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Hybrid effects of steel fiber and carbon nanotube on self-sensing capability of ultra-high-performance concrete

机译:钢纤维与碳纳米管的混合效应对超高性能混凝土自感应性能的影响

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摘要

This study aims to examine the feasibility of using steel fibers and carbon nanotubes (CNTs) on developing self-sensing ultra-high-performance concrete (UHPC). For this, four steel fiber types with two different shapes (straight vs. twisted) and three different aspect ratios from 65 to 100 were considered at a fiber volume fraction of 2%. 0.5% by volume of CNTs were simultaneously added. A plain UHPC with only 0.5% CNTs was also fabricated and tested as a control specimen. Test results indicated that the addition of 2% steel fibers was effective in enhancing compressive strength, elastic modulus, tensile strength, and strain capacity of the plain UHPC. The compressive behaviors of UHPC and ultra-high-performance fiber-reinforced concrete (UHPFRC) with CNTs were not predicted based on a fractional change in resistance (FCR) measurement, whereas the total tensile behaviors in terms of both stress-strain and stress-crack opening displacement (COD) curves were quite well simulated based on the FCR measurement and curve-fitting equations suggested. The unintended noise in the FCR of the plain UHPC was largely mitigated by adding the steel fibers, while the highest gauge factor (GF) under tensile load was found for the plain UHPC with CNTs. Using micro steel fibers was more effective in increasing the GF than using macro steel fibers, and better predictive results were obtained for the UHPFRC with straight steel fibers as compared to that with twisted steel fibers. (C) 2018 Elsevier Ltd. All rights reserved.
机译:这项研究旨在检验使用钢纤维和碳纳米管(CNT)来开发自感超高性能混凝土(UHPC)的可行性。为此,在纤维体积分数为2%的情况下,考虑了四种钢纤维类型,它们具有两种不同的形状(直线形与扭曲形)和三种不同的纵横比(从65到100)。同时添加0.5体积%的CNT。还制造了仅含0.5%CNT的普通UHPC,并作为对照样品进行了测试。测试结果表明,添加2%的钢纤维可有效提高普通UHPC的抗压强度,弹性模量,拉伸强度和应变能力。 UHPC和含碳纳米管的超高性能纤维混凝土(UHPFRC)的压缩行为不是基于电阻的分数变化(FCR)测量来预测的,而总拉伸行为是基于应力-应变和应力-基于FCR测量和建议的曲线拟合方程,可以很好地模拟裂纹开口位移(COD)曲线。通过添加钢纤维,可以大大缓解普通UHPC的FCR中的意外噪声,而发现带有CNT的普通UHPC在拉伸载荷下的最高规格系数(GF)最高。与使用粗钢丝纤维相比,使用微钢丝纤维比使用粗钢丝纤维更有效地提高了GF,并且与加捻钢丝纤维相比,使用直钢丝纤维的UHPFRC获得了更好的预测结果。 (C)2018 Elsevier Ltd.保留所有权利。

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