Generalizing the advancing front method to composite surfaces in the context of meshing constraints topology

  • G. Foucault
  • , J. C. Cuillière
  • , V. François
  • , J. C. Léon
  • , R. Maranzana

Research output: Contribution to journalJournal Articlepeer-review

24 Citations (Scopus)

Abstract

Being able to automatically mesh composite geometry is an important issue in the context of CAD-FEA integration. In some specific contexts of this integration, such as using virtual topology or meshing constraints topology (MCT), it is even a key requirement. In this paper, we present a new approach to automatic mesh generation over composite geometry. The proposed mesh generation approach is based on a generalization of the advancing front method (AFM) over curved surfaces. The adaptation of the AFM to composite faces (composed of multiple boundary representation (B-Rep) faces) involves the computation of complex paths along these B-Rep faces, on which progression of the advancing front is based. Each mesh segment or mesh triangle generated through this progression on composite geometry is likely to lie on multiple B-Rep faces and consequently, it is likely to be associated with a composite definition across multiple parametric spaces. Collision tests between new front segments and existing mesh elements also require specific and significant adaptations of the AFM, since a given front segment is also likely to lie on multiple B-Rep faces. This new mesh generation approach is presented in the context of MCT, which requires being able to handle composite geometry along with non-manifold boundary configurations, such as edges and vertices lying in the interior domain of B-Rep faces.

Original languageEnglish
Pages (from-to)1408-1425
Number of pages18
JournalCAD Computer Aided Design
Volume45
Issue number11
DOIs
Publication statusPublished - 2013
Externally publishedYes

!!!Keywords

  • Advancing front
  • Composite geometry
  • Defeaturing
  • Mesh adaptation
  • Mesh generation
  • Virtual topology

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