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Determination of strain fields in porous shape memory alloys using micro computed tomography
JournalArticle (Originalarbeit in einer wissenschaftlichen Zeitschrift)
 
ID 1193147
Author(s) Bormann, Therese; Friess, Sebastian; de Wild, Michael; Schumacher, Ralf; Schulz, Georg; Muller, Bert
Author(s) at UniBasel Müller, Bert
Year 2010
Title Determination of strain fields in porous shape memory alloys using micro computed tomography
Journal Proceedings of SPIE
Volume 7804
Pages / Article-Number 78041M (9 pp.)
Abstract Shape memory alloys (SMAs) belong to 'intelligent' materials since the metal alloy can change its macroscopic shape as the result of the temperature-induced, reversible martensite-austenite phase transition. SMAs are often applied for medical applications such as stents, hinge-less instruments, artificial muscles, and dental braces. Rapid prototyping techniques, including selective laser melting (SLM), allow fabricating complex porous SMA microstructures. In the present study, the macroscopic shape changes of the SMA test structures fabricated by SLM have been investigated by means of micro computed tomography (muCT). For this purpose, the SMA structures are placed into the heating stage of the muCT system SkyScan 1172Trade (SkyScan, Kontich, Belgium) to acquire three-dimensional datasets above and below the transition temperature, i.e. at room temperature and at about 80degC, respectively. The two datasets were registered on the basis of an affine registration algorithm with nine independent parameters - three for the translation, three for the rotation and three for the scaling in orthogonal directions. Essentially, the scaling parameters characterize the macroscopic deformation of the SMA structure of interest. Furthermore, applying the non-rigid registration algorithm, the three-dimensional strain field of the SMA structure on the micrometer scale comes to light. The strain fields obtained will serve for the optimization of the SLM-process and, more important, of the design of the complex shaped SMA structures for tissue engineering and medical implants.
Publisher SPIE
ISSN/ISBN 0277-786X
edoc-URL http://edoc.unibas.ch/dok/A6003395
Full Text on edoc No
Digital Object Identifier DOI 10.1117/12.861386
ISI-Number INSPEC:11606159
Document type (ISI) Conference PaperJournal Paper
 
   

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