Production of Geopolymeric Mortars Containing Forest Biomass Ash as Partial Replacement of Metakaolin

Geopolymers are a new class of binders based on alkali activation of natural and by-products raw materials. Their properties and eco-compatibility highly depends on the reaction system. The (Na,K)2O-Al2O3-SiO2-H2O system shows a distinguishing pseudo-zeolitic network structure, but reaction requires...

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Main Authors: Sebastiano Candamano, Pierantonio De Luca, Patrizia Frontera, Fortunato Crea
Format: Article
Language:English
Published: MDPI AG 2017-10-01
Series:Environments
Subjects:
Online Access:https://www.mdpi.com/2076-3298/4/4/74
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spelling doaj-30e14bd79c624ff28c8b08c5bb0476542020-11-25T00:53:14ZengMDPI AGEnvironments2076-32982017-10-01447410.3390/environments4040074environments4040074Production of Geopolymeric Mortars Containing Forest Biomass Ash as Partial Replacement of MetakaolinSebastiano Candamano0Pierantonio De Luca1Patrizia Frontera2Fortunato Crea3Department of Environmental and Chemical Engineering, University of Calabria, Rende, Cosenza 87036, ItalyDepartment of Environmental and Chemical Engineering, University of Calabria, Rende, Cosenza 87036, ItalyDepartment of Civil Engineering, Energy, Environmental and Materials, Mediterranea University of Reggio Calabria, Reggio Calabria 89122, ItalyDepartment of Environmental and Chemical Engineering, University of Calabria, Rende, Cosenza 87036, ItalyGeopolymers are a new class of binders based on alkali activation of natural and by-products raw materials. Their properties and eco-compatibility highly depends on the reaction system. The (Na,K)2O-Al2O3-SiO2-H2O system shows a distinguishing pseudo-zeolitic network structure, but reaction requires a high amount of activators. The aim of this work is to investigate how the use of forest biomass ash (FBA), as partial replacement material in the production of metakaolin (MK) based geopolymeric mortar, and affect its properties. FBA is a by-product of the combustion process of forest biomass in thermal power plants. Mortars with a FBA content of 0%, 10%, 20%, and 30% wt have been tested for workability, flexural, and compressive strength. Capillary absorption, micro-morphological features, thermal, and shrinkage behavior have been investigated. The addition of FBA allowed for a decrease in the use of alkaline activator up to 20%, while preserving the characteristic broad hump centered at approximately 28° 2θ Mechanical properties of the geopolymeric mortars decrease proportionally with metakaolin replacement, even if a compression strength of more than 35 MPa is still obtained with a FBA content of 30% wt. After thermal cycles of up to 700 °C, all of the mortars still retain their cohesiveness, with an overall loss of mechanical strength of about 80% of the initial value that can be attributed to the formation of microcracks as a consequence of the network strain and distortion due to dehydration and shrinkage.https://www.mdpi.com/2076-3298/4/4/74forest biomass ashgeopolymeric mortarworkabilitymechanical propertiescapillary water absorption
collection DOAJ
language English
format Article
sources DOAJ
author Sebastiano Candamano
Pierantonio De Luca
Patrizia Frontera
Fortunato Crea
spellingShingle Sebastiano Candamano
Pierantonio De Luca
Patrizia Frontera
Fortunato Crea
Production of Geopolymeric Mortars Containing Forest Biomass Ash as Partial Replacement of Metakaolin
Environments
forest biomass ash
geopolymeric mortar
workability
mechanical properties
capillary water absorption
author_facet Sebastiano Candamano
Pierantonio De Luca
Patrizia Frontera
Fortunato Crea
author_sort Sebastiano Candamano
title Production of Geopolymeric Mortars Containing Forest Biomass Ash as Partial Replacement of Metakaolin
title_short Production of Geopolymeric Mortars Containing Forest Biomass Ash as Partial Replacement of Metakaolin
title_full Production of Geopolymeric Mortars Containing Forest Biomass Ash as Partial Replacement of Metakaolin
title_fullStr Production of Geopolymeric Mortars Containing Forest Biomass Ash as Partial Replacement of Metakaolin
title_full_unstemmed Production of Geopolymeric Mortars Containing Forest Biomass Ash as Partial Replacement of Metakaolin
title_sort production of geopolymeric mortars containing forest biomass ash as partial replacement of metakaolin
publisher MDPI AG
series Environments
issn 2076-3298
publishDate 2017-10-01
description Geopolymers are a new class of binders based on alkali activation of natural and by-products raw materials. Their properties and eco-compatibility highly depends on the reaction system. The (Na,K)2O-Al2O3-SiO2-H2O system shows a distinguishing pseudo-zeolitic network structure, but reaction requires a high amount of activators. The aim of this work is to investigate how the use of forest biomass ash (FBA), as partial replacement material in the production of metakaolin (MK) based geopolymeric mortar, and affect its properties. FBA is a by-product of the combustion process of forest biomass in thermal power plants. Mortars with a FBA content of 0%, 10%, 20%, and 30% wt have been tested for workability, flexural, and compressive strength. Capillary absorption, micro-morphological features, thermal, and shrinkage behavior have been investigated. The addition of FBA allowed for a decrease in the use of alkaline activator up to 20%, while preserving the characteristic broad hump centered at approximately 28° 2θ Mechanical properties of the geopolymeric mortars decrease proportionally with metakaolin replacement, even if a compression strength of more than 35 MPa is still obtained with a FBA content of 30% wt. After thermal cycles of up to 700 °C, all of the mortars still retain their cohesiveness, with an overall loss of mechanical strength of about 80% of the initial value that can be attributed to the formation of microcracks as a consequence of the network strain and distortion due to dehydration and shrinkage.
topic forest biomass ash
geopolymeric mortar
workability
mechanical properties
capillary water absorption
url https://www.mdpi.com/2076-3298/4/4/74
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