Basalt Fibre Composite with Carbon Nanomodified Epoxy Matrix under Hydrothermal Ageing

This work aimed to investigate the effect of hybrid carbon nanofillers (e.g., carbon nanotubes/carbon nanofibers in the ratio 1:1 by mass) over the electrical and flexural properties for an epoxy matrix and corresponding basalt fibre reinforcing composite (BFRC) subjected to full-year seasonal water...

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Main Authors: Tatjana Glaskova-Kuzmina, Aldobenedetto Zotti, Anna Borriello, Mauro Zarrelli, Andrey Aniskevich
Format: Article
Language:English
Published: MDPI AG 2021-02-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/13/4/532
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spelling doaj-d381cc2319df49e48efaf2dcac2754f62021-02-12T00:04:51ZengMDPI AGPolymers2073-43602021-02-011353253210.3390/polym13040532Basalt Fibre Composite with Carbon Nanomodified Epoxy Matrix under Hydrothermal AgeingTatjana Glaskova-Kuzmina0Aldobenedetto Zotti1Anna Borriello2Mauro Zarrelli3Andrey Aniskevich4Institute for Mechanics of Materials, University of Latvia, 3-635, Jelgavas Str., LV-1004 Riga, LatviaInstitute of Polymers, Composites and Biomaterials, National Research Council of Italy, 80055Portici, ItalyInstitute of Polymers, Composites and Biomaterials, National Research Council of Italy, 80055Portici, ItalyInstitute of Polymers, Composites and Biomaterials, National Research Council of Italy, 80055Portici, ItalyInstitute for Mechanics of Materials, University of Latvia, 3-635, Jelgavas Str., LV-1004 Riga, LatviaThis work aimed to investigate the effect of hybrid carbon nanofillers (e.g., carbon nanotubes/carbon nanofibers in the ratio 1:1 by mass) over the electrical and flexural properties for an epoxy matrix and corresponding basalt fibre reinforcing composite (BFRC) subjected to full-year seasonal water absorption. Hydrothermal ageing was performed by full immersion of the tested materials into distilled water according to the following model conditions (seasons). The mechanical properties were measured in three-point bending mode before environmental ageing and after each season. Upon environmental ageing, the relative change of flexural strength and elastic modulus of the epoxy and NC was within 10–15%. For nanomodified BFRCs, the slightly higher effect (approx. by 10%) of absorbed moisture on flexural characteristics was found and likely attributed to higher defectiveness (e.g., porosity, the formation of agglomerates etc.). During flexural tests, electrical resistance of the nanocomposites (NC) and BFRC/NC samples was evaluated. The electrical conductivity for UD BFRC/NC, before and after hydrothermal ageing, was by 2 and 3 times higher than for the NC, accordingly, revealing the orientation of electrically conductive nanoparticles and/or their agglomerates during lay-up manufacturing which was evaluated by the rules of the mixture. Based on all results obtained it can be concluded that the most potentially applicable for damage indication was UD BFRC/NC along fibres since full-year hydrothermal ageing improved its electrical conductivity by approx. 98% and, consequently, the ability to monitor damages was also enhanced.https://www.mdpi.com/2073-4360/13/4/532polymer compositecarbon nanofillerepoxyhydrothermal ageingmechanical propertieswater absorption
collection DOAJ
language English
format Article
sources DOAJ
author Tatjana Glaskova-Kuzmina
Aldobenedetto Zotti
Anna Borriello
Mauro Zarrelli
Andrey Aniskevich
spellingShingle Tatjana Glaskova-Kuzmina
Aldobenedetto Zotti
Anna Borriello
Mauro Zarrelli
Andrey Aniskevich
Basalt Fibre Composite with Carbon Nanomodified Epoxy Matrix under Hydrothermal Ageing
Polymers
polymer composite
carbon nanofiller
epoxy
hydrothermal ageing
mechanical properties
water absorption
author_facet Tatjana Glaskova-Kuzmina
Aldobenedetto Zotti
Anna Borriello
Mauro Zarrelli
Andrey Aniskevich
author_sort Tatjana Glaskova-Kuzmina
title Basalt Fibre Composite with Carbon Nanomodified Epoxy Matrix under Hydrothermal Ageing
title_short Basalt Fibre Composite with Carbon Nanomodified Epoxy Matrix under Hydrothermal Ageing
title_full Basalt Fibre Composite with Carbon Nanomodified Epoxy Matrix under Hydrothermal Ageing
title_fullStr Basalt Fibre Composite with Carbon Nanomodified Epoxy Matrix under Hydrothermal Ageing
title_full_unstemmed Basalt Fibre Composite with Carbon Nanomodified Epoxy Matrix under Hydrothermal Ageing
title_sort basalt fibre composite with carbon nanomodified epoxy matrix under hydrothermal ageing
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2021-02-01
description This work aimed to investigate the effect of hybrid carbon nanofillers (e.g., carbon nanotubes/carbon nanofibers in the ratio 1:1 by mass) over the electrical and flexural properties for an epoxy matrix and corresponding basalt fibre reinforcing composite (BFRC) subjected to full-year seasonal water absorption. Hydrothermal ageing was performed by full immersion of the tested materials into distilled water according to the following model conditions (seasons). The mechanical properties were measured in three-point bending mode before environmental ageing and after each season. Upon environmental ageing, the relative change of flexural strength and elastic modulus of the epoxy and NC was within 10–15%. For nanomodified BFRCs, the slightly higher effect (approx. by 10%) of absorbed moisture on flexural characteristics was found and likely attributed to higher defectiveness (e.g., porosity, the formation of agglomerates etc.). During flexural tests, electrical resistance of the nanocomposites (NC) and BFRC/NC samples was evaluated. The electrical conductivity for UD BFRC/NC, before and after hydrothermal ageing, was by 2 and 3 times higher than for the NC, accordingly, revealing the orientation of electrically conductive nanoparticles and/or their agglomerates during lay-up manufacturing which was evaluated by the rules of the mixture. Based on all results obtained it can be concluded that the most potentially applicable for damage indication was UD BFRC/NC along fibres since full-year hydrothermal ageing improved its electrical conductivity by approx. 98% and, consequently, the ability to monitor damages was also enhanced.
topic polymer composite
carbon nanofiller
epoxy
hydrothermal ageing
mechanical properties
water absorption
url https://www.mdpi.com/2073-4360/13/4/532
work_keys_str_mv AT tatjanaglaskovakuzmina basaltfibrecompositewithcarbonnanomodifiedepoxymatrixunderhydrothermalageing
AT aldobenedettozotti basaltfibrecompositewithcarbonnanomodifiedepoxymatrixunderhydrothermalageing
AT annaborriello basaltfibrecompositewithcarbonnanomodifiedepoxymatrixunderhydrothermalageing
AT maurozarrelli basaltfibrecompositewithcarbonnanomodifiedepoxymatrixunderhydrothermalageing
AT andreyaniskevich basaltfibrecompositewithcarbonnanomodifiedepoxymatrixunderhydrothermalageing
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