Thermo-Mechanical Processing and Advanced Charecterization of NiTi and NiTiHf Shape Memory Alloys

Shape memory alloys (SMAs) represent a revolutionary class of active materials that can spontaneously generate strain based on an environmental input, such as temperature or stress. SMAs can provide potential solutions to many of today's engineering problems due to their compact form, high ener...

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Main Author: Ley, Nathan A
Other Authors: Young, Marcus L
Format: Others
Language:English
Published: University of North Texas 2020
Subjects:
Online Access:https://digital.library.unt.edu/ark:/67531/metadc1703386/
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spelling ndltd-unt.edu-info-ark-67531-metadc17033862021-11-01T05:28:22Z Thermo-Mechanical Processing and Advanced Charecterization of NiTi and NiTiHf Shape Memory Alloys Ley, Nathan A Shape Memory Alloys High Temperature Shape Memory Alloys Strain Glass Alloys Synchrotron Radiation X-ray Diffraction Processing Shape memory alloys (SMAs) represent a revolutionary class of active materials that can spontaneously generate strain based on an environmental input, such as temperature or stress. SMAs can provide potential solutions to many of today's engineering problems due to their compact form, high energy densities, and multifunctional capabilities. While many applications in the biomedical, aerospace, automotive, and defense industries have already been investigated and realized for nickel-titanium (NiTi) based SMAs, the effects of controlling and designing the microstructure through processing (i.e. extreme cold working) have not been well understood. Current Ni-Ti based SMAs could be improved upon by increasing their work output, improving dimensional stability, preventing accidental actuation, and reducing strain localization. Additionally, there is a strong need to increase the transformation temperature above 115 °C, the current limit for NiTi and is especially important for aerospace applications. Previous research has shown that the addition on ternary elements such as Au, Hf, Pd, Pt, and Zr to NiTi can greatly increase these transformation temperatures. However, there are several limiting factors with these ternary additions such as increased cost, especially with Au, Pd, and Pt, as well as, difficulty in conventionally processing these alloys. Therefore, the main objectives of this research is to study how processing can alter the mechanical properties of NiTi and characterizing it using in situ synchrotron radiation x-ray diffraction (SR-XRD), understanding how we can process ternary SMAs (NiTiHf) by conventional means, and lastly how this processing alters precipitation characteristics and mechanical properties of these alloy systems. University of North Texas Young, Marcus L Banerjee, Rajarshi Benafan, Othmane Mukherjee, Sundeep Srivilliputhur, Srinivasan 2020-05 Thesis or Dissertation xiii, 148 pages Text local-cont-no: submission_1977 https://digital.library.unt.edu/ark:/67531/metadc1703386/ ark: ark:/67531/metadc1703386 English Public Ley, Nathan A Copyright Copyright is held by the author, unless otherwise noted. All rights Reserved.
collection NDLTD
language English
format Others
sources NDLTD
topic Shape Memory Alloys
High Temperature Shape Memory Alloys
Strain Glass Alloys
Synchrotron Radiation X-ray Diffraction
Processing
spellingShingle Shape Memory Alloys
High Temperature Shape Memory Alloys
Strain Glass Alloys
Synchrotron Radiation X-ray Diffraction
Processing
Ley, Nathan A
Thermo-Mechanical Processing and Advanced Charecterization of NiTi and NiTiHf Shape Memory Alloys
description Shape memory alloys (SMAs) represent a revolutionary class of active materials that can spontaneously generate strain based on an environmental input, such as temperature or stress. SMAs can provide potential solutions to many of today's engineering problems due to their compact form, high energy densities, and multifunctional capabilities. While many applications in the biomedical, aerospace, automotive, and defense industries have already been investigated and realized for nickel-titanium (NiTi) based SMAs, the effects of controlling and designing the microstructure through processing (i.e. extreme cold working) have not been well understood. Current Ni-Ti based SMAs could be improved upon by increasing their work output, improving dimensional stability, preventing accidental actuation, and reducing strain localization. Additionally, there is a strong need to increase the transformation temperature above 115 °C, the current limit for NiTi and is especially important for aerospace applications. Previous research has shown that the addition on ternary elements such as Au, Hf, Pd, Pt, and Zr to NiTi can greatly increase these transformation temperatures. However, there are several limiting factors with these ternary additions such as increased cost, especially with Au, Pd, and Pt, as well as, difficulty in conventionally processing these alloys. Therefore, the main objectives of this research is to study how processing can alter the mechanical properties of NiTi and characterizing it using in situ synchrotron radiation x-ray diffraction (SR-XRD), understanding how we can process ternary SMAs (NiTiHf) by conventional means, and lastly how this processing alters precipitation characteristics and mechanical properties of these alloy systems.
author2 Young, Marcus L
author_facet Young, Marcus L
Ley, Nathan A
author Ley, Nathan A
author_sort Ley, Nathan A
title Thermo-Mechanical Processing and Advanced Charecterization of NiTi and NiTiHf Shape Memory Alloys
title_short Thermo-Mechanical Processing and Advanced Charecterization of NiTi and NiTiHf Shape Memory Alloys
title_full Thermo-Mechanical Processing and Advanced Charecterization of NiTi and NiTiHf Shape Memory Alloys
title_fullStr Thermo-Mechanical Processing and Advanced Charecterization of NiTi and NiTiHf Shape Memory Alloys
title_full_unstemmed Thermo-Mechanical Processing and Advanced Charecterization of NiTi and NiTiHf Shape Memory Alloys
title_sort thermo-mechanical processing and advanced charecterization of niti and nitihf shape memory alloys
publisher University of North Texas
publishDate 2020
url https://digital.library.unt.edu/ark:/67531/metadc1703386/
work_keys_str_mv AT leynathana thermomechanicalprocessingandadvancedcharecterizationofnitiandnitihfshapememoryalloys
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