AbstractThis paper presents the details on the development of a processing map from the isothermal com'/> Optimization of Hot Workability and Control of Microstructure in CF250 Grade Cobalt-Free Maraging Steel: An Approach Using Processing Maps
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Optimization of Hot Workability and Control of Microstructure in CF250 Grade Cobalt-Free Maraging Steel: An Approach Using Processing Maps

机译:CF250级钴游行钢中微观结构热可加工性的优化:一种使用加工地图的方法

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AbstractThis paper presents the details on the development of a processing map from the isothermal compression test results of cobalt-free (CF250 grade) maraging steel over a wide range of temperature (900–1200?°C) and strain rate (0.001–100?s?1). Processing maps identifying ‘stable’ and ‘unstable’ regions during hot working were developed. Two safe processing windows with high efficiency of power dissipation and strain rate sensitivity can be noticed in the power dissipation and maps of strain rate sensitivity parameter at low strain rates (10?3?s?1). However, a stable higher strain rate processing window occurring in the temperature range of 1050–1150?°C and strain rate range of 101–102can be used for increased productivity. Based on the high values of the efficiency of power dissipation, microstructural observations, and EBSD results, dynamic recrystallisation was found to be the softening mechanism occurring in this material. The measured flow stress data were used for the development of constitutive model for hot deformation behavior of this alloy. The activation energy for deformation of CF250 maraging steel was calculated to be 458.8?kJ?mol?1.]]>
机译:?1 )上。开发了在热工作中识别“稳定”和“不稳定”区域的处理地图。在低应变速率下的功耗和应变速率敏感度高效率和应变速率灵敏度高效率的安全处理窗口(10 <上标>?3 ?S <上标>?1 )。然而,在1050-1150Ω°C的温度范围内发生稳定的较高应变速率处理窗口和10 <上标> 1 -10 <上标> 2 的应变速率范围内生产率。基于功率耗散效率,微观结构观察和EBSD结果的高值,发现动态重结晶是该材料中发生的软化机理。测量的流量应力数据用于该合金的热变形行为的组成型模型的发展。计算CF250乘积钢的变形的激活能量为458.8Ω·kj?mol <上标>?1 ]]>

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