Energy dissipation and fractal characteristics of basalt fiber reinforced concrete under impact loading

IF 4.3 2区 工程技术 Q1 ENGINEERING, CIVIL Structures Pub Date : 2022-12-01 DOI:10.1016/j.istruc.2022.10.086
Huanzhen Xie, Liyun Yang, Haonan Zhu, Qihu Zhang, Xin Deng, Peng Wei, Jian Lü
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引用次数: 8

Abstract

Basalt fiber reinforced concrete (BFRC) has been gradually used in buildings or structures to resist high-speed impact and explosion loading because of its good dynamic performance and energy absorption capacity. The dynamic compression experiments of BFRC with basalt fiber volume content of 0, 0.13 %, 0.26 % and 0.39 % were conducted using the Φ50 mm-diameter split Hopkinson pressure bar experimental system. The effects of different strain rates (80–220 s−1) on the dynamic compression property, dissipated energy (rate), fragmentation morphology and fractal dimension of BFRC were studied. Meanwhile, the SHPB impact numerical simulation of BFRC is carried out by LS-DYNA simulation platform. The results show that the peak stress and dissipated energy (rate) of BFRC increase with the increase of strain rate. However, the increase of the loading strain rate gradually decreases the fragmentation of BFRC, resulting in the continuous increase of the fractal dimension. The existence of basalt fiber as reinforcement in concrete increases the ability of concrete to resist impact cracking. BFRC with 0.26 % basalt fiber volume has higher dynamic compressive property and energy dissipation rate, but the fractal dimension of BFRC is the smallest compared with other contents. The stress–strain curves and damage evolution of BFRC under different loading rates are discussed by numerical simulation, which is further supplement to the experimental results.

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冲击荷载作用下玄武岩纤维混凝土的能量耗散及分形特性
玄武岩纤维增强混凝土(BFRC)因其良好的动力性能和吸能能力,已逐渐应用于建筑物或结构中,以抵抗高速冲击和爆炸荷载。采用Φ50 mm-直径分离式Hopkinson压杆试验系统,对玄武岩纤维体积含量分别为0、0.13%、0.26%和0.39%的BFRC进行了动态压缩试验。研究了不同应变速率(80 ~ 220 s−1)对BFRC动态压缩性能、耗散能(率)、碎裂形貌和分形维数的影响。同时,利用LS-DYNA仿真平台对BFRC进行了SHPB冲击数值模拟。结果表明:BFRC的峰值应力和耗散能(率)随应变速率的增大而增大;而加载应变率的增加使BFRC的破碎度逐渐减小,导致分形维数不断增大。玄武岩纤维作为钢筋在混凝土中的存在,提高了混凝土抗冲击开裂的能力。玄武岩纤维体积为0.26%的BFRC具有较高的动态压缩性能和能量耗散率,但分形维数最小。通过数值模拟探讨了不同加载速率下BFRC的应力-应变曲线及损伤演化规律,对试验结果进行了进一步补充。
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来源期刊
Structures
Structures Engineering-Architecture
CiteScore
5.70
自引率
17.10%
发文量
1187
期刊介绍: Structures aims to publish internationally-leading research across the full breadth of structural engineering. Papers for Structures are particularly welcome in which high-quality research will benefit from wide readership of academics and practitioners such that not only high citation rates but also tangible industrial-related pathways to impact are achieved.
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