Applications of ATILA FEM Software to Smart Materials

Applications of ATILA FEM Software to Smart Materials
Author: Kenji Uchino
Publisher: Elsevier
Total Pages: 411
Release: 2012-11-27
Genre: Computers
ISBN: 0857096311

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ATILA Finite Element Method (FEM) software facilitates the modelling and analysis of applications using piezoelectric, magnetostrictor and shape memory materials. It allows entire designs to be constructed, refined and optimized before production begins. Through a range of instructive case studies, Applications of ATILA FEM software to smart materials provides an indispensable guide to the use of this software in the design of effective products.Part one provides an introduction to ATILA FEM software, beginning with an overview of the software code. New capabilities and loss integration are discussed, before part two goes on to present case studies of finite element modelling using ATILA. The use of ATILA in finite element analysis, piezoelectric polarization, time domain analysis of piezoelectric devices and the design of ultrasonic motors is considered, before piezo-composite and photonic crystal applications are reviewed. The behaviour of piezoelectric single crystals for sonar and thermal analysis in piezoelectric and magnetostrictive materials is also discussed, before a final reflection on the use of ATILA in modelling the damping of piezoelectric structures and the behaviour of single crystal devices.With its distinguished editors and international team of expert contributors, Applications of ATILA FEM software to smart materials is a key reference work for all those involved in the research, design, development and application of smart materials, including electrical and mechanical engineers, academics and scientists working in piezoelectrics, magenetostrictors and shape memory materials. - Provides an indispensable guide to the use of ATILA FEM software in the design of effective products - Discusses new capabilities and loss integration of the software code, before presenting case studies of finite element modelling using ATILA - Discusses the behaviour of piezoelectric single crystals for sonar and thermal analysis in piezoelectric and magnetostrictive materials, before a reflection on the use of ATILA in modelling the damping of piezoelectric structures


Applications of ATILA FEM Software to Smart Materials
Language: en
Pages: 411
Authors: Kenji Uchino
Categories: Computers
Type: BOOK - Published: 2012-11-27 - Publisher: Elsevier

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ATILA Finite Element Method (FEM) software facilitates the modelling and analysis of applications using piezoelectric, magnetostrictor and shape memory material
Applications of ATILA FEM software to smart materials
Language: en
Pages: 35
Authors: K. Uchino
Categories: Technology & Engineering
Type: BOOK - Published: 2012-11-27 - Publisher: Elsevier Inc. Chapters

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The finite element method and its application to smart transducer systems are introduced in this chapter. The fundamentals of finite element analysis are introd
Applications of ATILA FEM software to smart materials
Language: en
Pages: 22
Authors: A-C. Hladky-Hennion
Categories: Technology & Engineering
Type: BOOK - Published: 2012-11-27 - Publisher: Elsevier Inc. Chapters

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Periodic structures have attracted considerable interest over the past three decades. Thus, passive structures with 1D or 2D periodicity are in standard use in
Applications of ATILA FEM software to smart materials
Language: en
Pages: 34
Authors: J-C. Debus
Categories: Technology & Engineering
Type: BOOK - Published: 2012-11-27 - Publisher: Elsevier Inc. Chapters

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The aim of this chapter is to compare the new version of ATILA (ATILA++) with the previous one. In Section 2.3, the new developments in the pre- and post-proces
Applications of ATILA FEM software to smart materials
Language: en
Pages: 38
Authors: J.-C. Debus
Categories: Technology & Engineering
Type: BOOK - Published: 2012-11-27 - Publisher: Elsevier Inc. Chapters

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The damping of a structure can be obtained by a transfer of the vibratory energy into thermal energy (dissipation in an electrical resistance). The transfer is