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Ultra-fine Grain Size by Dynamic Recrystallization in Strip Rolling of Nb Microalloyed Steel

机译:通过动态重结晶在Nb微合金钢的带状轧制中的超细晶粒尺寸

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The design of base chemistry and optimization of rolling schedule are the two important factors that influence large strain accumulation in multi-pass rolling in order to obtain ultra-fine grain size by dynamic recrystallization. A base chemistry of 0.03C-0.003N-0.08Nb-0.015Ti-1.8Mn (all in weight percent) of HTP steel design was chosen in order to control the time evolution of strain induced precipitation of NbC and the strain accumulation through precipitate interaction with recovery and recrystallization at short inter-pass times characteristic of strip rolling. Experimental data on the critical strain for static and dynamic recrystallisation for HTP steel are used in a quantitative model to predict strain accumulation pass by pass and to achieve grain refinement by dynamic recrystallisation through large strain accumulation. The model is used to optimize the time-temperature-deformation schedule to prevent static recrystallization during the inter-pass times and to target ultra-fine grain size through dynamic recrystallization by large strain accumulation. The model predictions are validated by simulation of strip rolling of HTP steel on the thermo-mechanical simulator (WUMSI) to obtain a uniform ultra-fine ferrite grain size of about 1.5 micrometer diameter in final ferrite microstructure.
机译:基础化学和轧制时间表的优化的设计是影响多通轧制的大应变积累的两个重要因素,以便通过动态再结晶获得超细粒度。选择0.03℃-1003N-0.08NB-0.015Ti-1.8mN-0.015Ti-1.8mn(全部重量百分比)的基础化学,以控制应变诱导Nbc沉淀的时间演变和通过沉淀相互作用的应变积累随着条带轧制的短程特性的恢复和重结晶。用于HTP钢的静态和动态重结晶的临界应变的实验数据用于定量模型,以通过通过大应变累积来预测应变累积通过并通过大应变累积来实现晶粒细化。该模型用于优化时间 - 温度变形调度,以防止在间际时次间隙期间静态重结晶,并通过大应变累积通过动态再结晶靶向超细晶粒尺寸。通过在热机械模拟器(WUMSI)上的HTP钢带轧制仿真验证了模型预测,以获得最终铁氧体微观结构的均匀超细铁氧体晶粒尺寸为约1.5微米的直径。

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