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Eco-Geopolymers: Physico-Mechanical Features, Radiation Absorption Properties, and Mathematical Model

Waste ashes and radiation are hazardous environmental and health factors; thus, a lot of attention is paid to their reduction. We present eco-geopolymer building materials (GPBMs) based on the class F fly ashes (FFAs) from thermal power plants (TPPs) and their implementation as a barrier against rad...

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Autores principales: Doğan-Sağlamtimur, Neslihan, Bilgil, Ahmet, Ertürk, Sefa, Bozkurt, Vakkas, Süzgeç, Elif, Akan, Arife Gözde, Nas, Pervin, Çetin, Hüseyin, Szechyńska-Hebda, Magdalena, Hebda, Marek
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8780130/
https://www.ncbi.nlm.nih.gov/pubmed/35054669
http://dx.doi.org/10.3390/polym14020262
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author Doğan-Sağlamtimur, Neslihan
Bilgil, Ahmet
Ertürk, Sefa
Bozkurt, Vakkas
Süzgeç, Elif
Akan, Arife Gözde
Nas, Pervin
Çetin, Hüseyin
Szechyńska-Hebda, Magdalena
Hebda, Marek
author_facet Doğan-Sağlamtimur, Neslihan
Bilgil, Ahmet
Ertürk, Sefa
Bozkurt, Vakkas
Süzgeç, Elif
Akan, Arife Gözde
Nas, Pervin
Çetin, Hüseyin
Szechyńska-Hebda, Magdalena
Hebda, Marek
author_sort Doğan-Sağlamtimur, Neslihan
collection PubMed
description Waste ashes and radiation are hazardous environmental and health factors; thus, a lot of attention is paid to their reduction. We present eco-geopolymer building materials (GPBMs) based on the class F fly ashes (FFAs) from thermal power plants (TPPs) and their implementation as a barrier against radioactive radiation. Different methods of production, ratios of FFA to alkali activator, and temperatures of curing were tested. Small spherical particles and higher content of SiO(2) resulted in developed surface area and higher reactivity of Isken TPP FFA than Catalagzi TPP FFA. Lower activator concentration (10% vs. 20%) and curing temperature (70 vs. 100 °C) caused an increase in GPBM compressive strength; the highest value was measured as 93.3 MPa. The highest RA was measured for GPBMs, provided alkali activator ratio (Na(2)SiO(3)/NaOH) was >2 and its concentration was 20%. The mathematical model developed in this study proved FFA quantity, and thus GPBM mechanical properties, as key factors influencing RA. In the light of these results, the lightweight GPBMs can be excellent materials for the construction sector dedicated to immobilization, storage, and disposal for radionuclides or barriers against radiation; however, multiple steps of their production require careful optimization.
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spelling pubmed-87801302022-01-22 Eco-Geopolymers: Physico-Mechanical Features, Radiation Absorption Properties, and Mathematical Model Doğan-Sağlamtimur, Neslihan Bilgil, Ahmet Ertürk, Sefa Bozkurt, Vakkas Süzgeç, Elif Akan, Arife Gözde Nas, Pervin Çetin, Hüseyin Szechyńska-Hebda, Magdalena Hebda, Marek Polymers (Basel) Article Waste ashes and radiation are hazardous environmental and health factors; thus, a lot of attention is paid to their reduction. We present eco-geopolymer building materials (GPBMs) based on the class F fly ashes (FFAs) from thermal power plants (TPPs) and their implementation as a barrier against radioactive radiation. Different methods of production, ratios of FFA to alkali activator, and temperatures of curing were tested. Small spherical particles and higher content of SiO(2) resulted in developed surface area and higher reactivity of Isken TPP FFA than Catalagzi TPP FFA. Lower activator concentration (10% vs. 20%) and curing temperature (70 vs. 100 °C) caused an increase in GPBM compressive strength; the highest value was measured as 93.3 MPa. The highest RA was measured for GPBMs, provided alkali activator ratio (Na(2)SiO(3)/NaOH) was >2 and its concentration was 20%. The mathematical model developed in this study proved FFA quantity, and thus GPBM mechanical properties, as key factors influencing RA. In the light of these results, the lightweight GPBMs can be excellent materials for the construction sector dedicated to immobilization, storage, and disposal for radionuclides or barriers against radiation; however, multiple steps of their production require careful optimization. MDPI 2022-01-09 /pmc/articles/PMC8780130/ /pubmed/35054669 http://dx.doi.org/10.3390/polym14020262 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Doğan-Sağlamtimur, Neslihan
Bilgil, Ahmet
Ertürk, Sefa
Bozkurt, Vakkas
Süzgeç, Elif
Akan, Arife Gözde
Nas, Pervin
Çetin, Hüseyin
Szechyńska-Hebda, Magdalena
Hebda, Marek
Eco-Geopolymers: Physico-Mechanical Features, Radiation Absorption Properties, and Mathematical Model
title Eco-Geopolymers: Physico-Mechanical Features, Radiation Absorption Properties, and Mathematical Model
title_full Eco-Geopolymers: Physico-Mechanical Features, Radiation Absorption Properties, and Mathematical Model
title_fullStr Eco-Geopolymers: Physico-Mechanical Features, Radiation Absorption Properties, and Mathematical Model
title_full_unstemmed Eco-Geopolymers: Physico-Mechanical Features, Radiation Absorption Properties, and Mathematical Model
title_short Eco-Geopolymers: Physico-Mechanical Features, Radiation Absorption Properties, and Mathematical Model
title_sort eco-geopolymers: physico-mechanical features, radiation absorption properties, and mathematical model
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8780130/
https://www.ncbi.nlm.nih.gov/pubmed/35054669
http://dx.doi.org/10.3390/polym14020262
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