Numerical Study on Discrete Confinement of Circular RC Column Subjected to Eccentric Load

Sandy I. Yansiku, Bambang Piscesa, Priyo Suprobo
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Abstract

Background: The performance of concrete-filled steel-tube (CFST) columns under axial compression is excellent. However, the steel-tube wall's instability due to insufficient outward restraint from the concrete made the steel tube lose its lateral support, thereby making it more susceptible to buckling. Objective: This study aims to propose and investigate a confinement mechanism that can remove the possibility of buckling of the steel tube by introducing gaps and pre-tension to prevent tube detachment from concrete. The investigation was carried out using both experimental tests and numerical simulation. Methods: The proposed confinement mechanism consists of thin steel sheets with gaps between them and is pre-tensioned in a staggered scheme. The performance of the proposed confinement mechanism is evaluated through experimental tests and numerical simulations using an in-house 3D-NLFEA package. The observed behaviors are the axial stress-strain, strength index, initial confining pressure, and ductility. Results: Experimental works found that the primary failure mode in the compression zone of the strengthened column was due to lateral expansion of concrete which may be attributed to strain localization, longitudinal tensile cracking, and severe concrete crushing. On the other hand, at the tensile region, pure tensile forces occurred, followed by crack opening displacement at the outer tensile fiber region. With the proposed confinement mechanism, the extreme failure event can be reduced. The axial capacity and ductility of the strengthened column were enhanced. The numerical model presented the initial confining pressure by the pre-tensioned steel sheet (a clamping mechanism), which successfully increased the axial load capacity of the slender reinforced concrete (RC) column and reduced the possibility of cover spalling. Conclusion: The proposed confinement mechanism to strengthen an RC column was found to successfully enhance the load-carrying capacity and ductility of a slender circular reinforced concrete column.
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偏心荷载作用下圆形钢筋混凝土柱离散约束的数值研究
背景:钢管混凝土柱在轴压作用下具有优良的性能。然而,由于混凝土外约束不足,钢管墙体失稳,使钢管失去侧向支撑,更容易发生屈曲。目的:本研究旨在提出并探讨一种约束机制,该机制可以通过引入间隙和预张力来消除钢管屈曲的可能性,以防止钢管从混凝土中脱离。研究采用了实验测试和数值模拟两种方法。方法:提出的约束机制包括薄钢板与他们之间的空隙,并在交错方案预张。通过实验测试和使用内部3D-NLFEA软件包的数值模拟来评估所提出的约束机制的性能。观察到的行为是轴向应力-应变、强度指标、初始围压和延性。结果:试验发现,加固柱受压区主要破坏模式为混凝土侧向膨胀,可能是应变局部化、纵向拉伸开裂和混凝土严重破碎所致。另一方面,在拉伸区发生纯拉力,其次是外拉伸纤维区开裂位移。采用所提出的约束机制,可以减少极端破坏事件的发生。加固后柱的轴向承载力和延性得到提高。该数值模型给出了预应力钢板(一种夹紧机构)的初始围压,成功地提高了细长钢筋混凝土柱的轴向承载能力,降低了盖板剥落的可能性。结论:所提出的约束机制对钢筋混凝土细长圆柱的承载能力和延性有较好的增强作用。
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