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Dynamic Recrystallization and Hot Workability of 316LN Stainless Steel

机译:316LN不锈钢的动态再结晶和热加工性

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To identify the optimal deformation parameters for 316LN austenitic stainless steel, it is necessary to study the macroscopic deformation and the microstructural evolution behavior simultaneously in order to ascertain the relationship between the two. Isothermal uniaxial compression tests of 316LN were conducted over the temperature range of 950–1150 °C and for the strain rate range of 0.001–10 s ?1 using a Gleeble-1500 thermal-mechanical simulator. The microstructural evolution during deformation processes was investigated by studying the constitutive law and dynamic recrystallization behaviors. Dynamic recrystallization volume fraction was introduced to reveal the power dissipation during the microstructural evolution. Processing maps were developed based on the effects of various temperatures, strain rates, and strains, which suggests that power dissipation efficiency increases gradually with increasing temperature and decreasing stain rate. Optimum regimes for the hot deformation of 316LN stainless steel were revealed on conventional hot processing maps and verified effectively through the examination of the microstructure. In addition, the regimes for defects of the product were also interpreted on the conventional hot processing maps. The developed power dissipation efficiency maps allow optimized processing routes to be selected, thus enabling industry producers to effectively control forming variables to enhance practical production process efficiency.
机译:为了确定316LN奥氏体不锈钢的最佳变形参数,有必要同时研究宏观变形和微观组织演化行为,以查明两者之间的关系。使用Gleeble-1500热力机械模拟器在950-1150°C的温度范围内以及0.001-10 s?1的应变速率范围内进行了316LN的等温单轴压缩试验。通过研究本构关系和动态再结晶行为,研究了变形过程中的微观组织演变。引入动态重结晶体积分数以揭示微结构演变过程中的功率耗散。根据各种温度,应变速率和应变的影响开发了处理图,这表明功耗效率随着温度的升高和污染率的降低而逐渐增加。常规热加工图上揭示了316LN不锈钢热变形的最佳方案,并通过检查显微组织有效地加以验证。此外,在常规热加工图上还可以解释产品缺陷的状况。所开发的功率消耗效率图允许选择优化的加工路线,从而使行业生产商能够有效地控制成形变量,从而提高实际生产过程的效率。

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