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Structural vibrations have become the critical factor limiting the
performance of many engineering systems, typical amplitudes ranging
from meters to a few nanometers. Many acoustic nuisances in
transportation systems and residential and office buildings are
also related to structural vibrations. The active control of such
vibrations involves nine orders of magnitude of vibration
amplitude, which exerts a profound influence on the technology.
Active vibration control is highly multidisciplinary, involving
structural vibration, acoustics, signal processing, materials
science, and actuator and sensor technology. Chapters 1-3 of this
book provide a state-of-the-art introduction to active vibration
control, active sound control, and active vibroacoustic control,
respectively. Chapter 4 discusses actuator/sensor placement,
Chapter 5 deals with robust control of vibrating structures,
Chapter 6 discusses finite element modelling of piezoelectric
continua and Chapter 7 addresses the latest trends in piezoelectric
multiple-degree-of-freedom actuators/sensors. Chapters 8-12 deal
with example applications, including semi-active joints, active
isolation and health monitoring. Chapter 13 addresses MEMS
technology, while Chapter 14 discusses the design of power
amplifiers for piezoelectric actuators.
Preface. 1. Introduction. 2. Some Concepts of Structural Dynamics.
3. Actuators, Piezoelectric Materials, and Active Structures. 4.
Collocated Versus Non-Collocated Control. 5. Active Damping with
Collocated Pairs. 6. State Space Approach. 7. Analysis and
Synthesis in the Frequency Domain. 8. Optimal Control. 9.
Controllability and Observability. 10. Stability. 11. Applications.
Bibliography. Index.
This text addresses the modeling of vibrating systems with the
perspective of finding the model of minimum complexity which
accounts for the physics of the phenomena at play. The first half
of the book (Ch.1-6) deals with the dynamics of discrete and
continuous mechanical systems; the classical approach emphasizes
the use of Lagrange's equations. The second half of the book
(Ch.7-12) deals with more advanced topics, rarely encountered in
the existing literature: seismic excitation, random vibration
(including fatigue), rotor dynamics, vibration isolation and
dynamic vibration absorbers; the final chapter is an introduction
to active control of vibrations. The first part of this text may be
used as a one semester course for 3rd year students in Mechanical,
Aerospace or Civil Engineering. The second part of the text is
intended for graduate classes. A set of problems is provided at the
end of every chapter. The author has a 35 years experience in
various aspects of Structural dynamics, both in industry (nuclear
and aerospace) and in academia; he was one of the pioneers in the
field of active structures. He is the author of several books on
random vibration, active structures and structural control.
With a specific focus on the needs of the designers and engineers in industrial settings, The Mechanical Systems Design Handbook: Modeling, Measurement, and Control presents a practical overview of basic issues associated with design and control of mechanical systems. In four sections, each edited by a renowned expert, this book answers diverse questions fundamental to the successful design and implementation of mechanical systems in a variety of applications.
Manufacturing addresses design and control issues related to manufacturing systems. From fundamental design principles to control of discrete events, machine tools, and machining operations to polymer processing and precision manufacturing systems.
Vibration Control explores a range of topics related to active vibration control, including piezoelectric networks, the boundary control method, and semi-active suspension systems.
Aerospace Systems presents a detailed analysis of the mechanics and dynamics of tensegrity structures
Robotics offers encyclopedic coverage of the control and design of robotic systems, including kinematics, dynamics, soft-computing techniques, and teleoperation.
Mechanical systems designers and engineers have few resources dedicated to their particular and often unique problems. The Mechanical Systems Design Handbook clearly shows how theory applies to real world challenges and will be a welcomed and valuable addition to your library.
This text addresses the modeling of vibrating systems with the
perspective of finding the model of minimum complexity which
accounts for the physics of the phenomena at play. The first half
of the book (Ch.1-6) deals with the dynamics of discrete and
continuous mechanical systems; the classical approach emphasizes
the use of Lagrange's equations. The second half of the book
(Ch.7-12) deals with more advanced topics, rarely encountered in
the existing literature: seismic excitation, random vibration
(including fatigue), rotor dynamics, vibration isolation and
dynamic vibration absorbers; the final chapter is an introduction
to active control of vibrations. The first part of this text may be
used as a one semester course for 3rd year students in Mechanical,
Aerospace or Civil Engineering. The second part of the text is
intended for graduate classes. A set of problems is provided at the
end of every chapter. The author has a 35 years experience in
various aspects of Structural dynamics, both in industry (nuclear
and aerospace) and in academia; he was one of the pioneers in the
field of active structures. He is the author of several books on
random vibration, active structures and structural control.
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