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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Microstructure analysis on enhancing mechanical properties at 750 degrees C and room temperature of Ti-22Al-24Nb-0.5Mo alloy tubes fabricated by hot gas forming
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Microstructure analysis on enhancing mechanical properties at 750 degrees C and room temperature of Ti-22Al-24Nb-0.5Mo alloy tubes fabricated by hot gas forming

机译:热气体成形制备的Ti-22AL-0.5Mo合金管的750℃和室温提高机械性能的微观结构分析

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In this paper, the integrated hot gas forming was processed to fabricate Ti-22Al-24Nb-0.5Mo alloy quadrate tubes, in which the tubular component was cooled in the forming die by pressured airflow. The effect of airflow pressure on microstructure and mechanical properties was investigated. The results illustrated that the volume fraction and geometrical morphology of O phase was crucial to the mechanical properties, which could be tailored by adjusting the cooling rate. As the airflow pressure increased from 2 MPa to 15 MPa, the volume fraction and average width of O platelets reduced from 47.5%, 105 nm to 3.9%, 50 nm, respectively. But, the aspect ratio of O platelets increased from 5.6 to 9.8. In addition, the tensile strength decreased from 1378 MPa to 1196 MPa at room temperature, but increased from 801 MPa to 880 MPa at 750 degrees C. Comparing to the microstructure obtained by post ageing-treatment, the microstructure from in-die cooling had finer O platelets with high aspect ratio. The elongation at room temperature could be improved from 4.1% to 18.4% and the tensile strength at 750 degrees C increased from 788 MPa to 880 MPa. (C) 2019 Published by Elsevier B.V.
机译:在本文中,加工了集成的热气体形成以制造Ti-22Al-24NB-0.5Mo合金Quadrate管,其中通过压力气流在成形模具中冷却管状部件。研究了气流压力对微观结构和机械性能的影响。结果表明,O相的体积分数和几何形态对机械性能至关重要,可以通过调节冷却速度来定制。随着气流压力从2MPa增加到15MPa,血小板的体积分数和平均宽度分别从47.5%,105nm至3.9%,50nm降低。但是,血小板的纵横比从5.6增加到9.8。此外,抗拉强度在室温下从1378MPa降至1196MPa,但在750℃下从801MPa增加到880MPa。与通过后衰老处理获得的微观结构相比,来自模芯冷却的微观结构具有更好的细胞o高纵横比的血小板。室温下的伸长率可从4.1%提高至18.4%,750℃下的拉伸强度从788MPa增加到880MPa。 (c)2019年由elestvier b.v发布。

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