Literature DB >> 28236695

Investigation of the elastic modulus, tensile and flexural strength of five skull simulant materials for impact testing of a forensic skin/skull/brain model.

Lisa Falland-Cheung1, J Neil Waddell2, Kai Chun Li2, Darryl Tong2, Paul Brunton2.   

Abstract

Conducting in vitro research for forensic, impact and injury simulation modelling generally involves the use of a skull simulant with mechanical properties similar to those found in the human skull. For this study epoxy resin, fibre filled epoxy resin, 3D-printing filaments (PETG, PLA) and self-cure acrylic denture base resin were used to fabricate the specimens (n=20 per material group), according to ISO 527-2 IBB and ISO20795-1. Tensile and flexural testing in a universal testing machine was used to measure their tensile/flexural elastic modulus and strength. The results showed that the epoxy resin and fibre filled epoxy resin had similar tensile elastic moduli (no statistical significant difference) with lower values observed for the other materials. The fibre filled epoxy resin had a considerably higher flexural elastic modulus and strength, possibly attributed to the presence of fibres. Of the simulants tested, epoxy resin had an elastic modulus and flexural strength close to that of mean human skull values reported in the literature, and thus can be considered as a suitable skull simulant for a skin/skull/brain model for lower impact forces that do not exceed the fracture stress. For higher impact forces a 3D printing filament (PLA) may be a more suitable skull simulant material, due to its closer match to fracture stresses found in human skull bone. Influencing factors were also anisotropy, heterogeneity and viscoelasticity of human skull bone and simulant specimens.
Copyright © 2017 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  3D printing filament; Cranial bone; Epoxy resin; Skull simulant

Mesh:

Substances:

Year:  2017        PMID: 28236695     DOI: 10.1016/j.jmbbm.2017.02.023

Source DB:  PubMed          Journal:  J Mech Behav Biomed Mater        ISSN: 1878-0180


  6 in total

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Authors:  Dennis D Will; Terry L Whiting
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Authors:  Valentin Favier; Nabil Zemiti; Oscar Caravaca Mora; Gérard Subsol; Guillaume Captier; Renaud Lebrun; Louis Crampette; Michel Mondain; Benjamin Gilles
Journal:  PLoS One       Date:  2017-12-18       Impact factor: 3.240

4.  An Investigation on the Correlation between the Mechanical Properties of Human Skull Bone, Its Geometry, Microarchitectural Properties, and Water Content.

Authors:  Jik Hang Clifford Lee; Benjamin Ondruschka; Lisa Falland-Cheung; Mario Scholze; Niels Hammer; Darryl Chan Tong; John Neil Waddell
Journal:  J Healthc Eng       Date:  2019-05-23       Impact factor: 2.682

5.  Topographical mapping of the mechanical characteristics of the human neurocranium considering the role of individual layers.

Authors:  Johann Zwirner; Sarah Safavi; Mario Scholze; Kai Chun Li; John Neil Waddell; Björn Busse; Benjamin Ondruschka; Niels Hammer
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6.  Localizing Clinical Patterns of Blast Traumatic Brain Injury Through Computational Modeling and Simulation.

Authors:  Scott T Miller; Candice F Cooper; Paul Elsbernd; Joseph Kerwin; Ricardo Mejia-Alvarez; Adam M Willis
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  6 in total

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