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基于响应面法的MK-GGBS基地质聚合物修补砂浆优化设计

Optimization Design of MK-GGBS Based Geopolymer Repairing Mortar Based on Response Surface Methodology.

作者信息

Ma Zhiming, Dan Hancheng, Tan Jiawei, Li Mengjin, Li Songlin

机构信息

School of Civil Engineering, Central South University, Changsha 410075, China.

Department of Civil Engineering, KU Leuven, 8200 Leuven, Belgium.

出版信息

Materials (Basel). 2023 Feb 24;16(5):1889. doi: 10.3390/ma16051889.

Abstract

There are several influencing factors in the preparation of MK (metakaolin)-GGBS (ground granulated blast furnace slag)-based geopolymer repair mortars, including the MK-GGBS ratio, the alkalinity of the alkali activator solution, the modulus of the alkali activator solution, and the water-to-solid ratio. There are interactions between these factors, such as the different alkaline and modulus requirements of MK and GGBS, the interaction between the alkaline and modulus of the alkali activator solution, and the influence of water throughout the process. The effect of these interactions on the geopolymer repair mortar is not fully understood, making optimization of the MK-GGBS repair mortar ratio difficult. Therefore, in this paper, the response surface methodology (RSM) was used to optimize the preparation of the repair mortar, with GGBS content, SiO/NaO molar ratio, NaO/binder ratio, and water/binder ratio as influencing factors and 1 d compressive strength, 1 d flexural strength, and 1 d bond strength as evaluation indices. Additionally, the repair mortar's overall performance was assessed in terms of setting time, long-term compressive and bond strength, shrinkage, water absorption, and efflorescence. The results show that RSM was successful in establishing a relationship between the repair mortar's properties and the factors. The recommended values of the GGBS content, NaO/binder ratio, SiO/NaO molar ratio, and water/binder ratio are 60%, 10.1%, 1.19, and 0.41, respectively. The optimized mortar meets the standard's requirements for set time, water absorption, shrinkage values, and mechanical strength, with minimal visual efflorescence. The back-scattered electron (BSE) images and energy dispersive spectroscopy (EDS) analysis show that the geopolymer and cement have good interfacial adhesion, and a denser interfacial transition zone exists in the optimized proportion.

摘要

偏高岭土(MK)-磨细粒化高炉矿渣(GGBS)基地质聚合物修补砂浆的制备存在多种影响因素,包括MK与GGBS的比例、碱激发剂溶液的碱度、碱激发剂溶液的模量以及水固比。这些因素之间存在相互作用,例如MK和GGBS对碱度和模量的要求不同、碱激发剂溶液的碱度与模量之间的相互作用以及水在整个过程中的影响。这些相互作用对地质聚合物修补砂浆的影响尚未完全明确,使得优化MK-GGBS修补砂浆的比例变得困难。因此,本文采用响应面法(RSM)来优化修补砂浆的制备,将GGBS含量、SiO/NaO摩尔比、NaO/胶凝材料比和水/胶凝材料比作为影响因素,将1 d抗压强度、1 d抗折强度和1 d粘结强度作为评价指标。此外,还从凝结时间、长期抗压和粘结强度、收缩率、吸水率和泛霜等方面评估了修补砂浆的整体性能。结果表明,响应面法成功建立了修补砂浆性能与各因素之间的关系。GGBS含量、NaO/胶凝材料比、SiO/NaO摩尔比和水/胶凝材料比的推荐值分别为60%、10.1%、1.19和0.41。优化后的砂浆满足标准对凝结时间、吸水率、收缩率值和机械强度的要求,泛霜现象不明显。背散射电子(BSE)图像和能谱(EDS)分析表明,地质聚合物与水泥具有良好的界面粘结性,优化比例下存在更致密的界面过渡区。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7a05/10004134/10c6365e6001/materials-16-01889-g001.jpg

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