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Optimisation of flexural stiffness profiles to compensate for reduced ductility in hyperstatic reinforced concrete structures

机译:优化抗弯刚度曲线以补偿超静定钢筋混凝土结构的延展性

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摘要

Hyperstatic - or statically indeterminate - reinforced concrete (RC) structures of limited ductility may significantly under-achieve their intended ultimate loads if detailed to the statement of the lower bound theorem. This article presents a computational procedure which beneficially offsets that undesirable effect of limited ductility. The procedure works by iterating towards design moments which, in addition to satisfying equilibrium, are also consistent with the flexural stiffness profile of the cracked structure. A computer algorithm for the procedure is combined with finite element analysis (which is first verified) for application to FRP flexural strengthening of existing hyperstatic RC structures, and also to high steel-reinforcing of a new hyperstatic concrete structure. Typical influences - on the iterations - of erroneous hog-to-sag flexural stiffness ratios and erroneous locations of contraflexure are illustrated. It is shown that the iterations progressively improve the actual load capacity of the structure relative to the intended load capacity. Where some ductility exists before debonding of FRP from concrete, algebraic analysis based on the structure's stiffness profile is used to help show that partial convergence between cracked and design moment distributions can lead to attainment of intended load capacity. It is concluded that these ideas permit two approaches, from reliance on ductility for conventional under-reinforced concrete structures, to this stiffness profile-optimisation approach for ductility-deficient RC structures.
机译:如果对下界定理进行详细说明,则延性受限的超静态(或超静定)钢筋混凝土(RC)结构可能会大大低于其预期的极限荷载。本文提出了一种计算程序,可以有益地抵消延展性的不良影响。该程序通过迭代设计力矩进行工作,除了满足平衡之外,这些设计力矩还与裂缝结构的抗弯刚度曲线相一致。该程序的计算机算法与有限元分析(首次验证)相结合,可应用于现有的超静压RC结构的FRP抗弯加固,以及新的超静压混凝土结构的高钢加固。图示了错误的生猪对凹陷的弯曲刚度比和相反弯曲的错误位置的典型影响(对迭代的影响)。结果表明,迭代相对于预期的承载能力逐步提高了结构的实际承载能力。在将FRP与混凝土脱粘之前存在一定延展性的情况下,基于结构刚度分布的代数分析可帮助表明,裂纹和设计弯矩分布之间的局部收敛可导致达到预期的承载能力。结论是,这些想法允许两种方法,从对传统的不足钢筋混凝土结构的延性的依赖,到对延性不足的RC结构的刚度分布优化方法。

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