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Utilization of artificial interior stone sludge as fine aggregate in controlled low-strength material (CLSM)
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Title
Utilization of artificial interior stone sludge as fine aggregate in controlled low-strength material (CLSM)
Issued Date
2023-07
Citation
Shin, Yoonjae. (2023-07). Utilization of artificial interior stone sludge as fine aggregate in controlled low-strength material (CLSM). Journal of Building Engineering, 71. doi: 10.1016/j.jobe.2023.106441
Type
Article
Author Keywords
Artificial interior stoneControlled low-strength materialFine aggregatePredictionsSludge
Keywords
INDUSTRIAL BY-PRODUCTSCOMPRESSIVE STRENGTHFLY-ASHCONCRETEDISCOVERYNANO-SIO2
ISSN
2352-7102
Abstract
Artificial interior stone, also known as imitation marble, is a representative high-end building interior material, the market share of which has been gradually increasing. Thus, the amount of waste sludge generated by its manufacture has also been rapidly increasing. However, because of a lack of a specific recycling plan, this waste is presently being disposed of in landfills. This study was conducted with the objective of recycling sludge into a fine aggregate for a controlled low-strength material (CLSM). The physicochemical properties of the sludge were investigated through various analyses. Subsequently, the material properties of sludge-containing CLSM in terms of compressive strength, bleeding rate, water absorption, and heavy metal content were examined. Through a combination of genetic algorithm-based machine learning and experimental results, a model equation that can predict the compressive strength of a CLSM specimen according to material composition was developed. This research presents a novel approach to recycling waste sludge from interior stone production as a fine aggregate for CLSM, addressing both environmental concerns and waste management in the industry. © 2023 Elsevier Ltd
URI
http://hdl.handle.net/20.500.11750/47688
DOI
10.1016/j.jobe.2023.106441
Publisher
Elsevier
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박치영
Park, Chiyoung박치영

Department of Energy Science and Engineering

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