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Progress in the Investigations of Grain Boundary Relaxation

机译:晶界弛豫的研究进展

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Internal friction (or damping) is a measure of energy dissipation during mechanical vibration. The internal friction peak induced by grain boundary (GB) relaxation was discovered by Ke in polycrystals in 1947. The GB internal friction and related anelastic effects have been successfully interpreted by Zener's anelastic theory and viscous sliding model. Since then, the GB internal friction peak has been widely used to study the dynamic process of GBs, impurity segregation at GBs and relevant processes in materials science.Previously, the GB internal friction was mostly studied with polycrystalline materials, in which mixed contributions of different types of GBs are involved. Since the microstructures and behaviors for different types of GBs are different, the detailed mechanism of the GB peak in polycryatals has not been clearly clarified.From the beginning of the 21th century, the internal friction in bicrystals (each has a single boundary) with different misorientations and rotation axes has been systematically investigated. The results indicate that the internal friction can be used to distinguish the individual behavior of different types of GBs and applied to the practice of GB engineering.Moreover, the coupling effect and compensation effect involved in GB relaxation has been recently observed and explained. The coupling effect means a correlated atomic motion occurred in GB relaxation. The compensation effect indicates that the apparent activation enthalpy is linearly related to the activation entropy in GB relaxation. These findings improve the understanding of the mechanism of GB internal friction.This article attempts to give a comprehensive review to the investigations of GB internal friction in polycrystals, bamboo-crystals, and bicrystals. The microscopic mechanisms and the further applications of GB internal friction are discussed and prospected.
机译:内部摩擦(或阻尼)是机械振动过程中能量耗散的量度。 1947年Ke在多晶中发现了由晶界(GB)弛豫引起的内部摩擦峰。通过Zener的非弹性理论和粘性滑动模型成功地解释了GB的内部摩擦和相关的非弹性效应。从那时起,GB内部摩擦峰被广泛用于研究GBs的动力学过程,GBs处的杂质偏析以及材料科学中的相关过程。以前,GB内部摩擦主要是用多晶材料研究的,其中不同贡献的混合贡献很大。涉及GB类型。由于不同类型GB的微观结构和行为不同,因此多晶GB中GB峰的详细机理尚不清楚。从21世纪初开始,双晶体(每个晶体都有一个边界)的内摩擦力有所不同。方向错误和旋转轴已得到系统研究。结果表明,内摩擦可用于区分不同类型GB的个体行为,并应用于GB工程的实践中。此外,近来观察和解释了GB松弛涉及的耦合效应和补偿效应。耦合效应意味着在GB弛豫中发生了相关的原子运动。补偿效应表明表观活化焓与GB弛豫中的活化熵线性相关。这些发现使人们对GB内摩擦的机理有了更深入的了解。本文试图对多晶,竹晶和双晶中GB内摩擦的研究作一个全面的综述。讨论并展望了GB内摩擦的微观机理和进一步应用。

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