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Abstract
The cement industry is facing demanding challenges to reduce carbon emissions. The use of limestone calcined clay cement (LC3) has been identified as one of the sustainable ways to reduce the industry’s carbon footprint by up to 40% at relatively low costs. Meanwhile, LC3 has shown great potential as a 3D-printing material. However, recent studies revealed higher strength loss in LC3 composites than in ordinary Portland cement composites at elevated temperatures. Such degradation is mainly induced by water evaporation, which expands micro pores and undermines the microstructures of cement hydrate such as calcium alumina silicate hydrate (C-A-S-H). Therefore, investigating the intrinsic structural deterioration of LC3 under elevated temperature is urgently required to understand the mechanisms underlying their poor mechanical performances. In this work, a series of molecular models are constructed to elucidate the fire performance of newly developed LC3 composites. Specifically, molecular simulations are employed to reproduce the physical-mechanical behaviours of LC3 at elevated temperatures, in which the water evaporation under the high temperature is illustrated. The evaporation process of pore water, interlayer water and intralayer water is thoroughly described. Further, the mechanism underlying the poor high-temperature resistance of LC3 is uncovered. The evaporation of water leads to the twist of the silicate chain in C-A-S-H, which initiates the structural deterioration of LC3. Besides, the inner pore pressure is also extremely increased, resulting in the spalling of LC3 in micro and mesoscale. This work portrays the fire performance of LC3 and provides original insights to understand the mechanisms of their structural and mechanical degradation at elevated temperatures. © The Author(s), under exclusive license to Springer Nature Switzerland AG 2024.
Original language | English |
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Title of host publication | Construction 3D Printing |
Subtitle of host publication | 3DcP 2023 |
Editors | Ming Jen Tan, Mingyang Li, Yi Wei Daniel Tay, Teck Neng Wong, Paulo Bartolo |
Publisher | Springer, Cham |
Pages | 174-180 |
ISBN (Electronic) | 978-3-031-64269-2 |
ISBN (Print) | 978-3-031-64268-5 |
DOIs | |
Publication status | Published - Jul 2024 |
Event | 4th International Conference on 3D Construction Printing - Nanyang Technological University, Singapore Duration: 19 Jul 2023 → 21 Jul 2023 https://www.ntu.edu.sg/sc3dp/news-events/events/43dcp |
Publication series
Name | Springer Tracts in Additive Manufacturing |
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Publisher | Springer, Cham. |
ISSN (Print) | 2730-9576 |
ISSN (Electronic) | 2730-9584 |
Conference
Conference | 4th International Conference on 3D Construction Printing |
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Country/Territory | Singapore |
Period | 19/07/23 → 21/07/23 |
Internet address |
Funding
The authors acknowledge the supports provided by the Research Grants Council of the Hong Kong Special Administrative Region, China (Project No. 9043306, CityU 11200822).
Research Keywords
- C-A-S-H dehydration
- Elevated temperature
- Limestone calcined clay cement
- Mechanical properties
- Water evaporation
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GRF: Fire Performance Evaluation of Sustainable Basalt Fiber-Reinforced Limestone Calcined Clay Cement Composites
LIEW, K. M. (Principal Investigator / Project Coordinator), KODUR, V. K. (Co-Investigator) & Sun, J. (Co-Investigator)
1/01/23 → …
Project: Research