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Microstructure and strength modelling of Al-Cu-Mg alloys during non-isothermal treatments: part 2 - Welds

机译:非等温处理中al-Cu-mg合金的微观结构和强度模拟:第2部分 - 焊缝

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摘要

The present work applies a model for microstructural evolution in the solid state and Al-Cu-Mg alloys and expands it in a computationally efficient way to include solid-liquid reactions in fusion welds. The model is used to predict local strength and hardness of the welds, using a formulation that incorporates hardening due to two types of precipitates i.e. Cu-Mg co-clusters and the S phase precipitates. The model predictions are compared with hardness, differential scanning calorimetry and transmission electron microscopy data for a fusion welded 2024-T351 aluminium alloy. The model predicts solid state reactions and solid-liquid reactions including co-cluster dissolution, S phase formation, growth, coarsening and dissolution, co-cluster reformation on cooling, and solute partitioning on re-solidification. The model predictions are in good agreement with the experimental results and illustrate the dominant role that (sub-) nano scale co-clusters play in strengthening of welds. The yield strength of as-welded material tested normal to the weld is mainly due to the co-clusters.
机译:本工作为固态和Al-Cu-Mg合金的微观组织演化应用了模型,并以计算有效的方式扩展了模型,以在熔焊中包括固液反应。该模型用于预测焊缝的局部强度和硬度,该配方采用了由于两种类型的析出物即Cu-Mg共团簇和S相析出物而导致的硬化的配方。将模型预测值与2024-T351铝合金熔焊的硬度,差示扫描量热法和透射电子显微镜数据进行比较。该模型预测了固态反应和固液反应,包括共簇溶解,S相形成,生长,粗化和溶解,冷却时的共簇重整以及再固化时的溶质分配。模型预测与实验结果非常吻合,并说明了(亚)纳米级共簇在加强焊缝中的主导作用。垂直于焊缝测试的焊后材料的屈服强度主要归因于共簇。

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