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Numerical modeling approach for UHPFRC members including crack spacing formulations

机译:UHPFRC成员的数值模拟方法,包括裂纹间距制剂

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Ultra-high performance fiber-reinforced concrete (UHPFRC) possesses excellent mechanical properties and durability. The steel fibers in the concrete result in significant post-cracking tensile resistance and enhanced crack control. However, while UHPFRC is a promising material for the construction of new (and repair of existing) infrastructure, its application is still limited?in part due to the lack of numerical models with the capacity to simulate its complex behavior. To help overcome this challenge, this study proposes a numerical material modeling approach for the nonlinear finite element analysis of UHPFRC. The approach aims to provide a general applicability to model both shear- and flexure-critical members made from strain-softening or -hardening UHPFRC, while still using simple equations. This objective can be achieved by establishing a comprehensive set of crack spacing formulations and modeling recommendations to capture the unique behavior of UHPFRC. The crack spacing estimates are used together with the Diverse Embedment Model for FRC, which is extended here for the modeling of UHPFRC. When applied to 29 flexure- and shear-critical specimens, the proposed modeling approach accurately simulates the experimental responses with an average of 1.04 and a coefficient of variation of 10.2% for the experimental-to-predicted strength ratios.
机译:超高性能纤维钢筋混凝土(UHPFRC)具有优异的机械性能和耐用性。混凝土中的钢纤维导致显着的开裂后抗拉性抗性和增强的裂缝控制。然而,虽然UHPFRC是建造新的(和维修现有)基础设施的有希望的材料,但其应用仍然有限?部分原因是缺乏具有模拟其复杂行为的能力的数值模型。为了帮助克服这一挑战,本研究提出了UHPFRC非线性有限元分析的数值材料建模方法。该方法旨在为模拟由应变软化或高性能UHPFRC制成的剪切和弯曲关键构件的一般适用性,同时仍在使用简单方程。通过建立一套全面的裂缝间距制剂和建模建议,可以实现这一目标,以捕捉UHPFRC的独特行为。裂缝间距估计与FRC的不同嵌入模型一起使用,这在此处延长了UHPFRC的建模。当施加到29个柔性和剪切临界标本时,所提出的建模方法准确地模拟了平均1.04的实验反应,并且实验到预测的强度比率为10.2%的变异系数。

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