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Metastable austenite driven work-hardening behaviour in a TRIP-assisted dual phase steel

机译:TRIp辅助双相钢中的亚稳奥氏体驱动的加工硬化行为

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摘要

The mechanically-induced transformation behaviour of the metastable austenite phase in a high-strength industrial TRIP-assisted Dual Phase steel was monitored in situ using high-energy synchrotron diffraction under uniaxial loading. This allowed direct quantification of the impact of the transformation of the metastable austenite phase (16 vol. %), embedded in a ferrite-bainite-martensite matrix, on the work hardening behaviour of this steel. Our results show that the mechanically induced transformation of austenite does not begin until the onset of matrix yielding. We provide experimental evidence which demonstrates for the first time that the austenite transformation increases the work-hardening contribution, σw thereby supporting a driving force approach to transformation induced plasticity. The transformation work required leads to an increase in the macroscopic work-hardening rate after matrix yielding and continues to offset the decrease in the work-hardening rate in the ferrite and martensite phases up to the UTS. Further we show conclusively that martensite yielding does not occur until the completion of the mechanically induced transformation of austenite. Plastic deformation of martensite is immediately followed by local plastic instability leading to necking and ultimate failure of this material.
机译:使用单轴载荷下的高能同步加速器原位监测了高强度工业TRIP辅助双相钢中亚稳奥氏体相的机械诱导相变行为。这样就可以直接量化嵌入铁素体-贝氏体-马氏体基体中的亚稳态奥氏体相(16%(体积))的转变对这种钢的加工硬化行为的影响。我们的结果表明,机械诱导的奥氏体转变直到基体开始屈服才开始。我们提供了实验证据,这首次证明了奥氏体相变增加了加工硬化贡献σw,从而支持了驱动力方法来诱导相变塑性。所需的相变功导致基体屈服后宏观加工硬化率的提高,并继续抵消直到UTS的铁素体相和马氏体相的加工硬化率的降低。进一步地,我们有结论地表明,直到机械诱导的奥氏体转变完成,才发生马氏体屈服。马氏体发生塑性变形后,立即发生局部塑性不稳定性,从而导致该材料发生颈缩和最终破坏。

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