首页> 外文期刊>International Journal of Minerals,Metallurgy and Materials >Effect of hot-dip galvanizing processes on the microstructure and mechanical properties of 600-MPa hot-dip galvanized dual-phase steel
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Effect of hot-dip galvanizing processes on the microstructure and mechanical properties of 600-MPa hot-dip galvanized dual-phase steel

机译:热浸镀锌工艺对600MPa热浸镀锌双相钢微观结构和机械性能的影响

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A C-Mn dual-phase steel was soaked at 800A degrees C for 90 s and then either rapidly cooled to 450A degrees C and held for 30 s (process A) or rapidly cooled to 350A degrees C and then reheated to 450A degrees C (process B) to simulate the hot-dip galvanizing process. The influence of the hot-dip galvanizing process on the microstructure and mechanical properties of 600-MPa hot-dip galvanized dual-phase steel (DP600) was investigated using optical microscopy, scanning electron microscopy (SEM), transmission electron microscopy (TEM), and tensile tests. The results showed that, in the case of process A, the microstructure of DP600 was composed of ferrite, martensite, and a small amount of bainite. The granular bainite was formed in the hot-dip galvanizing stage, and martensite islands were formed in the final cooling stage after hot-dip galvanizing. By contrast, in the case of process B, the microstructure of the DP600 was composed of ferrite, martensite, bainite, and cementite. In addition, compared with the yield strength (YS) of the DP600 annealed by process A, that for the DP600 annealed by process B increased by approximately 50 MPa because of the tempering of the martensite formed during rapid cooling. The work-hardening coefficient (n value) of the DP600 steel annealed by process B clearly decreased because the increase of the YS affected the computation result for the n value. However, the ultimate tensile strength (UTS) and elongation (A (80)) of the DP600 annealed by process B exhibited less variation compared with those of the DP600 annealed by process A. Therefore, DP600 with excellent comprehensive mechanical properties (YS = 362 MPa, UTS = 638 MPa, A (80) = 24.3%, n = 0.17) was obtained via process A.
机译:将C-Mn双相钢浸泡在800A的C℃下90秒,然后快速冷却至450A℃并保持30s(工艺a)或快速冷却至350A℃,然后将其重新加热至450A℃(过程B)模拟热浸镀锌过程。采用光学显微镜,扫描电子显微镜(SEM),透射电子显微镜(TEM)研究了热浸镀锌过程对600MPa热浸镀锌双相钢(DP600)的微观结构和机械性能的影响。和拉伸试验。结果表明,在工艺A的情况下,DP600的微观结构由铁氧体,马氏体和少量贝氏体组成。在热浸镀锌阶段形成粒状贝氏体,在热浸镀锌后,在最终冷却阶段形成马氏体岛。相反,在方法B的情况下,DP600的微观结构由铁素体,马氏体,贝氏体和渗碳物组成。另外,与方法A退火的DP600的屈服强度(ys)相比,由于在快速冷却过程中形成的马氏体的回火,由工艺B退火的DP600的屈服强度(Ys)增加了约50MPa。通过过程B退火的DP600钢的工作硬化系数(N值)显然降低,因为YS的增加影响了N值的计算结果。然而,与方法A退火的DP600退火的DP600的最终拉伸强度(UTS)和伸长率(a(80))呈现较少的变化,与通过工艺A退火的DP600相比。因此,DP600具有出色的综合机械性能(YS = 362 MPA,UTS = 638MPa,a(80)= 24.3%,N = 0.17)通过工艺A获得。

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