Infl uence of Transversal Reinforcement on Plastic Rotation Capacity of High-Strength Beams

L. Bernardo, L. Oliveira, D. Pinto
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引用次数: 2

Abstract

This paper describes how the increase in knowledge about the potential of mixtures containing chemicals and mineral materials leads to the high-performance concretes, including high-strength concrete (HSC) in the last decade. When high strength, durability, and elevated service behavior are necessities high-strength concrete can be an economical solution. In general, it is known that increasing the compressive concrete strength leads to the deformability reduction resulting in a more brittle concrete. On the other hand, the low deformability of HSC doesn’t mean low deformability of the high-strength beams, because their behavior comes from a combined effect of concrete and reinforcement. One of the usual reinforcement elements is the stirrups (transversal reinforcement). By ensuring a sufficient concrete confinement in the compressive zone, and by its distribution along the beam length, this reinforcement can improve the plastic rotation capacity on the beam critical sections. This paper presents an experimental study about the influence of transversal reinforcement (stirrups) on the flexure plastic rotation capacity of high-strength beams. Flexural tests on five simply supported beams were carried out using a four-point bending load untill the failure load. The load position was favorable to create a central zone on the beam theoretically of pure flexure behavior without shear stress influence. The beams failures were governed by the pure flexure in the middle zone of the beams. In this study, only one solution of stirrups was used, corresponding to a transversal reinforcement ratio of 0.295%. The compressive concrete strength was between 75.0 and 90.6 MPa. The longitudinal reinforcement ratio was between 2.2 to 3.5%. The plastic rotation capacity in flexure is characterized by the use and definition of a plastic trend parameter. From the results of this study, a well-known positive effect on plastic rotation capacity caused by confinement with transversal reinforcement was shown. A bilinear law can induce the increment of plastic rotation capacity. This law states that the increment of plastic rotation capacity decreases in a large way as the longitudinal tensile reinforcement ratio increases, and becomes equal to zero from longitudinal reinforcement ratio 3.0 to 3.5%.
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横向配筋对高强梁塑性承载力的影响
本文描述了在过去十年中,关于含有化学物质和矿物材料的混合物的潜力的知识的增加如何导致高性能混凝土,包括高强混凝土(HSC)。当高强度、耐久性和高服务性能是必需品时,高强度混凝土可以是一种经济的解决方案。一般来说,众所周知,增加混凝土抗压强度会导致变形能力降低,从而导致混凝土更脆。另一方面,混凝土混凝土的低变形能力并不意味着高强梁的低变形能力,因为它们的行为是混凝土和钢筋的共同作用。常用的加固元件之一是马镫(横向加固)。通过保证受压区有足够的混凝土约束,并通过其沿梁长分布,这种钢筋可以提高梁临界截面上的塑性旋转能力。本文对横向配筋(箍筋)对高强梁挠曲塑性承载力的影响进行了试验研究。采用四点弯曲荷载对5根简支梁进行了弯曲试验,直至失效荷载。在理论上,荷载位置有利于在梁上形成一个不受剪应力影响的纯挠曲行为中心区。梁的破坏受梁中部纯挠曲的支配。在本研究中,只使用一种马镫溶液,对应的横向配筋率为0.295%。混凝土抗压强度在75.0 ~ 90.6 MPa之间。纵向配筋率在2.2 ~ 3.5%之间。挠曲时的塑性旋转能力是由塑性趋势参数的使用和定义来表征的。从本研究的结果来看,横向钢筋约束对塑性旋转能力产生了众所周知的积极影响。双线性规律可以诱导塑性旋转能力的增加。该规律表明,塑性旋转能力增量随着纵向拉伸配筋率的增大而大幅度减小,在纵向拉伸配筋率为3.0 ~ 3.5%时趋于零。
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