A State of the Art Review of the Particle Finite Element Method (PFEM)

Современный обзор метода конечных элементов на частицах (PFEM)
Massimiliano Cremonesi, Alessandro Franci, Sergio R. Idelsohn, Eugenio Oñate
2020-08-08

Lagrangian frameworkevolving domainsmesh remeshingmulti-physics simulationsparticle finite element method (PFEM)
Abstract The particle finite element method (PFEM) is a powerful and robust numerical tool for the simulation of multi-physics problems in evolving domains. The PFEM exploits the Lagrangian framework to automatically identify and follow interfaces between different materials (e.g. fluid–fluid, fluid–solid or free surfaces). The method solves the governing equations with the standard finite element method and overcomes mesh distortion issues using a fast and efficient remeshing procedure. The flexibility and robustness of the method together with its capability for dealing with large topological variations of the computational domains, explain its success for solving a wide range of industrial and engineering problems. This paper provides an extended overview of the theory and applications of the method, giving the tools required to understand the PFEM from its basic ideas to the more advanced applications. Moreover, this work aims to confirm the flexibility and robustness of the PFEM for a broad range of engineering applications. Furthermore, presenting the advantages and disadvantages of the method, this overview can be the starting point for improvements of PFEM technology and for widening its application fields.
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PFEM can handle substantial topological changes in computational domains, supporting diverse industrial and engineering applications.
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PFEM uses a Lagrangian framework to automatically identify and track fluid–fluid, fluid–solid, and free-surface interfaces.
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The Particle Finite Element Method (PFEM) is a robust numerical approach for simulating multiphysics problems in evolving computational domains.
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The method combines standard finite element discretization with efficient remeshing to mitigate mesh distortion during large deformations.
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The review summarizes PFEM theory, applications, advantages, and disadvantages, identifying directions for improving the method and expanding its use.

Particle finite element method (PFEM) for simulating multiphysics problems in evolving domains

PFEM theory, flexibility, robustness, and applications for tracking material interfaces and handling large topological variations

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2020-08-08
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Authors
Massimiliano Cremonesi
Alessandro Franci
Sergio R. Idelsohn
Eugenio Oñate
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