Adaptive fracture simulation of multi-layered thin plates
Oleksiy Busaryev, Tamal K. Dey, Huamin Wang
In ACM Transactions on Graphics, 32(4), July 2013.
Abstract: The fractures of thin plates often exhibit complex physical behaviors in the real world. In particular, fractures caused by tearing are different from fractures caused by in-plane motions. In this paper, we study how to make thin-plate fracture animations more realistic from three perspectives. We propose a stress relaxation method, which is applied to avoid shattering artifacts after generating each fracture cut. We formulate a fracture-aware remeshing scheme based on constrained Delaunay triangulation, to adaptively provide more fracture details. Finally, we use our multi-layered model to simulate complex fracture behaviors across thin layers. Our experiment shows that the system can efficiently and realistically simulate the fractures of multi-layered thin plates.
Article URL: http://dx.doi.org/10.1145/2461912.2461920
BibTeX format:
@article{Busaryev:2013:AFS,
  author = {Oleksiy Busaryev and Tamal K. Dey and Huamin Wang},
  title = {Adaptive fracture simulation of multi-layered thin plates},
  journal = {ACM Transactions on Graphics},
  volume = {32},
  number = {4},
  pages = {52:1--52:6},
  month = jul,
  year = {2013},
}
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