Institute of Magnetism, 36-b Vernadsky Blvd, Kyiv 03142, Ukraine.
J Phys Condens Matter. 2013 Aug 21;25(33):335402. doi: 10.1088/0953-8984/25/33/335402. Epub 2013 Jul 24.
The time evolution of the physical properties of martensite during martensite ageing is traditionally explained by the symmetry-conforming short-range order (SC-SRO) principle, which requires the spatial configuration of crystal defects to follow the symmetry change of the host lattice. In the present study, we show that the volume change of the host lattice also contributes to the ageing effects in Cu-Al-Ni shape memory alloy besides the symmetry change. To substantiate this statement the gradual increase of the storage modulus with time at constant temperature was measured by dynamic mechanical analysis (DMA) and the experimental results were quantitatively described in the framework of the symmetry-conforming Landau theory of martensitic transformations in a crystal with defects. The comparison of experimental and theoretical results confirmed that the time dependence of the storage modulus is caused by two different physical mechanisms. Evaluations showing that the first mechanism is driven by the spontaneous symmetry change and the second mechanism is caused by the volume change after the martensitic transformation was carried out.
马氏体时效过程中马氏体物理性能的时间演化传统上可以用符合对称的短程有序(SC-SRO)原理来解释,该原理要求晶体缺陷的空间构型遵循主晶格的对称变化。在本研究中,我们表明除了对称变化外,主晶格的体积变化也会导致 Cu-Al-Ni 形状记忆合金的时效效应。为了证实这一说法,通过动态力学分析(DMA)测量了在恒温下随时间逐渐增加的储能模量,并在具有缺陷的晶体中符合对称的朗道马氏体相变理论框架内对实验结果进行了定量描述。实验和理论结果的比较证实,储能模量的时间依赖性是由两种不同的物理机制引起的。评估表明,第一个机制是由自发对称变化驱动的,第二个机制是马氏体相变后体积变化引起的。