Temperature effects on tensile deformation behavior of a medium manganese trip steel and a quenched and partitioned steel

21Citations
Citations of this article
31Readers
Mendeley users who have this article in their library.

Abstract

Third‐generation advanced high‐strength steels (AHSS) containing metastable retained austenite are being developed for the structural components of vehicles to reduce vehicle weight and improve crash performance. The goal of this work was to compare the effect of temperature on austenite stability and tensile mechanical properties of two steels, a quenched and partitioned (Q&P) steel with a martensite and retained austenite microstructure, and a medium manganese transformation‐induced plasticity (TRIP) steel with a ferrite and retained austenite microstructure. Quasi‐static tensile tests were performed at temperatures between −10 and 85 °C for the Q&P steel (0.28C‐2.56Mn‐1.56Si in wt.%), and between −10 and 115 °C for the medium manganese TRIP steel (0.14C‐7.14Mn‐0.23Si in wt.%). X‐ray diffraction measurements as a function of strain were performed from interrupted tensile tests at all test temperatures. For the medium manganese TRIP steel, austenite stability increased significantly, serrated flow behavior changed, and tensile strength and elongation changed significantly with increasing temperature. For the Q&P steel, flow stress was mostly insensitive to temperature, uniform elongation decreased with increasing temperature, and austenite stability increased with increasing temperature. The Olson–Cohen model for the austenite‐to‐martensite transformation as a function of strain showed good agreement for the medium manganese TRIP steel data and fit most of the Q&P steel data above 1% strain.

Cite

CITATION STYLE

APA

Poling, W. A., De Moor, E., Speer, J. G., & Findley, K. O. (2021). Temperature effects on tensile deformation behavior of a medium manganese trip steel and a quenched and partitioned steel. Metals, 11(2), 1–17. https://doi.org/10.3390/met11020375

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free