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Isothermal precipitation kinetics of carbides in undercooled austenite and ferrite of a titanium microalloyed steel

机译:钛微合金钢过冷奥氏体和铁素体中碳化物的等温析出动力学

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A new method for isothermal precipitation kinetics of carbides in undercooled austenite and ferrite has been established based on measuring the strength increments. Precipitation-time-temperature (PIT) diagrams of carbides were determined with this method performed on a Gleeble simulator, for a low-carbon titanium microalloyed steel in a temperature range from 530 degrees C to 670 degrees C. Fine precipitates were studied by using high resolution transmission electron microscope (HRTEM), and their volume fractions together with their attributions to strength increments were calculated and analyzed. Results show that the strength increments are mainly attributed to the Wee. interphase precipitation whose nano-scale TiC precipitates obey the Baker-Nutting orientation relationship with respect to the ferrite matrix: (100)(TiC) parallel to (100)(alpha-Fe) and [011](TiC) parallel to [001](alpha-Fe). The PIT curves obtained have a classic C-shape with their noses at about 600 degrees C, where the strength increment reaches 114 MPa after isothermally holding for 1 h. Additionally, the corresponding precipitation kinetics curves are presented in an S-shape, and a modified form of Avrami formula is introduced to describe their growth periods. The presented mathematical expression fits the experimental data quite well. Consequently, the proposed new method is intuitive, effective and convenient, particularly suitable for detecting the precipitation kinetics in low temperature range. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在测量强度增加的基础上,建立了一种过冷奥氏体和铁素体中碳化物等温析出动力学的新方法。对于在530℃至670℃温度范围内的低碳钛微合金钢,使用在Gleeble仿真器上执行的此方法确定了碳化物的沉淀时间-温度(PIT)图。分辨率透射电子显微镜(HRTEM),并计算和分析了它们的体积分数以及它们对强度增加的贡献。结果表明,强度增加主要归因于Wee。纳米级TiC析出的相间析出服从相对于铁素体基体的Baker-Nutting取向关系:平行于(100)(α-Fe)的(100)(TiC)和平行于[001]的[011](TiC) (α-Fe)。所获得的PIT曲线具有经典的C形,其鼻子在大约600摄氏度,等温保持1小时后强度增加达到114 MPa。此外,相应的降水动力学曲线以S形呈现,并引入了Avrami公式的修改形式来描述其生长期。提出的数学表达式非常符合实验数据。因此,所提出的新方法直观,有效且方便,特别适合于在低温范围内检测沉淀动力学。 (C)2016 Elsevier Ltd.保留所有权利。

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