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Computational framework to model and design surgical meshes for hernia repair
Authors:B Hernández-Gascón  N Espés  G Pascual  JM Bellón  B Calvo
Institution:1. Aragón Institute of Engineering Research, University of Zaragoza, Agustin Betancourt Building, Maria de Luna s/n, 50018, Zaragoza, Spain;2. Centro de Investigación Biomédica en Red en Bioingeniería, Biomateriales y Nanomedicina (CIBER-BBN), Spain;3. Centro de Investigación Biomédica en Red en Bioingeniería, Biomateriales y Nanomedicina (CIBER-BBN), Spain;4. Departament of Medical Specialities, Faculty of Medicine, University of Alcalá, Madrid, Spain;5. Departament of Surgery, Faculty of Medicine, University of Alcalá, Madrid, Campus Universitario Crta. de Madrid-Barcelona, Km. 33.600, Alcalá de Henares, Spain
Abstract:Surgical procedures for hernia surgery are usually performed using prosthetic meshes. In spite of all the improvements in these biomaterials, the perfect match between the prosthesis and the implant site has not been achieved. Thus, new designs of surgical meshes are still being developed. Previous to implantation in humans, the validity of the meshes has to be addressed, and to date experimental studies have been the gold standard in testing and validating new implants. Nevertheless, these procedures involve long periods of time and are expensive. Thus, a computational framework for the simulation of prosthesis and surgical procedures may overcome some disadvantages of the experimental methods. The computational framework includes two computational models for designing and validating the behaviour of new meshes, respectively. Firstly, the beam model, which reproduces the exact geometry of the mesh, is set to design the weave and determine the stiffness of the surgical prosthesis. However, this implies a high computational cost whereas the membrane model, defined within the framework of the large deformation hyperelasticity, is a relatively inexpensive computational tool, which also enables a prosthesis to be included in more complex geometries such as human or animal bodies.
Keywords:beam model  membrane model  hyperelasticity  finite element model
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