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Non-Newtonian Flow to the Theoretical Strength of Glasses via Impact Nanoindentation at Room Temperature

机译:室温下通过冲击纳米压痕非牛顿流对玻璃理论强度的影响

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In many daily applications glasses are indispensable and novel applications demanding improved strength and crack resistance are appearing continuously. Up to now, the fundamental mechanical processes in glasses subjected to high strain rates at room temperature are largely unknown and thus guidelines for one of the major failure conditions of glass components are non-existent. Here, we elucidate this important regime for the first time using glasses ranging from a dense metallic glass to open fused silica by impact as well as quasi-static nanoindentation. We show that towards high strain rates, shear deformation becomes the dominant mechanism in all glasses accompanied by Non-Newtonian behaviour evident in a drop of viscosity with increasing rate covering eight orders of magnitude. All glasses converge to the same limit stress determined by the theoretical hardness, thus giving the first experimental and quantitative evidence that Non-Newtonian shear flow occurs at the theoretical strength at room temperature.
机译:在许多日常应用中,玻璃是必不可少的,并且要求改善强度和抗裂性的新型应用不断出现。迄今为止,在室温下经受高应变率的玻璃的基本机械过程仍是未知的,因此尚不存在玻璃组件的主要失效条件之一的准则。在这里,我们首次阐明了这种重要的处理方式,其使用范围从致密的金属玻璃到通过冲击以及准静态纳米压痕打开熔融石英的玻璃。我们表明,在高应变速率下,剪切变形成为所有玻璃的主要机制,伴随着非牛顿行为,这表现为粘度下降,速率上升覆盖八个数量级。所有玻璃都收敛于由理论硬度确定的相同极限应力,因此提供了第一个实验和定量证据,表明非牛顿剪切流在室温下以理论强度发生。

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