玄武岩纤维增强混凝土对受保护建筑的影响:综述

IF 2.2 Q2 CONSTRUCTION & BUILDING TECHNOLOGY Frontiers in Built Environment Pub Date : 2024-05-21 DOI:10.3389/fbuil.2024.1407327
N. I. Vatin, M. Hematibahar, T. Gebre
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引用次数: 0

摘要

本研究探讨了玄武岩纤维加固混凝土对受保护建筑和结构的影响。玄武岩纤维由玄武岩在 1500 至 1700°C 的温度下熔化而成,是公认的可持续和环保型纤维材料。各种研究表明,不同比例的玄武岩纤维可提高混凝土的机械和化学性能。本文旨在研究玄武岩纤维加固对拉伸、压缩和弯曲强度等力学性能的影响。此外,还将评估空隙率、吸水性、氯离子渗透性、耐碱性和抗渣性、温度稳定性、收缩特性和耐磨性等性能指标。玄武岩纤维通常用于提高混凝土的机械性能和耐久性,这对受保护建筑和结构的效果有影响。研究结果表明,提高机械性能的最有效百分比范围在 0.1% 到 0.3% 的玄武岩纤维之间。值得注意的是,与其他纤维类型相比,使用玄武岩纤维加固的混凝土在碱性环境中表现出更优越的机械和化学性能。此外,在混凝土中添加 0.5% 的玄武岩纤维可显著减少氯离子的渗透,RCPT 负荷从 2,500 (C) 降至 1900 (C)就证明了这一点,这表明抗氯离子能力得到了增强。含有玄武岩纤维的钢筋混凝土具有显著的耐温性,由于其吸水能力强,可承受超过 800°C 的高温。此外,玄武岩纤维还能在高达 200°C 的温度下表现出弹性。不过,需要注意的是,引入 0.14% 的玄武岩纤维会导致吸水率从 4.08 微升至 4.28。总的来说,玄武岩纤维对混凝土的许多方面都有益处;它能增强混凝土的耐温性、耐碱性、耐酸性和耐氯化物性,同时还能提高弯曲强度和抗拉强度等机械性能。所有研究结果表明,玄武岩纤维的开发正在取得令人鼓舞的进展,玄武岩纤维可延长建筑寿命,改善结构工程应用中的混凝土质量。
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Impact of basalt fiber reinforced concrete in protected buildings: a review
This study investigates on the impact of basalt fiber reinforcement concrete in protected building and structures. Basalt fibers, derived from the melting of basalt rock at temperatures ranging from 1,500 to 1700°C, are recognized as sustainable and environmentally friendly fiber materials. Various studies have revealed differing optimal percentages of basalt fibers for enhancing the mechanical and chemical properties of concrete. The objectives of this paper are to investigate the effects of basalt fibre reinforcement on mechanical properties like tensile, compressive, and bending strengths. Additionally, performance indicators like void content, water absorption, chloride ion permeability, alkali and slag resistance, temperature stability, shrinkage characteristics, and abrasion resistance will be evaluated. Basalt fibre is typically utilised to increase the mechanical properties and durability of concrete, which has an impact in the effect on protected buildings and structures. The findings indicate that the most effective percentage range for improving mechanical properties lies between 0.1% and 0.3% of basalt fibers. Notably, concrete reinforced with basalt fibers demonstrates superior mechanical and chemical performance in alkaline environments compared to other fiber types. Moreover, the addition of 0.5% basalt fibers to concrete has been shown to significantly reduce chloride ion penetration, as evidenced by a decrease in RCPT load from 2,500 (C) to 1900 (C), indicative of enhanced chloride resistance. Reinforced concrete containing basalt fibers exhibits remarkable temperature resistance, withstanding temperatures exceeding 800°C due to its high-water absorption capacity. Additionally, basalt fibers exhibit resilience at temperatures up to 200°C. However, it is noted that the introduction of 0.14% basalt fibers leads to a slight increase in water absorption from 4.08 to 4.28. In general, basalt fibres are beneficial to many aspects of concrete; they strengthen resistance to temperature, alkali, acid exposure, and chloride while also improving mechanical qualities such as bending and tensile strength. The development of basalt fibres that extend building lifespans and improve concrete quality for structural engineering applications is making encouraging strides, according to all the results.
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来源期刊
Frontiers in Built Environment
Frontiers in Built Environment Social Sciences-Urban Studies
CiteScore
4.80
自引率
6.70%
发文量
266
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