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首页> 外文期刊>Journal of structural engineering >Gradual Crushing of Steel Reinforced HPFRCC Beams: Experiments and Simulations
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Gradual Crushing of Steel Reinforced HPFRCC Beams: Experiments and Simulations

机译:钢筋加固HPFRCC梁的逐步粉碎:实验和模拟

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摘要

While the tensile performance of high-performance fiber-reinforced cementitious composites (HPFRCC) has been extensively studied, the crushing behavior is less understood. Notably, crushing is an important load-reduction mechanism for reinforced HPFRCC flexural members that fail in a ductile mode, i.e., failure after gradual strain hardening of the steel reinforcement accompanied by gradual HPFRCC crushing. This study first investigates the crushing behavior of HPFRCC flexural members through experimental testing of two reinforced HPFRCC beams. The experimental program includes two types of HPFRCC materials: engineered cementitious composites (ECC) and ultra-high performance concrete (UHPC). The test results show that both ECC and UHPC gradually soften in compression after the initiation of crushing, which is in contrast to the more brittle crushing behavior typically observed in conventional concrete. In addition to the experimental investigation, a new HPFRCC compression model is implemented in a two-dimensional finite-element analysis to simulate the gradual compression softening behavior in reinforced HPFRCC flexural members. Different modeling strategies are compared and evaluated. Results show that the proposed model with an initial material flaw, the new compression model, and a hybrid-rotating/fixed-crack model best predict the reinforced HPFRCC structural performance, especially the failure mode and drift capacity. (C) 2021 American Society of Civil Engineers.
机译:虽然已经广泛研究了高性能纤维增强水泥复合材料(HPFRCC)的拉伸性能,但较少理解破碎行为。值得注意的是,压碎是用于增强HPFRCC弯曲构件的重要负载还原机制,其在延展模式下失效,即钢筋逐渐破坏后伴随逐步的HPFRCC破碎。本研究首先通过两种加强HPFRCC梁的实验测试研究了HPFRCC弯曲构件的破碎行为。实验计划包括两种类型的HPFRCC材料:工程化水泥复合材料(ECC)和超高性能混凝土(UHPC)。测试结果表明,在打击后,ECC和UHPC逐渐被软化,这与通常在传统混凝土中通常观察到的更脆性的破碎行为相反。除了实验研究之外,在二维有限元分析中实现了一种新的HPFRCC压缩模型,以模拟增强HPFRCC弯曲构件中的逐渐压缩软化行为。比较和评估不同的建模策略。结果表明,该型号具有初始材料缺陷,新的压缩模型和混合旋转/固定裂纹模型的最佳预测,最佳预测增强的HPFRCC结构性能,尤其是故障模式和漂移能力。 (c)2021年美国土木工程师协会。

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