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Laser Shock Peening on Zr-based Bulk Metallic Glass and Its Effect on Plasticity: Experiment and Modeling

机译:Zr基块体金属玻璃的激光冲击强化及其对塑性的影响:实验与建模

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摘要

The Zr-based bulk metallic glasses (BMGs) are a new family of attractive materials with good glassforming ability and excellent mechanical properties, such as high strength and good wear resistance, which make them candidates for structural and biomedical materials. Although the mechanical behavior of BMGs has been widely investigated, their deformation mechanisms are still poorly understood. In particular, their poor ductility significantly impedes their industrial application. In the present work, we show that the ductility of Zr-based BMGs with nearly zero plasticity is improved by a laser shock peening technique. Moreover, we map the distribution of laser-induced residual stresses via the micro-slot cutting method, and then predict them using a three-dimensional finiteelement method coupled with a confined plasma model. Reasonable agreement is achieved between the experimental and modeling results. The analyses of serrated flows reveal plentiful and useful information of the underlying deformation process. Our work provides an easy and effective way to extend the ductility of intrinsically-brittle BMGs, opening up wider applications of these materials.
机译:基于Zr的块状金属玻璃(BMG)是具有吸引力的新材料系列,具有良好的玻璃成型能力和出色的机械性能,例如高强度和良好的耐磨性,使其成为结构和生物医学材料的候选者。尽管已经对BMG的力学行为进行了广泛研究,但对其变形机理仍然知之甚少。特别是,它们差的延展性严重阻碍了其工业应用。在目前的工作中,我们表明通过激光冲击喷丸技术可以改善可塑性几乎为零的Zr基BMG的延展性。此外,我们通过微缝切割方法绘制了激光诱导的残余应力的分布图,然后使用三维有限元方法结合有限的等离子体模型对其进行了预测。实验结果和建模结果之间取得了合理的一致性。锯齿状流的分析揭示了潜在变形过程的大量有用信息。我们的工作提供了一种简单有效的方法来扩展固有脆性BMG的延展性,从而开辟了这些材料的更广泛应用。

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