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The Effect of Initial Microstructure on Surface Nanocrystallization of Quenched and Tempered Steel

机译:初始微观结构对淬火和钢化钢表面纳米晶化的影响

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Nanocrystalline surface layer was fabricated on a quenched and tempered Cr-Si alloy steel by using Surface mechanical treatment. The microstructure features of various sections in the surface layer were characterized by using transmission electron microscopy (TEM). By analyzing the microstructural characteristic at different depths in the treated surface, the effect of the initial microstructures on grain refinement process of quenched and tempered steel was investigated. Experimental evidence showed the initial subgrains with small angle boundary and lower dislocation density were firstly developed into Lamellar-type dislocation cells (DCs) with dense dislocation walls (DDWs). Some initial subboundaries were moved to DDWs by dislocation activities. The width of lamellar-type DCs was 2-3 times of that of initial lathy subgrains. The size of the DCs and subgrains formed in the interim of refinement process was not uniformity. On the top surface the cementite granules were decomposed or fragmented to hyperfine particles, and the size of the grains tended to uniformity. Experimental analysis indicated the configuration of microstructure was affect by the initial microstructure in the initial stage and the interim of the grain refinement process. Surface nanocrystallization of Cr-Si steel can be attributed to dislocation activities.
机译:通过使用表面机械处理在淬火和回火的CR-Si合金钢上制造纳米晶表面层。通过使用透射电子显微镜(TEM)表征表面层中各个部分的微观结构特征。通过分析处理表面中不同深度的微观结构特性,研究了初始微观结构对淬火和钢化钢的晶粒细化过程的影响。实验证据表明,具有小角度边界的初始亚域,并且首先将具有致密脱位壁(DDWS)的层状型位错细胞(DCS)开发出较低的位错密度。一些初始亚派对通过错位活动将其移至DDWS。层层型DC的宽度为初始损伤亚中草的2-3倍。在细化过程中期形成的DC和子化的大小并不均匀。在顶表面上,渗碳盐颗粒分解或碎片化为高血清颗粒,并且颗粒的尺寸趋于均匀。实验分析表明,通过初始阶段和晶粒细化过程中的初始微观结构的微观结构的构造是影响。 CR-Si钢的表面纳米晶体可以归因于位错活动。

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