Effects of oxygen content, Mn/S ratio, Cu content, hot-rolling, and annealing on morphology/distribution of MnS inclusions and microstructure/mechanical properties of free-cutting stainless steel

Jung Liang , Jyun-Hua Chang , Chun-Hway Hsueh
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Abstract

Free-cutting steel, renowned for its exceptional machinability, is susceptible to the impact of manganese sulfide (MnS) and other non-metallic inclusions on the cutting performance and mechanical properties. The composition, morphology, and distribution of these inclusions are influenced by the total oxygen content and doping elements in free-cutting steel. This study focused on three S303 free-cutting steels with different S, Mn, and Cu contents, and the as-received samples were subjected to deoxidation and oxidation remelting, respectively, using a high-vacuum arc melting furnace to control the oxygen content. Thermo-Calc simulations were employed to predict the phases and phase proportions under different processing conditions and to compare with measurements. While the oxygen content was found to subtly affect the distribution and morphology of MnS inclusions, the Mn/S ratio notably affected the size and quantity of MnS inclusions, consequently impacting the mechanical properties of the steel. Higher Cu contents resulted in Cu segregates in the matrix but did not exist in MnS or form CuO; however, it significantly reduced strain hardening. Comparisons between hot-rolled and annealed samples revealed that the most significant changes in mechanical properties resulted from the release of residual stresses. In nanoindentation tests, it was observed that the hardness of MnS inclusion was influenced mainly by residual stresses not doping elements.

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氧含量、Mn/S 比值、铜含量、热轧和退火对易切削不锈钢中 MnS 夹杂的形态/分布以及微观结构/机械性能的影响
易切削钢以其优异的切削性能而闻名,但硫化锰(MnS)和其他非金属夹杂物很容易对其切削性能和机械性能产生影响。这些夹杂物的成分、形态和分布受易切削钢中总氧含量和掺杂元素的影响。本研究主要针对三种具有不同 S、Mn 和 Cu 含量的 S303 易切削钢,利用高真空电弧熔炼炉控制氧含量,分别对原样进行脱氧和氧化重熔。采用 Thermo-Calc 模拟来预测不同加工条件下的相和相比例,并与测量结果进行比较。研究发现,氧含量会微妙地影响 MnS 包裹体的分布和形态,而 Mn/S 比率则会显著影响 MnS 包裹体的大小和数量,从而影响钢的机械性能。较高的铜含量会导致基体中出现铜偏析,但不会存在于 MnS 中或形成 CuO;不过,铜含量会显著降低应变硬化。对热轧和退火样品进行比较后发现,机械性能的最大变化来自于残余应力的释放。在纳米压痕测试中观察到,MnS 杂质的硬度主要受残余应力而非掺杂元素的影响。
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