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Mechanical glass transition revealed by the fracture toughness of metallic glasses

机译:金属玻璃的断裂韧性揭示了机械玻璃的转变

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摘要

The fracture toughness of glassy materials remains poorly understood. In large part, this is due to the disordered, intrinsically non-equilibrium nature of the glass structure, which challenges its theoretical description and experimental determination. We show that the notch fracture toughness of metallic glasses exhibits an abrupt toughening transition as a function of a well-controlled fictive temperature (Tf), which characterizes the average glass structure. The ordinary temperature, which has been previously associated with a ductile-to-brittle transition, is shown to play a secondary role. The observed transition is interpreted to result from a competition between the Tf-dependent plastic relaxation rate and an applied strain rate. Consequently, a similar toughening transition as a function of strain rate is predicted and demonstrated experimentally. The observed mechanical toughening transition bears strong similarities to the ordinary glass transition and explains the previously reported large scatter in fracture toughness data and ductile-to-brittle transitions.
机译:玻璃材料的断裂韧性仍然知之甚少。在很大程度上,这是由于玻璃结构的无序,本质上是非平衡的性质,这挑战了其理论描述和实验确定性。我们表明,金属玻璃的缺口断裂韧性表现出突然的韧性转变,这是良好控制的虚拟温度(Tf)的函数,该温度表征了平均玻璃结构。以前与韧性到脆性转变有关的常温被证明是次要的。观察到的转变被解释为是由Tf依赖的塑性弛豫速率和所施加的应变速率之间的竞争导致的。因此,通过实验预测并证明了类似的增韧转变与应变速率的关系。观察到的机械增韧转变与普通玻璃转变具有很强的相似性,并解释了先前报道的断裂韧性数据和韧性到脆性转变中的大分散现象。

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