Mechanical Behavior of Shape Memory Alloys : : 2022 / / edited by Salvatore Saputo.

In recent years, the fascination with shape memory alloys (SMAs) has grown across industries such as aerospace, automotive, naval, civil, and biology. SMAs possess unique properties, including the ability to recover from deformation when heated, exhibit pseudoelastic stress-strain behavior for large...

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Place / Publishing House:Basel : : MDPI - Multidisciplinary Digital Publishing Institute,, 2023.
Year of Publication:2023
Language:English
Physical Description:1 online resource (242 pages)
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spelling Mechanical Behavior of Shape Memory Alloys : 2022 / edited by Salvatore Saputo.
Mechanical Behavior of Shape Memory Alloys
Basel : MDPI - Multidisciplinary Digital Publishing Institute, 2023.
1 online resource (242 pages)
text txt rdacontent
computer c rdamedia
online resource cr rdacarrier
Description based on publisher supplied metadata and other sources.
In recent years, the fascination with shape memory alloys (SMAs) has grown across industries such as aerospace, automotive, naval, civil, and biology. SMAs possess unique properties, including the ability to recover from deformation when heated, exhibit pseudoelastic stress-strain behavior for large deformations, and exceptional biocompatibility for bioengineering applications. However, a comprehensive understanding of critical characteristics like transformation temperature and stress values is necessary to fully utilize SMAs. The shape memory effect, where SMAs regain their original shape after deformation under specific thermal conditions, has driven innovative applications in various sectors. In aerospace, SMAs are used in wing structures and actuation systems, enabling morphing and improving aerodynamics. In healthcare, they are integrated into orthopedic devices, simplifying surgical procedures and providing necessary support. The automotive industry also benefits from SMAs, using them in seatbelts and vibration damping systems for enhanced safety and comfort. Accurate knowledge of critical characteristics is essential for effective utilization of SMAs, unlocking their potential in different fields. The remarkable versatility of SMAs, with their deformation recovery, pseudoelasticity, and biocompatibility, positions them as a material of immense interest. As research and development continue, SMAs are poised to drive future innovations, shaping various industries.
Mechanical alloying.
3-0365-8049-2
Saputo, Salvatore, editor.
language English
format eBook
author2 Saputo, Salvatore,
author_facet Saputo, Salvatore,
author2_variant s s ss
author2_role TeilnehmendeR
title Mechanical Behavior of Shape Memory Alloys : 2022 /
spellingShingle Mechanical Behavior of Shape Memory Alloys : 2022 /
title_sub 2022 /
title_full Mechanical Behavior of Shape Memory Alloys : 2022 / edited by Salvatore Saputo.
title_fullStr Mechanical Behavior of Shape Memory Alloys : 2022 / edited by Salvatore Saputo.
title_full_unstemmed Mechanical Behavior of Shape Memory Alloys : 2022 / edited by Salvatore Saputo.
title_auth Mechanical Behavior of Shape Memory Alloys : 2022 /
title_alt Mechanical Behavior of Shape Memory Alloys
title_new Mechanical Behavior of Shape Memory Alloys :
title_sort mechanical behavior of shape memory alloys : 2022 /
publisher MDPI - Multidisciplinary Digital Publishing Institute,
publishDate 2023
physical 1 online resource (242 pages)
isbn 3-0365-8049-2
callnumber-first T - Technology
callnumber-subject TN - Mining Engineering and Metallurgy
callnumber-label TN698
callnumber-sort TN 3698 M434 42023
illustrated Not Illustrated
dewey-hundreds 600 - Technology
dewey-tens 660 - Chemical engineering
dewey-ones 669 - Metallurgy
dewey-full 669.9
dewey-sort 3669.9
dewey-raw 669.9
dewey-search 669.9
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