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Macro-Micro Fracture Mechanism of TA3 Alloy under High- Velocity Deformation
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Macro-Micro Fracture Mechanism of TA3 Alloy under High- Velocity Deformation
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National Basic Research Program of China (2012CB012802)

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    摘要:

    材料在高速成形过程中其成形性能和成形精度更能够得到显著的提高。但是,材料在高速成形过程中的断裂机制尚不清楚或未知。因此,采用 TA3 钛合金材料利用 Hopkinson 压杆实验并结合显微镜、扫描电镜和应力响应分析手段研究了该材料在动态变形过程中的断裂机制。结果表明,绝热剪切带是导致宏观裂纹的形成和扩展以及流动软化的根源;TA3 钛合金动态变形微观断裂机制为纺锤状孔洞在绝热剪切带内各自独立形核,然后各自长大从而相互贯通,形成微观裂纹;第二相粒子的偏聚是微观裂纹发生的源泉。

    Abstract:

    The formability and the forming accuracy of materials will be greatly improved in high-velocity forming process. However, the fracture mechanism of materials in macro-micro scale keeps unknown or unclear yet. Herein, TA3 titanium alloy was adopted to investigate the fracture mechanism by Hopkinson bar test and analysis approaches of OM, SEM and stress-strain response. The results show that adiabatic shear bands (ASBs) induce the formation and the propagation of macroscale fracture, as well as softening in stress response; the fracture mechanism of TA3 titanium alloy during dynamic deformation in microscale is that spindle-shaped voids nucleate separately and then grow up to impenetrate each other, and finally micro cracks occur; the aggregation of the second-phase particles serves as the source for crack generation.

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李宏伟,严思梁,杨 合. Macro-Micro Fracture Mechanism of TA3 Alloy under High- Velocity Deformation[J].稀有金属材料与工程,2015,44(9):2105~2108.[Li Hongwei, Yan Siliang, Yang He. Macro-Micro Fracture Mechanism of TA3 Alloy under High- Velocity Deformation[J]. Rare Metal Materials and Engineering,2015,44(9):2105~2108.]
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  • 收稿日期:2014-10-25
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  • 在线发布日期: 2016-02-25
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