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  • Contents
    • Abstract
    • Acknowledgments
    • Foreword
    • Introduction
    • Real systems
    • Modeling
    • Control Systems
    • Identification
    • Robust control
    • Adaptive Control
    • Shape Design
    • Conclusion
    • Demonstrations
    • References

Demonstrations

Modeling and dynamic analysis of lumped-input/distributed-output systems

  • LDS of parabolic type
  • Influence of initial and boundary conditions on LDS of parabolic type
  • LDS of hyperbolic type
  • Influence of initial and boundary conditions on LDS of hyperbolic type
  • Further mathematical models
  • LDS of parabolic type on the basis of finite element method
  • LDS of hyperbolic type on the basis of finite element method
  • Physical model of technological process as distributed parameter system

Distributed parameter control systems

  • Parabolic type LDS control
  • Hyperbolic type LDS control
  • Control of distributed parameter systems governed by partial differential equations
  • Control of parabolic type LDS given by finite element method
  • Control of hyperbolic type LDS given by finite element method
  • Control of physical model – the hot – air system
  • Performance, controllability and optimization of distributed parameter control systems

Robust control of physical model – the hot-air system

Adaptive and predictive control of physical model – the hot-air system

Basic design problems of machines, equipment and mechatronic smart structures as distributed parameter systems

  • Minimization of measurement points number
  • Minimization of input variables number
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Acknowledgements