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Influence of addition elements on the stacking-fault energy and mechanical properties of an austenitic Fe-Mn-C steel

机译:添加元素对奥氏体Fe-Mn-C钢堆垛层错能和力学性能的影响

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We present a thermochemical model of the stacking-fault energy (SFE) in the Fe-Mn-C system with few percent of Cu, Cr, Al and Si in addition. Aluminium strongly increases the SFE, contrary to chromium, while the effect of silicon is more complex. Copper also increases the SFE, but strongly decreases the Neel temperature. The SFE is the relevant parameter that controls mechanical twinning, which is known to be at the origin of the excellent mechanical properties of these steels. Using this model, copper containing Fe-Mn-C grades were elaborated with SFE below 18 mJ/m~2, in the range where ε-martensite platelets form instead of microtwins during plastic deformation. This substitution of deformation modes, confirmed by X-ray diffraction, does not significantly damage the mechanical properties, as long as the SFE is greater than 12 mJ/m~2, which avoids the formation of α'-martensite.
机译:我们提出了Fe-Mn-C系统中的堆垛层错能(SFE)的热化学模型,其中还包含少量的Cu,Cr,Al和Si。与铬相反,铝大大提高了SFE,而硅的作用则更为复杂。铜还可以提高SFE,但会大大降低Neel温度。 SFE是控制机械孪生的相关参数,众所周知,这是这些钢卓越的机械性能的起源。使用该模型,在SFE低于18 mJ / m〜2的情况下,在塑性变形过程中形成ε-马氏体血小板而不是微孪晶的范围内,精制了含Fe-Mn-C级铜。只要SFE大于12 mJ / m〜2,通过X射线衍射证实的这种变形模式的替代不会显着损害机械性能,从而避免了α'马氏体的形成。

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