The Finite Element Method (FEM) is commonly applied to analyze the mechanical correctness of different materials as well as synthetic matter. There are a number of ways that FEM can be used to compare theoretical and analytical results on such materials, including numerical simulations. Numerical simulations allow for analysis in terms of nonlinear materiality using various constitutive models so as to account for the effects of strain rate, temperature, etc. In this way one can generate not only analytical solutions but also useful comparisons between theoretical predictions and experimental verification of behaviors related to deformation or fracture mechanisms. By means of control volume approach in which boundary conditions defining loading applied onto the material’s surfaces obtained from CAD geometry files like from AutoCAD, Free CAD etc. can be input into analysis software tools designed around FEM-based algorithms like PrePoMax; thus, enabling accurate determination of stress distribution throughout the object’s entirety under consideration even when its constitutively complex deformations take place within it during load application.

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Analysing Mechanical Properties of Synthetic Material for Artificial Organ Manufacturing by Finite Element Analysis

  • Sougata Kundu,
  • Subrata Mondal,
  • Chandan Datta

摘要

The Finite Element Method (FEM) is commonly applied to analyze the mechanical correctness of different materials as well as synthetic matter. There are a number of ways that FEM can be used to compare theoretical and analytical results on such materials, including numerical simulations. Numerical simulations allow for analysis in terms of nonlinear materiality using various constitutive models so as to account for the effects of strain rate, temperature, etc. In this way one can generate not only analytical solutions but also useful comparisons between theoretical predictions and experimental verification of behaviors related to deformation or fracture mechanisms. By means of control volume approach in which boundary conditions defining loading applied onto the material’s surfaces obtained from CAD geometry files like from AutoCAD, Free CAD etc. can be input into analysis software tools designed around FEM-based algorithms like PrePoMax; thus, enabling accurate determination of stress distribution throughout the object’s entirety under consideration even when its constitutively complex deformations take place within it during load application.