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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Influence of the Initial Microstructure on the Reverse Transformation Kinetics and Microstructural Evolution in Transformation-Induced Plasticity-Assisted Steel
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Influence of the Initial Microstructure on the Reverse Transformation Kinetics and Microstructural Evolution in Transformation-Induced Plasticity-Assisted Steel

机译:初始微观结构对转化诱导塑性辅助钢反转变换动力学和微观结构演化的影响

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摘要

The reverse transformation behavior upon heating to intercritical temperature was studied in Fe-0.21C-2.2Mn-1.5Si (wt pct) alloy with three initial microstructures. One is the cold-rolled (CR) structure and two others are martensite having different fractions of retained austenite. The CR structure exhibits slower reverse transformation kinetics than martensite due to the lesser population of potent nucleation sites and coarse cementite particles. The film type of retained austenite at the martensite lath boundary contributes to the earlier start of the reverse transformation, because it can proceed as the growth of pre-existing retained austenite, which makes the nucleation process less critical. Besides, the growth of interlath austenite plays an essential role in the evolution of fine lath-type reverse-transformed microstructure, which was difficult to obtain from similar initial microstructures of martensite having negligible fraction of interlath austenite.
机译:在Fe-0.21C-2.2Mn-1.5Si(WT PCT)合金中,研究了加热到跨临界温度时的反向变换行为,具有三个初始组织。 一个是冷轧(Cr)结构,另外两种是具有不同级数的保留奥氏体的马氏体。 由于有效的核心群和粗渗碳矿颗粒较小,Cr结构表现出比马氏体更慢的反转动力学。 马氏体板岩边界处的保留奥氏体的薄膜类型有助于更早的转化开始,因为它可以作为预先存在的保留奥氏体的生长,这使得成核过程不太关键。 此外,白细变奥氏体的生长在细板型反转的微观结构的演变中起重要作用,这难以从具有可忽略的白细胞奥氏体部分的马氏体的相似初始微观结构中获得。

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