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Experimental Study of the Micromechanical Behaviour of Duplex Stainless Steel SAF 2507 and the Influence of Nitrogen Content

机译:双相不锈钢SAF 2507的微观力学行为及氮含量影响的实验研究

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The deformation behaviour of four super duplex stainless steels of the grade SAF 2507 (UNS S32750) were studied by X-ray diffraction experiment with in-situ uniaxial tensile load. The steels had different nitrogen contents, between 0.2 and 0.33%, and/or different volume fractions of the ferrite, between 37% and 49%, in balance with austenite. The development of phase-specific stresses under external loading up to over 10% tensile strain was followed. The X-ray diffraction measurements revealed that load partitioning between the phases changed with increasing applied load, as the ferrite and austenite exhibited different deformation hardening behaviours. At the onset of macroscopic yielding and low plastic strains, a load transfer from y to a occurred due to higher yield strength and strain hardening rate of the ferrite but vice versa at larger plastic strains when the austenite hardened more rapidly than the ferrite. It was also concluded that both the yield and tensile strengthen of the steels increased with increasing nitrogen content due to increased strengthen of the austenite by additional solid solution hardening, whereas a higher volume fraction of austenite contributed to higher tensile strength.
机译:通过X射线衍射实验研究了四种SAF 2507(UNS S32750)级超级双相不锈钢的变形行为。这些钢具有不同的氮含量(介于0.2和0.33%之间),和/或不同的铁素体体积分数(介于37%和49%之间),以及与奥氏体的平衡。跟踪了在高达10%的拉伸应变的外部载荷下相比应力的发展情况。 X射线衍射测量表明,相之间的载荷分配随着施加载荷的增加而变化,因为铁素体和奥氏体表现出不同的变形硬化行为。在宏观屈服和低塑性应变开始时,由于铁素体的更高的屈服强度和应变硬化速率,导致了从y到a的载荷转移,反之亦然,当较大的塑性应变时,奥氏体比铁素体的固化更快。还得出结论,钢的屈服强度和拉伸强度都随着氮含量的增加而增加,这归因于通过额外的固溶硬化而增加了奥氏体的强度,而更高的奥氏体体积分数则导致了更高的拉伸强度。

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