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Correlative Synchrotron X-Ray Imaging and Diffraction of Directed Energy Deposition Additive Manufacturing

53 Pages Posted: 6 Oct 2020 Publication Status: Published

See all articles by Yunhui Chen

Yunhui Chen

Royal Melbourne Institute of Technolog (RMIT University); University College London - Department of Mechanical Engineering

Samuel J. Clark

University College London - Department of Mechanical Engineering

David M. Collins

University of Birmingham - School of Metallurgy and Materials

Sebastian Marussi

University College London - Department of Mechanical Engineering

Simon A. Hunt

University of Manchester - Department of Materials

Danielle M. Fenech

University of Cambridge - Department of Physics

Thomas Connolley

Diamond Light Source - Harwell Science and Innovation Campus

Robert C. Atwood

Diamond Light Source - Harwell Science and Innovation Campus

Oxana V. Magdysyuk

Diamond Light Source - Harwell Science and Innovation Campus

Gavin J. Baxter

Rolls-Royce plc.

Martyn A. Jones

Rolls-Royce plc.

Chu Lun Alex Leung

University College London - Department of Mechanical Engineering

Peter Lee

University College London - Department of Mechanical Engineering

Abstract

The governing mechanistic behaviour of Directed Energy Deposition Additive Manufacturing (DED-AM) is revealed by a combined in situ and operando synchrotron X-ray imaging and diffraction study of a nickel-base superalloy, IN718. Using a unique process replicator, real-space phase-contrast imaging enables quantification of the melt-pool boundary and flow dynamics during solidification. This imaging knowledge informed precise diffraction measurements of temporally resolved microstructural phases with unprecedented precision during transformation and stress development with a spatial resolution of 100 µm. The diffraction quantified thermal gradient enabled a dendritic solidification microstructure to be predicted and coupled to the stress orientation and magnitude. The fast cooling rate entirely suppressed the formation of secondary phases or recrystallisation in the solid-state. Upon solidification, the stresses rapidly increase to the yield strength during cooling. This insight, combined with IN718’s large solidification range suggests that the accumulated plasticity exhausts the alloy’s ductility, causing liquation cracking. This study has revealed additional fundamental mechanisms governing the formation of highly non-equilibrium microstructures during DED-AM.

Keywords: Directed Energy Deposition Additive Manufacturing, Synchrotron X-ray Diffraction, Synchrotron X-ray imaging, Laser Additive Manufacturing, IN718

Suggested Citation

Chen, Yunhui and Clark, Samuel J. and Collins, David M. and Marussi, Sebastian and Hunt, Simon A. and Fenech, Danielle M. and Connolley, Thomas and Atwood, Robert C. and Magdysyuk, Oxana V. and Baxter, Gavin J. and Jones, Martyn A. and Leung, Chu Lun Alex and Lee, Peter, Correlative Synchrotron X-Ray Imaging and Diffraction of Directed Energy Deposition Additive Manufacturing. Available at SSRN: https://ssrn.com/abstract=3702822 or http://dx.doi.org/10.2139/ssrn.3702822

Yunhui Chen (Contact Author)

Royal Melbourne Institute of Technolog (RMIT University)

University College London - Department of Mechanical Engineering

Gower Street
London, WC1E 6BT
United Kingdom

Samuel J. Clark

University College London - Department of Mechanical Engineering

Gower Street
London, WC1E 6BT
United Kingdom

David M. Collins

University of Birmingham - School of Metallurgy and Materials ( email )

Edgbaston, Birmingham B15 2TT
United Kingdom

Sebastian Marussi

University College London - Department of Mechanical Engineering ( email )

Gower Street
London, WC1E 6BT
United Kingdom

Simon A. Hunt

University of Manchester - Department of Materials

Oxford Road
Manchester, N/A M13 9PL
United Kingdom

Danielle M. Fenech

University of Cambridge - Department of Physics ( email )

Trinity Ln
Cambridge, CB2 1TN
United Kingdom

Thomas Connolley

Diamond Light Source - Harwell Science and Innovation Campus ( email )

United Kingdom

Robert C. Atwood

Diamond Light Source - Harwell Science and Innovation Campus

United Kingdom

Oxana V. Magdysyuk

Diamond Light Source - Harwell Science and Innovation Campus

United Kingdom

Gavin J. Baxter

Rolls-Royce plc. ( email )

Derby, DE24 8BJ
United Kingdom

Martyn A. Jones

Rolls-Royce plc. ( email )

Derby, DE24 8BJ
United Kingdom

Chu Lun Alex Leung

University College London - Department of Mechanical Engineering ( email )

Gower Street
London, WC1E 6BT
United Kingdom

Peter Lee

University College London - Department of Mechanical Engineering ( email )

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