Optimization of mechanical properties and pore structure of lightweight geopolymer concrete using GGBFS based on LF-NMR technology

IF 1.8 4区 工程技术 Q3 CONSTRUCTION & BUILDING TECHNOLOGY Magazine of Concrete Research Pub Date : 2024-06-04 DOI:10.1680/jmacr.23.00295
W. Zhong, H. Wang, X. Zhao, J.X. Li, L.F. Fan
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Abstract

Lightweight geopolymer can combine good physical and mechanical properties, good thermal and chemical stability, low CO2 emission and low energy. The development of high strength lightweight geopolymer concrete for load-bearing structures is important to expand the application range of geopolymer. This paper presents an improvement study on the mechanical properties and pore structure of lightweight geopolymer concrete (LGC) by adding ground granulated blast-furnace slag (GGBFS). The effect of GGBFS content on the mechanical properties of LGC was analyzed, including ultimate compressive stress and elastic modulus. The variation in the microscopic pore structure of LGC with different GGBFS content was further analyzed by low-field nuclear magnetic resonance (LF-NMR) technology. The lightweight geopolymer concrete with different strength grades was proposed including LC20, LC30 and LC40. The results show that as the GGBFS content increases, the ultimate compressive stress and specific strength of LGC increase while the strain corresponding to peak stress decreases, which means that the mechanical properties and deformation resistance of LGC are improved. The CO2 emissions of LGC are lower than that of cement-based lightweight concrete, which shows good sustainability. The results also show that the addition of GGBFS can produce more gel and reduce the volume proportion of capillary pores and air pores, resulting in the densification of the LGC. The recommended GGBFS contents corresponding to the strength grades of LC20, LC30 and LC40 are 0 ∼ 12.7 %, 12.7 % ∼ 24.6 % and 24.6 % ∼ 30%, respectively. The LGC has the characteristics of lightweight and high-strength, which has a potential application in civil engineering. Highlights [1] Mechanical properties and pore structure of LGC were improved by adding GGBFS. [2] The effect of GGBFS content on geopolymer concrete properties was discussed. [3] Effect of slag content on pore structure of geopolymer concrete were studied. [4] GGBGS content of geopolymer concrete with different strength grades was proposed.
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基于 LF-NMR 技术,利用 GGBFS 优化轻质土工聚合物混凝土的力学性能和孔隙结构
轻质土工聚合物兼具良好的物理和机械性能、良好的热稳定性和化学稳定性、低二氧化碳排放和低能耗等特点。开发用于承重结构的高强度轻质土工聚合物混凝土对于扩大土工聚合物的应用范围具有重要意义。本文介绍了通过添加磨细高炉矿渣(GGBFS)改善轻质土工聚合物混凝土(LGC)力学性能和孔隙结构的研究。分析了 GGBFS 含量对轻质土工聚合物混凝土力学性能的影响,包括极限压应力和弹性模量。低场核磁共振(LF-NMR)技术进一步分析了不同 GGBFS 含量下 LGC 微观孔隙结构的变化。提出了不同强度等级的轻质土工聚合物混凝土,包括 LC20、LC30 和 LC40。结果表明,随着 GGBFS 含量的增加,轻质土工聚合物混凝土的极限压应力和比强度增加,而峰值应力对应的应变减少,这意味着轻质土工聚合物混凝土的力学性能和抗变形能力得到改善。LGC 的二氧化碳排放量低于水泥基轻质混凝土,具有良好的可持续性。研究结果还表明,添加 GGBFS 可以产生更多凝胶,减少毛细孔和气孔的体积比例,从而使 LGC 更致密。与 LC20、LC30 和 LC40 强度等级相对应的建议 GGBFS 含量分别为 0 ∼ 12.7%、12.7% ∼ 24.6% 和 24.6% ∼ 30%。LGC 具有轻质高强的特点,在土木工程中具有潜在的应用前景。亮点 [1] 添加 GGBFS 改善了 LGC 的力学性能和孔隙结构。[2] 探讨了 GGBFS 含量对土工聚合物混凝土性能的影响。[3] 研究了矿渣含量对土工聚合物混凝土孔隙结构的影响。[4] 提出了不同强度等级土工聚合物混凝土的 GGBGS 含量。
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来源期刊
Magazine of Concrete Research
Magazine of Concrete Research 工程技术-材料科学:综合
CiteScore
4.60
自引率
11.10%
发文量
102
审稿时长
5 months
期刊介绍: For concrete and other cementitious derivatives to be developed further, we need to understand the use of alternative hydraulically active materials used in combination with plain Portland Cement, sustainability and durability issues. Both fundamental and best practice issues need to be addressed. Magazine of Concrete Research covers every aspect of concrete manufacture and behaviour from performance and evaluation of constituent materials to mix design, testing, durability, structural analysis and composite construction.
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