Suitability of mortars produced using laterite and ceramic wastes: mechanical and microscale analysis
Using industrial wastes and local materials as artificial aggregates in cement based materials remains a relevant measure for conservation of natural sources. In this study, novel cementitious mixes containing pulverized ceramic blended cement, ceramic aggregate and laterite were systematically comb...
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| Format: | Article |
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Elsevier
2017
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| Online Access: | https://eprints.nottingham.ac.uk/44547/ |
| _version_ | 1848796941317570560 |
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| author | Awoyera, P.O. Dawson, Andrew Thom, Nicholas Akinmusuru, J.O. |
| author_facet | Awoyera, P.O. Dawson, Andrew Thom, Nicholas Akinmusuru, J.O. |
| author_sort | Awoyera, P.O. |
| building | Nottingham Research Data Repository |
| collection | Online Access |
| description | Using industrial wastes and local materials as artificial aggregates in cement based materials remains a relevant measure for conservation of natural sources. In this study, novel cementitious mixes containing pulverized ceramic blended cement, ceramic aggregate and laterite were systematically combined to produce cement mortars. The mortar specimens were cured in water for a maximum of 28 days. At maturity, nondestructive tests, X-ray CT scan and ultrasonic pulse velocity, were performed on hardened mortars. Thereafter, a series of predefined properties, namely dry bulk density, compressive and flexural strength, water absorption coefficient (due to capillary) of the hardened mortars were determined. Finally, in order to understand the hydration mechanism of the materials as it relates to the strength properties, microscale tests, SEM and XRD, were used to examine the fragments of the selected mortars. From the results, a mortar sample containing 10% ceramic powder and 100% ceramic aggregate as replacements for cement and sand respectively, gave higher strength values than the reference and other mixes. Microstructural analysis of the best mix revealed that it has larger proportions of ettringite, portlandite and calcite than the reference mix, and this could be responsible for the strength gained. Thus, despite the apparent low reactivity of crushed ceramic material, this can improve bonding in cement-based mixture, when used at an appropriate concentration. |
| first_indexed | 2025-11-14T19:55:59Z |
| format | Article |
| id | nottingham-44547 |
| institution | University of Nottingham Malaysia Campus |
| institution_category | Local University |
| last_indexed | 2025-11-14T19:55:59Z |
| publishDate | 2017 |
| publisher | Elsevier |
| recordtype | eprints |
| repository_type | Digital Repository |
| spelling | nottingham-445472020-05-04T19:03:04Z https://eprints.nottingham.ac.uk/44547/ Suitability of mortars produced using laterite and ceramic wastes: mechanical and microscale analysis Awoyera, P.O. Dawson, Andrew Thom, Nicholas Akinmusuru, J.O. Using industrial wastes and local materials as artificial aggregates in cement based materials remains a relevant measure for conservation of natural sources. In this study, novel cementitious mixes containing pulverized ceramic blended cement, ceramic aggregate and laterite were systematically combined to produce cement mortars. The mortar specimens were cured in water for a maximum of 28 days. At maturity, nondestructive tests, X-ray CT scan and ultrasonic pulse velocity, were performed on hardened mortars. Thereafter, a series of predefined properties, namely dry bulk density, compressive and flexural strength, water absorption coefficient (due to capillary) of the hardened mortars were determined. Finally, in order to understand the hydration mechanism of the materials as it relates to the strength properties, microscale tests, SEM and XRD, were used to examine the fragments of the selected mortars. From the results, a mortar sample containing 10% ceramic powder and 100% ceramic aggregate as replacements for cement and sand respectively, gave higher strength values than the reference and other mixes. Microstructural analysis of the best mix revealed that it has larger proportions of ettringite, portlandite and calcite than the reference mix, and this could be responsible for the strength gained. Thus, despite the apparent low reactivity of crushed ceramic material, this can improve bonding in cement-based mixture, when used at an appropriate concentration. Elsevier 2017-09-01 Article PeerReviewed Awoyera, P.O., Dawson, Andrew, Thom, Nicholas and Akinmusuru, J.O. (2017) Suitability of mortars produced using laterite and ceramic wastes: mechanical and microscale analysis. Construction and Building Materials, 148 . pp. 195-203. ISSN 1879-0526 Ceramic waste Laterite Microstructural analysis Pozzolan Strength properties Mortar Ettringite Portlandite Calcite Quartz https://doi.org/10.1016/j.conbuildmat.2017.05.031 doi:10.1016/j.conbuildmat.2017.05.031 doi:10.1016/j.conbuildmat.2017.05.031 |
| spellingShingle | Ceramic waste Laterite Microstructural analysis Pozzolan Strength properties Mortar Ettringite Portlandite Calcite Quartz Awoyera, P.O. Dawson, Andrew Thom, Nicholas Akinmusuru, J.O. Suitability of mortars produced using laterite and ceramic wastes: mechanical and microscale analysis |
| title | Suitability of mortars produced using laterite and ceramic wastes: mechanical and microscale analysis |
| title_full | Suitability of mortars produced using laterite and ceramic wastes: mechanical and microscale analysis |
| title_fullStr | Suitability of mortars produced using laterite and ceramic wastes: mechanical and microscale analysis |
| title_full_unstemmed | Suitability of mortars produced using laterite and ceramic wastes: mechanical and microscale analysis |
| title_short | Suitability of mortars produced using laterite and ceramic wastes: mechanical and microscale analysis |
| title_sort | suitability of mortars produced using laterite and ceramic wastes: mechanical and microscale analysis |
| topic | Ceramic waste Laterite Microstructural analysis Pozzolan Strength properties Mortar Ettringite Portlandite Calcite Quartz |
| url | https://eprints.nottingham.ac.uk/44547/ https://eprints.nottingham.ac.uk/44547/ https://eprints.nottingham.ac.uk/44547/ |