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Numerical Methods for Unsteady Compressible Flow Problems is
written to give both mathematicians and engineers an overview of
the state of the art in the field, as well as of new developments.
The focus is on methods for the compressible Navier-Stokes
equations, the solutions of which can exhibit shocks, boundary
layers and turbulence. The idea of the text is to explain the
important ideas to the reader, while giving enough detail and
pointers to literature to facilitate implementation of methods and
application of concepts. The book covers high order methods in
space, such as Discontinuous Galerkin methods, and high order
methods in time, in particular implicit ones. A large part of the
text is reserved to discuss iterative methods for the arising large
nonlinear and linear equation systems. Ample space is given to both
state-of-the-art multigrid and preconditioned Newton-Krylov
schemes. Features Applications to aerospace, high-speed vehicles,
heat transfer, and more besides Suitable as a textbook for
graduate-level courses in CFD, or as a reference for practitioners
in the field
Numerical Methods for Unsteady Compressible Flow Problems is
written to give both mathematicians and engineers an overview of
the state of the art in the field, as well as of new developments.
The focus is on methods for the compressible Navier-Stokes
equations, the solutions of which can exhibit shocks, boundary
layers and turbulence. The idea of the text is to explain the
important ideas to the reader, while giving enough detail and
pointers to literature to facilitate implementation of methods and
application of concepts. The book covers high order methods in
space, such as Discontinuous Galerkin methods, and high order
methods in time, in particular implicit ones. A large part of the
text is reserved to discuss iterative methods for the arising large
nonlinear and linear equation systems. Ample space is given to both
state-of-the-art multigrid and preconditioned Newton-Krylov
schemes. Features Applications to aerospace, high-speed vehicles,
heat transfer, and more besides Suitable as a textbook for
graduate-level courses in CFD, or as a reference for practitioners
in the field
This monograph discusses modeling, adaptive discretisation
techniques and the numerical solution of fluid structure
interaction. An emphasis in part I lies on innovative
discretisation and advanced interface resolution techniques. The
second part covers the efficient and robust numerical solution of
fluid-structure interaction. In part III, recent advances in the
application fields vascular flows, binary-fluid-solid interaction,
and coupling to fractures in the solid part are presented. Moreover
each chapter provides a comprehensive overview in the respective
topics including many references to concurring state-of-the art
work. Contents Part I: Modeling and discretization On the
implementation and benchmarking of an extended ALE method for FSI
problems The locally adapted parametric finite element method for
interface problems on triangular meshes An accurate Eulerian
approach for fluid-structure interactions Part II: Solvers
Numerical methods for unsteady thermal fluid structure interaction
Recent development of robust monolithic fluid-structure interaction
solvers A monolithic FSI solver applied to the FSI 1,2,3 benchmarks
Part III: Applications Fluid-structure interaction for vascular
flows: From supercomputers to laptops Binary-fluid-solid
interaction based on the Navier-Stokes-Cahn-Hilliard Equations
Coupling fluid-structure interaction with phase-field fracture:
Algorithmic details
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