• DocumentCode
    1442696
  • Title

    Cubical Mass-Spring Model Design Based on a Tensile Deformation Test and Nonlinear Material Model

  • Author

    San-Vicente, Gaizka ; Aguinaga, Iker ; Celigüeta, Juan Tomás

  • Author_Institution
    Dept. of Appl. Mech., TECNUN, San Sebastian, Spain
  • Volume
    18
  • Issue
    2
  • fYear
    2012
  • Firstpage
    228
  • Lastpage
    241
  • Abstract
    Mass-Spring Models (MSMs) are used to simulate the mechanical behavior of deformable bodies such as soft tissues in medical applications. Although they are fast to compute, they lack accuracy and their design remains still a great challenge. The major difficulties in building realistic MSMs lie on the spring stiffness estimation and the topology identification. In this work, the mechanical behavior of MSMs under tensile loads is analyzed before studying the spring stiffness estimation. In particular, the performed qualitative and quantitative analysis of the behavior of cubical MSMs shows that they have a nonlinear response similar to hyperelastic material models. According to this behavior, a new method for spring stiffness estimation valid for linear and nonlinear material models is proposed. This method adjusts the stress-strain and compressibility curves to a given reference behavior. The accuracy of the MSMs designed with this method is tested taking as reference some soft-tissue simulations based on nonlinear Finite Element Method (FEM). The obtained results show that MSMs can be designed to realistically model the behavior of hyperelastic materials such as soft tissues and can become an interesting alternative to other approaches such as nonlinear FEM.
  • Keywords
    deformation; elasticity; finite element analysis; springs (mechanical); stress-strain relations; tensile testing; compressibility curves; cubical mass-spring model design; deformable bodies mechanical behavior; hyperelastic material models; nonlinear finite element method; nonlinear material model; soft-tissue simulations; spring stiffness estimation; stress-strain; tensile deformation test; topology identification; Computational modeling; Deformable models; Finite element methods; Materials; Mathematical model; Solid modeling; Springs; Animation; model development; physically based modeling; virtual reality.; Biomechanics; Brain; Computer Graphics; Computer Simulation; Elasticity; Finite Element Analysis; Humans; Linear Models; Models, Biological; Nonlinear Dynamics; Stress, Mechanical; User-Computer Interface;
  • fLanguage
    English
  • Journal_Title
    Visualization and Computer Graphics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1077-2626
  • Type

    jour

  • DOI
    10.1109/TVCG.2011.32
  • Filename
    5708199