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Engineering Reactive Clay Systems by Ground Rubber Replacement and Polyacrylamide Treatment

This study investigates the combined performance of ground rubber (GR), the additive, and polyacrylamide (PAM), the binder, as a sustainable solution towards ameliorating the inferior geotechnical attributes of an expansive clay. The first phase of the experimental program examined the effects of PA...

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Autores principales: Soltani, Amin, Deng, An, Taheri, Abbas, O’Kelly, Brendan C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6836228/
https://www.ncbi.nlm.nih.gov/pubmed/31615023
http://dx.doi.org/10.3390/polym11101675
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author Soltani, Amin
Deng, An
Taheri, Abbas
O’Kelly, Brendan C.
author_facet Soltani, Amin
Deng, An
Taheri, Abbas
O’Kelly, Brendan C.
author_sort Soltani, Amin
collection PubMed
description This study investigates the combined performance of ground rubber (GR), the additive, and polyacrylamide (PAM), the binder, as a sustainable solution towards ameliorating the inferior geotechnical attributes of an expansive clay. The first phase of the experimental program examined the effects of PAM concentration on the soil’s mechanical properties—consistency, sediment volume attributes, compactability, unconfined compressive strength (UCS), reactivity and microstructure features. The second phase investigated the effects of GR content, with and without the optimum PAM concentration. An increase in PAM beyond 0.2 g/L, the identified optimum concentration, caused the excess PAM to act as a lubricant rather than a flocculant. This feature facilitated reduced overall resistance to sliding of soil particles relative to each other, thereby adversely influencing the improvement in stress–strain–strength response achieved for ≤0.2 g/L PAM. This transitional mechanism was further verified by the consistency limits and sediment volume properties, both of which exhibited only minor variations beyond 0.2 g/L PAM. The greater the GR content, the higher the mobilized UCS up to 10% GR, beyond which the dominant GR-to-GR interaction (i.e., rubber-clustering) adversely influenced the stress–strain–strength response. Reduction in the soil’s swell–shrink capacity, however, was consistently in favor of higher GR contents. Addition of PAM to the GR-blended samples amended the soil aggregate–GR connection interface, thereby achieving further improvements in the soil’s UCS and volume change behaviors. A maximum GR content of 20%, paired with 0.2 g/L PAM, managed to satisfy a major decrease in the swell–shrink capacity while improving the strength-related features, and thus was deemed as the optimum choice.
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spelling pubmed-68362282019-11-25 Engineering Reactive Clay Systems by Ground Rubber Replacement and Polyacrylamide Treatment Soltani, Amin Deng, An Taheri, Abbas O’Kelly, Brendan C. Polymers (Basel) Article This study investigates the combined performance of ground rubber (GR), the additive, and polyacrylamide (PAM), the binder, as a sustainable solution towards ameliorating the inferior geotechnical attributes of an expansive clay. The first phase of the experimental program examined the effects of PAM concentration on the soil’s mechanical properties—consistency, sediment volume attributes, compactability, unconfined compressive strength (UCS), reactivity and microstructure features. The second phase investigated the effects of GR content, with and without the optimum PAM concentration. An increase in PAM beyond 0.2 g/L, the identified optimum concentration, caused the excess PAM to act as a lubricant rather than a flocculant. This feature facilitated reduced overall resistance to sliding of soil particles relative to each other, thereby adversely influencing the improvement in stress–strain–strength response achieved for ≤0.2 g/L PAM. This transitional mechanism was further verified by the consistency limits and sediment volume properties, both of which exhibited only minor variations beyond 0.2 g/L PAM. The greater the GR content, the higher the mobilized UCS up to 10% GR, beyond which the dominant GR-to-GR interaction (i.e., rubber-clustering) adversely influenced the stress–strain–strength response. Reduction in the soil’s swell–shrink capacity, however, was consistently in favor of higher GR contents. Addition of PAM to the GR-blended samples amended the soil aggregate–GR connection interface, thereby achieving further improvements in the soil’s UCS and volume change behaviors. A maximum GR content of 20%, paired with 0.2 g/L PAM, managed to satisfy a major decrease in the swell–shrink capacity while improving the strength-related features, and thus was deemed as the optimum choice. MDPI 2019-10-14 /pmc/articles/PMC6836228/ /pubmed/31615023 http://dx.doi.org/10.3390/polym11101675 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Soltani, Amin
Deng, An
Taheri, Abbas
O’Kelly, Brendan C.
Engineering Reactive Clay Systems by Ground Rubber Replacement and Polyacrylamide Treatment
title Engineering Reactive Clay Systems by Ground Rubber Replacement and Polyacrylamide Treatment
title_full Engineering Reactive Clay Systems by Ground Rubber Replacement and Polyacrylamide Treatment
title_fullStr Engineering Reactive Clay Systems by Ground Rubber Replacement and Polyacrylamide Treatment
title_full_unstemmed Engineering Reactive Clay Systems by Ground Rubber Replacement and Polyacrylamide Treatment
title_short Engineering Reactive Clay Systems by Ground Rubber Replacement and Polyacrylamide Treatment
title_sort engineering reactive clay systems by ground rubber replacement and polyacrylamide treatment
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6836228/
https://www.ncbi.nlm.nih.gov/pubmed/31615023
http://dx.doi.org/10.3390/polym11101675
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