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首页> 外文期刊>Composites Science and Technology >Damage mechanisms at room and high temperature in notched specimens of Al6061/Al_2O_3 particulate composites
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Damage mechanisms at room and high temperature in notched specimens of Al6061/Al_2O_3 particulate composites

机译:Al6061 / Al_2O_3颗粒复合材料缺口试样在室温和高温下的损伤机理

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The aim of the present study was the investigation of the effects of macroscopic stress triaxiality on the presence and evolution of damage in particulate MMC. Two Al6061/Al_2O_3/10p and 20p particulate reinforced composites were investigated on smooth and differently notched specimens pulled in tension at 20 and 250 ℃. Fractographic analyses and microstructural observations were carried out in order to identify and to map damage mechanisms. Particle fracture was the prominent form of material damage at 20 ℃, while deb-onding was the main damage mechanism at 250 ℃. The distribution of the two damage forms within the specimen volume was interpreted on the basis of the results of finite element analyses. At a given level of triaxiality (considered as the hydrostatic to Von Mises stress ratio), particle fracture localized in regions of high maximum principal stress, generally associated to the high hydrostatic stress. It was further observed that matrix/interface debonding concentrated in the same regions, but developed on other particles at higher/ lower load level depending on test temperature.
机译:本研究的目的是研究宏观应力三轴性对颗粒MMC中损伤的存在和演变的影响。在20和250℃拉伸的光滑和不同缺口的试样上研究了两个Al6061 / Al_2O_3 / 10p和20p颗粒增强复合材料。进行了分形分析和微观结构观察,以识别和绘制损伤机理。在20℃时,颗粒破裂是物质破坏的主要形式,而在250℃时,弯曲是主要的​​破坏机制。根据有限元分析的结果解释了两种损伤形式在试样体积内的分布。在给定的三轴性水平(被视为静水压力与冯·米塞斯应力比)下,颗粒破裂位于最大最大主应力区域,通常与高静水压力相关。进一步观察到,基体/界面的解键集中在相同的区域,但取决于测试温度,在更高/更低负载水平下在其他颗粒上发展。

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