Extension of B-spline Material Point Method for unstructured triangular grids using Powell–Sabin splines

Journal Article (2020)
Author(s)

P.B.J. de Koster (TU Delft - Team Raf Van de Plas)

Roel Tielen (TU Delft - Numerical Analysis)

Elizaveta Wobbes (TU Delft - Numerical Analysis)

M. Möller (TU Delft - Numerical Analysis)

Research Group
Team Raf Van de Plas
Copyright
© 2020 P.B.J. de Koster, R.P.W.M. Tielen, Elizaveta Wobbes, M. Möller
DOI related publication
https://doi.org/10.1007/s40571-020-00328-3
More Info
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Publication Year
2020
Language
English
Copyright
© 2020 P.B.J. de Koster, R.P.W.M. Tielen, Elizaveta Wobbes, M. Möller
Research Group
Team Raf Van de Plas
Issue number
2
Volume number
8 (2021)
Pages (from-to)
273-288
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Abstract

The Material Point Method (MPM) is a numerical technique that combines a fixed Eulerian background grid and Lagrangian point masses to simulate materials which undergo large deformations. Within the original MPM, discontinuous gradients of the piecewise-linear basis functions lead to the so-called grid-crossing errors when particles cross element boundaries. Previous research has shown that B-spline MPM (BSMPM) is a viable alternative not only to MPM, but also to more advanced versions of the method that are designed to reduce the grid-crossing errors. In contrast to many other MPM-related methods, BSMPM has been used exclusively on structured rectangular domains, considerably limiting its range of applicability. In this paper, we present an extension of BSMPM to unstructured triangulations. The proposed approach combines MPM with C1-continuous high-order Powell–Sabin spline basis functions. Numerical results demonstrate the potential of these basis functions within MPM in terms of grid-crossing-error elimination and higher-order convergence.