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Phase Transformation Evolution in NiTi Shape Memory Alloy under Cyclic Nanoindentation Loadings at Dissimilar Rates

机译:NiTi形状记忆合金在不同速率的循环纳米压痕载荷下的相变演化

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摘要

Hysteresis energy decreased significantly as nanocrystalline NiTi shape memory alloy was under triangular cyclic nanoindentation loadings at high rate. Jagged curves evidenced discrete stress relaxations. With a large recovery state of maximum deformation in each cycle, this behavior concluded in several nucleation sites of phase transformation in stressed bulk. Additionally, the higher initial propagation velocity of interface and thermal activation volume, and higher levels of phase transition stress in subsequent cycles explained the monotonic decreasing trend of dissipated energy. In contrast, the dissipated energy showed an opposite increasing trend during triangular cyclic loadings at a low rate and 60 sec holding time after each unloading stage. Due to the isothermal loading rate and the holding time, a major part of the released latent heat was transferred during the cyclic loading resulting in an unchanged phase transition stress. This fact with the reorientation phenomenon explained the monotonic increasing trend of hysteresis energy.
机译:当纳米晶NiTi形状记忆合金处于三角形环状纳米压痕载荷下时,磁滞能量显着降低。锯齿状曲线表明应力离散松弛。在每个循环的最大变形的大恢复状态下,此行为在应力体中的多个相变成核位点中得出结论。此外,界面和热活化体积的较高初始传播速度以及后续循环中较高水平的相变应力解释了耗散能量的单调下降趋势。相反,在三角形循环加载过程中,耗散能量显示出相反的增长趋势,并且在每个卸载阶段之后,速率较低且保持时间为60?sec。由于等温加载速率和保持时间,大部分释放的潜热在循环加载过程中被传递,导致相变应力不变。具有重新取向现象的事实解释了磁滞能量的单调增加趋势。

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