanically graded

Suggested Citation

Freeman, Felicity and Jones, Luke and Goodall, Alexander D. and Ghadbeigi, Hassan and Todd, Iain, Structural Metamaterial Lattices by Laser Powder-Bed Fusion of 17-4ph Steel. Available at SSRN: https://ssrn.com/abstract=4580220 or http://dx.doi.org/10.2139/ssrn.4580220

Felicity Freeman (Contact Author)

University of Sheffield - Department of Materials Science and Engineering ( email )

United Kingdom

Luke Jones

University of Sheffield - Department of Civil & Structural Engineering ( email )

United Kingdom

Alexander D. Goodall

University of Sheffield - Department of Materials Science and Engineering ( email )

United Kingdom

Hassan Ghadbeigi

University of Sheffield - Department of Civil & Structural Engineering ( email )

Iain Todd

University of Sheffield - Department of Materials Science and Engineering ( email )

United Kingdom

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