Fr. 206.00

Dynamics Modeling and Maneuvering of Autonomous Underwater Vehicles - Theory and Practice

English · Hardback

Will be released 23.10.2025

Description

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This book offers a comprehensive exploration of the dynamics modeling and maneuvering analysis of autonomous underwater vehicles (AUVs), integrating both theoretical concepts numerical simulations and practical applications. It covers the essential principles of underwater vehicle dynamics, including kinematics, kinetics, and the forces analysis. Detailed methodologies for deriving dynamic equations using nonlinear dynamic theory and modular design considerations, as well as estimating hydrodynamic coefficients through empirical, analytical, computational, and experimental and data driven approaches, are presented. Special attention is given to modern techniques such as Computational Fluid Dynamics (CFD) and System Identification, etc along with comparative analyses to guide engineers in choosing appropriate estimation methods. The book also explores the maneuvering performance of AUVs, outlining standard tests and analyses based on ITTC protocols and offering validation techniques for established dynamic models. Practical case studies, including the classical REMUS 100 AUV and novel flight-style AUV, illustrate the real-world applications of these theories and methods, making this work a valuable resource for researchers, engineers, and professionals involved in AUV design and development. It is particularly useful for those working on streamlined AUV designs at the early design phase, providing critical insights even before models or prototypes are available.

List of contents

Autonomous Underwater Vehicles, Types and Applications.- Principles of Autonomous Underwater Vehicle Dynamics.- Maneuvering Dynamic Modeling of Autonomous Underwater Vehicles.- Hydrodynamic Coefficient Estimation Methods.- Maneuvering Performance Analysis and Evaluation.- Dynamics Modeling, Maneuvering Simulations and Practical Studies.

Summary

This book offers a comprehensive exploration of the dynamics modeling and maneuvering analysis of autonomous underwater vehicles (AUVs), integrating both theoretical concepts,numerical simulations and practical applications. It covers the essential principles of underwater vehicle dynamics, including kinematics, kinetics, and the forces analysis. Detailed methodologies for deriving dynamic equations using nonlinear dynamic theory and modular design considerations, as well as estimating hydrodynamic coefficients through empirical, analytical, computational, and experimental and data driven approaches, are presented. Special attention is given to modern techniques such as Computational Fluid Dynamics (CFD) and System Identification, etc along with comparative analyses to guide engineers in choosing appropriate estimation methods. The book also explores the maneuvering performance of AUVs, outlining standard tests and analyses based on ITTC protocols and offering validation techniques for established dynamic models. Practical case studies, including the classical REMUS 100 AUV and novel flight-style AUV, illustrate the real-world applications of these theories and methods, making this work a valuable resource for researchers, engineers, and professionals involved in AUV design and development. It is particularly useful for those working on streamlined AUV designs at the early design phase, providing critical insights even before models or prototypes are available.

Product details

Authors Faheem Ahmed, Gong Xiang, Xianbo Xiang
Publisher Springer, Berlin
 
Languages English
Product format Hardback
Release 23.10.2025, delayed
 
EAN 9789819515202
ISBN 978-981-9515-20-2
No. of pages 153
Illustrations XXV, 153 p. 69 illus., 66 illus. in color.
Subjects Natural sciences, medicine, IT, technology > Technology > Mechanical engineering, production engineering

Künstliche Intelligenz, Artificial Intelligence, Vehicle Engineering, Autonomous Underwater Vehicle, Maneuvering Performance Analysis, Flight-Style AUV with Bow-wings, Hydrodynamic Coefficients, Dynamics Modeling

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