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Isogeometric Analysis for Topology Optimization with a Phase Field Model

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SPRINGER
DOI: 10.1007/s11831-012-9075-z

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  1. Office of Naval Research [N00014-08-0992]
  2. Army Research Office [W911NF-10-1-0216]
  3. Sandia National Laboratories
  4. United States Department of Energy's National Nuclear Security Administration [DE-AC04-94AL85000]

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We consider a phase field model for the formulation and solution of topology optimization problems in the minimum compliance case. In this model, the optimal topology is obtained as the steady state of the phase transition described by the generalized Cahn-Hilliard equation which naturally embeds the volume constraint on the amount of material available for distribution in the design domain. We reformulate the model as a coupled system and we highlight the dependency of the optimal topologies on dimensionless parameters. We consider Isogeometric Analysis for the spatial approximation which facilitates encapsulating the exactness of the representation of the design domain in the topology optimization and is particularly suitable for the analysis of phase field problems. We demonstrate the validity of the approach and numerical approximation by solving two and three-dimensional topology optimization problems.

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