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ORIGIN OF DUCTILE FRACTURE IN ALUMINUM ALLOYS

机译:铝合金延性骨折的起源

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It is well known that metallic materials usually exhibit microvoid nucleation induced by particle fracture, followed by its growth and coalescence. Recently the present authors have revealed that hydrogen micropores play significant role in ductile fracture in AA2024 and AA5056 aluminum alloys, whereas the particle fracture mechanism operates only incidentally. The pre-existing hydrogen micropores exhibit premature growth under external loading before the maximum load, while particle fracture occurs after the maximum load. This tendency was accelerated in notched and cracked materials, because tri-axial stress state, which is necessary for isotropic growth of pores/voids, is generated ahead of a notch. According to the estimation on the areal fraction of dimple patterns originating from the pre-existing hydrogen micro pores, it has been concluded that the hydrogen micro pores make significant contributions to ordinary ductile fracture.
机译:众所周知,金属材料通常表现出通过颗粒骨折诱导的微肺成核,然后进行其生长和聚结。最近,本作者揭示了氢微孔在AA2024和AA5056铝合金中的韧性裂缝中发挥着重要作用,而颗粒骨折机构仅顺便运行。预先存在的氢微孔在最大载荷之前在外部加载下表现出过早的生长,而在最大载荷之后发生颗粒骨折。这种趋势在缺口和破裂的材料中加速,因为在凹口腔/空隙的各向同性生长所需的三轴应力状态下是在缺口的情况下产生的。根据源自预先存在的氢微孔的浊度曲线的面部分数的估计,已经得出结论,氢微孔对普通延性骨折作出显着贡献。

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