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The effect of shock-wave loading on transformation temperatures, elastic and anelastic properties of beta '(1) Cu-Al-Ni martensitic single crystals

机译:冲击波载荷对β'(1)Cu-Al-Ni马氏体单晶转变温度,弹性和非弹性性能的影响

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The effect of high-velocity impact loading on the structure, transformation temperatures, elastic and anelastic properties has been studied for a Cu-Al-Ni shape memory alloy in the beta(1)' martensitic phase. The impact loading of crystals has been performed by means of a light gas gun, producing compressive plane-strain wave pulses with a duration of about 2 x 10(-6) s. The normal component of stress in the direction of the strain wave propagation ranged from 0.5 to 5 GPa and was used as a characteristic of the impact magnitude. The influence of the impact loading on the transformation temperatures and the structure of martenistic variants cannot be discerned in the present experimental results. In contrast with the macroscopic properties of crystals, the elastic and anelastic properties, studied at a frequency of about 100 kHz, are found to be strongly influenced by the impact loading. The difference between the effects of the impact on elastic and anelastic properties and on the macroscopic performance of crystals is interpreted on the assumption that these properties are related to different structural entities. Changes in the system of partial dislocations in the faulted martensite and variations in internal stresses are considered as basic contributors to the observed elastic and anelastic effects. The stability of the temperature range and hysteresis of the martensitic transformation are ascribed to the rather stable (under the present impact conditions) martensitic variant structure. [References: 34]
机译:已经研究了β(1)'马氏体相中的Cu-Al-Ni形状记忆合金的高速冲击载荷对结构,相变温度,弹性和非弹性性质的影响。晶体的冲击载荷是通过轻型气枪来执行的,产生的压缩平面应变波脉冲的持续时间约为2 x 10(-6)s。应力在应变波传播方向上的法向分量在0.5至5 GPa的范围内,并用作冲击强度的特征。在目前的实验结果中,无法确定冲击载荷对相变温度和马氏体变体结构的影响。与晶体的宏观性质相反,发现在约100 kHz的频率下研究的弹性和非弹性性质受到冲击载荷的强烈影响。假定这些特性与不同的结构实体有关,则可以解释冲击对弹性和非弹性特性以及对晶体的宏观性能的影响之间的差异。断层马氏体中的部分位错系统的变化和内应力的变化被认为是观察到的弹性和非弹性效应的基本因素。马氏体相变的温度范围和磁滞的稳定性归因于相当稳定的马氏体变体结构(在当前的冲击条件下)。 [参考:34]

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