Experimental study regarding the influence of fibre to matrix compatibility on general performance of Fibre Engineered Cementitious Materials (FECM)

Fibre Engineered Cementitious Materials (FECM) represent composites with similar overall performance as Engineered Cementitious Composites (ECC), namely developing strain hardening behaviour under loading, which generates the material capacity of high deformability. The pattern of multiple microcrac...

Full description

Bibliographic Details
Main Authors: Mircea Anamaria, Mircea Călin, Szilágyi Henriette, Baeră Cornelia, Hegyi Andreea
Format: Article
Language:English
Published: EDP Sciences 2019-01-01
Series:MATEC Web of Conferences
Online Access:https://www.matec-conferences.org/articles/matecconf/pdf/2019/38/matecconf_cs18_04005.pdf
id doaj-e4803c46734b4783993fba3921d0b192
record_format Article
spelling doaj-e4803c46734b4783993fba3921d0b1922021-02-02T06:30:06ZengEDP SciencesMATEC Web of Conferences2261-236X2019-01-012890400510.1051/matecconf/201928904005matecconf_cs18_04005Experimental study regarding the influence of fibre to matrix compatibility on general performance of Fibre Engineered Cementitious Materials (FECM)Mircea AnamariaMircea Călin0Szilágyi Henriette1Baeră Cornelia2Hegyi Andreea3Technical University of Cluj-Napoca, Civil Engineering FacultyTechnical University of Cluj-Napoca, Civil Engineering FacultyN.I.R.D. URBAN-INCERC, Timişoara BranchTechnical University of Cluj-Napoca, Civil Engineering FacultyFibre Engineered Cementitious Materials (FECM) represent composites with similar overall performance as Engineered Cementitious Composites (ECC), namely developing strain hardening behaviour under loading, which generates the material capacity of high deformability. The pattern of multiple microcracks successively developed under increasing loading is proved to be the key of material self-consolidating potential and ability to support loads after the first crack occurrence. The matrix to fibre compatibility is considered to be one essential parameter controlling the multiple micro-cracking pattern (MC) and consequently, the strain hardening effect in the material. Factors like fibre type and reinforcement percent in the mixture represent sensitive variables, with major influence for matrix to fibre compatibility and overall performance of the composite. Cement based materials, whose compositional heterogeneity traditionally represents a lack in their regular usage, can be valorised and designed to produce the width controlled cracking typology, beneficial for material behaviour. This paper presents an experimental study on the fibre to matrix compatibility effect in the FECM design and producing process. Several types of dispersed reinforcing typologies for FECM development are experimentally tested and analysed. The results confirm the importance of matrix to fibre compatibility in enhancing superior material performance: physical, mechanical and even durability (Self-Healing potential evaluation).https://www.matec-conferences.org/articles/matecconf/pdf/2019/38/matecconf_cs18_04005.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Mircea Anamaria
Mircea Călin
Szilágyi Henriette
Baeră Cornelia
Hegyi Andreea
spellingShingle Mircea Anamaria
Mircea Călin
Szilágyi Henriette
Baeră Cornelia
Hegyi Andreea
Experimental study regarding the influence of fibre to matrix compatibility on general performance of Fibre Engineered Cementitious Materials (FECM)
MATEC Web of Conferences
author_facet Mircea Anamaria
Mircea Călin
Szilágyi Henriette
Baeră Cornelia
Hegyi Andreea
author_sort Mircea Anamaria
title Experimental study regarding the influence of fibre to matrix compatibility on general performance of Fibre Engineered Cementitious Materials (FECM)
title_short Experimental study regarding the influence of fibre to matrix compatibility on general performance of Fibre Engineered Cementitious Materials (FECM)
title_full Experimental study regarding the influence of fibre to matrix compatibility on general performance of Fibre Engineered Cementitious Materials (FECM)
title_fullStr Experimental study regarding the influence of fibre to matrix compatibility on general performance of Fibre Engineered Cementitious Materials (FECM)
title_full_unstemmed Experimental study regarding the influence of fibre to matrix compatibility on general performance of Fibre Engineered Cementitious Materials (FECM)
title_sort experimental study regarding the influence of fibre to matrix compatibility on general performance of fibre engineered cementitious materials (fecm)
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2019-01-01
description Fibre Engineered Cementitious Materials (FECM) represent composites with similar overall performance as Engineered Cementitious Composites (ECC), namely developing strain hardening behaviour under loading, which generates the material capacity of high deformability. The pattern of multiple microcracks successively developed under increasing loading is proved to be the key of material self-consolidating potential and ability to support loads after the first crack occurrence. The matrix to fibre compatibility is considered to be one essential parameter controlling the multiple micro-cracking pattern (MC) and consequently, the strain hardening effect in the material. Factors like fibre type and reinforcement percent in the mixture represent sensitive variables, with major influence for matrix to fibre compatibility and overall performance of the composite. Cement based materials, whose compositional heterogeneity traditionally represents a lack in their regular usage, can be valorised and designed to produce the width controlled cracking typology, beneficial for material behaviour. This paper presents an experimental study on the fibre to matrix compatibility effect in the FECM design and producing process. Several types of dispersed reinforcing typologies for FECM development are experimentally tested and analysed. The results confirm the importance of matrix to fibre compatibility in enhancing superior material performance: physical, mechanical and even durability (Self-Healing potential evaluation).
url https://www.matec-conferences.org/articles/matecconf/pdf/2019/38/matecconf_cs18_04005.pdf
work_keys_str_mv AT mirceaanamaria experimentalstudyregardingtheinfluenceoffibretomatrixcompatibilityongeneralperformanceoffibreengineeredcementitiousmaterialsfecm
AT mirceacalin experimentalstudyregardingtheinfluenceoffibretomatrixcompatibilityongeneralperformanceoffibreengineeredcementitiousmaterialsfecm
AT szilagyihenriette experimentalstudyregardingtheinfluenceoffibretomatrixcompatibilityongeneralperformanceoffibreengineeredcementitiousmaterialsfecm
AT baeracornelia experimentalstudyregardingtheinfluenceoffibretomatrixcompatibilityongeneralperformanceoffibreengineeredcementitiousmaterialsfecm
AT hegyiandreea experimentalstudyregardingtheinfluenceoffibretomatrixcompatibilityongeneralperformanceoffibreengineeredcementitiousmaterialsfecm
_version_ 1724301242113458176