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Microstructure and fatigue behavior of a laser additive manufactured 12CrNi2 low alloy steel

机译:激光添加剂制造的12CrNi2低合金钢的组织和疲劳行为

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In this research, 12CrNi2 low alloy steel was successfully prepared by laser melting deposition (LMD). The mechanisms driving high cycle fatigue fracture of the as-built LMD 12CrNi2 low alloy steel were investigated and a concurrent process-microstructure-property relationship was established through microstructural analysis. The results showed that the crystal structures of the as-built LMD 12CrNi2 steel mainly consisted of the ferrite and a small amount of Cr_(23)C_6 carbides. No preferred texture was observed as a result of the complicated heat flux direction during fabrication. Based on the examination of the fracture surface, fatigue cracks of the as-built LMD 12CrNi2 steel initiated from subsurface defects for all the cases. Crack propagation zones showed a mixed mode of transgranular and intergranular fracture in a brittle manner, whereas the final fracture zones displayed dimples typical of ductile fracture. The kernel average misorientation (KAM) map indicated that the strain localization predominantly occurred at the grain boundaries and slightly appeared at the interior of the ferrite grains. Schmid factor distribution results implied that fatigue cracks originated from grains with {123}<111> slip system due to the prior activation of{123}<111> slip system.
机译:在这项研究中,通过激光熔融沉积(LMD)成功地制备了12CrNi2低合金钢。研究了铸态LMD 12CrNi2低合金钢高周疲劳断裂的机理,并通过微观结构分析建立了工艺-组织-性能的并存关系。结果表明,LMD 12CrNi2钢的晶体结构主要由铁素体和少量的Cr_(23)C_6碳化物组成。由于制造期间复杂的热通量方向,未观察到优选的织构。基于断裂表面的检查,在所有情况下,LMD 12CrNi2铸钢的疲劳裂纹都是由表面缺陷引起的。裂纹扩展区以脆性方式呈现出跨晶和晶间断裂的混合模式,而最终的断裂区显示出韧性断裂典型的凹痕。核平均取向差(KAM)图表明,应变局部化主要发生在晶界,而在铁素体晶粒内部则很少出现。施密特因子分布结果表明,由于{123} <111>滑移系统的事先激活,疲劳裂纹源自具有{123} <111>滑移系统的晶粒。

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