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Axial-Load Resistance of a Novel UHPFRC Grouted SHS Tube-Sleeve Connection: Experimental, Numerical, and Theoretical Approaches

机译:新型UHPFRC灌浆SHS管套连接的轴向负载电阻:实验,数值和理论方法

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摘要

Experimental, numerical, and theoretical analyses were conducted of the axial load resistance of a novel ultrahigh-performance fiber-reinforced concrete (UHPFRC) grouted square hollow section (SHS) tube sleeve connection. The experimental study tested 10 full-scale specimens with varying shear key spacings, grout thicknesses, grout lengths, and volume proportions of steel fiber in the UHPFRC. Two types of failure modes were observed: (1) for the connection with high strength of the grouted part, the failure mode was fracture of the inner tube; and (2) for the connection with lower strength of the grouted part, the failure mode was grout shear crushing with significant bond-slip between grout and steel tube. To understand further the load transfer mechanism of the connection, an advanced three-dimensional (3D) nonlinear finite-element (FE) model was built to simulate the axial load-displacement behavior, state of stress and strain, and crack development of the grout. Based on the test and FE results, a new theoretical model was derived to predict the axial-load resistance of the connection. The proposed model considers the effect of section shape and material parameters, and is applicable to UHPFRC grouted SHS tube sleeve connection with different corner radii. Validation versus the test results showed that the new model can provide reasonably effective and accurate predictions of the axial-load resistance of the novel grouted sleeve connection subjected to tension.
机译:采用实验,数值和理论分析,进行了一种新型超高性能纤维钢筋混凝土(UHPFRC)灌浆方形空心部分(SHS)管套连接的轴向载荷电阻。实验研究测试了10个具有不同剪切键间距,灌浆厚度,灌浆长度和UHPFRC中钢纤维的体积比例的全刻度标本。观察到两种类型的故障模式:(1)对于高强度的灌浆部分的连接,故障模式是内管的破裂; (2)对于采用灌浆部件的较低强度的连接,故障模式是灌浆剪切粉碎,在灌浆和钢管之间具有显着的粘合滑移。为了进一步了解连接的负载转移机制,建立了先进的三维(3D)非线性有限元(FE)模型以模拟轴向载荷 - 位移行为,应力和应变状态,以及灌浆的裂纹开发。基于测试和FE结果,得出了一种新的理论模型,以预测连接的轴向载荷。所提出的模型考虑了截面形状和材料参数的效果,并且适用于与不同的拐角半径的UHPFRC灌浆SHS管套筒连接。验证与测试结果表明,新型模型可提供合理有效和准确的预测对经受张力的新型灌浆套筒连接的轴向载荷电阻。

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