高温暴露后玄武岩纤维增强再生骨料混凝土的抗压机械性能和微观机理

IF 6.7 2区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY Journal of building engineering Pub Date : 2024-09-02 DOI:10.1016/j.jobe.2024.110647
Xianggang Zhang, Yanan Zhu, Youchuan Shen, Junbo Wang, Yuhui Fan, Xiang Gao, Yajun Huang
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引用次数: 0

摘要

为了改善再生骨料混凝土(RAC)在高温暴露后的力学性能,本研究采用玄武岩纤维(BF)作为再生骨料混凝土中的增强材料。以再生粗骨料(RCA)的替代率、玄武岩纤维的含量和温度作为变化参数,设计了 27 组玄武岩纤维增强再生骨料混凝土(BFRRC)试件,进行升温后的抗压强度测试。加热速度设定为 2.5 ℃/分钟,以避免圆柱形试件在加热过程中可能发生爆炸。试样在达到所需温度后处理 6 小时,然后打开炉门自然冷却至室温。在观察了试样的物理性能后,进行了基本机械性能测试,并用电子显微镜深入分析了微观机理。结果表明,RCA 的固有缺陷和高温损伤的持续积累逐渐降低了 BFRRC 的抗压机械性能,但 BF 的增韧和抗裂作用有效改善了 BFRRC 的抗压机械性能。BF 通过桥接和抗裂作用机制提高了 RAC 的抗压机械性能,但温度越高,提高的幅度越小。试样的立方体抗压强度和轴向抗压强度随着温度的升高而降低。在相同的置换率和纤维用量下,温度从 300 °C 升至 600 °C,立方体抗压强度和轴向抗压强度的下降幅度最大,分别为 36.4 %-48.1 % 和 51.1 %-62.6 %。
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Compressive mechanical performance and microscopic mechanism of basalt fiber-reinforced recycled aggregate concrete after elevated temperature exposure
To improve the mechanical properties of recycled aggregate concrete (RAC) after elevated temperature exposure, this study employed basalt fiber (BF) as reinforcing material incorporated into RAC. The replacement ratio of recycled coarse aggregate (RCA), the content of BF, and the temperature were utilized as the change parameters, and 27 groups of basalt fiber reinforced recycled aggregate concrete (BFRRC) specimens were designed to carry out the compressive strength test after elevated temperature. The heating rate was set at 2.5 °C/min to avoid any possible explosion of the cylindrical specimen during the heating process. The specimens were treated for 6h after reaching the desired temperature, and then the furnace door was opened for natural cooling to room temperature. After observing the physical properties of the specimens, the basic mechanical properties test was carried out, and the microscopic mechanism was analyzed in depth by electron microscopy. The results showed that the defects inherent in RCA and the continuous accumulation of elevated temperature damage gradually reduced the compressive mechanical performance of BFRRC but that the toughening and cracking-resistance action of BF effectively improved the compressive mechanical performance of BFRRC. BF enhanced the compressive mechanical performance of RAC through bridging and crack resistance action mechanisms, but the higher the temperature became, the smaller the enhancement was. The cube compressive strength and axial compressive strength of the specimens decreased with the increase of temperature. With the same replacement ratio and fiber dosage, increasing the temperature from 300 °C to 600 °C, the decrease in cube compressive strength and axial compressive strength was the most significant, which was between 36.4 %–48.1 % and 51.1 %–62.6 %, respectively.
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来源期刊
Journal of building engineering
Journal of building engineering Engineering-Civil and Structural Engineering
CiteScore
10.00
自引率
12.50%
发文量
1901
审稿时长
35 days
期刊介绍: The Journal of Building Engineering is an interdisciplinary journal that covers all aspects of science and technology concerned with the whole life cycle of the built environment; from the design phase through to construction, operation, performance, maintenance and its deterioration.
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