Luo Jun, Huai Chenzi, Shao Xudong, Zhao Jun, Wang Ling
School of Mechanics and Safety Engineering, Zhengzhou University, Zhengzhou 450001, China.
Yellow River Engineering Consulting Co., Ltd., Zhengzhou 450003, China.
Polymers (Basel). 2022 Jul 8;14(14):2796. doi: 10.3390/polym14142796.
Ultra-high-performance fiber-reinforced cementitious composite (UHPFRC) is used in orthotropic steel deck (OSD) to form a lightweight composite deck structure (LWCD), which is expected to solve the problems of fatigue cracking of traditional steel deck and pavement damage. This paper aims to study the influence of key design parameters on longitudinal bending and transverse fatigue performance, as well as the ultimate bearing capacity calculation theory of the LWCD. A local finite-element (FE) model was built to evaluate the vehicle-induced stress ranges of six typical fatigue-prone details. In total, eight negative bending tests on steel-UHPFRC composite beams and one fatigue test on a steel-UHPFRC composite plate were conducted to investigate the longitudinal bending performance and the transverse flexural fatigue behavior of the LWCD, respectively. The results show that adding a 60-mm UHPFRC layer can significantly reduce the stress amplitude of six typical fatigue details by 44.8% to 90%. The failure mode of the longitudinal bending tests is the U-rib buckle and all UHPFRC layers exhibit multiple cracking behaviors when the specimens failed. The longitudinal cracking stresses of the specimens are between 20.0 MPa to 27.3 MPa. The reinforcement ratio and cover thickness have a great influence on the cracking stress. While the ultimate bearing capacity of specimens with different parameters has little difference. The calculation method of the ultimate bearing capacity of a steel-UHPFRC composite structure is proposed. When the strain at the bottom of the u-rib is taken as 1.2 times the design yield strain, the calculated results are in good agreement with the experimental results. No fatigue failure was observed after 66.12 million fatigue cycles under the design load, highlighting the favorable fatigue resistance of the proposed LWCD.
超高性能纤维增强水泥基复合材料(UHPFRC)用于正交异性钢桥面板(OSD)以形成轻质复合桥面板结构(LWCD),有望解决传统钢桥面板的疲劳开裂和路面损坏问题。本文旨在研究关键设计参数对纵向弯曲和横向疲劳性能的影响,以及LWCD的极限承载力计算理论。建立了局部有限元(FE)模型来评估六个典型易疲劳细节处的车辆诱导应力范围。总共进行了八次钢-UHPFRC组合梁的负弯矩试验和一次钢-UHPFRC组合板的疲劳试验,分别研究LWCD的纵向弯曲性能和横向弯曲疲劳行为。结果表明,添加60毫米厚的UHPFRC层可使六个典型疲劳细节处的应力幅值显著降低44.8%至90%。纵向弯曲试验的破坏模式为U肋屈曲,试件破坏时所有UHPFRC层均呈现多裂缝行为。试件的纵向开裂应力在20.0兆帕至27.3兆帕之间。配筋率和保护层厚度对开裂应力有很大影响。而不同参数试件的极限承载力差异不大。提出了钢-UHPFRC组合结构极限承载力的计算方法。当U肋底部应变取为设计屈服应变的1.2倍时,计算结果与试验结果吻合良好。在设计荷载作用下,经过6612万次疲劳循环后未观察到疲劳破坏,突出了所提出的LWCD良好的抗疲劳性能。