Structural design of the minute clypeasteroid echinoid Echinocyamus pusillus

The clypeasteroid echinoid skeleton is a multi-plated, light-weight shell construction produced by biomineralization processes. In shell constructions, joints between individual elements are considered as weak points, yet these echinoid skeletons show an extensive preservation potential in both Rece...

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Main Authors: Tobias B. Grun, James H. Nebelsick
Format: Article
Language:English
Published: The Royal Society 2018-01-01
Series:Royal Society Open Science
Subjects:
Online Access:https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.171323
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spelling doaj-6958af711dcf425b8751084c28712cd02020-11-25T03:56:48ZengThe Royal SocietyRoyal Society Open Science2054-57032018-01-015510.1098/rsos.171323171323Structural design of the minute clypeasteroid echinoid Echinocyamus pusillusTobias B. GrunJames H. NebelsickThe clypeasteroid echinoid skeleton is a multi-plated, light-weight shell construction produced by biomineralization processes. In shell constructions, joints between individual elements are considered as weak points, yet these echinoid skeletons show an extensive preservation potential in both Recent and fossil environments. The remarkable strength of the test is achieved by skeletal reinforcement structures and their constructional layouts. Micro-computed tomography and scanning electron microscopy are used for microstructural and volumetric analyses of the echinoid's skeleton. It is shown that strengthening mechanisms act on different hierarchical levels from the overall shape of the skeleton to skeletal interlocking. The tight-fitting and interlocking plate joints lead to a shell considered to behave as a monolithic structure. The plate's architecture features distinct regions interpreted as a significant load-transferring system. The internal support system follows the segmentation of the remaining skeleton, where sutural layout and stereom distribution are designed for effective load transfer. The structural analysis of the multi-plated, yet monolithic skeleton of Echinocyamus pusillus reveals new aspects of the micro-morphology and its structural relevance for the load-bearing behaviour. The analysed structural principles allow E. pusillus to be considered as a role model for the development of multi-element, light-weight shell constructions.https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.171323echinoid skeletonmulti-element shellstructural hierarchyplate jointsinternal supportsstereom architecture
collection DOAJ
language English
format Article
sources DOAJ
author Tobias B. Grun
James H. Nebelsick
spellingShingle Tobias B. Grun
James H. Nebelsick
Structural design of the minute clypeasteroid echinoid Echinocyamus pusillus
Royal Society Open Science
echinoid skeleton
multi-element shell
structural hierarchy
plate joints
internal supports
stereom architecture
author_facet Tobias B. Grun
James H. Nebelsick
author_sort Tobias B. Grun
title Structural design of the minute clypeasteroid echinoid Echinocyamus pusillus
title_short Structural design of the minute clypeasteroid echinoid Echinocyamus pusillus
title_full Structural design of the minute clypeasteroid echinoid Echinocyamus pusillus
title_fullStr Structural design of the minute clypeasteroid echinoid Echinocyamus pusillus
title_full_unstemmed Structural design of the minute clypeasteroid echinoid Echinocyamus pusillus
title_sort structural design of the minute clypeasteroid echinoid echinocyamus pusillus
publisher The Royal Society
series Royal Society Open Science
issn 2054-5703
publishDate 2018-01-01
description The clypeasteroid echinoid skeleton is a multi-plated, light-weight shell construction produced by biomineralization processes. In shell constructions, joints between individual elements are considered as weak points, yet these echinoid skeletons show an extensive preservation potential in both Recent and fossil environments. The remarkable strength of the test is achieved by skeletal reinforcement structures and their constructional layouts. Micro-computed tomography and scanning electron microscopy are used for microstructural and volumetric analyses of the echinoid's skeleton. It is shown that strengthening mechanisms act on different hierarchical levels from the overall shape of the skeleton to skeletal interlocking. The tight-fitting and interlocking plate joints lead to a shell considered to behave as a monolithic structure. The plate's architecture features distinct regions interpreted as a significant load-transferring system. The internal support system follows the segmentation of the remaining skeleton, where sutural layout and stereom distribution are designed for effective load transfer. The structural analysis of the multi-plated, yet monolithic skeleton of Echinocyamus pusillus reveals new aspects of the micro-morphology and its structural relevance for the load-bearing behaviour. The analysed structural principles allow E. pusillus to be considered as a role model for the development of multi-element, light-weight shell constructions.
topic echinoid skeleton
multi-element shell
structural hierarchy
plate joints
internal supports
stereom architecture
url https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.171323
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AT jameshnebelsick structuraldesignoftheminuteclypeasteroidechinoidechinocyamuspusillus
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