Split Hopkinson bar tests on metaconcrete: modeling and numerical simulations
The work deals with the dynamic characterization of metaconcrete, a mechanical metamaterial with locally resonant inclusions and unconventional dynamic performance. Metaconcrete can be defined as an unusual concrete in which standard aggregates are partially replaced by engineered ones made of a rig...
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EDP Sciences
2021-01-01
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Series: | EPJ Web of Conferences |
Online Access: | https://www.epj-conferences.org/articles/epjconf/pdf/2021/04/epjconf_dymat2021_02018.pdf |
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doaj-a79c2710dd0e40daa3f528cc2ad9ba882021-09-21T15:17:01ZengEDP SciencesEPJ Web of Conferences2100-014X2021-01-012500201810.1051/epjconf/202125002018epjconf_dymat2021_02018Split Hopkinson bar tests on metaconcrete: modeling and numerical simulationsBriccola Deborah0Cadoni Ezio1DynaMat SUPSI Laboratory, University of Applied Sciences and Arts of Southern SwitzerlandDynaMat SUPSI Laboratory, University of Applied Sciences and Arts of Southern SwitzerlandThe work deals with the dynamic characterization of metaconcrete, a mechanical metamaterial with locally resonant inclusions and unconventional dynamic performance. Metaconcrete can be defined as an unusual concrete in which standard aggregates are partially replaced by engineered ones made of a rigid heavy core covered by a compliant layer. From a mechanical point of view, its mitigation properties are associated to the mechanical energy trapped by the inclusions when acted upon by an elastic pulse with a frequency content close to their own resonant frequencies. So far, a discrete number of experimental investigations have been performed but none of these consider the impulsive nature of blast and impact loadings and the direction of the incoming wave with respect to the inclusion orientation in case of a brittle matrix. The results of numerical simulations considering different configurations of engineered inclusions within a single metaconcrete unit are compared in terms of stress level attained as well as internal and kinetic energy involved. Metaconcrete can bring about disruptive applications in several fields of applied sciences, but for the technology to become firmly established a synergism between computational and experimental approaches is paramount.https://www.epj-conferences.org/articles/epjconf/pdf/2021/04/epjconf_dymat2021_02018.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Briccola Deborah Cadoni Ezio |
spellingShingle |
Briccola Deborah Cadoni Ezio Split Hopkinson bar tests on metaconcrete: modeling and numerical simulations EPJ Web of Conferences |
author_facet |
Briccola Deborah Cadoni Ezio |
author_sort |
Briccola Deborah |
title |
Split Hopkinson bar tests on metaconcrete: modeling and numerical simulations |
title_short |
Split Hopkinson bar tests on metaconcrete: modeling and numerical simulations |
title_full |
Split Hopkinson bar tests on metaconcrete: modeling and numerical simulations |
title_fullStr |
Split Hopkinson bar tests on metaconcrete: modeling and numerical simulations |
title_full_unstemmed |
Split Hopkinson bar tests on metaconcrete: modeling and numerical simulations |
title_sort |
split hopkinson bar tests on metaconcrete: modeling and numerical simulations |
publisher |
EDP Sciences |
series |
EPJ Web of Conferences |
issn |
2100-014X |
publishDate |
2021-01-01 |
description |
The work deals with the dynamic characterization of metaconcrete, a mechanical metamaterial with locally resonant inclusions and unconventional dynamic performance. Metaconcrete can be defined as an unusual concrete in which standard aggregates are partially replaced by engineered ones made of a rigid heavy core covered by a compliant layer. From a mechanical point of view, its mitigation properties are associated to the mechanical energy trapped by the inclusions when acted upon by an elastic pulse with a frequency content close to their own resonant frequencies. So far, a discrete number of experimental investigations have been performed but none of these consider the impulsive nature of blast and impact loadings and the direction of the incoming wave with respect to the inclusion orientation in case of a brittle matrix. The results of numerical simulations considering different configurations of engineered inclusions within a single metaconcrete unit are compared in terms of stress level attained as well as internal and kinetic energy involved. Metaconcrete can bring about disruptive applications in several fields of applied sciences, but for the technology to become firmly established a synergism between computational and experimental approaches is paramount. |
url |
https://www.epj-conferences.org/articles/epjconf/pdf/2021/04/epjconf_dymat2021_02018.pdf |
work_keys_str_mv |
AT briccoladeborah splithopkinsonbartestsonmetaconcretemodelingandnumericalsimulations AT cadoniezio splithopkinsonbartestsonmetaconcretemodelingandnumericalsimulations |
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1717372367997501440 |