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475°C Embrittlement of Duplex Stainless Steel - A Comprehensive Microstructure Characterization Study

机译:双相不锈钢475°C脆化 - 综合微观结构表征研究

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摘要

The effect of 475°C embrittlement on microstructure development of grade 2205 duplex stainless steel has been investigated. Spinodal decomposition products and associated precipitates in ferrite, austenite, and at interphase boundaries were characterized using analytical Transmission Electron Microscopy (TEM) and Scanning Electron Microscopy (SEM) techniques. Micro-analyses confirmed the presence of Cr-enriched α′′ and Cr-depleted α′ spinodal structures in the ferrite after 5 hours of aging at 475°C. Long-term aging for 255 hours resulted in heavily-faulted R-phase precipitates with sizes of ~50 – 400 nm, χ-phase, and ε-Cu in the ferrite, TiN and Cr2N precipitates in the austenite, and a continuous network of M23C6-carbides at interphase boundaries. A significant hardness increase was observed after 255 hours of aging, which was accompanied by a reduction of ferrite fraction. X-ray diffraction (XRD) stress measurements showed a general reduction of residual stresses in both ferrite and austenite with aging. Electron Backscatter Diffraction (EBSD) showed increased local misorientations, primarily close to precipitate interfaces within the ferrite, indicating the development of strain heterogeneities in the microstructure. The data presented provides a better understanding of 475°C embrittlement in duplex stainless steel, suggesting that not only the ferrite alone is responsible for embrittlement. A comprehensive microstructure characterization study has been provided and the explanation for 475°C embrittlement of duplex stainless steel has been discussed.
机译:研究了475°C脆化对2205级双相不锈钢显微组织发展的影响。使用分析型透射电子显微镜(TEM)和扫描电子显微镜(SEM)技术对铁素体,奥氏体中和相间边界处的旋节线分解产物和相关的沉淀物进行了表征。微观分析证实在475°C老化5小时后,铁素体中存在富Cr的α''和贫Cr的α'旋节线结构。长期老化255小时会导致严重断裂的R相析出物,铁素体的尺寸约为50-400 nm,χ相和ε-Cu,奥氏体中的TiN和Cr2N析出物,以及M23C6-碳化物在相间边界处。 255小时的时效后,硬度显着提高,同时铁素体含量降低。 X射线衍射(XRD)应力测量结果显示,随着时效,铁素体和奥氏体中的残余应力普遍降低。电子背散射衍射(EBSD)显示出局部取向错误的增加,主要靠近铁素体中的沉淀界面,这表明微观结构中应变异质性的发展。给出的数据更好地理解了双相不锈钢中475°C的脆化,表明不仅铁素体是造成脆化的原因。提供了全面的微观结构表征研究,并讨论了双相不锈钢在475°C脆化的原因。

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