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A simulation study of pearlite-to-austenite transformation kinetics in rapidly heated hot-rolled low carbon steel

机译:快速加热的热轧低碳钢中珠光体-奥氏体转变动力学的模拟研究

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摘要

The main aim of the present research was to obtain an optimized microstructure with adequate mechanical properties in a low carbon steel. The effect of microstructure on kinetics of austenite transformation was simulated. A 3.2 mm hot rolled steel was subjected to continuous annealing to obtain properties of Dual Phase 590 grade. Kinetics of austenite transformation was studied with respect to the condition of just pearlite dissolution to form austenite under rapid heating. Annealing parameters were based on process conditions of dual phase steel production in a continuous annealing line. DICTRA was used to simulate heating rates of the order 10-500 degrees C/s with peak temperatures in the range 750-850 degrees C to predict isothermal annealing time required for complete dissolution of pearlite into austenite under different temperature-heating rate conditions. Simulation results showed dependency of temperature and heating rate on austenite transformation time. Interestingly, no significant effect of heating rate on complete pearlite dissolution into austenite was evident. Results were validated with limited experimentation on Gleeble. Microstructure analysis validated the simulation results to be accurate. The observations have pertinent inputs while designing industrial continuous annealing line parameters where rapid heating rates are generally encountered (10-20 degrees C/s). (C) 2016 Elsevier Ltd. All rights reserved.
机译:本研究的主要目的是在低碳钢中获得具有适当机械性能的优化显微组织。模拟了微观结构对奥氏体转变动力学的影响。将3.2 mm热轧钢进行连续退火以获得双相590级的性能。针对在快速加热下仅珠光体溶解形成奥氏体的条件下,研究了奥氏体转变的动力学。退火参数基于连续退火生产线中双相钢生产的工艺条件。使用DICTRA模拟峰值温度在750-850摄氏度范围内的10-500摄氏度/秒量级的升温速率,以预测在不同的升温温度条件下珠光体完全溶解到奥氏体中所需的等温退火时间。仿真结果表明温度和加热速率与奥氏体转变时间有关。有趣的是,升温速率对珠光体完全溶解到奥氏体中没有明显的影响。结果在有限的Gleeble实验上得到了验证。微结构分析验证了仿真结果的准确性。在设计通常会遇到快速加热速率(10-20摄氏度/秒)的工业连续退火生产线参数时,这些观察值具有相关的输入。 (C)2016 Elsevier Ltd.保留所有权利。

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