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首页> 外文期刊>Journal of Materials Science >Relationship between stress-induced martensitic transformation and impact toughness in low carbon austenitic steels
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Relationship between stress-induced martensitic transformation and impact toughness in low carbon austenitic steels

机译:低碳奥氏体钢中应力引起的马氏体相变与冲击韧性之间的关系

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The effect of test temperature, which controls the stability of austenite, on the impact toughness of a low carbon Fe-Ni-Mn-C austenitic steel and 304 stainless steel, has been investigated. Under impact conditions, stress-induced martensitic transformation occurred, in a region near the fracture surface, at test temperatures below 80degreesC for the Fe-Ni-Mn-C steel and below -25degreesC for 304 stainless steel. The former shows significant transformation toughening and the highest impact toughness was obtained at 10degreesC, which corresponds to the maximum amount of martensite formed by stress-induced transformation above the Ms temperature. The stress-induced martensitic transformation contributes negatively to the impact toughness in the 304 stainless steel. Increasing the amount of stress-induced transformation to martensite, lowered the impact toughness. The experimental results can be well explained by the Antolovich theory through the analysis of metallography and fractography. The different effect of stress-induced transformation on the impact toughness in Fe-Ni-Mn-C steel and 304 stainless steel has been further understood by applying the crystallographic model for stress-induced martensitic transformation to these two steels. (C) 2002 Kluwer Academic Publishers. [References: 31]
机译:研究了控制奥氏体稳定性的试验温度对低碳Fe-Ni-Mn-C奥氏体钢和304不锈钢的冲击韧性的影响。在冲击条件下,在断裂表面附近的区域中,Fe-Ni-Mn-C钢的测试温度低于80℃,而304不锈钢的测试温度低于-25℃,发生了应力诱发的马氏体转变。前者表现出显着的相变韧化,在10℃时获得最高的冲击韧性,这对应于在Ms温度以上通过应力诱导相变形成的马氏体的最大量。应力引起的马氏体相变对304不锈钢的冲击韧性有负面影响。应力引起的向马氏体转变的数量增加,降低了冲击韧性。通过金相分析和分形分析,可以用安托洛维奇理论很好地解释实验结果。通过将应力诱发马氏体相变的晶体学模型应用于这两种钢,可以进一步理解应力诱发相变对Fe-Ni-Mn-C钢和304不锈钢的冲击韧性的不同影响。 (C)2002 Kluwer学术出版社。 [参考:31]

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