Experimental analysis of aluminium/carbon epoxy hybrid laminates under flexural load

Industry needs new materials that present very high structural characteristic, such as high strength, low weight and high damage tolerance. To obtain these characteristics a new class of materials has been introduced: Fibre Metal Laminate (FML); they consist in metal sheets alternated to composite...

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Main Authors: Costanzo Bellini, Vittorio Di Cocco, Francesco Iacoviello, Luca Sorrentino
Format: Article
Language:English
Published: Gruppo Italiano Frattura 2019-06-01
Series:Frattura ed Integrità Strutturale
Subjects:
Online Access:https://www.fracturae.com/index.php/fis/article/view/2535
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spelling doaj-060ca47426dc4ddab9372a8223af81e12021-01-27T17:13:51ZengGruppo Italiano FratturaFrattura ed Integrità Strutturale1971-89932019-06-011349Experimental analysis of aluminium/carbon epoxy hybrid laminates under flexural loadCostanzo Bellini0Vittorio Di CoccoFrancesco IacovielloLuca SorrentinoUniversity of Cassino and Southern Lazio Industry needs new materials that present very high structural characteristic, such as high strength, low weight and high damage tolerance. To obtain these characteristics a new class of materials has been introduced: Fibre Metal Laminate (FML); they consist in metal sheets alternated to composite material layers: in such manner, the good characteristics of each constituent material confer the utmost properties to the FMLs. However, the mechanical properties depend, among other factors, on the thickness and the numerousness of the layers constituting the FML, as well as the interface between metal and composite. Therefore, in this paper, the influence of the abovementioned factors on the material answer to flexural load was investigated. In particular, different kinds of laminates were produced varying the layers adhesion and the layers thickness, but maintaining unaltered the metal/composite volume ratio and the total laminate thickness. Then their structural behaviour was investigated through three-point bending test, and it was found that the flexural behaviour was affected by both the investigated factors; in fact, the maximum flexural load diminished incrementing the number of layers and inserting an adhesive layer at the metal/composite interface. https://www.fracturae.com/index.php/fis/article/view/2535Fibre metal laminateflexural loadstructural behaviour
collection DOAJ
language English
format Article
sources DOAJ
author Costanzo Bellini
Vittorio Di Cocco
Francesco Iacoviello
Luca Sorrentino
spellingShingle Costanzo Bellini
Vittorio Di Cocco
Francesco Iacoviello
Luca Sorrentino
Experimental analysis of aluminium/carbon epoxy hybrid laminates under flexural load
Frattura ed Integrità Strutturale
Fibre metal laminate
flexural load
structural behaviour
author_facet Costanzo Bellini
Vittorio Di Cocco
Francesco Iacoviello
Luca Sorrentino
author_sort Costanzo Bellini
title Experimental analysis of aluminium/carbon epoxy hybrid laminates under flexural load
title_short Experimental analysis of aluminium/carbon epoxy hybrid laminates under flexural load
title_full Experimental analysis of aluminium/carbon epoxy hybrid laminates under flexural load
title_fullStr Experimental analysis of aluminium/carbon epoxy hybrid laminates under flexural load
title_full_unstemmed Experimental analysis of aluminium/carbon epoxy hybrid laminates under flexural load
title_sort experimental analysis of aluminium/carbon epoxy hybrid laminates under flexural load
publisher Gruppo Italiano Frattura
series Frattura ed Integrità Strutturale
issn 1971-8993
publishDate 2019-06-01
description Industry needs new materials that present very high structural characteristic, such as high strength, low weight and high damage tolerance. To obtain these characteristics a new class of materials has been introduced: Fibre Metal Laminate (FML); they consist in metal sheets alternated to composite material layers: in such manner, the good characteristics of each constituent material confer the utmost properties to the FMLs. However, the mechanical properties depend, among other factors, on the thickness and the numerousness of the layers constituting the FML, as well as the interface between metal and composite. Therefore, in this paper, the influence of the abovementioned factors on the material answer to flexural load was investigated. In particular, different kinds of laminates were produced varying the layers adhesion and the layers thickness, but maintaining unaltered the metal/composite volume ratio and the total laminate thickness. Then their structural behaviour was investigated through three-point bending test, and it was found that the flexural behaviour was affected by both the investigated factors; in fact, the maximum flexural load diminished incrementing the number of layers and inserting an adhesive layer at the metal/composite interface.
topic Fibre metal laminate
flexural load
structural behaviour
url https://www.fracturae.com/index.php/fis/article/view/2535
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AT vittoriodicocco experimentalanalysisofaluminiumcarbonepoxyhybridlaminatesunderflexuralload
AT francescoiacoviello experimentalanalysisofaluminiumcarbonepoxyhybridlaminatesunderflexuralload
AT lucasorrentino experimentalanalysisofaluminiumcarbonepoxyhybridlaminatesunderflexuralload
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