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Heat Treatment and Dynamic Mechanical Analysis Strain Sweep Effects on the Phase Structure and Morphology of an Fe-28Mn-6Si-5Cr Shape Memory Alloy

Fe-Mn-Si-based shape memory alloys (SMAs) have been extensively investigated since 1982 for various useful properties that enhance the development of different applications such as anti-seismic dampers for very tall buildings, pipe joints, or rail fasteners. In particular, the Fe-28Mn-6Si-5Cr (mass....

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Autores principales: Popa, Mihai, Popa, Florin, Pricop, Bogdan, Cimpoeșu, Nicanor, Lohan, Nicoleta-Monica, Kicsi, Gabriel, Istrate, Bogdan, Bujoreanu, Leandru-Gheorghe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10096908/
https://www.ncbi.nlm.nih.gov/pubmed/37049343
http://dx.doi.org/10.3390/nano13071250
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author Popa, Mihai
Popa, Florin
Pricop, Bogdan
Cimpoeșu, Nicanor
Lohan, Nicoleta-Monica
Kicsi, Gabriel
Istrate, Bogdan
Bujoreanu, Leandru-Gheorghe
author_facet Popa, Mihai
Popa, Florin
Pricop, Bogdan
Cimpoeșu, Nicanor
Lohan, Nicoleta-Monica
Kicsi, Gabriel
Istrate, Bogdan
Bujoreanu, Leandru-Gheorghe
author_sort Popa, Mihai
collection PubMed
description Fe-Mn-Si-based shape memory alloys (SMAs) have been extensively investigated since 1982 for various useful properties that enhance the development of different applications such as anti-seismic dampers for very tall buildings, pipe joints, or rail fasteners. In particular, the Fe-28Mn-6Si-5Cr (mass. %) alloy has been mainly used in vibration mitigation or self-adjustable axial displacement applications. Dynamic mechanical analysis (DMA), performed by strain sweeps (SS), enables the monitoring of the evolution of storage modulus and internal friction variations with increasing strain amplitudes at different constant frequencies and temperatures. Thus, applying dynamic bending with various frequencies and amplitudes that actually represents an isothermal mechanical treatment. In the present paper, an Fe-28Mn-6 Si-5Cr (mass. %) SMA was cast by ingot metallurgy, hot-rolled, and water quenched in order to obtain thermally induced martensite and avoid the occurrence of cooling cracks. The influence of the holding time, between 2 and 10 h, at 1050 °C and the effects of DMA-SS performed at three different frequencies were analyzed by a differential scanning calorimetry, an X-ray diffraction, and a scanning electron and atomic force microscopy. The effects of the holding time and mechanical treatment on the structure and morphology of martensite plates were corroborated with the results of the thermal analysis.
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spelling pubmed-100969082023-04-13 Heat Treatment and Dynamic Mechanical Analysis Strain Sweep Effects on the Phase Structure and Morphology of an Fe-28Mn-6Si-5Cr Shape Memory Alloy Popa, Mihai Popa, Florin Pricop, Bogdan Cimpoeșu, Nicanor Lohan, Nicoleta-Monica Kicsi, Gabriel Istrate, Bogdan Bujoreanu, Leandru-Gheorghe Nanomaterials (Basel) Article Fe-Mn-Si-based shape memory alloys (SMAs) have been extensively investigated since 1982 for various useful properties that enhance the development of different applications such as anti-seismic dampers for very tall buildings, pipe joints, or rail fasteners. In particular, the Fe-28Mn-6Si-5Cr (mass. %) alloy has been mainly used in vibration mitigation or self-adjustable axial displacement applications. Dynamic mechanical analysis (DMA), performed by strain sweeps (SS), enables the monitoring of the evolution of storage modulus and internal friction variations with increasing strain amplitudes at different constant frequencies and temperatures. Thus, applying dynamic bending with various frequencies and amplitudes that actually represents an isothermal mechanical treatment. In the present paper, an Fe-28Mn-6 Si-5Cr (mass. %) SMA was cast by ingot metallurgy, hot-rolled, and water quenched in order to obtain thermally induced martensite and avoid the occurrence of cooling cracks. The influence of the holding time, between 2 and 10 h, at 1050 °C and the effects of DMA-SS performed at three different frequencies were analyzed by a differential scanning calorimetry, an X-ray diffraction, and a scanning electron and atomic force microscopy. The effects of the holding time and mechanical treatment on the structure and morphology of martensite plates were corroborated with the results of the thermal analysis. MDPI 2023-04-01 /pmc/articles/PMC10096908/ /pubmed/37049343 http://dx.doi.org/10.3390/nano13071250 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Popa, Mihai
Popa, Florin
Pricop, Bogdan
Cimpoeșu, Nicanor
Lohan, Nicoleta-Monica
Kicsi, Gabriel
Istrate, Bogdan
Bujoreanu, Leandru-Gheorghe
Heat Treatment and Dynamic Mechanical Analysis Strain Sweep Effects on the Phase Structure and Morphology of an Fe-28Mn-6Si-5Cr Shape Memory Alloy
title Heat Treatment and Dynamic Mechanical Analysis Strain Sweep Effects on the Phase Structure and Morphology of an Fe-28Mn-6Si-5Cr Shape Memory Alloy
title_full Heat Treatment and Dynamic Mechanical Analysis Strain Sweep Effects on the Phase Structure and Morphology of an Fe-28Mn-6Si-5Cr Shape Memory Alloy
title_fullStr Heat Treatment and Dynamic Mechanical Analysis Strain Sweep Effects on the Phase Structure and Morphology of an Fe-28Mn-6Si-5Cr Shape Memory Alloy
title_full_unstemmed Heat Treatment and Dynamic Mechanical Analysis Strain Sweep Effects on the Phase Structure and Morphology of an Fe-28Mn-6Si-5Cr Shape Memory Alloy
title_short Heat Treatment and Dynamic Mechanical Analysis Strain Sweep Effects on the Phase Structure and Morphology of an Fe-28Mn-6Si-5Cr Shape Memory Alloy
title_sort heat treatment and dynamic mechanical analysis strain sweep effects on the phase structure and morphology of an fe-28mn-6si-5cr shape memory alloy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10096908/
https://www.ncbi.nlm.nih.gov/pubmed/37049343
http://dx.doi.org/10.3390/nano13071250
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