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Seismically Resilient Hybrid Precast Concrete Piers with Ultrahigh-Performance Concrete

机译:具有超高性能混凝土的地震弹性混合预制混凝土墩

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This paper investigated a novel hybrid precast pier system that utilized ultrahigh-performance concrete (UHPC). The pier combines features of emulative and nonemulative (of cast-in-place construction) systems to balance self-centering and energy dissipation under seismic loading and uses UHPC to maintain that balance with low damage. An analytical model was used to study piers with varying UHPC mixes, properties of which were determined through material testing. Two large-scale pier specimens with UHPC and with varying confinement reinforcement grades were tested under quasi-static cyclic lateral loading. The test results demonstrated that the selected UHPC mix enabled the balance between bending and rocking. The rocking-induced cracking was not prevented by UHPC but was alleviated with a steel case. When the rocking-induced damage was prevented, more than 40% of the total displacement was caused by rocking at smaller drift ratios (0.5%), enabling self-centering. At larger drift ratios (4.5%), approximately 80% of the displacement was from bending, enabling energy dissipation. Replacing normal-strength steel with high-strength steel confinement did not improve the flexural capacity or ductility of UHPC.
机译:本文研究了一种新型混合预制墩系统,用于超高性能混凝土(UHPC)。该码头结合了仿真和非理性结构)系统的特征,以平衡地震载荷下的自定心和能量耗散,并使用UHPC保持低损坏的平衡。使用分析模型用于研究具有不同UHPC混合的墩,其特性通过材料测试确定。在准静态循环横向载荷下测试了两个具有UHPC和不同限制强度等级的大型墩标本。测试结果表明,所选的UHPC MIX使弯曲和摇摆之间的平衡使能。 UHPC未防止摇摆诱导的裂缝,但用钢壳缓解。当防止摇摆诱导的损伤时,通过在较小的漂移比(<0.5%)下摇摆不超过40%的总位移,使得自定心。在较大的漂移比(& 4.5%)处,大约80%的位移是从弯曲的,从而能够耗散。用高强度钢监禁更换正常强度钢并未提高UHPC的弯曲能力或延展性。

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