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Understanding Microstructural Evolution During Rapid Heat Treatment of Microalloyed Steels Through Computational Modeling, Advanced Physical Simulation, and Multiscale Characterization Techniques

机译:了解通过计算建模,先进的物理模拟和多尺度表征技术在微合金钢的快速热处理过程中的微观结构演变

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摘要

An AISI 1045 steel modified with vanadium (V) and niobium (Nb) was studied to evaluate microstructural conditioning prior to and throughout a rapid heat treat process. In order to accomplish this, both computational and physical simulation techniques have been employed with the goal of assessing the microstructural evolution in a medium-carbon bar steel during the rapid austenitization and quenching procedures involved in an induction hardening process. The appropriate thermal profiles for induction hardening were obtained through finite element modeling using Flux 2D software. Physical simulations of the induction hardening process were carried out using a Gleeble (R) 3500. Analysis of prior austenite grain size is complemented by observation of nanoscale carbonitride precipitation via transmission electron microscopy, scanning transmission electron microscopy, and high-energy synchrotron small-angle x-ray scattering. Through a combination of characterization techniques, this study presents a deeper understanding of nano- and microstructural changes occurring in a microalloyed steel during an induction hardening process.
机译:研究了用钒(V)和铌(NB)改性的AISI 1045钢,以在快速热处理过程之前评估微观结构调理。为了实现这一点,已经采用了计算和物理仿真技术的目的是在涉及感应硬化过程中涉及的快速奥氏化和淬火程序期间评估中碳条钢中的微观结构演化。通过使用磁通2D软件通过有限元建模获得用于感应硬化的适当热谱。使用GLEEBLE3500进行感应硬化过程的物理模拟。通过透射电子显微镜,扫描透射电子显微镜和高能量同步的小角度观察纳米级碳氮化物沉淀和高能量同步X射线散射。通过表征技术的组合,该研究介绍了在感应硬化过程中在微合金钢中发生的纳米和微观结构变化的更深理解。

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