Impact of attapulgite and basalt fiber additions on the performance of pumice-based foam concrete: mechanical, thermal, and durability properties

IF 4.4 3区 工程技术 Q1 ENGINEERING, CIVIL Archives of Civil and Mechanical Engineering Pub Date : 2025-01-29 DOI:10.1007/s43452-025-01128-3
Burak Bodur, Ahmet Benli, Oguzhan Yavuz Bayraktar, Haluk Görkem Alcan, Gokhan Kaplan, Abdulkadir Cüneyt Aydın
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Abstract

This study explored the combined effects of using attapulgite (ATP) as a partial cement replacement and basalt fibers (BF) as reinforcement in the development of high-performance foam concrete (FC) with 100% pumice aggregate. The experimental program included preparing FC mixtures with ATP replacements at 10%, 20%, and 30% by cement weight, and adding BF at volume fractions of 0.5%, 1.0%, and 2.0%. Key properties assessed were fresh flowability, compressive and flexural strengths, stress–strain behavior, thermal conductivity, and durability under sulfate exposure and high temperatures. Findings revealed a synergistic effect between ATP and BF, leading to significant performance enhancements across various parameters. The mixture with 30% ATP and 0.5% BF exhibited the highest compressive strength, reaching 19.45 MPa at 28 days and 22.11 MPa at 90 days, indicating improvements of 129.3% and 85.3% over the reference mix, respectively. This combination also achieved the lowest sorptivity, improved thermal stability, and better sulfate resistance, making it highly suitable for structural applications in harsh environments. In addition, the mixture with 10% ATP and 0.5% BF demonstrated the lowest thermal conductivity, reducing heat transfer by 4.2% compared to the control, which is beneficial for thermal insulation in building materials. Microstructural analysis using Scanning Electron Microscopy (SEM) showed that ATP’s pozzolanic reactivity led to a denser microstructure with stronger bonding, while BF effectively bridged micro-cracks, enhancing the FC matrix's durability. Overall, these results highlighted the potential of ATP and BF to significantly enhance FC’s mechanical, thermal, and durability properties, providing an eco-friendly solution with lower cement use and greater resilience to environmental stressors. This study contributes to sustainable construction technology by showcasing how ATP and BF can optimize FC performance, supporting its wider use in the construction industry.

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凹凸棒土和玄武岩纤维的添加对浮石基泡沫混凝土性能的影响:力学、热学和耐久性
本研究探讨了使用凹凸棒石(ATP)作为部分水泥替代品和玄武岩纤维(BF)作为补强剂在100%浮石骨料高性能泡沫混凝土(FC)开发中的联合效应。实验方案包括制备含水泥质量比为10%、20%和30%的ATP替代品的FC混合物,并以0.5%、1.0%和2.0%的体积分数加入BF。评估的关键性能包括新鲜流动性、抗压和弯曲强度、应力-应变行为、导热性以及硫酸盐暴露和高温下的耐久性。研究结果显示,ATP和BF之间存在协同效应,可以显著提高各种参数的性能。30% ATP和0.5% BF的混合料抗压强度最高,28天达到19.45 MPa, 90天达到22.11 MPa,分别比参考混合料提高了129.3%和85.3%。这种组合还实现了最低的吸附率,提高了热稳定性,更好的抗硫酸盐性,使其非常适合在恶劣环境中的结构应用。此外,10% ATP和0.5% BF的混合物的导热系数最低,与对照组相比,传热减少4.2%,这有利于建筑材料的隔热。扫描电镜(SEM)显微组织分析表明,ATP的火山灰反应性使FC基体的微观结构更致密,结合更强,而BF有效地桥接了微裂纹,提高了FC基体的耐久性。总的来说,这些结果突出了ATP和BF在显著提高FC的机械、热学和耐久性方面的潜力,提供了一种环保的解决方案,减少了水泥的使用,对环境压力的恢复能力更强。本研究通过展示ATP和BF如何优化FC性能,为可持续建筑技术做出贡献,支持其在建筑行业的更广泛应用。
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来源期刊
Archives of Civil and Mechanical Engineering
Archives of Civil and Mechanical Engineering 工程技术-材料科学:综合
CiteScore
6.80
自引率
9.10%
发文量
201
审稿时长
4 months
期刊介绍: Archives of Civil and Mechanical Engineering (ACME) publishes both theoretical and experimental original research articles which explore or exploit new ideas and techniques in three main areas: structural engineering, mechanics of materials and materials science. The aim of the journal is to advance science related to structural engineering focusing on structures, machines and mechanical systems. The journal also promotes advancement in the area of mechanics of materials, by publishing most recent findings in elasticity, plasticity, rheology, fatigue and fracture mechanics. The third area the journal is concentrating on is materials science, with emphasis on metals, composites, etc., their structures and properties as well as methods of evaluation. In addition to research papers, the Editorial Board welcomes state-of-the-art reviews on specialized topics. All such articles have to be sent to the Editor-in-Chief before submission for pre-submission review process. Only articles approved by the Editor-in-Chief in pre-submission process can be submitted to the journal for further processing. Approval in pre-submission stage doesn''t guarantee acceptance for publication as all papers are subject to a regular referee procedure.
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