Topological Derivatives in Shape Optimization - Info and Reading Options
By Antonio André Novotny and Jan Sokołowski
"Topological Derivatives in Shape Optimization" was published by Springer in 2013 - Berlin Heidelberg and it has 324 pages.
“Topological Derivatives in Shape Optimization” Metadata:
- Title: ➤ Topological Derivatives in Shape Optimization
- Authors: Antonio André NovotnyJan Sokołowski
- Number of Pages: 324
- Publisher: Springer
- Publish Date: 2013
- Publish Location: Berlin Heidelberg
Edition Identifiers:
- ISBN-13: 9783642352447 - 9783642352454
- All ISBNs: 9783642352447 - 9783642352454
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"Topological Derivatives in Shape Optimization" Description:
Open Data:
The topological derivative is defined as the first term (correction) of the asymptotic expansion of a given shape functional with respect to a small parameter that measures the size of singular domain perturbations, such as holes, inclusions, defects, source-terms and cracks. Over the last decade, topological asymptotic analysis has become a broad, rich and fascinating research area from both theoretical and numerical standpoints. It has applications in many different fields such as shape and topology optimization, inverse problems, imaging processing and mechanical modeling including synthesis and/or optimal design of microstructures, sensitivity analysis in fracture mechanics and damage evolution modeling. Since there is no monograph on the subject at present, the authors provide here the first account of the theory which combines classical sensitivity analysis in shape optimization with asymptotic analysis by means of compound asymptotic expansions for elliptic boundary value problems. This book is intended for researchers and graduate students in applied mathematics and computational mechanics interested in any aspect of topological asymptotic analysis. In particular, it can be adopted as a textbook in advanced courses on the subject and shall be useful for readers interested in the mathematical aspects of topological asymptotic analysis as well as in applications of topological derivatives in computational mechanics
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