Ren Fengming, Zhang Xiwen, Lin Mingxin, Wang Qing, Sun Jing
School of Civil Engineering, Guangzhou University, Guangzhou 510006, China.
Panyu Dashi Construction Engineering Limited Company, Guangzhou 511430, China.
Materials (Basel). 2023 Sep 13;16(18):6195. doi: 10.3390/ma16186195.
Large amounts of waste glass are generated along with the manufacturing of glass products, causing detrimental effects on the environment. Through crushing and ball-milling, waste glass powder (WGP) can be acquired from glass bottles and has been suggested in cementitious systems due to its potential pozzolanic activity. To better understand the impact of WGP on cementitious composites, experimental tests of rheology, heat of hydration, and strength development were conducted on cement pastes with and without WGP. Results show that the rheological performance of cement paste is improved when WGP with particles passing through 80 μm sieves is incorporated. The retarding effect and pozzolanic reaction were observed through X-ray diffraction patterns and thermo-gravimetric parameter analyses. A calcium hydroxide (CH) content calculation further confirms the secondary reactivity of WGP in cement pastes. Compared with the samples without WGP, the normalized CH content of binder per unit mass containing 35% WGP decreased by 21.01%, 24.94%, and 27.41% at the ages of 1, 28, and 90 days, respectively, which contributes to late-age strength development of pastes. At the same time, the hydration per unit of cement was increased by 21.53%, 15.48%, and 11.68%, which improved the cement efficiency. In addition, WGP particles provide nuclei for hydration products, facilitating the subsequent growth of C-S-H and strength development in late ages. Based on value engineering analysis, WGP was found to reduce the impact of Portland cement on the environment by 34.9% in terms of carbon dioxide emissions, indicating a bright prospect for WGP in the cement industry.
在玻璃制品制造过程中会产生大量废玻璃,对环境造成不利影响。通过破碎和球磨,可以从玻璃瓶中获得废玻璃粉(WGP),由于其潜在的火山灰活性,已有人提出将其用于水泥基体系。为了更好地理解WGP对水泥基复合材料的影响,对含和不含WGP的水泥净浆进行了流变学、水化热和强度发展的试验测试。结果表明,掺入通过80μm筛的WGP颗粒时,水泥净浆的流变性能得到改善。通过X射线衍射图谱和热重参数分析观察到了缓凝效果和火山灰反应。氢氧化钙(CH)含量计算进一步证实了WGP在水泥净浆中的二次反应活性。与不含WGP的样品相比,含35%WGP的单位质量胶凝材料的归一化CH含量在1天、28天和90天时分别降低了21.01%、24.94%和27.41%,这有助于净浆后期强度的发展。同时,单位水泥的水化作用提高了21.53%、15.48%和11.68%,提高了水泥效率。此外,WGP颗粒为水化产物提供晶核,促进了后期C-S-H的生长和强度发展。基于价值工程分析,发现WGP在二氧化碳排放方面可使波特兰水泥对环境的影响降低34.9%,这表明WGP在水泥行业具有广阔的前景。