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A Study of Crack Initiation Mechanism in the Aluminum Alloy 7475-T7351 when Tensile Loading

机译:拉伸载荷时铝合金7475-T7351裂纹启动机理研究

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A study of 3D surface topography of the aluminum alloy 7475-T7351 after advanced machining and its material and mechanical properties were investigated in situ herein the scanning electron microscope TESCAN MIRA 3, equipped with a brand new combined tensile fixture MT1000 (NewTec, France). Advanced characterizations of material structures and electron backscattered diffraction mapping (EBSD) of selected chemical elements were made, as well as the energy dispersive X-ray analyses of the surface and distributions of the material inclusions. Some very thin cross-sections of the material have been produced by the focus ion beam technique also. The tensile tests confirmed that the cracks nucleated at the interfaces of brittle particles and metal material matrix. Consequently, the cracks spread under the increasing tensile loading and the samples were broken finally before reaching the standard tensile strength limits even. The fatigue results displayed an evident dispersion of the data, but the mechanism of fracture was similar. The surfaces topographies that have been made under selected cutting conditions by face milling operation have not proved to have any decisive impact on the fatigue properties. On contrary, a very evident decohesion between the alumina matrix and brittle inclusions have been observed frequently affecting the strength of the material. The main conclusion is that the phases the complex Al_7Cu_2Fe and Al-Cr-Fe-Cu-Si intermetallic inclusions have the crucial effect on the tensile mechanical and fatigue properties of the material, suppressing the expected effect of machining and surface topography.
机译:在铝合金7475-T7351之后研究了高级加工及其材料和机械性能的研究,原位研究了扫描电子显微镜Tescan Mira 3,配备了全新的新型拉伸夹具MT1000(France)。制备了所选化学元素的材料结构和电子背散射衍射映射(EBSD)的高级特征,以及材料夹杂物的表面和分布的能量分散X射线分析。通过聚焦离子束技术生产了一些非常薄的材料横截面。拉伸试验证实,在脆性粒子和金属材料基质的界面处核的裂缝。因此,在达到标准拉伸强度限制之前,最终破裂在增加拉伸载荷和样品下的裂缝。疲劳结果显示了数据的明显分散,但骨折的机制相似。通过面部研磨操作所选择的切割条件下已经进行的表面地形并未证明对疲劳性能的任何决定性影响。相反,已经观察到氧化铝基质和脆性夹杂物之间的非常明显的脱粘经常影响材料的强度。主要结论是,复合Al_7Cu_2Fe和Al-Cr-Fe-Cu-Si金属间夹杂物对材料的抗拉机械和疲劳性能的关键影响,抑制了加工和表面形貌的预期效果。

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