Discrete differential geometry: The nonplanar quadrilateral mesh

Carole J. Twining and Stephen Marsland
Phys. Rev. E 85, 066708 – Published 27 June 2012

Abstract

We consider the problem of constructing a discrete differential geometry defined on nonplanar quadrilateral meshes. Physical models on discrete nonflat spaces are of inherent interest, as well as being used in applications such as computation for electromagnetism, fluid mechanics, and image analysis. However, the majority of analysis has focused on triangulated meshes. We consider two approaches: discretizing the tensor calculus, and a discrete mesh version of differential forms. While these two approaches are equivalent in the continuum, we show that this is not true in the discrete case. Nevertheless, we show that it is possible to construct mesh versions of the Levi-Civita connection (and hence the tensorial covariant derivative and the associated covariant exterior derivative), the torsion, and the curvature. We show how discrete analogs of the usual vector integral theorems are constructed in such a way that the appropriate conservation laws hold exactly on the mesh, rather than only as approximations to the continuum limit. We demonstrate the success of our method by constructing a mesh version of classical electromagnetism and discuss how our formalism could be used to deal with other physical models, such as fluids.

  • Figure
  • Figure
  • Received 28 June 2010

DOI:https://doi.org/10.1103/PhysRevE.85.066708

©2012 American Physical Society

Authors & Affiliations

Carole J. Twining*

  • Imaging Science and Biomedical Engineering (ISBE), University of Manchester, Manchester, United Kingdom

Stephen Marsland

  • School of Engineering and Advanced Technology (SEAT), Massey University, Palmerston North, New Zealand

  • *carole.twining@manchester.ac.uk
  • s.r.marsland@massey.ac.nz

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Issue

Vol. 85, Iss. 6 — June 2012

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