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Development of UHPC mixtures using natural zeolite and glass sand as replacements of silica fume and quartz sand
The aim of the present study is to decrease the silica fume (SF) content of UHPC by using natural zeolite (NZ) with different levels of replacement (25%, 50%, 75%, and 100% by volume), to mitigate the autogenous shrinkage, and also reduce the price of UHPC production by replacing quartz sand (QS) with glass sand (GS) with almost equivalent mechanical performance. The results demonstrated that addition of NZ as replacement of SF had a positive effect on maintaining internal RH in the higher range as well as in reducing the autogenous shrinkage of UHPC. The mixtures with 25%, 50%, 75%, and 100% replacing SF by NZ had lower autogenous shrinkage compared to reference mixtures containing 100% SF. The results of thermogravimetric and microstructure analysis indicated that NZ had appropriate pozzolanic activity. The results of the compressive strength test showed that by replacing 50% SF with NZ, the 90 days compressive strength of 164.37 MPa could be achieved, which was only slightly lower than the reference mixture with a 90 days compressive strength of 169.07 MPa. By replacing QS with GS and 50% NZ replacement of SF, UHPC mix with 90 days compressive strength over 150 MPa, with low autogenous shrinkage and lower cost than the reference mix was produced.
Development of UHPC mixtures using natural zeolite and glass sand as replacements of silica fume and quartz sand
The aim of the present study is to decrease the silica fume (SF) content of UHPC by using natural zeolite (NZ) with different levels of replacement (25%, 50%, 75%, and 100% by volume), to mitigate the autogenous shrinkage, and also reduce the price of UHPC production by replacing quartz sand (QS) with glass sand (GS) with almost equivalent mechanical performance. The results demonstrated that addition of NZ as replacement of SF had a positive effect on maintaining internal RH in the higher range as well as in reducing the autogenous shrinkage of UHPC. The mixtures with 25%, 50%, 75%, and 100% replacing SF by NZ had lower autogenous shrinkage compared to reference mixtures containing 100% SF. The results of thermogravimetric and microstructure analysis indicated that NZ had appropriate pozzolanic activity. The results of the compressive strength test showed that by replacing 50% SF with NZ, the 90 days compressive strength of 164.37 MPa could be achieved, which was only slightly lower than the reference mixture with a 90 days compressive strength of 169.07 MPa. By replacing QS with GS and 50% NZ replacement of SF, UHPC mix with 90 days compressive strength over 150 MPa, with low autogenous shrinkage and lower cost than the reference mix was produced.
Development of UHPC mixtures using natural zeolite and glass sand as replacements of silica fume and quartz sand
Pezeshkian, Mohammadreza (author) / Delnavaz, Ali (author) / Delnavaz, Mohammad (author)
European Journal of Environmental and Civil Engineering ; 25 ; 2023-2038
2021-09-29
16 pages
Article (Journal)
Electronic Resource
Unknown
Using glass sand as an alternative for quartz sand in UHPC
Elsevier | 2017
|Using glass sand as an alternative for quartz sand in UHPC
British Library Online Contents | 2017
|Using glass sand as an alternative for quartz sand in UHPC
Online Contents | 2017
|Using glass sand as an alternative for quartz sand in UHPC
British Library Online Contents | 2017
|