Physical and Chemical Actions of Nano-Mineral Additives on Properties of High-Volume Fly Ash Engineered Cementitious Composites
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Date
2016
Journal Title
Journal ISSN
Volume Title
Publisher
Amer Concrete inst
Open Access Color
Green Open Access
No
OpenAIRE Downloads
OpenAIRE Views
Publicly Funded
No
Abstract
Unlike conventional concrete, the material design process for engineered cementitious composites (ECC) involves micromechanics-based design theory, paving the way for the use of high volumes of fly ash (HVFA) as a major component. Using high volumes of fly ash (up to 85% weight fraction of cement) in ECC mixtures enables improved tensile ductility (approximately a 3% increase in long-term tensile strain) with reduced crack widths, although it also leads to significantly reduced early-age compressive and tensile strength and chloride ion resistance. However, nanomineral additives are known to improve mechanical strength and durability of HVFA systems. The study emphasizes the effects of different fly ash (FA)/cement ratios on various properties (hydration and microstructural characteristics, transport and mechanical properties) of ECC mixtures designed with different mineral additives. Experimental results confirm that although different optimum levels can be selected to favor various ECC properties, optimum weight fraction of FA is dependent on the mechanism of nanomodification (that is, type of modifier). The optimum level of fly ash weight fraction that yields the highest rate of improvement through nanomodification of ECC varies for different mechanical and transport properties.
Description
Al-Dahawi, Ali Majeed Khudayer/0000-0001-7836-1525; Selcuk, Seda/0000-0002-2046-3841
Keywords
Chloride Ion Permeability, Engineered Cementitious Composites, High-Volume Fly Ash, Hydration Characteristics, Mechanical Properties, Nanomineral Additives
Fields of Science
0211 other engineering and technologies, 02 engineering and technology
Citation
Al-Najjar, Y...et al., "Physical and Chemical Actions of Nano-Mineral Additives on Properties of High-Volume Fly Ash Engineered Cementitious Composites", ACI Materials Journal, Vol. 113, No. 6, pp. 791-801, (2016).
WoS Q
Q3
Scopus Q
Q3

OpenCitations Citation Count
19
Source
ACI Materials Journal
Volume
113
Issue
6
Start Page
791
End Page
801
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Citations
CrossRef : 18
Scopus : 56
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Mendeley Readers : 43
SCOPUS™ Citations
60
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Web of Science™ Citations
47
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Page Views
6
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