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Design-curves of strain softening and strain hardening fibre reinforced concrete elements subjected to axial load and bending moments

机译:承受轴向载荷和弯矩的应变软化和应变硬化纤维混凝土构件的设计曲线

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摘要

Several structural components made by fibre reinforced concrete (FRC) are submitted to axial load and bending moments. In some cases fibres cannot replace completely the conventional reinforcement, even if strain hardening FRC is used; therefore the optimization of the reinforcement solution for these elements depends on the post-cracking behaviour of the FRC, as well as the percentage of conventional reinforcement to replace. To fully exploit the FRC capabilities, the development of a suitable, comprehensive and design-oriented model of its tensile response is of the utmost importance. To provide a practical tool for the pre-design of FRC-structural-elements subjected to axial load and bending moments, design curves were generated using a computational program capable of simulating the main features of the tensile and compressive behaviour of strain softening and strain hardening FRC’s, and steel bars. The post-cracking tensile behaviour of the FRC is characterized by two parameters that define its residual strength ratio (α) and its corresponding tensile strain ratio (β). To generate these curves, a parametric study is carried out based on the tensile parameters α and β and considering distinct mechanical reinforcement ratios, from 0 to 1 with a step of 0.2. For every reinforcement ratio, four distinct cases in terms of β are considered; additionally, for every case of β, α is divided from strain hardening to strain softening in five distinct residual strength classes. By sequentially varying α and β, the bending capacity of a section is evaluated to provide a design perspective of the effect of ductility and strength. The model used in this study is described, the design curves are presented and analyzed and some practical design examples are provided.
机译:由纤维增强混凝土(FRC)制成的一些结构部件会承受轴向载荷和弯矩。在某些情况下,即使使用应变硬化FRC,纤维也无法完全替代传统的增强材料。因此,针对这些元件的加固解决方案的优化取决于FRC的开裂后性能,以及常规钢筋替换的百分比。为了充分利用FRC的功能,开发合适的,全面的,面向设计的拉伸响应模型至关重要。为了为承受轴向载荷和弯矩的FRC结构元件进行预设计提供实用工具,使用能够模拟应变软化和应变硬化的拉伸和压缩行为的主要特征的计算程序生成设计曲线。 FRC和钢筋。 FRC开裂后的拉伸行为的特征在于两个参数,这些参数定义了其残余强度比(α)和相应的拉伸应变比(β)。为了生成这些曲线,基于拉伸参数α和β并考虑到不同的机械增强比(从0到1,步长为0.2)进行了参数研究。对于每个配筋率,考虑β的四个不同情况。此外,对于β的每种情况,α从应变硬化到应变软化分为五个不同的残余强度类别。通过依次改变α和β,可以评估截面的弯曲能力,以提供延展性和强度影响的设计观点。描述了本研究中使用的模型,提出并分析了设计曲线,并提供了一些实际的设计实例。

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