TY - JOUR
T1 - In situ high-speed synchrotron X-ray imaging of laser-based directed energy deposition of the alloying process with dissimilar powders
AU - Wang, Hui
AU - Gould, Benjamin
AU - Haddad, Marwan
AU - Moorehead, Michael
AU - Couet, Adrien
AU - Wolff, Sarah J.
N1 - Funding Information:
The authors would like to acknowledge Kamel Fezzaa, Alex Deriy, and Benjamin Aronson at the beamline. This research used resources of the Advanced Photon Source, a U.S. Department of Energy (DOE) Office of Science User Facility operated for the DOE Office of Science by Argonne National Laboratory (ANL) under Contract No. DE-AC02-06CH11357 in addition to support through Laboratory Directed Research and Development (LDRD) funding from ANL under the same contract. Hui Wang would like to acknowledge the postdoctoral support from Texas A&M Engineering Experiment Station ( TEES ). The authors gratefully acknowledge the use of facilities and instrumentation at the UW-Madison Wisconsin Centers for Nanoscale Technology ( wcnt.wisc.edu ) partially supported by the NSF through the University of Wisconsin Materials Research Science and Engineering Center ( DMR-1720415 ).
Funding Information:
The authors would like to acknowledge Kamel Fezzaa, Alex Deriy, and Benjamin Aronson at the beamline. This research used resources of the Advanced Photon Source, a U.S. Department of Energy (DOE) Office of Science User Facility operated for the DOE Office of Science by Argonne National Laboratory (ANL) under Contract No. DE-AC02-06CH11357 in addition to support through Laboratory Directed Research and Development (LDRD) funding from ANL under the same contract. Hui Wang would like to acknowledge the postdoctoral support from Texas A&M Engineering Experiment Station (TEES). The authors gratefully acknowledge the use of facilities and instrumentation at the UW-Madison Wisconsin Centers for Nanoscale Technology (wcnt.wisc.edu) partially supported by the NSF through the University of Wisconsin Materials Research Science and Engineering Center (DMR-1720415).
Publisher Copyright:
© 2022 The Society of Manufacturing Engineers
PY - 2022/3
Y1 - 2022/3
N2 - Laser-based directed energy deposition (DED) additive manufacturing (AM) of the alloying process is performed using mixtures of Mo, Nb, Ti, and V powders and directly observed through in situ high-speed synchrotron X-ray imaging. The investigation on the integration of dissimilar powders into a single melt pool will narrow the gaps between the applied research and the fundamental understanding of the impact of different elemental powders on melt pool properties and defect production in the alloying formation via DED AM. The different traveling trajectories of four types of powders are revealed, such as the trajectories of most Mo powders on the top surface of the melt pool and the trajectories of Nb powders along with the melt flow. The melting modes, melting times, and the size changes of these four-element powders during the alloying process are obtained. Ti powders melt the fastest among these four powders. Ti and V powders melt near the site where they are delivered to the melt pool, while Mo and Nb powders melt when traveling with melt flow. The dynamics and velocities of melt flow in different sections of the melt pool are revealed, and the velocities and fluctuations near the area of the laser beam with the range from 0.134 m/s to 0.849 m/s are the largest in melt pool flow. The melt flow will benefit the uniform element distributions in the fabricated alloy. This study will provide a fundamental understanding of alloying formation via DED AM processes.
AB - Laser-based directed energy deposition (DED) additive manufacturing (AM) of the alloying process is performed using mixtures of Mo, Nb, Ti, and V powders and directly observed through in situ high-speed synchrotron X-ray imaging. The investigation on the integration of dissimilar powders into a single melt pool will narrow the gaps between the applied research and the fundamental understanding of the impact of different elemental powders on melt pool properties and defect production in the alloying formation via DED AM. The different traveling trajectories of four types of powders are revealed, such as the trajectories of most Mo powders on the top surface of the melt pool and the trajectories of Nb powders along with the melt flow. The melting modes, melting times, and the size changes of these four-element powders during the alloying process are obtained. Ti powders melt the fastest among these four powders. Ti and V powders melt near the site where they are delivered to the melt pool, while Mo and Nb powders melt when traveling with melt flow. The dynamics and velocities of melt flow in different sections of the melt pool are revealed, and the velocities and fluctuations near the area of the laser beam with the range from 0.134 m/s to 0.849 m/s are the largest in melt pool flow. The melt flow will benefit the uniform element distributions in the fabricated alloy. This study will provide a fundamental understanding of alloying formation via DED AM processes.
KW - Alloying process
KW - Directed energy deposition
KW - High-speed X-ray imaging
KW - Melt flow
KW - Melting time
KW - Powder trajectory
UR - https://www.scopus.com/pages/publications/85123913216
UR - https://www.mendeley.com/catalogue/78a222a2-0ec8-3f9f-b890-2101a9873467/
U2 - 10.1016/j.jmapro.2022.01.055
DO - 10.1016/j.jmapro.2022.01.055
M3 - Article
AN - SCOPUS:85123913216
SN - 1526-6125
VL - 75
SP - 1003
EP - 1011
JO - Journal of Manufacturing Processes
JF - Journal of Manufacturing Processes
ER -