The influence of laser power modulation on melt pool dynamics in laser powder bed fusion

N N. P. Calta (Lawrence Livermore National Laboratory , Livermore, California 94550,) A A. A. Martin (Lawrence Livermore National Laboratory , Livermore, California 94550,) J J. A. Hammons (Lawrence Livermore National Laboratory , Livermore, California 94550,) M M. H. Nielsen (Lawrence Livermore National Laboratory , Livermore, California 94550,) D D. L. Rosas (Lawrence Livermore National Laboratory , Livermore, California 94550,) M M. Strantza (Lawrence Livermore National Laboratory , Livermore, California 94550,) G G. M. Guss (Lawrence Livermore National Laboratory , Livermore, California 94550,) M M. J. Matthews (Lawrence Livermore National Laboratory , Livermore, California 94550,) T T. M. Willey (Lawrence Livermore National Laboratory , Livermore, California 94550,) J J. R. I. Lee (Lawrence Livermore National Laboratory , Livermore, California 94550,)

Abstract

While the majority of laser powder bed fusion (LPBF) metal additive manufacturing uses a continuous wave (CW) laser heat source, some commercial applications of LPBF additive manufacturing instead involve the modulation of the laser power on tens-of-microsecond timescales as an adjustable process variable. This article reports the use of in situ, high speed x-ray and optical imaging to probe melt pool fluid flow, defect formation, and nearby powder motion during LPBF with both modulated and CW laser heat sources. We observe melt pool dynamics unique to modulated laser melting even at very high duty cycles that are related to fluctuations in vapor depression depth, complex pore formation mechanisms, and changes to denudation physics when compared to CW melting. These behaviors are present in Ti–6Al–4V, 316L stainless steel, and AL1100 alloys but vary slightly as a function of material, indicating a substantial dependence on the viscosity and surface tension of the liquid metal. While high duty cycles produce weld tracks of comparable quality to CW melting, lower duty cycles introduce substantial defect concentrations. At intermediate duty cycles, careful control of modulation parameters can repeatably and precisely yield one pore per laser pulse, suggesting a method for intentionally inserting engineered porosity at specific sites during an LPBF build.

Article Details

Volume / Issue Vol. 138, Issue 13
Published October 07, 2025
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (10)

N

N. P. Calta

Lawrence Livermore National Laboratory , Livermore, California 94550,

A

A. A. Martin

Lawrence Livermore National Laboratory , Livermore, California 94550,

J

J. A. Hammons

Lawrence Livermore National Laboratory , Livermore, California 94550,

M

M. H. Nielsen

Lawrence Livermore National Laboratory , Livermore, California 94550,

D

D. L. Rosas

Lawrence Livermore National Laboratory , Livermore, California 94550,

M

M. Strantza

Lawrence Livermore National Laboratory , Livermore, California 94550,

G

G. M. Guss

Lawrence Livermore National Laboratory , Livermore, California 94550,

M

M. J. Matthews

Lawrence Livermore National Laboratory , Livermore, California 94550,

T

T. M. Willey

Lawrence Livermore National Laboratory , Livermore, California 94550,

J

J. R. I. Lee

Lawrence Livermore National Laboratory , Livermore, California 94550,