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The significant role of heating rate on reverse transformation and coordinated straining behavior in a cold-rolled austenitic stainless steel

机译:加热速率对冷轧奥氏体不锈钢的逆相变和协调应变行为的重要作用

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The effect of heating rate on the mechanism of reverse transformation from martensite to austenite during continuous heating process was studied in a cold-rolled 304 stainless steel, and the corresponding mechanical properties were analyzed. It indicated that the reverse transformation occurred diffusionally at slow heating rate range (< 10 °C/s). However, rapid heating rates (> 40 °C/s) resulted the reverse transformation to occur via martensitic shear-type. At medium heating rates (10–40 °C/s), the reversion mechanism gradually changed from diffusional to shear-type. The diffusional reversed austenite was characterized by equiaxed, defect-free, nano/ultrafine grains with grain size of 100–500 nm, while the martensitic shear-type reversed austenite exhibited lath-type/banded grains with high defects density. At 100 °C/s, an excellent combination of high-strength and high-ductility with significant work hardening ability was obtained. Moreover, the product of strength and ductility was enhanced over three times from 11.14 GPa (at 2 °C/s) to 35.78 GPa (at 100 °C/s). The strain gradient due to the heterostructure, the glide of preexisting mobile dislocations and the controlled release from TRIP effect contributed to the improved mechanical properties. The study also indicated that reversion mechanism had no effect on austenite texture.
机译:研究了冷轧304不锈钢在连续加热过程中升温速率对马氏体向奥氏体逆相变机理的影响,并分析了相应的力学性能。这表明逆相变在缓慢的升温速率范围(<10 C / s)下发生扩散。然而,快速的加热速度(> 40°C / s)导致通过马氏体剪切型发生了反向转变。在中等加热速率(10–40°C / s)下,回复机制逐渐从扩散型变为剪切型。扩散反向奥氏体的特征在于晶粒尺寸为100-500nm的等轴,无缺陷的纳米/超细晶粒,而马氏体剪切型反向奥氏体表现出板条型/带状晶粒,且缺陷密度高。在100°C / s下,获得了高强度和高延展性以及显着的加工硬化能力的出色组合。此外,强度和延展性的乘积从11.14 GPa(在2 C / s下)提高到35.78 GPa(在100 C / s下)三倍。由于异质结构,先前存在的移动位错的滑移和TRIP效应的受控释放而引起的应变梯度有助于改善机械性能。研究还表明,回复机制对奥氏体组织没有影响。

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