释放生物质粉煤灰的潜力:探索其在地质聚合物材料中的应用——以BFA基地质聚合物混凝土与常规混凝土的对比研究为例

IF 2.7 Q1 MATERIALS SCIENCE, CERAMICS Ceramics-Switzerland Pub Date : 2023-08-03 DOI:10.3390/ceramics6030104
B. Yalcinkaya, Tomáš Špirek, M. Bouša, P. Louda, Vojtěch Růžek, C. Rapiejko, K. Buczkowska
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引用次数: 2

摘要

传统水泥的生产涉及高能耗和大量二氧化碳(CO2)的释放,加剧了气候变化。此外,石灰石和粘土等原材料的开采会导致栖息地的破坏和生物多样性的丧失。地质聚合物技术通过利用工业副产品和显著减少碳排放,为传统水泥提供了一种有前景的替代品。本文分析了生物质粉煤灰在地质聚合物混凝土成型中的应用,并将其对碳和成本的影响与传统混凝土进行了比较。先前的分析表明,地质聚合物在减少水泥生产对气候变化的影响方面具有巨大潜力。该分析结果表明,与地质聚合物相关的计算财务和可持续性成本存在显著差异。研究人员已经表明,地质聚合物可能有助于减轻水泥生产对环境的影响。据预测,这些地质聚合物将减少40-80%的温室气体排放。他们还表明,这些优势可以通过尽可能好的原料来源和尽可能便宜的运输方式来实现。此外,我们对基于BFA的地质聚合物和传统混凝土的二氧化碳排放和成本计算的案例研究表明,地质聚合物混凝土制备比传统混凝土少排放56%的二氧化碳,而每吨成本低32.4%。
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Unlocking the Potential of Biomass Fly Ash: Exploring Its Application in Geopolymeric Materials and a Comparative Case Study of BFA-Based Geopolymeric Concrete against Conventional Concrete
The production of conventional cement involves high energy consumption and the release of substantial amounts of carbon dioxide (CO2), exacerbating climate change. Additionally, the extraction of raw materials, such as limestone and clay, leads to habitat destruction and biodiversity loss. Geopolymer technology offers a promising alternative to conventional cement by utilizing industrial byproducts and significantly reducing carbon emissions. This paper analyzes the utilization of biomass fly ash (BFA) in the formation of geopolymer concrete and compares its carbon and cost impacts to those of conventional concrete. The previous analysis shows great potential for geopolymers to reduce the climate change impact of cement production. The results of this analysis indicate a significant disparity in the computed financial and sustainability costs associated with geopolymers. Researchers have shown that geopolymers may help mitigate the effects of cement manufacturing on the environment. These geopolymers are predicted to reduce green gas emissions by 40–80%. They also show that those advantages can be realized with the best possible feedstock source and the cheapest possible conveyance. Furthermore, our case study on CO2 emission and cost calculation for BFA-based geopolymer and conventional concrete shows that geopolymer concrete preparation emits 56% less CO2 than conventional concrete while costing 32.4% less per ton.
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CiteScore
3.00
自引率
7.10%
发文量
66
审稿时长
10 weeks
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