抗压强度
粉煤灰
电石
火山灰反应
原材料
胶凝的
材料科学
底灰
灰浆
火山灰
环境友好型
固化(化学)
水泥
硅酸盐水泥
复合材料
制浆造纸工业
冶金
化学
生态学
有机化学
生物
工程类
作者
Phongthorn Julphunthong,Panuwat Joyklad,Papantasorn Manprom,Thanakorn Chompoorat,Martin-Tchingnabé Palou,Tawat Suriwong
标识
DOI:10.1038/s41598-024-51326-x
摘要
Abstract The incorporation of waste materials into cementitious binders serves as a strategy to diminish waste volume and lower carbon emissions. This study presents an in-depth evaluation of calcium carbide residue and coal fly ash as alternative binders. The assessment of raw materials emphasized their chemical composition and potential for pozzolanic reactions. Based on these factors, the optimal ratio of Ca/(SiO 2 + Al 2 O 3 ) in the raw materials was determined to be 1.5. Therefore, this study was designed to vary the raw material composition with a CaO/(SiO 2 + Al 2 O 3 ) ratio ranging from 1.7 to 0.9. Upon investigating the effect of the raw material proportion on the compressive strength of pastes and mortars, the composition yielding the highest compressive strength was selected for its potential application as a stabilizer for loess soil. A mixture of calcium carbide residue and coal fly ash with a Ca/(SiO 2 + Al 2 O 3 ) ratio of 1.5 resulted in the highest compressive strength at long curing periods in both pastes and mortars. Mineralogical and microstructural analyses revealed several products, beyond those formed from the pozzolanic reactions, that occurred and enhanced the compressive strength of samples. The highest performing mixture of carbide residue and coal fly ash was then used to stabilize loess soil at 10–25 wt%. The unconfined compressive strength, along with mass and strength loss due to wetting and drying cycles, was also studied. It was observed that the unconfined compressive strength of the stabilized soils remained consistent after six wet-dry cycles but decreased after twelve cycles due to microcracks. The findings suggest that carefully designed mixtures based on the chemical interactions of calcium carbide residue and coal fly ash can offer a sustainable, efficient approach for soil stabilization, potentially revolutionizing construction practices.
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