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Runge-Kutta formulas. --- Runge-Kutta methods --- Differential equations --- Numerical solutions --- Fórmules de Runge-Kutta --- Mètodes de Runge-Kutta
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Rotor ships. --- Bernoulli hypothesis. --- Runge-Kutta formulas.
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Rotor ships. --- Bernoulli hypothesis. --- Runge-Kutta formulas. --- Bernoulli hypothesis. --- Rotor ships. --- Runge-Kutta formulas.
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This book captures the state-of-the-art in the field of Strong Stability Preserving (SSP) time stepping methods, which have significant advantages for the time evolution of partial differential equations describing a wide range of physical phenomena. This comprehensive book describes the development of SSP methods, explains the types of problems which require the use of these methods and demonstrates the efficiency of these methods using a variety of numerical examples. Another valuable feature of this book is that it collects the most useful SSP methods, both explicit and implicit, and presen
Runge-Kutta formulas. --- Differential equations --- Stability. --- Numerical solutions.
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Differential equations. --- Eigenvalues. --- Numerical analysis. --- Numerical integration. --- Runge-Kutta method.
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Computational fluid dynamics. --- Inviscid flow. --- Runge-Kutta method. --- Supersonic flow.
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Monotone functions. --- Runge-Kutta method. --- Euler-Cauchy equations.
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Dielectrics. --- Differential equations. --- Electric fields. --- Permittivity. --- Plane waves. --- Plasmas (physics) --- Problem solving. --- Runge-Kutta method.
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Computational fluid dynamics. --- Pulse detonation engines. --- Runge-Kutta method. --- Propellant combustion. --- Rotary engines.
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Drops (liquids) --- Leading edges. --- Drop size. --- Ice formation. --- Deformation. --- Runge-Kutta method. --- Airfoils.
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