首页> 外文会议>International Conference on Processing amp; Manufacturing of Advanced Materials; 20060704-08; Vancouver(CA) >Improvement in Creep Strength of Heat-Resistant Ferritic Steel Precipitation-Strengthened by lntermetallic Compound
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Improvement in Creep Strength of Heat-Resistant Ferritic Steel Precipitation-Strengthened by lntermetallic Compound

机译:金属间化合物强化的耐热铁素体钢的蠕变强度提高

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The effects of nickel content and heat treatment conditions on the creep strength of precipitation-strengthened 15Cr ferritic steel were investigated. The creep strength of the 15Cr ferritic steel was drastically improved by solution treatment and water quenching. However, over the long term, the detrimental effect of nickel on the creep strength was pronounced for water-quenched steels. The volume fraction of martensite phase increased with increased nickel content in both the furnace-cooled and water-quenched steels. The volume fraction of martensite phase in the water-quenched steel was smaller than that in the furnace-cooled type, even for the same nickel content. Fine particles, smaller than 500 nm, were precipitated homogeneously within the ferrite phase of the water-quenched steel. On the other hand, coarse block-like particles 1 μm in size were precipitated sparsely within the martensite phase. The creep strength of the steels decreased with increased volume fraction of the martensite phase caused by furnace cooling and nickel addition. The lower creep strength and microstructural stability of the martensite phase is attributable to less precipitation strengthening. To enable this steel to be put to practical use, it will be necessary to suppress the formation of the martensite phase caused by addition of nickel by optimizing the chemical composition and heat treatment conditions.
机译:研究了镍含量和热处理条件对析出强化15Cr铁素体钢蠕变强度的影响。通过固溶处理和水淬处理,极大地提高了15Cr铁素体钢的蠕变强度。但是,从长远来看,对于水淬钢,镍对蠕变强度的有害影响是明显的。在炉冷和水淬钢中,马氏体相的体积分数随镍含量的增加而增加。即使在相同的镍含量下,水淬钢中的马氏体相的体积分数也小于炉冷型中的马氏体相的体积分数。小于500 nm的细颗粒均匀地沉淀在水淬钢的铁素体相中。另一方面,在马氏体相内稀疏地析出了1μm大小的粗块状的粒子。钢的蠕变强度随炉冷却和添加镍而随马氏体相体积分数的增加而降低。马氏体相的较低的蠕变强度和微观结构稳定性归因于较少的沉淀强化。为了使这种钢投入实际使用,有必要通过优化化学成分和热处理条件来抑制因添加镍而引起的马氏体相的形成。

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