Solidification cracking of laser melted commercial-purity tungsten

V Venkata Satya Surya Amaranth Karra N Nicholas Lamprinakos Y Yunhui Chen (Xi’an Key Laboratory of Sustainable Energy Materials Chemistry, Department of Applied Chemistry, School of Chemistry) G Gabe Guss A Alexander Rack S Steven Van Petegem T Thejaswi U. Tumkur A Anthony D. Rollett P Petrus Christiaan Pistorius B Bryan A. Webler

Abstract

Abstract The high melting temperature of tungsten (W) makes it an attractive candidate for energy generation applications; however, its use is limited by its poor ductility at low temperatures. This limitation affects even melt-based additive manufacturing (AM) processes such as laser powder bed fusion (PBF-LB), with as-fabricated pure W exhibiting both longitudinal and transverse cracks. Metallurgical and processing factors that affect these cracks are still being explored. This work utilizes powderless single-tracks on pure W plates made over a range of power and velocity combinations in three unique PBF-LB setups: one with flowing argon, one with continuous vacuum, and an in situ high-speed synchrotron X-ray radiography setup. Each had different oxygen activities in their build environments. Longitudinal cracks with oxides appearing to exude from the crack were found for tracks deposited in a build environment with argon shield gas, while no such cracks were observed for builds conducted in vacuum. A calculation showed that direct oxygen ingress into the melt pool from the build environment is negligible when argon shield gas is present. Thus, incorporation of spatter is a likely mechanism for oxygen ingress into the melt pool. Radiography showed extensive keyholing, spatter generation, and crack formation at keyhole porosity. A heat transfer calculation showed the crack formation time was consistent with cooling below its ductile-to-brittle transition (DBT) temperature. This work identifies solidification cracking as a feasible mechanism in pure W beyond the well-known DBT related cracking.

Article Details

Volume / Issue Vol. 15, Issue 1
Published November 28, 2025
ISSN 2045-2322
Publisher Nature Portfolio

Journal Info

Scientific Reports

Nature Portfolio

ISSN: 2045-2322 Open Access Life Sciences

Authors (10)

V

Venkata Satya Surya Amaranth Karra

N

Nicholas Lamprinakos

Y

Yunhui Chen

Xi’an Key Laboratory of Sustainable Energy Materials Chemistry, Department of Applied Chemistry, School of Chemistry

G

Gabe Guss

A

Alexander Rack

S

Steven Van Petegem

T

Thejaswi U. Tumkur

A

Anthony D. Rollett

P

Petrus Christiaan Pistorius

B

Bryan A. Webler