Acid Resistance of Metakaolin-Based Geopolymers and Geopolymeric Mortars Reinforced with Coconut Fibers

Fibers Pub Date : 2024-05-01 DOI:10.3390/fib12050040
M. Lezzerini, Andrea Aquino, Stefano Pagnotta
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Abstract

This paper investigates the durability of geopolymers and geopolymeric mortars made with metakaolin and alkaline activators, with and without a coconut fiber addition, after immersion for seven days into solutions of citric acid (1%, 2.5%, 5%, and 10%); hydrochloric acid (1%, 2.5%, 5%, and 10%); and sulfuric acid (1%, 2.5%, 5%, and 10%). The study focuses on mass changes, uniaxial compressive strength, flexural strength, and ultrasound pulse velocity measurements. X-ray diffraction and scanning electron microscopy are used to analyze the degradation products and microstructural changes. The aim is to assess the effect of acid exposure on the strength and stability of geopolymer materials and identify any protective effects of coconut fiber reinforcement. The samples are immersed in acid solutions of varying concentrations, and their mechanical properties are measured. The presence of coconut fibers slightly modifies the physical properties and the compressive strength, improving the mechanical flexural strength. Geopolymer and geopolymeric mortar materials experienced a weak decrease in strength when exposed to solutions of citric acid and a significant one when exposed to solutions of hydrochloric and sulfuric acids, attributed to depolymerization of the aluminosilicate binders. Brick waste geopolymeric mortars reinforced with coconut fibers showed the best performance in acid solutions with respect to geopolymers and quartz-rich sand geopolymeric mortars, suggesting a more stable cross-linked aluminosilicate geopolymer structure in this material.
偏高岭土基土工聚合物和椰子纤维增强土工聚合物砂浆的耐酸性能
本文研究了在柠檬酸(1%、2.5%、5% 和 10%)、盐酸(1%、2.5%、5% 和 10%)和硫酸(1%、2.5%、5% 和 10%)溶液中浸泡七天后,使用偏高岭土和碱性活化剂(添加或不添加椰子纤维)制成的土工聚合物和土工聚合物砂浆的耐久性。研究的重点是质量变化、单轴抗压强度、抗弯强度和超声脉冲速度测量。X 射线衍射和扫描电子显微镜用于分析降解产物和微观结构变化。目的是评估酸暴露对土工聚合物材料强度和稳定性的影响,并确定椰子纤维加固的任何保护作用。将样品浸入不同浓度的酸溶液中,测量其机械性能。椰子纤维的存在略微改变了物理特性和抗压强度,提高了机械抗折强度。土工聚合物和土工聚合物砂浆材料在柠檬酸溶液中的强度下降较弱,而在盐酸和硫酸溶液中的强度下降明显,这归因于铝硅酸盐粘结剂的解聚。与土工聚合物和富含石英砂的土工聚合物砂浆相比,用椰子纤维加固的砖废料土工聚合物砂浆在酸溶液中表现最佳,这表明这种材料中的交联硅酸铝土工聚合物结构更加稳定。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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