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Acoustic emission during cyclic deformation of ultrafine-grain copper processed by severe plastic deformation

机译:严重塑性变形处理后的超细晶粒铜循环变形时的声发射

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摘要

Acoustic emission (AE) is investigated during cycling at a constant plastic strain amplitude of ultrafine-grain (UFG) copper produced by severe plastic deformation, aiming at detailed characterization of AE in the time and frequency domain and clarification of fatigue damage mechanisms. The results of AE analysis in UFG copper are compared with those obtained in conventional polycrystals and single crystals. It is shown that fatigue damage and corresponding AE in UFG copper is controlled by three main mechanisms: large-scale shear banding, mode I tensile crack opening and mode II shear crack propagation. No AE that could be associated with ordinary dislocation mechanisms typical for conventional coarse-grain metals was detected in the UFG state. A close connection between strain localization, crack nucleation and grain boundaries in UFG materials is emphasized. It is shown that annealing at a moderate temperature of UFG materials fabricated by severe plastic deformation can reduce the degree of strain localization, modify the fatigue mechanisms and improve the fatigue life significantly. [References: 23]
机译:研究了在剧烈塑性变形产生的超细晶粒(UFG)铜的恒定塑性应变幅度下循环过程中的声发射(AE),旨在在时域和频域中详细描述AE,并阐明疲劳损伤机理。将UFG铜中的AE分析结果与常规多晶和单晶中得到的结果进行了比较。结果表明,UFG铜的疲劳损伤和相应的AE受三个主要机理控制:大规模剪切带,I型拉伸裂纹扩展和II型剪切裂纹扩展。在UFG状态下未检测到可能与常规粗晶粒金属的典型位错机制相关的AE。强调了UFG材料中应变局部化,裂纹成核和晶界之间的紧密联系。结果表明,在较大的塑性变形条件下,对UFG材料进行适当的温度退火可以降低应变局部化程度,改变疲劳机理并显着提高疲劳寿命。 [参考:23]

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