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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Microstructural Evolution of Thor (TM) 115 Creep-Strength Enhanced Ferritic Steel
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Microstructural Evolution of Thor (TM) 115 Creep-Strength Enhanced Ferritic Steel

机译:Thor(TM)115蠕变强度增强铁素体钢的微观结构演化

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摘要

A new ferritic steel branded as Thor (TM) 115 has been developed to enhance high-temperature resistance. The steel design combines an improved oxidation resistance with long-term microstructural stability. The new alloy, cast to different product forms such as plates and tubes, was extensively tested to assess the high-temperature time-dependent mechanical behavior (creep). The main strengthening mechanism is precipitation hardening by finely dispersed carbide and nitride phases. Information on the evolution of secondary phases and time-temperature-precipitation behavior of the alloy, essential to ensure long-term property stability, was obtained by scanning transmission electron microscopy with energy dispersive spectroscopy, and by X-ray Powder Diffraction on specimens aged up to 50,000 hours. A thermodynamic modeling supports presentation and evaluation of the experimental results. The evolution of precipitates in the new alloy confirms the retention of the strengthening by secondary phases, even after long-term exposure at high temperature. The deleterious conversion of nitrides into Z phase is shown to be in line with, or even slower than that of the comparable ASME grade 91 steel. (C) The Minerals, Metals & Materials Society and ASM International 2017
机译:已开发出作为雷神(TM)115的新铁素体钢,以提高高耐温性。钢设计结合了具有长期微观结构稳定性的改善的抗氧化性。广泛测试新合金,以不同的产品形式,如板和管,以评估高温时间依赖性机械行为(蠕变)。主要的强化机制是通过细散的碳化物和氮化物相的沉淀硬化。有关合金的二次相和时间温度沉淀行为的信息,通过扫描透射电子显微镜与能量分散光谱法,并通过X射线粉末衍射在上升的样本上获得到50,000个小时。热力学建模支持介绍和评估实验结果。新合金中沉淀物的进化证实通过次级阶段的增强的保留,即使在高温下长期暴露后也是如此。将氮化物转化为Z相的有害转化,显示与比较的ASME级91钢的较慢甚至慢。 (c)2017年矿物质,金属和材料协会和ASM国际

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