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The artificial periodic lattice phase analysis method applied to deformation evaluation of TiNi shape memory alloy in micro scale

机译:人工周期晶格相分析方法在TiNi形状记忆合金微观形变评价中的应用

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The basic principle of the artificial periodic lattice phase analysis method on the basis of an artificial periodic lattice was thoroughly introduced in this investigation. The improved technique is intended to expand from nanoscale to micro- and macroscopic realms on the test field of experimental mechanics in combination with a submicron grid, which is produced by a focused ion beam (FIB). Phase information can be obtained from the filtered images after fast Fourier transform (FFT) and inverse FFT. Thus, the in-plane displacement fields as well as the local strain distributions related to the phase information will be evaluated. The application scope of the technique was obtained by the simulation experiment. The displacement fields as well as strain distributions of porous TiNi shape memory alloy were calculated by the technique after compressive loading in micro scale. The specimen grid was directly fabricated on the tested flat surface by employing a FIB. The evolution rule of shear zones in micro area near porous has been discovered. The obtained results indicate that the technique not only could be well applied to measuring full field deformation, but also, more significantly, is available to present mechanical properties in micro scale.
机译:在这项研究中,彻底介绍了基于人工周期性晶格的人工周期性晶格相位分析方法的基本原理。改进的技术旨在结合由聚焦离子束(FIB)产生的亚微米网格,在实验力学的测试领域从纳米级扩展到微观和宏观领域。在快速傅立叶变换(FFT)和逆FFT之后,可以从滤波后的图像中获取相位信息。因此,将评估面内位移场以及与相位信息有关的局部应变分布。通过仿真实验确定了该技术的应用范围。利用微压压缩技术,计算了多孔TiNi形状记忆合金的位移场和应变分布。通过使用FIB,将样品网格直接制造在测试的平面上。发现了多孔附近微区剪切带的演化规律。获得的结果表明,该技术不仅可以很好地应用于测量全场变形,而且更重要的是,可以用于呈现微观尺度的机械性能。

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