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Effect of Cooling and Isothermal Holding on the Amount of Martensite/Austenite (MIA) Constituents, Microstructure and Mechanical Properties of Microalloyed Pipeline Steel

机译:冷却和等温保温对微合金管线钢中马氏体/奥氏体(MIA)含量,组织和力学性能的影响

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摘要

Constant increase of energy consumption in modern industry requires construction of heavily loaded pipelines with high throughput capacity. Therefore, high-strength steels should be used for the cost reasons. Additionally, the pipelines are also often used in the areas with cold climate and high seismicity. Therefore, strength and plasticity reduction is unacceptable. Bainitic steels with retained austenite (RA) or martensite/austenite (M/A) constituents meet these requirements. The purpose of this investigation is to determine thermo-mechanical treatment parameters with further accelerated cooling and additional isothermal holding for M/A-phase and mechanical properties formation. Experimental modeling of the production process was carried out using Gleeble HDS-V40 thermo-mechanical simulator. All investigations were realized with two high-strength micro-alloyed steels with different molybdenum and carbon content. Results showed that decrease of temperature and duration of isothermal holding as well as addition of molybdenum promote bainitic microstructure nucleation and reduce grain size and M/A-constituents. All these factors lead to a slight improvement in mechanical properties.
机译:在现代工业中,能源消耗的不断增加要求建造具有高吞吐能力的重载管道。因此,出于成本原因,应使用高强度钢。此外,这些管道还经常用于寒冷气候和高地震活动性地区。因此,强度和塑性降低是不可接受的。具有残留奥氏体(RA)或马氏体/奥氏体(M / A)成分的贝氏体钢满足这些要求。这项研究的目的是通过进一步加速冷却和附加的等温保持来确定M / A相和形成机械性能的热机械处理参数。使用Gleeble HDS-V40热力机械模拟器对生产过程进行了实验建模。所有的研究都是使用两种钼和碳含量不同的高强度微合金钢完成的。结果表明,降低温度和保持等温的时间以及添加钼可促进贝氏体微结构成核,并减小晶粒尺寸和M / A成分。所有这些因素导致机械性能略有改善。

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