Details
Original language | English |
---|---|
Pages (from-to) | 2999-3013 |
Number of pages | 15 |
Journal | Journal of Materials Research and Technology |
Volume | 21 |
Early online date | 29 Oct 2022 |
Publication status | Published - Nov 2022 |
Abstract
The aim of this work is to provide a novel understanding of pseudoelasticity mechanisms in an FeMnSi-based shape memory alloy and to utilize the identified parameters to control and enhance the mechanical behavior of the alloy. The alloy was processed by employing caliber rolling to an equivalent strain of 0.25 at room temperature. Various heat treatments from 530 to 1000 °C were applied to study the microstructural evolution and pseudoelasticity behavior during short-term post-deformation annealing (PDA) and aging. A minimum residual strain of 2.85% was achieved after 4% loading in tension by annealing the cold-worked sample at 925 °C for 50 min followed by aging at 750 °C for 6 h; this is the lowest ever reported residual strain for this alloy. Moreover, the absorbed energy increased from 17 to 22 J/cm3, indicating a 30% enhancement compared with the as-received aged sample. These improvements in pseudoelasticity and absorbed energy make this alloy more suitable for seismic damping application by providing more recentering after energy dissipation. The improvements are mainly attributed to grain refinement, which stimulates a uniform distribution of precipitates inside the austenite grains after PDA and aging. Additionally, grain refinement modifies the morphology and size of precipitates, resulting in an increased number of stacking faults and a high volume fraction of ϵ-martensite, and diminishes the probability of the intersection of ϵ-martensite laths with each other and subsequent α′-martensite formation.
Keywords
- Fe-17Mn-5Si-10Cr-4Ni-1(V-C) (wt.%), Fe-based shape memory alloy (SMA), Grain refinement, Residual strain, Superelasticity
ASJC Scopus subject areas
- Materials Science(all)
- Ceramics and Composites
- Materials Science(all)
- Biomaterials
- Materials Science(all)
- Surfaces, Coatings and Films
- Materials Science(all)
- Metals and Alloys
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In: Journal of Materials Research and Technology, Vol. 21, 11.2022, p. 2999-3013.
Research output: Contribution to journal › Article › Research › peer review
}
TY - JOUR
T1 - Enhanced pseudoelasticity of an Fe-Mn-Si-based shape memory alloy by applying microstructural engineering through recrystallization and precipitation
AU - Khodaverdi, Hesamodin
AU - Mohri, Maryam
AU - Ghafoori, Elyas
AU - Ghorabaei, Amir Sabet
AU - Nili-Ahmadabadi, Mahmoud
N1 - Funding Information: The authors acknowledge the support of re-fer AG, Switzerland, for providing the material for this research study.
PY - 2022/11
Y1 - 2022/11
N2 - The aim of this work is to provide a novel understanding of pseudoelasticity mechanisms in an FeMnSi-based shape memory alloy and to utilize the identified parameters to control and enhance the mechanical behavior of the alloy. The alloy was processed by employing caliber rolling to an equivalent strain of 0.25 at room temperature. Various heat treatments from 530 to 1000 °C were applied to study the microstructural evolution and pseudoelasticity behavior during short-term post-deformation annealing (PDA) and aging. A minimum residual strain of 2.85% was achieved after 4% loading in tension by annealing the cold-worked sample at 925 °C for 50 min followed by aging at 750 °C for 6 h; this is the lowest ever reported residual strain for this alloy. Moreover, the absorbed energy increased from 17 to 22 J/cm3, indicating a 30% enhancement compared with the as-received aged sample. These improvements in pseudoelasticity and absorbed energy make this alloy more suitable for seismic damping application by providing more recentering after energy dissipation. The improvements are mainly attributed to grain refinement, which stimulates a uniform distribution of precipitates inside the austenite grains after PDA and aging. Additionally, grain refinement modifies the morphology and size of precipitates, resulting in an increased number of stacking faults and a high volume fraction of ϵ-martensite, and diminishes the probability of the intersection of ϵ-martensite laths with each other and subsequent α′-martensite formation.
AB - The aim of this work is to provide a novel understanding of pseudoelasticity mechanisms in an FeMnSi-based shape memory alloy and to utilize the identified parameters to control and enhance the mechanical behavior of the alloy. The alloy was processed by employing caliber rolling to an equivalent strain of 0.25 at room temperature. Various heat treatments from 530 to 1000 °C were applied to study the microstructural evolution and pseudoelasticity behavior during short-term post-deformation annealing (PDA) and aging. A minimum residual strain of 2.85% was achieved after 4% loading in tension by annealing the cold-worked sample at 925 °C for 50 min followed by aging at 750 °C for 6 h; this is the lowest ever reported residual strain for this alloy. Moreover, the absorbed energy increased from 17 to 22 J/cm3, indicating a 30% enhancement compared with the as-received aged sample. These improvements in pseudoelasticity and absorbed energy make this alloy more suitable for seismic damping application by providing more recentering after energy dissipation. The improvements are mainly attributed to grain refinement, which stimulates a uniform distribution of precipitates inside the austenite grains after PDA and aging. Additionally, grain refinement modifies the morphology and size of precipitates, resulting in an increased number of stacking faults and a high volume fraction of ϵ-martensite, and diminishes the probability of the intersection of ϵ-martensite laths with each other and subsequent α′-martensite formation.
KW - Fe-17Mn-5Si-10Cr-4Ni-1(V-C) (wt.%)
KW - Fe-based shape memory alloy (SMA)
KW - Grain refinement
KW - Residual strain
KW - Superelasticity
UR - http://www.scopus.com/inward/record.url?scp=85142683330&partnerID=8YFLogxK
U2 - 10.1016/j.jmrt.2022.10.092
DO - 10.1016/j.jmrt.2022.10.092
M3 - Article
AN - SCOPUS:85142683330
VL - 21
SP - 2999
EP - 3013
JO - Journal of Materials Research and Technology
JF - Journal of Materials Research and Technology
SN - 2238-7854
ER -