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Molecular dynamics investigation of compressive behaviour of carbon nanotubes (CNT) reinforced calcium silicate hydrate (C-S-H) with different Ca: Si ratios
被引:0
|作者:
Chandrathilaka, E. R. K.
[1
]
Baduge, Shanaka Kristombu
[2
]
Mendis, Priyan
[2
]
Thilakarathna, P. S. M.
[2
]
机构:
[1] Univ Moratuwa, Dept Civil Engn, Moratuwa, Sri Lanka
[2] Univ Melbourne, Dept Infrastruct Engn, Parkville, Vic 3052, Australia
关键词:
Carbon nanotubes;
Calcium silicate hydrate;
Cementitious composites;
Ca/Si ratio;
Molecular dynamics;
Compressive performance;
REACTIVE FORCE-FIELD;
MECHANICAL-PROPERTIES;
INTERACTION ENERGIES;
HYDROXIDE;
SURFACE;
SIMULATION;
INTERFACES;
MORPHOLOGY;
CONCRETE;
D O I:
10.1016/j.rineng.2025.103929
中图分类号:
T [工业技术];
学科分类号:
08 ;
摘要:
Understanding the mechanical behaviour and failure mechanisms of nanomaterial-reinforced cementitious pastes at the nano/molecular level is crucial in modifying such material structures to capture the full potential of high-performance nanomaterials. This study investigated the compressive performance and failure behaviour of carbon nanotubes (CNT) reinforced calcium silicate hydrate (C-S-H) with varying Ca: Si ratios, CNT types (armchair and zigzag, single-walled CNT (SWCNT), and muti-walled CNT (MWCNT)), CNT sizes, CNT orientation and loading directions using Molecular Dynamics (MD) simulations. The Ca: Si ratio was varied between 1.0 and 1.5 to understand the effects of silicate chain structure on the compressive behaviour of C-S-H and CNTreinforced C-S-H. Varying CNT orientations and loading directions were used to understand the anisotropic structure and behaviour of CNT-reinforced C-S-H. The compressive strength was observed to be reduced with the addition of CNT into the C-S-H. The failure of CNT-reinforced C-S-H was mainly caused by the buckling of silicate chains/ silicate chain segments in the C-S-H, while CNT buckling was observed before the composite reached its peak stress. The MWCNT-reinforced C-S-H had comparatively improved compressive performance against the correlated SWCNT-reinforced C-S-H and plain C-S-H. These results are useful in understanding the mechanical behaviour of CNT-reinforced C-S-H and further upscaling to be used in the micro and mesoscale material models. The multi-dimensional molecular analysis of the CNT-reinforced C-S-H would facilitate more accurate modelling of CNT-reinforced C-S-H at the mesoscale, considering the isotropic behaviour observed in this study.
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