DEFORMATION MECHANISMS, MICROSTRUCTURE EVOLUTION AND MECHANICAL PROPERTIES OF NANOSCALE MATERIALS. Cet article n’est pas disponible.
Langue : anglais
Edité par Materials Research Society, 2011
- Livre relié
- Neuf

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- Titre
- DEFORMATION MECHANISMS, MICROSTRUCTURE EVOLUTION AND MECHANICAL PROPERTIES OF NANOSCALE MATERIALS
- Auteur
- JULIA R. GREER, CALIFORNIA INSTITUTE OF TECHNOLOGYTING ZHU, GEORGIA INSTITUTE OF TECHNOLOGYBLYTHE G. CLARK, SANDIA NATIONAL LABORATORIES, NEW MEXICODANIEL S. GIANOLA, UNIVERSITY OF PENNSYLVANIAALFONSO H. W. NGAN, THE UNIVERSITY OF HONG KONG DIV CLASS="CONTRIBUTORSPEOPLE">DIV CLASS="CONTRIBUTORSPEOPLEHIDDEN">KYUNG-SUK KIM, BO ZHOU, JAN KNAUP, TOSHIHIRO KAMEDA, MICHAEL LOWRY, MOHSEN ASLE ZAEEM, DANIEL FINKENSTADT, KARIM GADELRAB, DAVID BAHR, AIDEN LOCKWOOD, EDUARD KARPOV, YULIY MILMAN, JOSE SAN JU
- Éditeur
- Materials Research Society
- Année de publication
- 2011
- État de l'article
- Brand New
- Reliure
- Couverture rigide
- Langue
- anglais
- ISBN à 10 chiffres
- 1605112747
- ISBN à 13 chiffres
- 9781605112749
Symposium P, 'Deformation Mechanisms, Microstructure Evolution and Mechanical Properties of Nanoscale Materials', addressed the topic of materials used in next-generation technological devices.
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Présentation de l'éditeur
Symposium P, 'Deformation Mechanisms, Microstructure Evolution and Mechanical Properties of Nanoscale Materials', was held November 29–December 3 at the 2010 MRS Fall Meeting in Boston, Massachusetts. This resultant volume addresses the topic of materials used in next-generation technological devices. These devices are used for a variety of applications - ranging from biomedical to space to energy-related - and will be subjected to non-ambient temperatures and high stresses and pressures. A variety of advanced nanomaterials and nanoscaled architectures have been proposed to meet these stringent demands. However, a complete understanding of the mechanisms that govern deformation at these scales is still elusive. This volume focuses on providing the state-of-the-art research on the mechanical response of nano- and microscale components that may comprise these devices and highlights emerging topics in novel mechanical testing techniques, in situ microscopy, high- and low-temperature deformation mechanisms and mechanical property characterization of materials, as well as recent advances in atomistic and multiscale modeling of nanomaterials.
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