Investigation on performance of basalt fiber-reinforced concrete under fatigue load

IF 3.4 3区 工程技术 Q2 CONSTRUCTION & BUILDING TECHNOLOGY
Zhennan Li, Feng Yu, Xiaoqian Dai, Aiqin Shen, Xiushan Wang
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Abstract

To investigate the performance of basalt fiber-reinforced concrete (BFRC) under fatigue load, a phased fatigue loading test is conducted, and the variation in the mechanical properties with the loading cycles, fiber content, and stress level is discussed. The degradation patterns of pore-structure parameters and pore-size distribution under various loading cycles are investigated, and the relationship between flexural strength and pore structure is established. The results show that the flexural strength, compressive strength, and relative dynamic elastic modulus exhibit an “ascending–descending” tendency at a stress level of 0.5, and that the inflection point of modulus reduction is earlier than that of flexural strength. The values of the mechanical properties decrease continuously at the stress level of 0.7, and the basalt fiber reduces the strength-attenuation amplitude. The average pore diameter of the BFRC reduces by 16.39–21.06% compared with that of ordinary concrete under load, and the linear rising slope of multiple injurious pores decreases, which implies that basalt fiber facilitates improvement to the pore structure during the service period. The porosity and total pore volume exhibit a high correlation coefficient with the flexural strength of BFRC under fatigue load.

Abstract Image

为了研究玄武岩纤维增强混凝土(BFRC)在疲劳载荷下的性能,进行了分阶段疲劳加载试验,并讨论了力学性能随加载周期、纤维含量和应力水平的变化。研究了不同加载周期下孔隙结构参数和孔径分布的退化模式,并确定了抗折强度与孔隙结构之间的关系。结果表明,在应力水平为 0.5 时,抗折强度、抗压强度和相对动态弹性模量呈 "上升-下降 "趋势,且模量下降的拐点早于抗折强度的拐点。在应力水平为 0.7 时,力学性能值持续下降,玄武岩纤维降低了强度衰减幅度。与普通混凝土相比,BFRC 在荷载作用下的平均孔径减小了 16.39%-21.06%,多伤孔的线性上升斜率减小,这意味着玄武岩纤维在使用期间有利于改善孔隙结构。孔隙率和总孔隙率与 BFRC 在疲劳荷载下的抗折强度具有很高的相关系数。
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来源期刊
Materials and Structures
Materials and Structures 工程技术-材料科学:综合
CiteScore
6.40
自引率
7.90%
发文量
222
审稿时长
5.9 months
期刊介绍: Materials and Structures, the flagship publication of the International Union of Laboratories and Experts in Construction Materials, Systems and Structures (RILEM), provides a unique international and interdisciplinary forum for new research findings on the performance of construction materials. A leader in cutting-edge research, the journal is dedicated to the publication of high quality papers examining the fundamental properties of building materials, their characterization and processing techniques, modeling, standardization of test methods, and the application of research results in building and civil engineering. Materials and Structures also publishes comprehensive reports prepared by the RILEM’s technical committees.
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