Cleavage fracture of low carbon ferritic steels with fine grain size

N. Okumura
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引用次数: 29

Abstract

AbstractMicromechanisms of transgranular cleavage fracture in ferritic steels have been investigated, particular attention being paid to the dependence of cleavage fracture stress σf on grain size over the range from 3·5 to 34·3 μm. It is found that σf increases less than linearly with d−1/2, where d is the grain diameter, whereas the Hall–Petch relation holds for the yield stress. Based on the experimental results, where σf was measured in the steels and their grain size and carbide size were changed independently, it is suggested that in the grain size range cited, the predominant mechanism was the propagation of a microcrack, which formed in the discrete carbide, into contiguous ferrite grains. The measured values of σf were discussed in a quantitative manner based on a model into which an equilibrium distribution of dislocations produced by the double pile-up mechanism was incorporated.
细晶粒低碳铁素体钢解理断裂
摘要研究了铁素体钢穿晶解理断裂的微观机理,重点研究了3.5 ~ 34.3 μm范围内解理断裂应力σf随晶粒尺寸的变化规律。结果表明,σf随d−1/2 (d为晶粒直径)的增加不呈线性增长,而屈服应力的变化符合Hall-Petch关系。通过测量钢的σf值,发现钢的晶粒尺寸和碳化物尺寸是独立变化的,表明在上述晶粒尺寸范围内,主要机制是由离散碳化物中形成的微裂纹扩展为连续的铁素体晶粒。在考虑双堆积机制产生的位错平衡分布的模型基础上,定量讨论了σf的测量值。
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