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Modelling the formation and self-healing of creep damage in iron-based alloys

机译:模拟铁基合金中蠕变损伤的形成和自我修复

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摘要

A self-consistent model is applied to predict the creep cavity growth and strain rates in metals from the perspective of self-healing. In this model, the creep cavity growth rate is intricately linked to the strain rate. The self-healing process causes precipitates to grow inside creep cavities. Due to the Kirkendall effect, a diffusional flux of vacancies is induced in the direction away from the creep cavity during this selective self-healing precipitation. This process impedes the creep cavity growth. The critical stress for self-healing can be derived, and an analysis is made of the efficiency of self-healing elements in binary Fe–Cu, Fe–Au, Fe–Mo, and Fe–W alloys. Fe–Au is found to be the most efficient self-healing alloy. Fe–Mo and Fe–W alloys provide good alternatives that have the potential to be employed at high temperatures.
机译:从自愈的角度出发,采用自洽模型来预测金属的蠕变腔增长和应变率。在该模型中,蠕变腔的增长率与应变率息息相关。自愈过程会导致沉淀物在蠕变腔内生长。由于柯肯德尔效应,在这种选择性的自愈沉淀过程中,空位的扩散通量被引向远离蠕变腔的方向。该过程阻碍了蠕变腔的生长。可以得出自我修复的临界应力,并对二元Fe–Cu,Fe–Au,Fe–Mo和Fe–W合金中的自我修复元素的效率进行分析。 Fe–Au被发现是最有效的自愈合金。 Fe-Mo和Fe-W合金提供了很好的替代品,有可能在高温下使用。

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