Dynamic response of 17-4 stainless steel as a function of manufacturing method and heat treatment

P Paul E. Specht (Sandia National Laboratories , Albuquerque, New Mexico 87123,) T Timothy A. Elmslie (Sandia National Laboratories 1 , PO Box 5800, Albuquerque, New Mexico 87185,) S Sakun Duwal (Sandia National Laboratories 2 , P.O. Box 5800, Albuquerque, New Mexico 87185,) B Brian Fuchs (National Transportation Safety Board 2 , 490 L’Enfant Plaza SW, Washington, DC 20594,) N Nathan Heckman (Sandia National Laboratories 1 , PO Box 5800, Albuquerque, New Mexico 87185,) S Sharlotte Kramer (Sandia National Laboratories 1 , PO Box 5800, Albuquerque, New Mexico 87185,)

Abstract

We present a series of plate-impact experiments on 17-4 stainless steel to study the effect of manufacturing method and heat treatment on the Hugoniot elastic limit (HEL), Hugoniot, phase transformation stress, and spallation strength. Two traditional manufacturing methods were considered, wrought processing and casting, as well as two additive manufacturing methods, laser powder-bed fusion (LPBF) and wire-fed electron beam (EBAM). For both LPBF and EBAM 17-4 stainless steel variants, two billets were printed, enabling the application of two unique heat treatments. The HEL stress depended heavily on the thermal history, with the HEL increasing after the formation of Cu-rich precipitates via heat treatment. The Hugoniot response both below and above the phase transition was unaffected by the manufacturing method or heat treatment. The phase transition stress depended heavily on the thermal history, with its variation being attributed to the presence of various microstructural features. This is supported by a marked increase in the phase transition stress after precipitation hardening. These results suggest that the notion of the phase transition stress being dictated by bulk composition is an oversimplification and the stress fields generated by the meso-scale structure are a dominant force. The spallation strength was lower in the cast material compared to all other 17-4 stainless steel variants due to the presence of brittle δ-ferrite inclusions. Additionally, a drop in the tensile strain-rate was observed in the spallation response above the phase transition stress, which was hypothesized to stem from the kinetics of the reversion to the low-pressure phase during spall.

Article Details

Volume / Issue Vol. 137, Issue 16
Published April 28, 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 (6)

P

Paul E. Specht

Sandia National Laboratories , Albuquerque, New Mexico 87123,

T

Timothy A. Elmslie

Sandia National Laboratories 1 , PO Box 5800, Albuquerque, New Mexico 87185,

S

Sakun Duwal

Sandia National Laboratories 2 , P.O. Box 5800, Albuquerque, New Mexico 87185,

B

Brian Fuchs

National Transportation Safety Board 2 , 490 L’Enfant Plaza SW, Washington, DC 20594,

N

Nathan Heckman

Sandia National Laboratories 1 , PO Box 5800, Albuquerque, New Mexico 87185,

S

Sharlotte Kramer

Sandia National Laboratories 1 , PO Box 5800, Albuquerque, New Mexico 87185,