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首页> 外文期刊>Journal of Materials Science >A TRANSFORMATION TOUGHENING WHITE CAST IRON
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A TRANSFORMATION TOUGHENING WHITE CAST IRON

机译:变质强化白口铸铁

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An experimental white cast iron with the unprecedented fracture tough ness of 40 MPa m(1/2) is currently being studied to determine the mechanisms of toughening. This paper reports the investigation of the role of strain-induced martensitic (SIM) transformation. The dendritic microconstituent in the toughened alloy consists primarily of retained austenite, with precipitated M(7)C(3) carbides and some martensite. Refrigeration experiments and differential scanning calorimetry (DSC) were used to demonstrate, firstly, that this retained austenite has an ''effective'' sub-ambient M(S) temperature and, secondly, that SIM transformation can occur at ambient temperatures. Comparison between room temperature and elevated temperature K-Ic tests showed that the observed SIM produces a transformation toughening response in the alloy, contributing to, but not fully accounting for, its high tough ness. SIM as a mechanism for transformation toughening has not previously been reported for white cast irons. Microhardness traverses on crack paths and X-ray diffraction (XRD) on fracture surfaces confirmed the interpretation of the K-Ic experiments. Further DSC and quantitative XRD showed that, as heat-treatment temperature is varied, there is a correlation between fracture toughness and the volume fraction of unstable retained austenite. [References: 34]
机译:目前正在研究具有40 MPa m(1/2)前所未有的断裂韧性的实验性白口铸铁,以确定增韧机理。本文报道了应变诱导马氏体(SIM)转变的作用的研究。增韧合金中的树枝状微成分主要由残留的奥氏体组成,具有沉淀的M(7)C(3)碳化物和一些马氏体。制冷实验和差示扫描量热法(DSC)用于证明,首先,这种残留的奥氏体具有“有效”的低于M(S)的环境温度,其次,SIM转变可以在环境温度下发生。室温和高温K-Ic测试之间的比较表明,观察到的SIM在合金中产生相变增韧响应,有助于但不完全说明其高韧性。以前没有关于白铸铁的SIM作为转变增韧机制的报道。裂纹路径上的显微硬度遍历和断裂表面的X射线衍射(XRD)证实了K-Ic实验的解释。进一步的DSC和定量XRD表明,随着热处理温度的变化,断裂韧性与不稳定的残余奥氏体的体积分数之间存在相关性。 [参考:34]

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