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首页> 外文期刊>International journal of applied glass science >Micropillar Testing of Amorphous Silica
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Micropillar Testing of Amorphous Silica

机译:非晶硅的微柱测试

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Amorphous silica exhibits a complex mechanical response. The elastic regime is highly nonlinear while plastic flow does not conserve volume, resulting in densification. As a result the quantification of a reliable constitutive equation is a difficult task. We have assessed the potential of micropillar compression testing for the investigation of the micromechanical properties of amorphous silica. We have calculated the response of amorphous silica micropillars as predicted by finite element analysis. The results were compared to preliminary microcompression tests. In the calculations, an advanced constitutive law including plastic response, densification, and strain hardening was used. Special attention was paid to the evaluation of the impact of substrate compliance, pillar misalignment, and friction conditions. We find that amorphous silica is much more amenable than some metals to microcompression experiments due to a comparatively high ratio between yield stress and elastic modulus. The simulations are found to be very consistent with the experimental results. However, full agreement cannot be obtained without allowance for the nonlinear response of amorphous silica in the elastic regime.
机译:非晶态二氧化硅表现出复杂的机械响应。弹性状态是高度非线性的,而塑性流动不能节省体积,从而导致致密化。结果,量化可靠的本构方程是一项艰巨的任务。我们已经评估了微柱压缩测试在研究无定形二氧化硅的微机械性能方面的潜力。我们已经通过有限元分析计算出了无定形二氧化硅微柱的响应。将结果与初步的微压测试进行比较。在计算中,使用了包括塑性响应,致密化和应变硬化在内的高级本构定律。特别注意评估基板柔韧性,立柱未对准和摩擦条件的影响。我们发现,由于屈服应力与弹性模量之间的比率较高,无定形二氧化硅比某些金属更适合微压缩实验。发现仿真与实验结果非常一致。但是,如果不考虑非晶态二氧化硅在弹性状态下的非线性响应,则无法获得完全一致的结果。

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    Universite de Lyon, ENISE, LTDS, UMR 5513, 42023, Saint-Etienne Cedex 2, France;

    Universite de Lyon, ENISE, LTDS, UMR 5513, 42023, Saint-Etienne Cedex 2, France;

    Universite de Lyon, ENISE, LTDS, UMR 5513, 42023, Saint-Etienne Cedex 2, France;

    Surface du Verre et Interfaces, Unite Mixte CNRS/Saint-Gobain, UMR 125, 93303, Aubervilliers Cedex, France;

    Surface du Verre et Interfaces, Unite Mixte CNRS/Saint-Gobain, UMR 125, 93303, Aubervilliers Cedex, France;

    FEMTO-ST Institute, CNRS UMR 6174, 25044, Besancon, France;

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