粉末冶金铍铝合金原位拉伸断裂行为研究

    Study on In-situ Tensile Fracture Behavior of Powder Metallurgy Beryllium Aluminum Alloy

    • 摘要: 为了深入研究铍铝合金的动态断裂过程,通过扫描电镜观察粉末冶金铍铝合金的拉伸过程,分析其断裂机理。结果表明:铍铝合金原始组织主要是呈现网状结构的A1相,Be相则离散地分布在A1相中间。当拉伸应力达到170 MPa时,铍铝合金的组织没有明显变化;当拉伸应力达到190 MPa时铍铝合金的组织中Be相开始出现了微裂纹;随着应力增加,裂纹沿着Be和Al相的界面发生扩展;当应力达到215 MPa时,试样发生失稳断裂。通过分析得出,铍铝合金在拉伸过程中裂纹起源于Be相,但主要断裂于Be和Al相界面或Al相。

       

      Abstract: In order to further study the dynamic fracture process of beryllium aluminum alloy, the tensile process of powder metallurgy beryllium aluminum alloy was observed through scanning electron microscopy and its fracture mechanism was analyzed. The results show that the original structure of beryllium aluminum alloy is mainly A1 phase which shows a network structure, and the Be phase is discretely distributed in the middle of A1 phase. When the tensile stress reaches 170 MPa, the structure of the beryllium aluminum alloy does not change significantly; when the tensile stress reaches 190 MPa, the microcrack of the Be phase begins to appear in the structure of beryllium aluminum alloy. As the stress increases, the crack expands along the interface between the Be and Al phases. When the stress reaches 215 MPa, the specimen is unstable and fractured. It is known that the cracks of beryllium aluminum alloy originate from the Be phase during the stretching process,but it mainly fractures at the interface between the Be and Al phases or the Al phase.

       

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