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Ductility of FRP-concrete systems: Investigations at different length scales

机译:FRP混凝土系统的延展性:不同长度尺度的研究

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摘要

Fiber reinforced polymer (FRP) materials have been increasingly used in the last two decades to improve various structural characteristics of reinforced concrete (RC) bridges, buildings and other structures. Ductility of the resulting FRP-concrete system plays an important role in structural performance, especially in certain applications such as earthquake resistant design of structures, where ductility and energy dissipation play a vital role. Wrapping RC columns with FRP has been shown to generally result in significant increase in ductility due to the confinement of concrete by the FRP. Other applications such as flexural strengthening of beams involve tradeoffs between ductility and the desired load capacity. Furthermore, environmental factors may adversely affect the FRP-concrete bond raising concerns about the ductility of the system due to possible premature failure modes. Characterization of these effects requires the use of more involved mechanics concepts other than the simple elastic or ultimate strength analyses. This paper focuses on characterizing ductility of the FRP-concrete systems at different length scales using a combined experimental/computational mechanics approach. Effects of several parameters on ductility, including constituent material properties and their interfaces, FRP reinforcement geometry at the macro- and meso-level, and atomistic structure at the molecular level are discussed. Integration of this knowledge will provide the basis for improved design strategies considering the ductility of FRP-concrete systems from a global as well as local perspective including interface bond behavior under various mechanical and environmental conditions.
机译:在过去的二十年中,越来越多地使用纤维增强聚合物(FRP)材料来改善钢筋混凝土(RC)桥梁,建筑物和其他结构的各种结构特性。最终的FRP-混凝土系统的延性在结构性能中起着重要作用,尤其是在某些应用中,例如结构的抗震设计中,延性和能量耗散起着至关重要的作用。已经表明,用FRP包裹RC柱通常会由于FRP限制混凝土而导致延展性的显着提高。诸如梁的抗弯加固之类的其他应用涉及延性和所需负载能力之间的权衡。此外,由于可能的过早失效模式,环境因素可能会对FRP-混凝土粘结产生不利影响,引起对系统延展性的担忧。这些效应的表征需要使用除简单的弹性或极限强度分析之外的更多涉及的力学概念。本文着重于使用组合的实验/计算力学方法表征FRP混凝土系统在不同长度尺度上的延展性。讨论了几个参数对延展性的影响,包括组成材料的性质及其界面,宏观和中观水平的FRP增强几何形状以及分子水平的原子结构。这些知识的集成将为从全局以及局部的角度考虑FRP混凝土系统的延展性(包括在各种机械和环境条件下的界面键行为)考虑的改进设计策略提供基础。

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