Full-scale test on the mechanical behavior of longitudinal joints of NC-UHPC composite segments under compression-bending load

IF 6.7 1区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY Tunnelling and Underground Space Technology Pub Date : 2024-07-30 DOI:10.1016/j.tust.2024.105993
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Abstract

The performance of longitudinal joints in shield tunnel segments is crucial for ensuring structural stability and durability. This study presents an innovative segment structure combining normal concrete (NC) and ultra-high performance concrete (UHPC) (hereafter called NC-UHPC composite segment). Full-scale joint tests were conducted to analyze the mechanical response and failure characteristics of longitudinal joints in these segments. Compared to reinforced concrete (RC) segment joints, NC-UHPC composite segment joints exhibited a significant increase in initial cracking load by 197.93% under sagging moments and 435.3% under hogging moments. The ultimate load-bearing capacity increased by 55.71% and 67.10%, and the initial bending stiffness improved by 20.57% and 10.59% under sagging and hogging moments, respectively. Furthermore, NC-UHPC composite segment joints exhibited smaller crack distribution areas and fewer cracks, indicating superior crack resistance. No cracks or damage were observed at the NC-UHPC interface. Evaluation of joint toughness and ductility indices further highlighted the favorable performance of NC-UHPC composite segment joints. Finally, a refined numerical model was established to compare the deflection and bending stiffness of RC segment joints with NC-UHPC composite segment joints under varying axial forces. The findings suggest that NC-UHPC composite segments are more suitable for tunnel engineering with greater burial depth, higher water pressure, and larger axial forces.

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压缩-弯曲载荷作用下 NC-UHPC 复合材料纵向接缝力学行为的全尺寸试验
盾构隧道纵向接缝的性能对于确保结构稳定性和耐久性至关重要。本研究提出了一种结合了普通混凝土(NC)和超高性能混凝土(UHPC)的创新段结构(以下称为 NC-UHPC 复合段)。研究人员进行了全尺寸接缝试验,以分析这些分段纵向接缝的力学响应和破坏特征。与钢筋混凝土(RC)分段接头相比,NC-UHPC 复合分段接头在下垂力矩下的初始开裂荷载显著增加了 197.93%,在滞后力矩下的初始开裂荷载显著增加了 435.3%。极限承载力分别提高了 55.71% 和 67.10%,初始弯曲刚度在下垂力矩和滞后力矩下分别提高了 20.57% 和 10.59%。此外,NC-UHPC 复合材料分段接头的裂缝分布面积较小,裂缝数量较少,表明其抗裂性能优越。在 NC-UHPC 接口处未观察到裂缝或损坏。对接头韧性和延展性指数的评估进一步凸显了 NC-UHPC 复合材料分段接头的良好性能。最后,建立了一个完善的数值模型,以比较在不同轴向力作用下,RC 节段接头与 NC-UHPC 复合节段接头的挠度和弯曲刚度。研究结果表明,NC-UHPC 复合节段更适用于埋深较大、水压较高和轴向力较大的隧道工程。
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来源期刊
Tunnelling and Underground Space Technology
Tunnelling and Underground Space Technology 工程技术-工程:土木
CiteScore
11.90
自引率
18.80%
发文量
454
审稿时长
10.8 months
期刊介绍: Tunnelling and Underground Space Technology is an international journal which publishes authoritative articles encompassing the development of innovative uses of underground space and the results of high quality research into improved, more cost-effective techniques for the planning, geo-investigation, design, construction, operation and maintenance of underground and earth-sheltered structures. The journal provides an effective vehicle for the improved worldwide exchange of information on developments in underground technology - and the experience gained from its use - and is strongly committed to publishing papers on the interdisciplinary aspects of creating, planning, and regulating underground space.
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