不含熟料的氧化钙活性硅灰作为水泥基粘结剂用于路面应用

IF 5.4 Q1 ENVIRONMENTAL SCIENCES Resources, conservation & recycling advances Pub Date : 2024-05-15 DOI:10.1016/j.rcradv.2024.200218
Shreyas Pranav , Mukund Lahoti , G. Muthukumar , En-Hua Yang
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引用次数: 0

摘要

生产普通硅酸盐水泥(OPC)需要将石灰石加热至 1450 °C,每生产 1 公斤水泥会产生 0.5-0.9 公斤二氧化碳。此外,全世界每年生产的水泥量巨大,因此迫切需要寻找可持续的替代品。本研究提出了一种新型氧化钙(CaO)活化高容量硅灰混合物,作为水泥基粘结剂用于路面应用,可解决水泥的可持续性问题(因为生产 CaO 所需的煅烧温度比 OPC 低得多,而且 CaO 在粘结剂中的用量也较少)。以前的文献中还没有研究过将低用量的氧化钙和高用量的硅灰结合在一起,特别是作为路面粘结剂的情况。抗压和抗折强度结果表明,即使在粘结剂中使用少量 CaO,也能获得符合 ASTM 路面设计准则的可接受强度,而 OPC 在如此低的用量下无法提供类似的强度。CaO 含量为硅灰含量 30% 的混合料(CSF-30)显示出最高的抗压强度(28d:18.4 兆帕)和抗弯强度(28d:4 兆帕)。相比之下,28d 时观察到的 OPC-硅灰最高抗压强度和抗折强度分别为 13.9 MPa 和 2.9 MPa。从微观结构结果可以看出,CaO-硅灰由于形成方解石和硅酸钙水合物而产生强度。几乎所有氧化钙-硅灰混合物的孔隙率都低于 OPC-硅灰混合物;机械性能最好的 CSF-30 混合物在 28d 时孔隙率最低(2.8%)。比较可持续性分析和 5D 分析(考虑了本研究中的所有参数)显示,CSF-30 是最佳的粘结剂替代品(总分:5.24)。这项工作的结果将有助于路面使用者、设计师、研究人员、工程师和相关政府官员获得一种可持续的无熟料路面粘结剂,以替代 OPC,特别是用于小容量道路,并满足路面设计指南的要求。
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Clinker-free CaO-activated silica fume as a cementitious binder for pavement application

Ordinary Portland cement (OPC) production requires heating limestone up to 1450 °C and produces 0.5–0.9 kg of carbon dioxide for every 1 kg produced. Moreover, the massive volume of cement manufactured around the world every year adds to the urgent need to look for sustainable alternatives. This work proposes a novel calcium oxide (CaO)-activated high-volume silica fume mixture as a cementitious binder for pavement application that can address the sustainability concern with cement (because producing CaO requires a much lower calcination temperature than OPC, and that CaO is also used in low-volume in the binder). The combination of low-volume CaO and high-volume silica fume, particularly as a pavement binder has not been studied in the literature before. The compressive and flexural strength results showed that even by using a small fraction of CaO in the binder, it is possible to obtain acceptable strengths that satisfy ASTM pavement design guidelines, while OPC is unable to provide similar strengths at such low dosage. The mix having CaO content as 30 % of the silica fume content (CSF-30) shows the highest compressive strength (28d: 18.4 MPa) and flexural strength (28d: 4 MPa). In contrast, the maximum OPC-silica fume compressive and flexural strengths observed are 13.9 MPa and 2.9 MPa respectively at 28d From the microstructural results, it was seen that CaO–silica fume develops strength due to formation of calcite and calcium silicate hydrate. Almost all CaO–silica fume mixes exhibited lower porosity compared to their OPC-silica fume counterparts; CSF-30, the mix having the best mechanical performance showed the lowest porosity at 28d (2.8 %). A comparative sustainability analysis followed by a 5D analysis considering all the parameters studied in this work revealed that CSF-30 is the best binder alternative (overall score: 5.24). The results of this work will be useful for pavement users, designers, researchers, engineers, and relevant government officials, in having a sustainable clinker-free alternative pavement binder to OPC, particularly for low-volume roads, that satisfies the pavement design guidelines.

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来源期刊
Resources, conservation & recycling advances
Resources, conservation & recycling advances Environmental Science (General)
CiteScore
11.70
自引率
0.00%
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0
审稿时长
76 days
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