Characterization of Residual Stress Evolved in Iron-Based Shape Memory Alloys*

IF 0.7 Q4 THERMODYNAMICS HTM-Journal of Heat Treatment and Materials Pub Date : 2014-04-28 DOI:10.3139/105.110214
S. Suzuki, E. Kwon, S. Tanaka
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Abstract

Abstract It is considered that complicated residual stresses may occur in shape memory alloys (SMAs) during deformation, as the matrix phase is transformed to martensitic phase during plastic deformation and the martensitic phase is reversely transformed by heating. Since the final shape of SMAs are influenced by residual stresses, it is important to characterize the residual stresses formed in SMAs during plastic deformation and annealing. The X-ray diffraction method was used to characterize the phase transformation and the residual stress formed in an Fe-Mn-Si-Cr SMA in this study. The samples were tensile-deformed to different strains and subsequently annealed. The results showed that a part of γ-phase with the face-centered cubic (fcc) structure was found to be transformed to ∊-phase with the hexagonal close-packed (hcp) structure by room-temperature tensile deformation in the SMA, and the ∊-phase was reversely transformed by subsequent heating. It has been also shown that the compressive stress occurred in the tensile direction of the γ-phase on tensile deformation and unloading. The compressive stress is believed to result from the formation of the ∊-phase during stress-induced martensitic transformation. After the deformed samples were annealed to recover their shapes, the residual stress was considerably released. This is considered to be due to the decrease in the amount of the transformed ∊-phase during annealing. These results indicated that residual stress in the fcc matrix phase is correlated with the shape recovery characteristics of the SMA after martensitic and reverse martensitic transformations.
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铁基形状记忆合金残余应力演化的表征*
摘要形状记忆合金在塑性变形过程中基体相转变为马氏体相,加热后马氏体相发生反向转变,变形过程中会产生复杂的残余应力。由于残余应力会影响sma的最终形状,因此表征sma在塑性变形和退火过程中形成的残余应力非常重要。本文采用x射线衍射法对Fe-Mn-Si-Cr SMA的相变和残余应力进行了表征。将试样拉伸变形到不同的应变,然后进行退火。结果表明:在SMA中,经过室温拉伸变形,部分面心立方(fcc)结构的γ相转变为具有六边形密堆积(hcp)结构的相,随后加热后,相发生反向转变;在拉伸变形和卸载过程中,压应力发生在γ相的拉伸方向。压应力的产生是由于应力诱导马氏体相变过程中形成的l -相。变形后的试样经过退火恢复形状后,残余应力得到很大程度的释放。这被认为是由于在退火过程中转变的相的数量减少。结果表明,fcc基体相的残余应力与SMA在马氏体和反马氏体相变后的形状恢复特性有关。
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CiteScore
1.50
自引率
33.30%
发文量
43
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