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Journal ArticleDOI

Numerical analysis of breaking waves using the moving particle semi-implicit method

TLDR
In this paper, a moving particle semi-implicit (MPS) algorithm is used for two-dimensional incompressible non-viscous flow analysis and two types of breaking waves, plunging and spilling breakers, are observed in the calculation results.
Abstract
SUMMARY The numerical method used in this study is the moving particle semi-implicit (MPS) method, which is based on particles and their interactions. The particle number density is implicitly required to be constant to satisfy incompressibility. A semi-implicit algorithm is used for two-dimensional incompressible non-viscous flow analysis. The particles whose particle number densities are below a set point are considered as on the free surface. Grids are not necessary in any calculation steps. It is estimated that most of computation time is used in generation of the list of neighboring particles in a large problem. An algorithm to enhance the computation speed is proposed. The MPS method is applied to numerical simulation of breaking waves on slopes. Two types of breaking waves, plunging and spilling breakers, are observed in the calculation results. The breaker types are classified by using the minimum angular momentum at the wave front. The surf similarity parameter which separates the types agrees well with references. Breaking waves are also calculated with a passively moving float which is modelled by particles. Artificial friction due to the disturbed motion of particles causes errors in the flow velocity distribution which is shown in comparison with the theoretical solution of a cnoidal wave. © 1998 John Wiley & Sons, Ltd.

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Citations
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Journal ArticleDOI

Flow structures and red blood cell dynamics in arteriole of dilated or constricted cross section

TL;DR: An aggregate formation becomes apparent, continuously rearranging and dynamic, brought about by the inter-cellular fluid mechanics interactions and the deformability properties of the cells.
Journal ArticleDOI

Mixed miscible-immiscible fluid flow modelling with incompressible SPH framework

TL;DR: The developed ISPH framework is capable of capturing density-dependent flow with low to high density ratio alike and can capture Kelvin-Helmholtz instabilities generated at the interface.
Journal ArticleDOI

Lagrangian simulation of three-dimensional macro-scale melting based on enthalpy method

TL;DR: Based on the moving particle semi-implicit (MPS) method, a robust numerical approach is developed for simulation of macroscopic melting in this article, where the passively moving solid model, which accounts for liquid-solid interaction force, is introduced to facilitate simultaneous solution in the liquid and solid part for all the governing equations.
Proceedings ArticleDOI

SPH Fluids for Viscous Jet Buckling

TL;DR: A novel meshfree technique for animating free surface viscous liquids with jet buckling effects, such as coiling and folding, based on Smoothed Particle Hydrodynamics fluids and allows more realistic and complex viscous behaviors than the preceding SPH frameworks in computer animation literature.
Journal ArticleDOI

An energy-preserving Discrete Element Method for elastodynamics

TL;DR: In this paper, the Discrete Element Method (DEM) for elastodynamics using polyhedral elements has been developed, which recovers the equations of linear elastodynamic in small deformations.
References
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Journal ArticleDOI

Moving-Particle Semi-Implicit Method for Fragmentation of Incompressible Fluid

TL;DR: In this paper, a moving-particle semi-implicit (MPS) method for simulating fragmentation of incompressible fluids is presented, where the motion of each particle is calculated through interactions with neighboring particles covered with the kernel function.
Journal ArticleDOI

Breaker type classification on three laboratory beaches

TL;DR: Breaker type, for waves on smooth concrete slopes, depends on beach slope m, wave period T, and either deep-water or breaker height, H 0 or Hb as discussed by the authors.
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