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The papers in this volume present and discuss the frontiers in the
mechanics of controlled machines and structures. They are based on
papers presented at the International Workshop on Advanced Dynamics
and Model Based Control of Structures and Machines held in Vienna
in September 2015. The workshop continues a series of international
workshops held in Linz (2008) and St. Petersburg (2010).
This book presents a rational scheme of analysis for the periodic and quasi-periodic solution of a broad class of problems within technical and celestial mechanics. It develops steps for the determination of sufficiently general averaged equations of motion, which have a clear physical interpretation and are valid for a broad class of weak-interaction problems in mechanics. The criteria of stability regarding stationary solutions of these equations are derived explicitly and correspond to the extremum of a special "potential" function. Much consideration is given to applications in vibrational technology, electrical engineering and quantum mechanics, and a number of results are presented that are immediately useful in engineering practice. The book is intended for mechanical engineers, physicists, as well as applied mathematicians specializing in the field of ordinary differential equations.
This book addresses the general theory of motion of mechanical systems with Coulomb friction. In particular, the book focuses on the following specific problems: derivation of the equations of motion, Painleve's paradoxes, tangential impact and dynamic seizure, and frictional self-excited oscillations. In addition to the theoretical results, the book contains a detailed description of experiments that show that, in general, the friction force at the instant of transition to motion is determined by the rate of tangential load and does not depend on the duration of the previous contact. These results are used to develop the theory of frictional self-excited oscillations. A number of industrially relevant mechanisms are considered, including the Painleve-Klein scheme, epicyclic mechanisms, crank mechanisms, gear transmission, the link mechanism of a planing machine, and the slider of metal-cutting machine tools. The book is intended for researchers, engineers and students in mechanical engineering.
This book presents a collection of chapters on the current problems
of the theory of dynamical processes in generalized continua and
structures, and has been compiled to commemorate the 70th birthday
of Prof. Dmitry Indeitsev - a leading specialist in the field of
dynamical processes in solids, fluids and structures. It discusses
various applications related to Prof. Indeitsev's contributions,
including various discrete and continuous dynamic models of
structures and media, as well as a number of dynamical processes in
generalized media.
The papers in this volume present and discuss the frontiers in the
mechanics of controlled machines and structures. They are based on
papers presented at the International Workshop on Advanced Dynamics
and Model Based Control of Structures and Machines held in Vienna
in September 2015. The workshop continues a series of international
workshops held in Linz (2008) and St. Petersburg (2010).
This book presents a rational scheme of analysis for the periodic
and quasi-periodic solution of a broad class of problems within
technical and celestial mechanics. It develops steps for the
determination of sufficiently general averaged equations of motion,
which have a clear physical interpretation and are valid for a
broad class of weak-interaction problems in mechanics. The criteria
of stability regarding stationary solutions of these equations are
derived explicitly and correspond to the extremum of a special
"potential" function. Much consideration is given to applications
in vibrational technology, electrical engineering and quantum
mechanics, and a number of results are presented that are
immediately useful in engineering practice. The book is intended
for mechanical engineers, physicists, as well as applied
mathematicians specializing in the field of ordinary differential
equations.
This book addresses the general theory of motion of mechanical
systems with Coulomb friction. In particular, the book focuses on
the following specific problems: derivation of the equations of
motion, Painleve's paradoxes, tangential impact and dynamic
seizure, and frictional self-excited oscillations. In addition to
the theoretical results, the book contains a detailed description
of experiments that show that, in general, the friction force at
the instant of transition to motion is determined by the rate of
tangential load and does not depend on the duration of the previous
contact. These results are used to develop the theory of frictional
self-excited oscillations. A number of industrially relevant
mechanisms are considered, including the Painleve-Klein scheme,
epicyclic mechanisms, crank mechanisms, gear transmission, the link
mechanism of a planing machine, and the slider of metal-cutting
machine tools. The book is intended for researchers, engineers and
students in mechanical engineering.
This undergraduate textbook breaks down the basics of Nuclear
Structure and modern Particle Physics. Based on a comprehensive set
of course notes, it covers all the introductory material and latest
research developments required by third- and fourth-year physics
students. The textbook is divided into two parts. Part I deals with
Nuclear Structure, while Part II delves into Particle Physics. Each
section contains the most recent science in the field, including
experimental data and research on the properties of the top quark
and Higgs boson. Detailed mathematical derivations are provided
where necessary to helps students grasp the physics at a deeper
level. Many of these have been conveniently placed in the
Appendices and can be omitted if desired. Each chapter ends with a
brief summary and includes a number of practice problems, the
answers to which are also provided.
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The Air Merchant (Paperback)
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Tales of Madness (Paperback)
Pubright Manuscript Services; Translated by Maria K; Alexander Belyaev
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