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首页> 外文期刊>Construction and Building Materials >Low-velocity impact response of novel prepacked expanded clay aggregate fibrous concrete produced with carbon nano tube, glass fiber mesh and steel fiber
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Low-velocity impact response of novel prepacked expanded clay aggregate fibrous concrete produced with carbon nano tube, glass fiber mesh and steel fiber

机译:用碳纳米管,玻璃纤维网和钢纤维产生新型预包装膨胀粘土骨料纤维混凝土的低速冲击响应

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Recent researches reported that expanded clay aggregate in concrete leads to a notable reduction in strength properties. Nevertheless, the impact response of PEAFC comprising expanded clay aggregate (ECA), multi-walled nano-carbon tubes (MWCNT), steel fiber (SF) and glass fiber mesh (GFM) is still unexamined. It is interesting to draw a sound conclusion regarding the impact response of concretes comprising these four materials. Prepacked expanded clay aggregate fibrous concrete (PEAFC) is a novel type of environmentally sustainable concrete. The development process of PEAFC comprises the following two crucial stages. Firstly, the expanded clay aggregate and fiber are prepacked into the framework in the form of a natural skeleton, followed by grout injection. The skeleton is filled with cement grout comprising multi-walled nano-carbon tubes (MWCNT) obtaining a novel PEAFC. This research investigates the impact response of PEAFC through the drop weight impact test. For this study, forty-one PEAFC mixtures were prepared and divided into five groups. The effect of GFM with different layers and diameters inserted between the two concrete layers was accompanied by incorporating 0.2% of MWCNT and 2.5% dosage of SF. All specimens were tested against drop weight impact according to the guidelines of ACI Committee 544. The studied parameters were the compressive strength, number of the impact causing first crack and failure, impact energy at first crack and failure in addition to impact ductility. Additionally, scanning electron microscopy was utilized to assess the cement grout & rsquo;s microstructural features. The results showed that increasing the diameter of the GFM in between the concrete layers covers a larger crack projection area, which better enhances the crack arresting potential and results in higher impact energy. The GFM diameter increase from 50 mm to 150 mm increased the cracking and failure impact numbers by 49 to 60% and 117 to 152%, respectively. The average percentage improvements in cracking and failure impact numbers due to SF were estimated to be 162 and 670%, respectively. Thus, the SF shared 71 to 96% of the total developments in impact resistance of all mixtures compared to the reference mixture. The addition of 0.2% of MWCNT could adequately fill the nano-pores and nano cracks resulted in a denser cement grout matrix. The steel fiber was found to be the reinforcement type that leads to the highest improvement contribution in the impact resistance of the tested PEAFC. Despite the use of light weight aggregate, the combined action of GFM, MWCNT and SF could enhance the impact strength of PEAFC. The outcome of this research is to deliver benchmark information for further research work on PEAFC under impact loading.(c) 2021 Elsevier Ltd. All rights reserved.
机译:最近的研究报告说,混凝土中的膨胀粘土骨料导致强度性质的显着降低。然而,PEAFC的影响响应包括膨胀粘土聚集体(ECA),多壁纳米碳管(MWCNT),钢纤维(SF)和玻璃纤维网(GFM)仍未探明。绘制关于包含这四种材料的混凝土的冲击响应的声音结论很有意思。预包装的膨胀粘土骨料纤维混凝土(PEAFC)是一种新型的环境可持续混凝土。 PEAFC的开发过程包括以下两个关键阶段。首先,将膨胀的粘土骨料和纤维预先包装到框架中,以自然骨架的形式,然后是灌浆喷射。骨架充满了包括多壁纳米碳管(MWCNT)的水泥灌浆,获得新的PEAFC。本研究调查了PEAFC通过滴重量撞击试验的影响响应。对于本研究,制备了四十一豆荚混合物并分为五组。通过在两个混凝土层之间插入不同层和直径的GFM的效果伴随着掺入了0.2%的MWCNT和2.5%的SF剂量。根据ACI委员会544的指导,所有标本都反对降低重量影响。研究的参数是压缩强度,导致第一裂纹和失效的次数,除冲击延展性外,爆裂裂纹和失效的影响。另外,利用扫描电子显微镜来评估水泥泥浆和rsquo; S的微观结构特征。结果表明,在混凝土层之间增加GFM的直径覆盖较大的裂缝投影区域,其更好地增强了裂纹抑制潜力并导致更高的冲击能量。 GFM直径从50毫米增加到150 mm,分别将裂化和破裂撞击数增加49%至60%,117%至152%。估计SF引起的裂缝和失效撞击数的平均百分比分别估计为162和670%。因此,与参考混合物相比,SF共用了所有混合物的抗冲击性的总开发的71%至96%。添加0.2%的MWCNT可以充分填充纳米孔和纳米裂缝,导致更密集的水泥灌浆基质。发现钢纤维是增强型,导致测试PABFC的抗冲击性的最高提高贡献。尽管使用轻体重精,但GFM,MWCNT和SF的组合作用可以提高PEAFC的冲击强度。该研究的结果是为PEAFC的进一步研究工作提供基准信息,以防冲击载荷。(c)2021 elestvier有限公司保留所有权利。

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