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首页> 外文期刊>Materials Characterization >Characterization of the microstructures and the shape memory properties of the Fe-Mn-Si-Cr-Ni-C shape memory alloy after severe plastic deformation by differential speed rolling and subsequent annealing
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Characterization of the microstructures and the shape memory properties of the Fe-Mn-Si-Cr-Ni-C shape memory alloy after severe plastic deformation by differential speed rolling and subsequent annealing

机译:通过差速轧制和随后退火的严重塑性变形后Fe-Mn-Cr-Ni-C形记忆合金的微观结构和形状记忆性能的表征

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摘要

The Fe-13.51Mn-4.82Si-8.32Cr-3.49Ni-0.15C shape memory alloy was subjected to severe plastic deformation by high-ratio differential speed rolling and subsequent annealing (between 873 and 1373 K) to find the factors that affect recovery stress and recovery strain. As the annealing temperature increased (i. e., as grain size increased), the recovery strain increased. This was attributed to decrease in the density of grain boundaries and the density of twins with increasing grain size. The recovery stress, however, showed a different behavior. It increased with annealing temperature up to 973 K, at which an ultrafine grain size near 1.6 mu m was obtained, and then decreased with further increase in the temperature. The difference between the recovery strain and the plastic strain induced by recovery stress under constrained displacement during cooling was proposed to determine the amount of recovery stress. There was an optimum grain size for the largest difference between the recovery strain and the plastic strain. The current study shows that grain-size reduction is not good for having a high recovery strain but it is beneficial for having a high recovery stress in the Fe-Mn-Si shape memory alloys.
机译:Fe-13.51Mn-4.82SI-8.32CR-3.49NI-0.15C形状记忆合金通过高比差速轧制和随后的退火(在873和1373K之间)进行严重的塑性变形,以找到影响恢复的因素压力和恢复菌株。随着退火温度的增加(即,作为晶粒尺寸增加),恢复应变增加。这归因于晶界密度和粒度增加的双胞胎密度降低。然而,恢复压力显示出不同的行为。它随着退火温度的增加,高达973 k,在此接近1.6μm接近1.6μm的超细晶粒尺寸,然后在温度的进一步增加下降。提出了在冷却过程中受约束胁迫下恢复应力引起的恢复应变和塑性应变之间的差异,以确定恢复应力的量。回收应变和塑性应变之间的最大差异有一个最佳的晶粒尺寸。目前的研究表明,晶粒尺寸减小不适合具有高回收菌株,但是在Fe-Mn-Si形状记忆合金中具有高回收应力是有益的。

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