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Driving force for indentation cracking in glass: composition pressure and temperature dependence

机译:玻璃压痕破裂的驱动力:成分压力和温度依赖性

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摘要

The occurrence of damage at the surface of glass parts caused by sharp contact loading is a major issue for glass makers, suppliers and end-users. Yet, it is still a poorly understood problem from the viewpoints both of glass science and solid mechanics. Different microcracking patterns are observed at indentation sites depending on the glass composition and indentation cracks may form during both the loading and the unloading stages. Besides, we do not know much about the fracture toughness of glass and its composition dependence, so that setting a criterion for crack initiation and predicting the extent of the damage yet remain out of reach. In this study, by comparison of the behaviour of glasses from very different chemical systems and by identifying experimentally the individual contributions of the different rheological processes leading to the formation of the imprint—namely elasticity, densification and shear flow—we obtain a fairly straightforward prediction of the type and extent of the microcracks which will most likely form, depending on the physical properties of the glass. Finally, some guidelines to reduce the driving force for microcracking are proposed in the light of the effects of composition, temperature and pressure, and the areas for further research are briefly discussed.
机译:对于玻璃制造商,供应商和最终用户而言,由尖锐的接触载荷引起的玻璃零件表面损坏的发生是一个主要问题。然而,从玻璃科学和固体力学的角度来看,这仍然是一个鲜为人知的问题。取决于玻璃成分,在压痕部位观察到不同的微裂纹图案,并且在装载和卸载阶段都可能形成压痕裂纹。此外,我们对玻璃的断裂韧性及其组成的依赖性了解不多,因此设定裂纹萌生的标准并预测损伤的程度仍然遥不可及。在这项研究中,通过比较来自非常不同的化学系统的玻璃的行为,并通过实验确定导致形成压印的不同流变过程的个体贡献(即弹性,致密化和剪切流),我们获得了一个相当简单的预测取决于玻璃的物理性能,最有可能形成的微裂纹的类型和程度。最后,根据成分,温度和压力的影响,提出了一些降低微裂纹驱动力的准则,并简要讨论了需要进一步研究的领域。

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