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Numerical Methods in Contact Mechanics

Autor VA Yastrebov
en Limba Engleză Hardback – 17 ian 2013
Computational contact mechanics is a broad topic which brings together algorithmic, geometrical, optimization and numerical aspects for a robust, fast and accurate treatment of contact problems. This book covers all the basic ingredients of contact and computational contact mechanics: from efficient contact detection algorithms and classical optimization methods to new developments in contact kinematics and resolution schemes for both sequential and parallel computer architectures. The book is self-contained and intended for people working on the implementation and improvement of contact algorithms in a finite element software. Using a new tensor algebra, the authors introduce some original notions in contact kinematics and extend the classical formulation of contact elements. Some classical and new resolution methods for contact problems and associated ready-to-implement expressions are provided. Contents: 1. Introduction to Computational Contact. 2. Geometry in Contact Mechanics. 3. Contact Detection. 4. Formulation of Contact Problems. 5. Numerical Procedures. 6. Numerical Examples. About the Authors Vladislav A. Yastrebov is a postdoctoral-fellow in Computational Solid Mechanics at MINES ParisTech in France. His work in computational contact mechanics was recognized by the CSMA award and by the Prix Paul Caseau of the French Academy of Technology and Electricité de France.
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Specificații

ISBN-13: 9781848215191
ISBN-10: 1848215193
Pagini: 410
Dimensiuni: 163 x 234 x 28 mm
Greutate: 0.75 kg
Editura: ISTE Ltd.
Locul publicării:Hoboken, United States

Public țintă

Students in mechanical engineering in the domain of contact mechanics and computational contact, engineers and researchers working on the development of in–house or commercial finite element software, researchers in the field of computational contact mechanics.

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Descriere

The book covers all basic ingredients of contact and computational contact mechanics, from efficient contact detection algorithms and classical optimization methods to new developments in contact kinematics and resolution schemes for both sequential and parallel computer architectures.