首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers. Part L, Journal of Materials: Design and Application >Microstructure modeling of high-temperature microcrack initiation and evolution in a welded 9Cr martensitic steel
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Microstructure modeling of high-temperature microcrack initiation and evolution in a welded 9Cr martensitic steel

机译:焊接9Cr马氏体钢中高温微裂纹萌生和演变的组织模型

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摘要

Welded joints in tempered 9Cr-1Mo operating at elevated temperatures are well known to be prone to premature failure due to cracking in the heat-affected zone. This paper describes a crystal plasticity model to predict the microcrack initiation and evolution in the inter-critical heat-affected zone of 9Cr-1Mo welded steel at elevated temperature. A crystal plasticity finite element model indicates that the micro-cracks of 9Cr-1Mo steel mostly nucleate at prior austenite grain boundaries and boundary clustered regions. Inter-granular and trans-granular microcracking are shown to be the key predicted microdamage mechanisms from the current crystal plasticity model. A small amount of ferrite in the inter-critical heat-affected zone is shown to not only influence the microcrack initiation and evolution, but also significantly accentuate material degradation for a given applied load leading to premature failure at high temperature.
机译:众所周知,在高温下回火的9Cr-1Mo焊接接头由于热影响区的裂纹而易于过早失效。本文描述了一种晶体可塑性模型,以预测9Cr-1Mo焊接钢在高温下的临界热影响区的微裂纹萌生和演化。晶体可塑性有限元模型表明,9Cr-1Mo钢的微裂纹主要在先前的奥氏体晶界和边界聚集区成核。晶粒间和晶粒间微裂纹被证明是当前晶体可塑性模型预测的关键微损伤机制。在临界热影响区中显示少量铁素体不仅影响微裂纹的产生和发展,而且在给定的施加负载下会显着加剧材料的降解,从而导致高温下的过早失效。

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