Performance and mechanism on a high durable silica alumina based cementitious material composed of coal refuse and coal combustion byproducts
Coal refuse and combustion byproducts as industrial solid waste stockpiles have become great threats to the environment. Recycling is one practical solution to utilize this huge amount of solid waste through activation as substitute for ordinary Portland cement. The central goal of this dissertation...
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ndltd-pacific.edu-oai-scholarlycommons.pacific.edu-uop_etds-11542021-08-24T05:11:53Z Performance and mechanism on a high durable silica alumina based cementitious material composed of coal refuse and coal combustion byproducts Yao, Yuan Coal refuse and combustion byproducts as industrial solid waste stockpiles have become great threats to the environment. Recycling is one practical solution to utilize this huge amount of solid waste through activation as substitute for ordinary Portland cement. The central goal of this dissertation is to investigate and develop a new silica-alumina based cementitious material largely using coal refuse as a constituent that will be ideal for durable construction, mine backfill, mine sealing and waste disposal stabilization applications. This new material is an environment-friendly alternative to ordinary Portland cement. The main constituents of the new material are coal refuse and other coal wastes including coal sludge and coal combustion products (CCPs). Compared with conventional cement production, successful development of this new technology could potentially save energy and reduce greenhouse gas emissions, recycle vast amount of coal wastes, and significantly reduce production cost. A systematic research has been conducted to seek for an optimal solution for enhancing pozzolanic reactivity of the relatively inert solid waste-coal refuse in order to improve the utilization efficiency and economy benefit for construction and building materials. The results show that thermal activation temperature ranging from 20°C to 950°C significantly increases the workability and pozzolanic property of the coal refuse. The optimal activation condition is between 700°C to 800°C within a period of 30 to 60 minutes. Microanalysis illustrates that the improved pozzolanic reactivity contributes to the generated amorphous materials from parts of inert aluminosilicate minerals by destroying the crystallize structure during the thermal activation. In the coal refuse, kaolinite begins to transfer into metakaol in at 550°C, the chlorite minerals disappear at 750°C, and muscovite 2M 1 gradually dehydroxylates to muscovite HT. Furthermore, this research examines the environmental acceptance and economic feasibility of this technology and found that this silica alumina-based cementitious material not only meets EPA requirements but also shows several advantages in industrial application. 2012-01-01T08:00:00Z text application/pdf https://scholarlycommons.pacific.edu/uop_etds/155 https://scholarlycommons.pacific.edu/cgi/viewcontent.cgi?article=1154&context=uop_etds http://creativecommons.org/licenses/by-nc-nd/4.0/ University of the Pacific Theses and Dissertations Scholarly Commons Analytical chemistry Physical chemistry Materials science Pure sciences Applied sciences Coal refuse Combustion by-products Silica alumina cementitious materials Chemicals and Drugs Chemistry Medical Pharmacology Medicinal-Pharmaceutical Chemistry Medicine and Health Sciences Pharmaceutical Preparations Pharmacy and Pharmaceutical Sciences Physical Sciences and Mathematics |
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Analytical chemistry Physical chemistry Materials science Pure sciences Applied sciences Coal refuse Combustion by-products Silica alumina cementitious materials Chemicals and Drugs Chemistry Medical Pharmacology Medicinal-Pharmaceutical Chemistry Medicine and Health Sciences Pharmaceutical Preparations Pharmacy and Pharmaceutical Sciences Physical Sciences and Mathematics |
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Analytical chemistry Physical chemistry Materials science Pure sciences Applied sciences Coal refuse Combustion by-products Silica alumina cementitious materials Chemicals and Drugs Chemistry Medical Pharmacology Medicinal-Pharmaceutical Chemistry Medicine and Health Sciences Pharmaceutical Preparations Pharmacy and Pharmaceutical Sciences Physical Sciences and Mathematics Yao, Yuan Performance and mechanism on a high durable silica alumina based cementitious material composed of coal refuse and coal combustion byproducts |
description |
Coal refuse and combustion byproducts as industrial solid waste stockpiles have become great threats to the environment. Recycling is one practical solution to utilize this huge amount of solid waste through activation as substitute for ordinary Portland cement. The central goal of this dissertation is to investigate and develop a new silica-alumina based cementitious material largely using coal refuse as a constituent that will be ideal for durable construction, mine backfill, mine sealing and waste disposal stabilization applications. This new material is an environment-friendly alternative to ordinary Portland cement. The main constituents of the new material are coal refuse and other coal wastes including coal sludge and coal combustion products (CCPs). Compared with conventional cement production, successful development of this new technology could potentially save energy and reduce greenhouse gas emissions, recycle vast amount of coal wastes, and significantly reduce production cost. A systematic research has been conducted to seek for an optimal solution for enhancing pozzolanic reactivity of the relatively inert solid waste-coal refuse in order to improve the utilization efficiency and economy benefit for construction and building materials. The results show that thermal activation temperature ranging from 20°C to 950°C significantly increases the workability and pozzolanic property of the coal refuse. The optimal activation condition is between 700°C to 800°C within a period of 30 to 60 minutes. Microanalysis illustrates that the improved pozzolanic reactivity contributes to the generated amorphous materials from parts of inert aluminosilicate minerals by destroying the crystallize structure during the thermal activation. In the coal refuse, kaolinite begins to transfer into metakaol in at 550°C, the chlorite minerals disappear at 750°C, and muscovite 2M 1 gradually dehydroxylates to muscovite HT. Furthermore, this research examines the environmental acceptance and economic feasibility of this technology and found that this silica alumina-based cementitious material not only meets EPA requirements but also shows several advantages in industrial application. |
author |
Yao, Yuan |
author_facet |
Yao, Yuan |
author_sort |
Yao, Yuan |
title |
Performance and mechanism on a high durable silica alumina based cementitious material composed of coal refuse and coal combustion byproducts |
title_short |
Performance and mechanism on a high durable silica alumina based cementitious material composed of coal refuse and coal combustion byproducts |
title_full |
Performance and mechanism on a high durable silica alumina based cementitious material composed of coal refuse and coal combustion byproducts |
title_fullStr |
Performance and mechanism on a high durable silica alumina based cementitious material composed of coal refuse and coal combustion byproducts |
title_full_unstemmed |
Performance and mechanism on a high durable silica alumina based cementitious material composed of coal refuse and coal combustion byproducts |
title_sort |
performance and mechanism on a high durable silica alumina based cementitious material composed of coal refuse and coal combustion byproducts |
publisher |
Scholarly Commons |
publishDate |
2012 |
url |
https://scholarlycommons.pacific.edu/uop_etds/155 https://scholarlycommons.pacific.edu/cgi/viewcontent.cgi?article=1154&context=uop_etds |
work_keys_str_mv |
AT yaoyuan performanceandmechanismonahighdurablesilicaaluminabasedcementitiousmaterialcomposedofcoalrefuseandcoalcombustionbyproducts |
_version_ |
1719471752059289600 |