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Sprache: Englisch
Verlag: LAP LAMBERT Academic Publishing, 2010
ISBN 10: 3838325923 ISBN 13: 9783838325927
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Taschenbuch. Zustand: Neu. A Novel Data Analysis Procedure for Spherical Nanoindentation | PhD Thesis, Siddhartha Pathak, Department of Materials Science and Engineering, Drexel University, June 2009 | Siddhartha Pathak | Taschenbuch | 208 S. | Englisch | 2010 | LAP LAMBERT Academic Publishing | EAN 9783838325927 | Verantwortliche Person für die EU: BoD - Books on Demand, In de Tarpen 42, 22848 Norderstedt, info[at]bod[dot]de | Anbieter: preigu.
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In den WarenkorbGebunden. Zustand: New. KlappentextrnrnThe interdisciplinary field of materials science and engineering studies the structure, production and properties of materials. It incorporates the principles of physics, chemistry and engineering to advance the understanding of m.
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Buch. Zustand: Neu. Neuware - The interdisciplinary field of materials science and engineering studies the structure, production and properties of materials. It incorporates the principles of physics, chemistry and engineering to advance the understanding of metallurgy, nanotechnology and biomaterials. Materials science and engineering has diverse applications in the areas of mineralogy, ceramics, microfabrication, forensic analysis, etc. Metals, polymers and ceramics are some of the primary materials studied under this field. The advancements in this field have resulted in the development of better materials like biomaterials and nanomaterials. This book is a compilation of topics that discuss the most vital concepts and emerging trends in the area of materials science and engineering. It includes some of the vital pieces of work being conducted across the world on various aspects related to this field. This book is appropriate for students seeking detailed information in this area as well as for experts.
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Sprache: Englisch
Verlag: LAP LAMBERT Academic Publishing, 2010
ISBN 10: 3838325923 ISBN 13: 9783838325927
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Taschenbuch. Zustand: Neu. nach der Bestellung gedruckt Neuware - Printed after ordering - Advances in increased reliability of materials depend greatly on the details of their microstructure and the precise relationship between microstructure and mechanical properties becomes even more critical as device dimensions continue to decrease from micron to nanoscale dimensions. Currently, the successful development of a physics-based multi-scale materials model that can predict the device properties is largely hampered by lack of methods for characterizing reliably the local (anisotropic) properties of constituents in a composite material system at the appropriate length scales of interest. This PhD research was focused on developing a new approach that addresses this critical need by coupling the local mechanical response of a material, using spherical nanoindentation, with the structural information obtained at the same length scale. This method has been validated on a wide range of material systems including metals, carbon nanotubes (CNTs), ceramics and biomaterials indicating the versatility of this approach.