Cryogenic process effects on the dynamic mechanical properties of 100Cr6 bullet core analysed via Split Hopkinson Pressure Bar

This study investigates the high strain rate behavior of 100Cr6 bearing steel bullet core material following austempering (300 °C for 1 or 5 h) and subsequent sub-zero cryogenic processing ( -80 °C for 1 h). Microstructural features, phase transformations, and crystallographic parameters were evaluated via SEM and XRD, while mechanical properties were quantified through HV1 microhardness and Split Hopkinson Pressure Bar testing. Cryogenic treatment after prolonged austempering systematically enhanced microhardness and dynamic yield strength while reducing strain capability. The maximum microhardness reached 780 HV1 in the 5-h austempered and cryogenically treated specimen, representing a ∼250% increase over the initial state. XRD analysis revealed maximum pre- and post-impact dislocation densities of 77.86 x 10 14 lines/m 2 (1-h austempered + cryogenic) and 154.06 x 10 14 lines/m 2 (1-h austempered), respectively. Overall, post-austempering cryogenic processing effectively optimizes the dynamic mechanical response of 100Cr6 steel.

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Journal
Ironmaking & Steelmaking Processes Products and Applications
Published
2026-09-30
DOI
https://doi.org/10.1177/03019233261481383
Primary Topic
High-Velocity Impact and Material Behavior
Type
article
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article

Cryogenic process effects on the dynamic mechanical properties of 100Cr6 bullet core analysed via Split Hopkinson Pressure Bar

Alpay Özer, Gözde Altuntaş, Onur Altuntaş, Melika Özer et al.
Ironmaking & Steelmaking Processes Products and Applications
High-Velocity Impact and Material Behavior
article

Cryogenic process effects on the dynamic mechanical properties of 100Cr6 bullet core analysed via Split Hopkinson Pressure Bar

Alpay Özer, Gözde Altuntaş, Onur Altuntaş, Melika Özer, Serdar Salman, Metin Gül, Ayhan Aytaç
article en

Abstract

This study investigates the high strain rate behavior of 100Cr6 bearing steel bullet core material following austempering (300 °C for 1 or 5 h) and subsequent sub-zero cryogenic processing ( -80 °C for 1 h). Microstructural features, phase transformations, and crystallographic parameters were evaluated via SEM and XRD, while mechanical properties were quantified through HV1 microhardness and Split Hopkinson Pressure Bar testing. Cryogenic treatment after prolonged austempering systematically enhanced microhardness and dynamic yield strength while reducing strain capability. The maximum microhardness reached 780 HV1 in the 5-h austempered and cryogenically treated specimen, representing a ∼250% increase over the initial state. XRD analysis revealed maximum pre- and post-impact dislocation densities of 77.86 x 10 14 lines/m 2 (1-h austempered + cryogenic) and 154.06 x 10 14 lines/m 2 (1-h austempered), respectively. Overall, post-austempering cryogenic processing effectively optimizes the dynamic mechanical response of 100Cr6 steel.

Ironmaking & Steelmaking Processes Products and Applications
National Defense University (US), Gazi University (TR)
Openalex Percentile: Top 26%
High-Velocity Impact and Material Behavior
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Cryogenic process effects on the dynamic mechanical properties of 100Cr6 bullet core analysed via Split Hopkinson Pressure Bar — Alpay Özer, Gözde Altuntaş, et al. · Ironmaking & Steelmaking Processes Products and Applications (2026) | TGRS Research Map | TGRS