Wavelets as a Powerful Signal Processing Tool
The principles of wavelets can be applied to a range of problems in civil engineering structures, such as earthquake-induced vibration analysis, bridge vibrations, and damage identification. This book is particularly useful for graduate students and researchers in vibration analysis, especially those dealing with random vibrations.
Wavelet Analysis in Civil Engineering
explains the importance of wavelets in analyzing nonstationarities in ground motions. The example of a tank is considered to develop the problem and the model (based on linear assumptions) and several case studies are explored-fixed base, flexible base, lateral and rocking motions of foundations, with and without fluid-to explain how to account for ground motion nonstationarities. Bridge vibrations caused by vehicle passage are explored, as is structural damage identification. Wavelet analytic techniques starting from single degree of freedom systems to multiple degree of freedom systems are set out and detailed solutions of more complicated problems involving soil and fluid interactions are presented. Separate chapters have been devoted to explaining the basic principles of the wavelet-based random nonstationary vibration analysis of nonlinear systems, including probabilistic analysis.
Comprised of seven chapters, this text:
Introduces the concept and utility of wavelet transform
Describes the discretization of ground motions using wavelet coefficients
Explains how to characterize nonstationary ground motions using statistical functionals of wavelet coefficients of seismic accelerations
Develops the formulation of a linear single-degree-of-freedom system
Shows stepwise development of the formulation of a structure idealized as a linear multi-degree-of-freedom system in terms of wavelet coefficients
Defines wavelet domain formulation of a nonlinear single-degree-of-freedom system
Introduces the concept of probability in wavelet-based theoretical formulation of a nonlinear two-degree-of-freedom system
Covers a variety of case studies highlighting diverse applications
Wavelet Analysis in Civil Engineering
explains the importance of wavelets in terms of non-stationarities of ground motions, explores the application of wavelet analytic techniques, and is an excellentresource for users addressing wavelets for the first time.
Rezensionen / Stimmen
"I believe that this book will be an important contribution in the area of structural dynamics, particularly pertaining to civil engineering. ...the content is crisp yet highly comprehensive and most importantly explains wavelet from a civil engineering outlook."
-Mira Mitra, Associate Professor, Department of Aerospace Engineering, Indian Institute of Technology Bombay, Mumbai, India
Sprache
Verlagsort
Verlagsgruppe
Zielgruppe
Für höhere Schule und Studium
Für Beruf und Forschung
Produkt-Hinweis
Fadenheftung
Gewebe-Einband
Illustrationen
90 s/w Abbildungen, 5 s/w Tabellen
5 Tables, black and white; 90 Illustrations, black and white
Maße
Höhe: 234 mm
Breite: 163 mm
Dicke: 20 mm
Gewicht
ISBN-13
978-1-4822-1055-2 (9781482210552)
Copyright in bibliographic data and cover images is held by Nielsen Book Services Limited or by the publishers or by their respective licensors: all rights reserved.
Schweitzer Klassifikation
Dr Pranesh Chatterjee has earned undergraduate and postgraduate degrees in civil engineering and subsequently adoctorate in engineering from Jadavpur University, India. Dr Chatterjee took up post-doctoral fellowship in structural mechanics at Katholieke Universiteit te Leuven in Belgium and then was selected as prestigious Pierse Newman Scholar at University College Dublin in Ireland. He is working as Manager of Plasticity and Tribology group of Tata Steel Europe in the Netherlands. He is active in research and publication of research works.
Introduction to Wavelets. Vibration Analysis of SDOF system in wavelet domain. Ground Motion Characterization and Validation of PSA spectrum. Fixed Based Tank Response Analysis. Seismic Soil-Tank-Fluid Interaction Analysis. Analysis of Bridge-Weigh-In-Motion NOR signals. Damage Identification Techniques. Nonlinear Soil-Structure Interaction Analysis.