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Development of GFRP-reinforced GFRC for thin permanent formwork applications

机译:GFRP增强的GFRC的开发,用于薄型永久模板应用

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摘要

A major impediment for the development of precast concrete permanent formwork and other thin structural elements such as cladding is the minimum cover requirement to the reinforcement. For aggressive environments, this can be up to 50 mm, which results in minimum 100 mm thickness units. Currently, glass-fibre-reinforced concrete or cement (GFRC) is used to address that problem in small non-structural elements. However, the structural capacity of GFRC is limited and fibre-reinforced plastic (FRP) reinforcement can be used to structurally reinforce GFRC to enable the development of much larger units. The 'skin and rib' concept for the design of such units has been developed by the authors and has been used for the design of precast units. The main issues relating to GFRP-reinforced GFRC are bond, anchoring, tension stiffening, deflections and shear capacity of thin panels. This paper presents experimental and analytical work undertaken to address all the above issues. Pull-out tests confirm that the pull-out resistance of FRP is greater in GFRC than in concrete. Flexural capacity and deformations can be predicted provided the tensile properties of the GFRC are determined and modelled correctly. Finally the shear resistance of the elements is examined and design proposals are made. The work demonstrates that it is possible to develop 1 cm thick GFRC permanent formwork for bridge or building applications - spanning unsupported up to 3-85 m and up to 10 m with intermediate supports, thereby providing a durable and economic alternative to metal decks.
机译:预制混凝土永久模板和其他薄结构元件(如覆层)的发展的主要障碍是钢筋的最小覆盖要求。在恶劣的环境下,最大长度为50毫米,因此最小厚度为100毫米。当前,玻璃纤维增​​强混凝土或水泥(GFRC)用于解决小型非结构性元素中的问题。但是,GFRC的结构能力有限,并且可以使用纤维增强塑料(FRP)增强结构来增强GFRC,以开发更大的单元。作者已经提出了用于设计此类单元的“蒙皮和肋骨”概念,并将其用于预制单元的设计。与GFRP增强的GFRC有关的主要问题是薄板的粘结,锚固,拉伸刚度,挠度和剪切能力。本文介绍了为解决上述所有问题而进行的实验和分析工作。拔出测试证实,GFRC的FRP拔出阻力大于混凝土。只要确定并正确建模GFRC的拉伸特性,就可以预测其抗弯能力和变形。最后,检查了元件的抗剪强度并提出了设计建议。这项工作表明,有可能为桥梁或建筑应用开发1厘米厚的GFRC永久模板-跨度高达3-85 m,无支撑,中间支撑高达10 m,从而为金属甲板提供了一种持久且经济的选择。

著录项

  • 来源
    《Magazine of Concrete Research》 |2010年第4期|p.283-290|共8页
  • 作者单位

    Technology Advisory Division, Dongbu Corporation, Dongbu Financial Center 28F, 891-10, Daechi-Dong, Gangnam-Gu, Seoul, Korea;

    rnDepartment of Civil & Structural Engineering, The University of Sheffield, Mappin Building, Mappin Street, Sheffield, S1 3JD, United Kingdom;

    rnDepartment of Civil & Structural Engineering, The University of Sheffield, Mappin Building, Mappin Street, Sheffield, S1 3JD, United Kingdom;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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