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Thermal Stability of Retained Austenite in Advanced TRIP Steel with Bainitic Ferrite Matrix for Automotive Industries

机译:具有汽车行业贝氏体铁氧体矩阵的先进跳闸保留奥氏体的热稳定性

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Multiphase steels consisting of retained austenite and martensite/bainite microstructures such as TRIP, low-temperature-bainite, and Q&P steels are attractive candidates for the new-generation of AHSS. These steels exhibit a remarkable combination of strength and toughness which is essential to meet the objective of weight reduction of engineering-components, while maintaining the compromise of tough-safety requirements. Such good mechanical properties are due to the enhanced work hardening rate caused by austenite-to-martensite transformation during deformation and the strengthening contribution of martensite/bainite. The retained austenite can thermally decompose into more thermodynamically stable phases as a consequence of temperature changes, which is referred to as the thermal stability of retained austenite. TRIP-aided steel is an effective candidate for automotive parts because of safety and weight reduction requirements. The strength-ductility balance of high strength steel sheets can be remarkably improved by using transformation induced plasticity behavior of retained austenite. In manufacturing hot rolled TRIP-aided sheet steels, austenite transforms into bainite during the coiling process. Because black hot coils cool slowly after the coiling process, they are exposed at about 350-450°C for a few hours or days. Therefore, the metastable residual austenite can be decomposed into other phases. This decomposition of residual austenite can produce serious deteriorate of mechanical properties in hot rolled TRIP-aided sheet steels. The present work identified the decomposition behavior and study the thermal stability of retained austenite in the TRIP-aided steel with bainitic/ferrite matrix depending on coiling temperatures and holding times by means of DSC and XRD analysis.
机译:由保留的奥氏体和马氏体/贝氏体微观结构组成的多相钢,如绊倒,低温 - 贝氏体和Q&P钢是有吸引力的新一代AHSS的候选者。这些钢具有显着的强度和韧性结合,这对于满足工程部件的重量减轻的目标是必不可少的,同时保持艰难安全要求的折衷。这种良好的机械性能是由于在变形过程中奥氏体 - 马氏体转化和Martensite / Bainite的强化贡献引起的增强的工作化硬化率。由于温度变化,保留的奥氏体可以热分解成更热力学稳定的阶段,这被称为保留奥氏体的热稳定性。旅行辅助钢是汽车部件的有效候选者,因为安全性和减轻重量要求。通过使用保留的奥氏体的转化诱导的塑性行为,可以显着提高高强度钢板的强度 - 延展性平衡。在制造热轧跳闸辅助板钢中,奥氏体在卷绕过程中转化为贝氏体。由于黑色热圈在卷取过程后凉爽缓慢,因此它们暴露在约350-450℃下几个小时或天。因此,亚稳定的残余奥氏体可以分解成其他阶段。这种残留奥氏体的分解可以在热轧跳闸钢管钢中产生严重的机械性能劣化。本作本工作确定了分解行为,并在通过DSC和XRD分析的情况下,用贝氏体/铁氧体基质与贝氏体/铁氧体基质在跳动辅助钢中的热稳定性。

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