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Author

  • Minh Tuan Duong (14)
  • Manfred Staat (13)
  • Nhu Huynh Nguyen (4)
  • Ralf Frotscher (2)
  • Thanh Ngoc Tran (2)
  • Alexander Jung (1)
  • Andreas Horbach (1)
  • Aysegül Temiz Artmann (1)
  • Gerhard Artmann (1)
  • N. H. Nguyen (1)
  • N. Huynh Nguyen (1)
  • Nhu Hunyh Nguyen (1)
  • O. Grottke (1)
  • P. Tinh Pham (1)
  • R. H. Tolba (1)
  • R. Tolba (1)
  • Volker Seifarth (1)

Year of publication

  • 2018 (1)
  • 2017 (2)
  • 2016 (2)
  • 2015 (5)
  • 2014 (1)
  • 2012 (3)

Document Type

  • Conference Proceeding (6)
  • Article (5)
  • Part of a Book (2)
  • Doctoral Thesis (1)

Has Fulltext

  • no (10)
  • yes (4)

Institute

  • Fachbereich Medizintechnik und Technomathematik (14)
  • IfB - Institut für Bioengineering (14)
  • Fachbereich Chemie und Biotechnologie (1)

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Simulating beating cardiomyocytes with electromechanical coupling (2015)
Ralf Frotscher ; Minh Tuan Duong ; Manfred Staat
Physical response of hyperelastic models for composite materials and soft tissues (2015)
Minh Tuan Duong ; Nhu Huynh Nguyen ; Manfred Staat
A face-based smoothed finite element method for hyperelastic models and tissue growth (2014)
Minh Tuan Duong ; Manfred Staat
Influence of a freeze–thaw cycle on the stress–stretch curves of tissues of porcine abdominal organs (2012)
N. Huynh Nguyen ; Minh Tuan Duong ; Thanh Ngoc Tran ; P. Tinh Pham ; O. Grottke ; R. Tolba ; Manfred Staat
Modelling of compressible and orthotropic surgical mesh implants based on optical deformation measurement (2017)
Andreas Horbach ; Minh Tuan Duong ; Manfred Staat
Physical response of hyperelastic models for composite materials and soft tissues (2017)
Minh Tuan Duong ; Nhu Huynh Nguyen ; Manfred Staat
A 3D electromechanical FEM-based model for cardiac tissue (2016)
Minh Tuan Duong ; Alexander Jung ; Ralf Frotscher ; Manfred Staat
Smoothed Finite Element Methods for Nonlinear Solid Mechanics Problems: 2D and 3D Case Studies (2016)
Manfred Staat ; Minh Tuan Duong
The Smoothed Finite Element Method (SFEM) is presented as an edge-based and a facebased techniques for 2D and 3D boundary value problems, respectively. SFEMs avoid shortcomings of the standard Finite Element Method (FEM) with lower order elements such as overly stiff behavior, poor stress solution, and locking effects. Based on the idea of averaging spatially the standard strain field of the FEM over so-called smoothing domains SFEM calculates the stiffness matrix for the same number of degrees of freedom (DOFs) as those of the FEM. However, the SFEMs significantly improve accuracy and convergence even for distorted meshes and/or nearly incompressible materials. Numerical results of the SFEMs for a cardiac tissue membrane (thin plate inflation) and an artery (tension of 3D tube) show clearly their advantageous properties in improving accuracy particularly for the distorted meshes and avoiding shear locking effects.
Modeling and simulation of a growing mass by the Smoothed Finite Element Method (SFEM) (2015)
Minh Tuan Duong ; N. H. Nguyen ; Manfred Staat
Hyperelastic modeling and soft-tissue growth integrated with the smoothed finite element method - SFEM (2015)
Minh Tuan Duong
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