Materials Science & Engineering A: Structural Materials: Properties, Microstructure and Processing, volume 797, pages 139963
Quantitative multi-scale characterization of single basalt fibres: Insights into strength loss mechanisms after thermal conditioning
Matteo Lilli
1
,
Edoardo Rossi
2
,
Jacopo Tirillò
1
,
Fabrizio Sarasini
1
,
Lorenzo Di Fausto
1
,
Teodoro Valente
1
,
Carlos Gonzalez
3
,
Andrea García Santesmases
4, 5
,
Cláudio Cerqueira Lopes
3
,
Riccardo Moscatelli
2
,
E. Bemporad
2
,
Publication type: Journal Article
Publication date: 2020-10-01
Journal:
Materials Science & Engineering A: Structural Materials: Properties, Microstructure and Processing
scimago Q1
wos Q2
SJR: 1.660
CiteScore: 11.5
Impact factor: 6.1
ISSN: 09215093, 18734936
Condensed Matter Physics
General Materials Science
Mechanical Engineering
Mechanics of Materials
Abstract
This article presents an experimental investigation to quantify the effects of high temperature exposure (400–600 °C) on the mechanical properties of single basalt fibres. To this purpose, a combination of single edge notch tension and nanoindentation micro-pillar splitting methods was used to provide an assessment of the fracture toughness of as-received and thermally treated basalt fibres. Similar values were obtained by the two different methods, and interestingly both highlighted an increase in K I c after heat treatment, up to 22% after exposure at 600 °C for 1h ( 1.59 ± 0.06 M P a m ). The increase in K I c suggests that microstructural changes occur in the fibres, as confirmed by high-speed nanoindentation mapping. Local radial heterogeneity in the fibre structure and elastic modulus and, possibly, the loss of defect orientation originally induced during the fibre drawing process are envisaged to control the decay of basalt fibres tensile strength during high temperature exposure, mimicking a thermal recycling process for composites.
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