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Investigation of Dynamic Fracture Behavior of Additively Manufactured Al-10Si-Mg Using High-Speed Synchrotron X-ray Imaging

机译:使用高速同步X射线成像对碱化性Al-10si-Mg动态断裂行为的研究

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The dynamic tensile properties of additively manufactured (AM) and cast Al-10Si-Mg alloy were investigated using high-speed X-ray imaging coupled with a modified Kolsky bar apparatus. A controlled tensile loading (strain rate = 750 s~(-1)) was applied using a Kolsky bar apparatus and the deformation and fracture behavior was recorded using the high-speed X-ray imaging setup. The recorded high-speed frames were used to identify the location of the critical flaw and to capture the dynamics of crack propagation. In all experiments, the critical flaw was located on the surface of the specimen. The AM specimens showed significantly higher crack propagation speed, yield strength, ultimate tensile strength, strain hardening coefficient, and lower ductility compared to the cast specimens under dynamic tension. The microstructures of the samples were characterized by synchrotron X-ray tomography. The correlation between the dynamic fracture behavior of the samples and the microstructure of the samples was analyzed and discussed.
机译:使用高速X射线成像和改进的KOLSKY BAR设备,研究了加含量制造(AM)和铸族-10Si-Mg合金的动态拉伸性能。使用Kolsky Bar设备施加受控的拉伸载荷(应变率= 750S〜(-1)),使用高速X射线成像设置记录变形和断裂行为。记录的高速框架用于识别临界缺陷的位置并捕获裂纹传播的动态。在所有实验中,临界缺陷位于样品的表面上。与动态张力下的铸造试样相比,AM标本显示出显着较高的裂纹传播速度,屈服强度,最终拉伸强度,应变硬化系数和较低的延展性。通过同步X射线断层扫描的特征在于样品的微观结构。分析并讨论了样品的动态断裂行为与样品微观结构之间的相关性。

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