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Prestressing low clinker structural concrete elements by ultra-high modulus carbon fibre reinforced polymer tendons

机译:预应力低熟料结构混凝土元件通过超高模量碳纤维增强聚合物肌腱

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摘要

The combination of low clinker high-performance concrete (LCHPC) and ultra-high modulus (UHM) carbon fibre reinforced polymer (CFRP) tendons was recently proposed for prestressed structural elements. The 70% reduction in cement content resulting in limited creep and shrinkage of the LCHPC in comparison to a conventional high-performance concrete (HPC) and the very high UHM-CFRP tendon stiffness (> 509 GPa) were expected to impact the mechanical behaviour of such structures. This study focuses on the behaviour of 3 m-long beam specimens during prestressing, concrete hardening and in 4 point-bending experiments. Fibre optic sensors were implemented inside the CFRP tendons to measure strain during those stages and a digital image correlation system was employed to monitor the 4-point-bending tests. After 28 days, the LCHPC recipe, despite a 70% cement reduction and much smaller environmental footprint, did not show measurable differences in the prestress loss behaviour in comparison to a conventional HPC. The UHM-CFRP prestressing tendons, because of their stiffness, showed both higher prestress losses of around 40% and on average a nearly doubled prestress transfer length. However, they increased the beam's maximum load-bearing capacity by 21% and showed 47% less deflection at failure in comparison to beams prestressed with the standard modulus (UTS)-CFRP tendons.
机译:最近提出了低熟料高性能混凝土(LCHPC)和超高模量(UHM)碳纤维增强聚合物(CFRP)筋的组合用于预应力的结构元素。与常规的高性能混凝土(HPC)相比,水泥含量降低的水泥含量降低有限,即LCHPC的收缩和非常高的UHM-CFRP肌腱僵硬(> 509GPa)影响力学行为这样的结构。本研究重点介绍了预应力,混凝土硬化和4点弯曲实验期间3米长梁标本的行为。光纤传感器在CFRP肌腱内实现,以在这些阶段测量应变,并且采用数字图像相关系统来监测4点弯曲的测试。 28天后,尽管水泥减少70%和更小的环境足迹,但仍未显示出与常规HPC相比显示预应力损失行为的可测量差异。由于它们的刚度,UHM-CFRP预应力肌腱显示出较高的预应力损失约为40%,平均平均的预应力转移长度。然而,它们将光束的最大承载能力增加21%,并且与标准模量(UTS)-CFRP肌腱预应力的梁相比,失效下降了47%较小的挠度。

著录项

  • 来源
    《Materials and structures》 |2021年第1期|51.1-51.18|共18页
  • 作者单位

    Empa Swiss Federal Laboratories for Materials Science and Technology. UEberlandstrasse 129 8600 Duebendorf Switzerland Institute for Building Materials (IfB) ETH Zurich. 8092 Zurich Switzerland;

    Empa Swiss Federal Laboratories for Materials Science and Technology. UEberlandstrasse 129 8600 Duebendorf Switzerland;

    Empa Swiss Federal Laboratories for Materials Science and Technology. UEberlandstrasse 129 8600 Duebendorf Switzerland Institute for Infrastructure and Environment. School of Engineering University of Edinburgh Edinburgh EH9 3FB UK;

    Empa Swiss Federal Laboratories for Materials Science and Technology. UEberlandstrasse 129 8600 Duebendorf Switzerland Institute for Building Materials (IfB) ETH Zurich. 8092 Zurich Switzerland;

  • 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

    Prestressed concrete; Low-clinker-high-performance-concrete (LCHPC); Carbon fiber; Optical fiber bragg grating; Prestress-losses; Prestress transfer; Bending behavior;

    机译:预应力混凝土;低熟料高性能混凝土(LCHPC);碳纤维;光纤布拉格光栅;预应力损失;预应力转移;弯曲行为;

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