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首页> 外文期刊>Metallurgical and Materials Transactions A >In-Situ Fracture Observation and Fracture Toughness Analysis of Ni-Mn-Ga-Fe Ferromagnetic Shape Memory Alloys
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In-Situ Fracture Observation and Fracture Toughness Analysis of Ni-Mn-Ga-Fe Ferromagnetic Shape Memory Alloys

机译:Ni-Mn-Ga-Fe铁磁形状记忆合金的原位断裂观察和断裂韧性分析

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摘要

The fracture property improvement of Ni-Mn-Ga-Fe ferromagnetic shape memory alloys containing ductile γ particles was explained by direct observation of microfracture processes using an in-situ loading stage installed inside a scanning electron microscope (SEM) chamber. The Ni-Mn-Ga-Fe alloys contained a considerable amount of γ particles in β grains after the homogenization treatment at 1073 K to 1373 K (800 °C to 1100 °C). With increasing homogenization temperature, γ particles were coarsened and distributed homogeneously along β grain boundaries as well as inside β grains. According to the in-situ microfracture observation, γ particles effectively acted as blocking sites of crack propagation and provided the stable crack growth, which could be confirmed by the R-curve analysis. The increase in fracture resistance with increasing crack length improved overall fracture properties of the Ni-Mn-Ga-Fe alloys. This improvement could be explained by mechanisms of blocking of crack propagation and crack blunting and bridging.
机译:通过使用安装在扫描电子显微镜(SEM)腔室内的原位加载台直接观察微断裂过程,可以解释含有延性γ粒子的Ni-Mn-Ga-Fe铁磁形状记忆合金的断裂性能改善。在1073 K至1373 K(800°C至1100°C)进行均质处理后,Ni-Mn-Ga-Fe合金在β晶粒中包含大量的γ颗粒。随着均质温度的升高,γ颗粒会粗化并沿β晶界以及β晶粒内部均匀分布。根据原位微裂纹观察,γ粒子有效地充当了裂纹扩展的阻挡点,并提供了稳定的裂纹扩展,这可以通过R曲线分析得到证实。随着裂纹长度的增加,抗断裂性的提高改善了Ni-Mn-Ga-Fe合金的整体断裂性能。可以通过阻止裂纹扩展以及裂纹钝化和桥接的机制来解释这种改进。

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