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Shear-band-to-crack transition in bulk metallic glasses under quasi-static and dynamic shearing

机译:准静态和动态剪切下散装金属玻璃中剪切带裂纹转变

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摘要

The intrinsic fracture mechanism of bulk metallic glasses (BMGs) is often obscured with the involvement of normal stress. To decouple the normal-stress effect, a double-notched shearing technique is developed to investigate the mechanical properties of BMGs. Real-time shear banding and fracture behavior under quasi-static and dynamic shearing are captured by using high-speed photographing, which confirms multiple shear banding at low strain rates and single shear banding at high strain rates. More importantly, the transition from shear band to crack could be observed with little influence of normal stress. Such transition is found to be induced by cavitation mechanism and shows obvious rate dependence; that is originated from regularly distributed controllable cavities under quasi-static loading, while from a series of concentrated cavitation under dynamic loading. Referring to studies under compression and tension, we clarify that strain rate controls cavitation concentration level and normal stress controls cavitation instabilities, respectively.
机译:散装金属玻璃(BMG)的固有骨折机理通常因持续胁迫的累及而掩盖。为了解耦正常应力效应,开发了一种双缺剪的剪切技术以研究BMG的机械性能。通过使用高速拍摄来捕获在准静态和动态剪切下的实时剪切条带和断裂行为,其在低应变速率下确认多剪切带和高应变速率的单剪切带。更重要的是,可以观察到从剪切带裂纹的过渡,以很小的正常压力影响很小。发现这种转变被空化机构诱导并显示出明显的速率依赖性;这起源于准静电负载下的定期分布可控腔,而动态负载下的一系列浓缩空化。参考压缩和张力下的研究,阐明了应变速率控制空化浓度水平和正常应力控制空化稳定性。

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