Structural stress response of segmented natural shells: a numerical case study on the clypeasteroid echinoid <i>Echinocyamus pusillus</i>.
biomechanical · Level V
Where this comes from
- Record sourced from PubMed, PMID 29899160.
- Also identified by DOI 10.1098/rsif.2018.0164 and PMC identifier 6030617.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
The skeleton of <i>Echinocyamus pusillus</i> is considered as an exceptional model organism for structural strength and skeletal integrity within the echinoids as demonstrated by the absence of supportive collagenous fibres between single plates and the high preservation potential of their skeletons. The structural principles behind this remarkably stable, multi-plated, light-weight construction remain hardly explored. In this study, high-resolution X-ray micro-computed tomography, finite-element analysis and physical crushing tests are used to examine the structural mechanisms of this echinoid's skeleton. The virtual model of <i>E. pusillus</i> shows that the material is heterogeneously distributed with high material accumulations in the internal buttress system and at the plate boundaries. Finite-element analysis indicates that the heterogeneous material distribution has no effect on the skeleton's strength. This numerical approach also demonstrates that the internal buttress system is of high significance for the overall skeletal stability of this flattened echinoid. Results of the finite-element analyses with respect to the buttress importance were evaluated by physical crushing tests. These uniaxial compression experiments support the results of the simulation analysis. Additionally, the crushing tests demonstrate that organic tissues do not significantly contribute to the skeletal stability. The strength of the echinoid shell, hence, predominantly relies on the structural design.
Medical subject headings
- Bone Density
- Computer Simulation
- Models, Biological
- Sea Urchins
- Skeleton
- Stress, Mechanical