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Dynamic fracture of advanced ceramics under impact loading conditions using a miniaturized Kolsky bar

机译:采用小型电气棒材冲击载荷条件下先进陶瓷的动态断裂

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Advanced ceramic materials are frequently used in the machining of hardened steels, aerospace alloys and other abrasive materials. While these materials have many superior properties such as high hardness and abrasive resistance they are still prone to premature failure due to fracture. Accurate fracture properties of such materials are scarce, especially in the dynamic regime. The current work presents a novel combined experimental-numerical approach to determine dynamic fracture behavior. In recent years, much attention has been given to the study of dynamic behavior of materials under stress-wave loading. Experimentation with a modified Kolsky bar and a concurrent numerical investigation using the finite volume method was used in this study. The inherent difficulties in producing large amounts of advanced ceramic means that experiments must be carried out using very small samples. As a result the apparatus has been miniaturised to accommodate such specimen dimensions. The incident and reflected wave histories obtained experimentally in conjunction with the time to fracture of the specimen predicted numerically are used to determine fracture toughness at a number of loading rates. Presented is a novel and simple test method to determine fracture properties of advanced ceramics using a miniaturised Kolsky bar. Results indicate a change in fracture toughness at increased rates of loading. This may be due to the complicated underlying microstructure of the materials under investigation, which behave differently under varying loading rates.
机译:先进的陶瓷材料经常用于硬化钢,航空航天合金等磨料材料的加工。虽然这些材料具有许多优异的性质,例如高硬度和耐磨性,它们仍然易于由于骨折而过早发生故障。这种材料的精确断裂性能稀缺,特别是在动态制度中。目前的工作提出了一种新的组合实验 - 数值方法来确定动态骨折行为。近年来,在应力波负荷下,已经对材料的动态行为进行了很多关注。在本研究中使用了使用改进的Kolsky棒的实验和使用有限体积法的并发数值研究。生产大量高级陶瓷的固有困难意味着必须使用非常小的样品进行实验。结果,该装置小型化以适应这种样品尺寸。与数值预测的样本的裂缝一起进行实验获得的事件和反射波历史用于以多种加载速率确定裂缝韧性。提出是一种新颖简单的试验方法,可使用小型电镀棒确定先进陶瓷的断裂性能。结果表明载荷率提高的裂缝韧性的变化。这可能是由于在调查中的材料的复杂性潜在结构,这在不同的加载率下表现不同。

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