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Assessment of Mechanical Properties and Structural Morphology of Alkali-Activated Mortars with Industrial Waste Materials

机译:工业废料碱活性砂浆机械性能和结构形貌评估

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摘要

Alkali-activated products composed of industrial waste materials have shown promising environmentally friendly features with appropriate strength and durability. This study explores the mechanical properties and structural morphology of ternary blended alkali-activated mortars composed of industrial waste materials, including fly ash (FA), palm oil fly ash (POFA), waste ceramic powder (WCP), and granulated blast-furnace slag (GBFS). The effect on the mechanical properties of the Al2O3, SiO2, and CaO content of each binder is investigated in 42 engineered alkali-activated mixes (AAMs). The AAMs structural morphology is first explored with the aid of X-ray diffraction, scanning electron microscopy, and Fourier-transform infrared spectroscopy measurements. Furthermore, three different algorithms are used to predict the AAMs mechanical properties. Both an optimized artificial neural network (ANN) combined with a metaheuristic Krill Herd algorithm (KHA-ANN) and an ANN-combined genetic algorithm (GA-ANN) are developed and compared with a multiple linear regression (MLR) model. The structural morphology tests confirm that the high GBFS volume in AAMs results in a high volume of hydration products and significantly improves the final mechanical properties. However, increasing POFA and WCP percentage in AAMs manifests in the rise of unreacted silicate and reduces C-S-H products that negatively affect the observed mechanical properties. Meanwhile, the mechanical features in AAMs with high-volume FA are significantly dependent on the GBFS percentage in the binder mass. It is also shown that the proposed KHA-ANN model offers satisfactory results of mechanical property predictions for AAMs, with higher accuracy than the GA-ANN or MLR methods. The final weight and bias values given by the model suggest that the KHA-ANN method can be efficiently used to design AAMs with targeted mechanical features and desired amounts of waste consumption.
机译:工业废料组成的碱活化的产品已显示出大有希望适当的强度和耐久性,环保的特点。本研究探讨的机械性能和工业废料,包括飞灰(FA),棕榈油飞灰(POFA)构成的三元共混碱激活砂浆的结构形态,废陶瓷粉末(WCP),和粒化高炉炉渣(GBFS)。在每个粘合剂的氧化铝,SiO 2和CaO的含量的机械性能的影响在42工程化碱活化的混合物(空空导弹)进行了研究。所述的AAMs结构形态首先用X射线衍射的辅助探索,扫描电子显微镜和傅里叶变换红外光谱法测量。此外,三种不同的算法用于预测的AAMs机械性能。都与一元启发式磷虾畜群算法(KHA-ANN)和ANN-组合遗传算法(GA-ANN)组合的优化的人工神经网络(ANN)的开发,并用多元线性回归(MLR)模型进行比较。结构形态测试证实的是,在高容量的水化产物的AAMs结果和显著高GBFS体积改善了最终的机械性能。然而,增加在的AAMs舱单POFA和WCP百分比的未反应的硅酸盐的上升并减少了不利地影响所观察到的机械特性C-S-H的产品。同时,在大批量FA空空导弹机械结构特征是显著取决于粘合剂的质量百分比GBFS。它也表明,该KHA神经网络模型提供的机械性能预测的空空导弹,具有比GA-ANN或MLR的精度高的满意的结果。由模型给定的最终重量和偏置值表明KHA-ANN方法可以有效地用于设计具有靶向机械特征和废物消耗的所需量的AAMs。

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